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BH2VSQ cf23d53ee8 Add TianDiTu 2026-07-31 03:28:35 +08:00
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-5
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@@ -1,9 +1,6 @@
# Built application files
*.ap_
# Hermes AI plans and metadata
.hermes/
# Files for the ART/Dalvik VM
*.dex
@@ -18,7 +15,6 @@ out/
# Gradle files
.gradle/
build/
.cxx/
# Local configuration file (sdk path, etc)
local.properties
@@ -68,4 +64,3 @@ fastlane/readme.md
/app/release/output-metadata.json
/app/release/
/.kotlin/sessions/
dist/
+30 -27
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@@ -1,42 +1,45 @@
# Look4Sat-BA7OPF
# Look4Sat: Satellite tracker
[![Release](https://img.shields.io/github/v/release/atsunatsu/Look4Sat)](https://github.com/atsunatsu/Look4Sat/releases)
[![Look4Sat CI](https://github.com/rt-bishop/Look4Sat/actions/workflows/release.yml/badge.svg)](https://github.com/rt-bishop/Look4Sat/actions/workflows/release.yml)
**BA7OPF 定制版** — 基于 [rt-bishop/Look4Sat](https://github.com/rt-bishop/Look4Sat) 的业余无线电卫星追踪器,增加了线性卫星频率计算器等功能。
[<img src="https://play.google.com/intl/en_gb/badges/static/images/badges/en_badge_web_generic.png" alt="Get it on Google Play" height="80">](https://play.google.com/store/apps/details?id=com.rtbishop.look4sat)
[<img src="https://fdroid.gitlab.io/artwork/badge/get-it-on.png" alt="Get it on F-Droid" height="80">](https://f-droid.org/packages/com.rtbishop.look4sat/)
## 本仓库特色功能
### Radio satellite tracker and pass predictor for Android, inspired by Gpredict
- **网格地图模式(Grid Mode)** — 地图页内置 VUCC 网格覆盖图:已通联网格绿色填充、漫游网格蓝色 45° 斜纹(疏朗半透明样式)、当前所在方格淡黄加粗框;点击已通联网格弹出该网格内通联明细弹窗;进入网格模式默认 VUCC 视图
- **奖状边界模式(Award Boundaries)** — 在网格地图上叠加 DXCC / WAPC / WAJA / WAZ / WAS 国界·省界·分区边界,已确认区域绿色填充
- **LoTW 网格同步** — 直连 ARRL Logbook(账号密码验证)下载确认报告,worked / roamed 网格自动更新(兼容任意字段顺序的 ADIF 解析);同步失败按凭据错误/限流/超时分类提示
- **双站过境匹配(Mutual Pass)** — 输入友台经纬度/网格,筛选双方同时可见的卫星过境,在地图上同时显示双方仰角曲线和地面轨迹,支持一键跳转雷达页查看详情
- **线性卫星转发器频率计算器** — 在雷达页的 Calculator 标签页中,支持 TX/RX 双向多普勒频率计算,以及下行频率偏移(offset)输入,方便操作带偏移的线性卫星
- **CW 解码器** — 集成 Morse Expert 解码引擎,支持瀑布图、实时解码文本(arm64 + armeabi-v7a 双架构)
- **AMSAT 状态页** — 实时查看卫星的业余无线电转发器状态(开启/关闭/待机),支持 72 小时历史记录回放,启动时预取缓存
- **应用内更新检查** — 设置页一键检查 GitHub 最新 Release,展示版本说明并直接下载安装
- **自定义 TLE 数据源** — 可添加自定义 TLE/Celestrak CSV 数据源,长按拖拽排序,数据源启停开关与 HTTP 状态码显示
- **中文界面优化** — 翻译修正、UI 布局调整,系统语言自动切换
<p float="left">
<img src="fastlane/metadata/android/en-US/images/phoneScreenshots/1.png" width="192"/>
<img src="fastlane/metadata/android/en-US/images/phoneScreenshots/2.png" width="192"/>
<img src="fastlane/metadata/android/en-US/images/phoneScreenshots/3.png" width="192"/>
<img src="fastlane/metadata/android/en-US/images/phoneScreenshots/4.png" width="192">
</p>
## 上游仓库
### Track satellite passes with ease!
本仓库是 [rt-bishop/Look4Sat](https://github.com/rt-bishop/Look4Sat) 的分支,上游仓库的原始功能包括:
Thanks to [Celestrak](https://celestrak.com/) and [SatNOGS](https://satnogs.org/) you have access to over 9000 active satellites.\
You can search the entire database by NORAD Catalog Number or the satellite's name.
- 基于 Celestrak / SatNOGS 数据的 9000+ 活跃卫星追踪
- SGP4/SDP4 轨道预测,10 天过境预报
- 极坐标雷达图、地面轨迹图
- SSTV 图像解码
- 无广告、无跟踪、完全离线
Orbital positions and passes are calculated relative to your location.\
To get reliable data make sure to set the station position via the app Settings.
## 许可证
The application is built using Kotlin, Coroutines, Jetpack Compose and Navigation.\
It is now and always will be completely ad-free and open-source.
GNU General Public License v3.0。详见 [LICENSE](LICENSE)。
## Main features:
* Predicting satellite positions and passes for up to 10 days
* Showing the list of currently active and upcoming satellite passes
* Showing the active pass progress, polar trajectory and transceivers info
* Showing the satellite positional data, footprint and ground track on the map
* Custom TLE satellite data import is available via Three Line Element .txt files
* Offline first: calculations are made offline. Weekly TLE data update is recommended.
## Star History
<a href="https://star-history.dera.page/#atsunatsu/Look4Sat&type=timeline&legend=top-left">
<a href="https://www.star-history.com/?repos=rt-bishop%2FLook4Sat&type=timeline&legend=top-left">
<picture>
<source media="(prefers-color-scheme: dark)" srcset="https://star-history.dera.page/svg?repos=atsunatsu/Look4Sat&type=timeline&theme=dark&legend=top-left" />
<source media="(prefers-color-scheme: light)" srcset="https://star-history.dera.page/svg?repos=atsunatsu/Look4Sat&type=timeline&legend=top-left" />
<img alt="Star History Chart" src="https://star-history.dera.page/svg?repos=atsunatsu/Look4Sat&type=timeline&legend=top-left" />
<source media="(prefers-color-scheme: dark)" srcset="https://api.star-history.com/chart?repos=rt-bishop/Look4Sat&type=timeline&theme=dark&legend=top-left" />
<source media="(prefers-color-scheme: light)" srcset="https://api.star-history.com/chart?repos=rt-bishop/Look4Sat&type=timeline&legend=top-left" />
<img alt="Star History Chart" src="https://api.star-history.com/chart?repos=rt-bishop/Look4Sat&type=timeline&legend=top-left" />
</picture>
</a>
-38
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@@ -1,41 +1,3 @@
import java.io.FileInputStream
import java.util.Properties
plugins {
alias(libs.plugins.convention.applicationPlugin)
}
// Release signing credentials live in local.properties (gitignored) or
// environment variables — never hardcode passwords in VCS.
val releaseProps = Properties().apply {
val propsFile = rootProject.file("local.properties")
if (propsFile.exists()) FileInputStream(propsFile).use { load(it) }
}
fun releaseCred(name: String): String =
releaseProps.getProperty(name) ?: System.getenv(name) ?: ""
android {
namespace = libs.versions.packageName.get()
defaultConfig {
applicationId = "cn.ba7opf.look4sat"
// CW decoder ships for both ABIs (see feature/cw jniLibs); the APK must
// not be pinned to 32-bit only or 64-bit devices fall back to ARM32.
ndk {
abiFilters.add("armeabi-v7a")
abiFilters.add("arm64-v8a")
}
}
signingConfigs {
create("release") {
storeFile = file(System.getProperty("user.home") + "/my-release-key.jks")
storePassword = releaseCred("RELEASE_STORE_PASSWORD")
keyAlias = releaseCred("RELEASE_KEY_ALIAS").ifEmpty { "look4sat" }
keyPassword = releaseCred("RELEASE_KEY_PASSWORD")
}
}
buildTypes {
release {
signingConfig = signingConfigs.getByName("release")
}
}
}
+3
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@@ -0,0 +1,3 @@
-keep class org.osmdroid.** { *; }
-keep class com.rtbishop.look4sat.feature.map.*TiandituTileSource* { *; }
-dontwarn org.osmdroid.**
+3 -15
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@@ -13,10 +13,9 @@
<uses-permission android:name="android.permission.BLUETOOTH_SCAN" />
<uses-permission android:name="android.permission.INTERNET" />
<uses-permission android:name="android.permission.RECORD_AUDIO" />
<uses-permission android:name="android.permission.REQUEST_INSTALL_PACKAGES" />
<application
android:name=".MainApplication"
android:name="cn.bh2vsq.look4sat.MainApplication"
android:allowBackup="false"
android:icon="@mipmap/ic_launcher"
android:label="@string/app_name"
@@ -24,9 +23,8 @@
android:roundIcon="@mipmap/ic_launcher_round">
<activity
android:name=".MainActivity"
android:name="cn.bh2vsq.look4sat.MainActivity"
android:exported="true"
android:screenOrientation="portrait"
android:theme="@style/Theme.Look4Sat.SplashScreen">
<intent-filter>
<action android:name="android.intent.action.MAIN" />
@@ -44,17 +42,7 @@
<meta-data
android:name="android.telephony.PROPERTY_SATELLITE_DATA_OPTIMIZED"
android:value="com.rtbishop.look4sat" />
<provider
android:name="androidx.core.content.FileProvider"
android:authorities="${applicationId}.fileprovider"
android:exported="false"
android:grantUriPermissions="true">
<meta-data
android:name="android.support.FILE_PROVIDER_PATHS"
android:resource="@xml/file_paths" />
</provider>
android:value="cn.bh2vsq.look4sat" />
</application>
</manifest>
@@ -15,7 +15,7 @@
* You should have received a copy of the GNU General Public License
* along with this program. If not, see <https://www.gnu.org/licenses/>.
*/
package com.rtbishop.look4sat
package cn.bh2vsq.look4sat
import android.content.Context
import android.content.res.Configuration
@@ -49,7 +49,7 @@ class MainActivity : ComponentActivity() {
super.onCreate(savedInstanceState)
observeNightFilterState()
setContent {
MainTheme(isDarkTheme = true) { NavRoot() }
MainTheme(isDarkTheme = true) { MainScreen() }
}
}
@@ -0,0 +1,54 @@
/*
* Look4Sat. Amateur radio satellite tracker and pass predictor.
* Copyright (C) 2019-2026 Arty Bishop and contributors.
*
* This program is free software: you can redistribute it and/or modify
* it under the terms of the GNU General Public License as published by
* the Free Software Foundation, either version 3 of the License, or
* (at your option) any later version.
*
* This program is distributed in the hope that it will be useful,
* but WITHOUT ANY WARRANTY; without even the implied warranty of
* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
* GNU General Public License for more details.
*
* You should have received a copy of the GNU General Public License
* along with this program. If not, see <https://www.gnu.org/licenses/>.
*/
package cn.bh2vsq.look4sat
import android.app.Application
import com.rtbishop.look4sat.core.data.injection.MainContainer
import com.rtbishop.look4sat.core.domain.repository.IContainerProvider
import com.rtbishop.look4sat.core.domain.repository.IMainContainer
import kotlinx.coroutines.launch
import java.text.SimpleDateFormat
import java.util.Date
import java.util.Locale
class MainApplication : Application(), IContainerProvider {
private lateinit var container: IMainContainer
override fun getMainContainer(): IMainContainer = container
override fun onCreate() {
super.onCreate()
container = MainContainer(this)
// trigger automatic update every 48 hours
container.appScope.launch { checkAutoUpdate() }
// load satellite data on every app start
container.appScope.launch { container.satelliteRepo.initRepository() }
}
private suspend fun checkAutoUpdate(timeNow: Long = System.currentTimeMillis()) {
if (container.settingsRepo.otherSettings.value.stateOfAutoUpdate) {
val timeDelta = timeNow - container.settingsRepo.databaseState.value.updateTimestamp
if (timeDelta > 172_800_000L) { // 48 hours in ms
val sdf = SimpleDateFormat("d MMM yyyy - HH:mm:ss", Locale.getDefault())
println("Started periodic data update on ${sdf.format(Date())}")
container.databaseRepo.updateFromRemote()
}
}
}
}
@@ -0,0 +1,248 @@
/*
* Look4Sat. Amateur radio satellite tracker and pass predictor.
* Copyright (C) 2019-2026 Arty Bishop and contributors.
*
* This program is free software: you can redistribute it and/or modify
* it under the terms of the GNU General Public License as published by
* the Free Software Foundation, either version 3 of the License, or
* (at your option) any later version.
*
* This program is distributed in the hope that it will be useful,
* but WITHOUT ANY WARRANTY; without even the implied warranty of
* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
* GNU General Public License for more details.
*
* You should have received a copy of the GNU General Public License
* along with this program. If not, see <https://www.gnu.org/licenses/>.
*/
package cn.bh2vsq.look4sat
import androidx.compose.animation.core.LinearEasing
import androidx.compose.animation.core.RepeatMode
import androidx.compose.animation.core.animateFloat
import androidx.compose.animation.core.infiniteRepeatable
import androidx.compose.animation.core.rememberInfiniteTransition
import androidx.compose.animation.core.tween
import androidx.compose.animation.fadeIn
import androidx.compose.animation.fadeOut
import androidx.compose.animation.scaleIn
import androidx.compose.animation.scaleOut
import androidx.compose.animation.slideInHorizontally
import androidx.compose.animation.slideOutHorizontally
import androidx.compose.animation.togetherWith
import androidx.compose.foundation.background
import androidx.compose.foundation.clickable
import androidx.compose.foundation.layout.Box
import androidx.compose.foundation.layout.Column
import androidx.compose.foundation.layout.Row
import androidx.compose.foundation.layout.Spacer
import androidx.compose.foundation.layout.fillMaxSize
import androidx.compose.foundation.layout.fillMaxWidth
import androidx.compose.foundation.layout.padding
import androidx.compose.foundation.layout.size
import androidx.compose.foundation.layout.width
import androidx.compose.foundation.shape.CircleShape
import androidx.compose.material3.Icon
import androidx.compose.material3.MaterialTheme
import androidx.compose.material3.Scaffold
import androidx.compose.material3.Text
import androidx.compose.material3.adaptive.navigationsuite.NavigationSuiteDefaults
import androidx.compose.material3.adaptive.navigationsuite.NavigationSuiteScaffold
import androidx.compose.material3.adaptive.navigationsuite.NavigationSuiteType
import androidx.compose.runtime.Composable
import androidx.compose.runtime.LaunchedEffect
import androidx.compose.runtime.getValue
import androidx.compose.ui.Alignment
import androidx.compose.ui.Modifier
import androidx.compose.ui.draw.clip
import androidx.compose.ui.graphics.Color
import androidx.compose.ui.platform.LocalContext
import androidx.compose.ui.res.painterResource
import androidx.compose.ui.res.stringResource
import androidx.compose.ui.text.font.FontWeight
import androidx.compose.ui.unit.dp
import androidx.compose.ui.unit.sp
import androidx.lifecycle.compose.collectAsStateWithLifecycle
import androidx.lifecycle.viewmodel.navigation3.rememberViewModelStoreNavEntryDecorator
import androidx.navigation3.runtime.entryProvider
import androidx.navigation3.runtime.rememberNavBackStack
import androidx.navigation3.runtime.rememberSaveableStateHolderNavEntryDecorator
import androidx.navigation3.ui.NavDisplay
import com.rtbishop.look4sat.core.domain.repository.IContainerProvider
import com.rtbishop.look4sat.core.presentation.DeeplinkResolver
import com.rtbishop.look4sat.core.presentation.RadarDestination
import com.rtbishop.look4sat.core.presentation.Screen
import com.rtbishop.look4sat.core.presentation.hasEnoughHeight
import com.rtbishop.look4sat.core.presentation.hasEnoughWidth
import com.rtbishop.look4sat.feature.map.MapDestination
import com.rtbishop.look4sat.feature.passes.PassesDestination
import com.rtbishop.look4sat.feature.radar.RadarDestination
import com.rtbishop.look4sat.feature.satellites.SatellitesDestination
import com.rtbishop.look4sat.feature.settings.SettingsDestination
@Composable
fun NavRoot(deeplink: String? = null) {
val rootBackStack = rememberNavBackStack(Screen.Passes)
val deeplinkResolver = DeeplinkResolver()
LaunchedEffect(deeplink) {
deeplink?.let {
val destination = deeplinkResolver.resolve(it) // rootBackStack.clear()
rootBackStack.add(destination)
}
}
val navigateBack: () -> Unit = { rootBackStack.removeLastOrNull() }
val slideInTransition = slideInHorizontally(initialOffsetX = { it }) togetherWith scaleOut(targetScale = 0.9f)
val slideOutTransition = scaleIn(initialScale = 0.9f) togetherWith slideOutHorizontally(targetOffsetX = { it })
NavDisplay(
modifier = Modifier.fillMaxSize(),
backStack = rootBackStack,
onBack = navigateBack,
transitionSpec = { slideInTransition },
popTransitionSpec = { slideOutTransition },
predictivePopTransitionSpec = { slideOutTransition },
entryDecorators = listOf(
rememberSaveableStateHolderNavEntryDecorator(), // Required for saving Compose state per entry
rememberViewModelStoreNavEntryDecorator() // Required for ViewModel scoping per entry
),
entryProvider = entryProvider {
entry<Screen.Passes> { MainScreen(navigateToRadar = { rootBackStack.add(RadarDestination) }) }
entry<RadarDestination> {
Scaffold { innerPadding ->
RadarDestination(navigateUp = navigateBack)
innerPadding.calculateTopPadding()
}
}
}
)
}
@Composable
fun MainScreen(navigateToRadar: () -> Unit = {}) {
val backStack = rememberNavBackStack(Screen.Passes)
val currentKey = backStack.lastOrNull()
val navigateBack: () -> Unit = { backStack.removeLastOrNull() }
val fadeTransition = fadeIn(animationSpec = tween(350)) togetherWith fadeOut(animationSpec = tween(350))
val navItems = listOf(Screen.Satellites, Screen.Passes, Screen.Radar, Screen.Map, Screen.Settings)
val context = LocalContext.current
val container = (context.applicationContext as IContainerProvider).getMainContainer()
val trackingState by container.radioTrackingService.state.collectAsStateWithLifecycle()
NavigationSuiteScaffold(
navigationSuiteItems = {
navItems.forEach { screen ->
val isSelected = when (currentKey) {
is Screen.Satellites -> screen is Screen.Satellites
is Screen.Passes -> screen is Screen.Passes
is Screen.Radar -> screen is Screen.Radar
is Screen.Map -> screen is Screen.Map
is Screen.Settings -> screen is Screen.Settings
else -> false
}
item(
icon = { Icon(painterResource(screen.iconResId), stringResource(screen.titleResId)) },
label = { Text(stringResource(screen.titleResId)) },
selected = isSelected,
onClick = {
if (isSelected) return@item
while (backStack.size > 1) backStack.removeAt(backStack.size - 1)
if (screen !is Screen.Passes) backStack.add(screen)
}
)
}
},
navigationSuiteColors = NavigationSuiteDefaults.colors(
navigationRailContainerColor = MaterialTheme.colorScheme.surfaceContainer
),
layoutType = when {
!hasEnoughHeight() && hasEnoughWidth() -> NavigationSuiteType.NavigationRail
!hasEnoughWidth() -> NavigationSuiteType.ShortNavigationBarCompact
else -> NavigationSuiteType.ShortNavigationBarMedium
}
) {
Column {
NavDisplay(
backStack = backStack,
modifier = Modifier.weight(1f),
onBack = navigateBack,
transitionSpec = { fadeTransition },
popTransitionSpec = { fadeTransition },
predictivePopTransitionSpec = { fadeTransition },
entryDecorators = listOf(
// Required for saving Compose state per entry
rememberSaveableStateHolderNavEntryDecorator(),
// Required for ViewModel scoping per entry
rememberViewModelStoreNavEntryDecorator()
),
entryProvider = entryProvider {
entry<Screen.Satellites> {
SatellitesDestination(navigateUp = navigateBack)
}
entry<Screen.Passes> {
PassesDestination { catNum, aosTime ->
container.satelliteRepo.selectPass(catNum, aosTime)
backStack.add(Screen.Radar)
// navigateToRadar()
}
}
entry<Screen.Radar> {
RadarDestination(navigateUp = navigateBack)
}
entry<Screen.Map> {
MapDestination()
}
entry<Screen.Settings> {
SettingsDestination()
}
}
)
// Radio tracking status banner
if (trackingState.isActive) {
val infiniteTransition = rememberInfiniteTransition(label = "trackingPulse")
val alpha by infiniteTransition.animateFloat(
initialValue = 1f, targetValue = 0.4f,
animationSpec = infiniteRepeatable(
animation = tween(1000, easing = LinearEasing),
repeatMode = RepeatMode.Reverse
), label = "pulseAlpha"
)
Row(
verticalAlignment = Alignment.CenterVertically,
modifier = Modifier
.fillMaxWidth()
.background(MaterialTheme.colorScheme.primaryContainer)
.clickable {
val pass = trackingState.currentPass
if (pass != null) {
container.satelliteRepo.selectPass(pass.catNum, pass.aosTime)
backStack.add(Screen.Radar)
}
}
.padding(horizontal = 12.dp, vertical = 6.dp)
) {
Box(
modifier = Modifier
.size(8.dp)
.clip(CircleShape)
.background(Color(0xFF4CAF50).copy(alpha = alpha))
)
Spacer(modifier = Modifier.width(8.dp))
Text(
text = "Tracking: ${trackingState.currentPass?.name ?: ""}",
fontSize = 13.sp,
fontWeight = FontWeight.Medium,
color = MaterialTheme.colorScheme.onPrimaryContainer,
modifier = Modifier.weight(1f)
)
val txOk = if (trackingState.txConnected) "TX" else ""
val rxOk = if (trackingState.rxConnected) "RX" else ""
Text(
text = listOf(txOk, rxOk).filter { it.isNotBlank() }.joinToString("/"),
fontSize = 12.sp,
color = MaterialTheme.colorScheme.onPrimaryContainer
)
}
}
}
}
}
@@ -1,124 +0,0 @@
/*
* Look4Sat. Amateur radio satellite tracker and pass predictor.
* Copyright (C) 2019-2026 Arty Bishop and contributors.
*
* This program is free software: you can redistribute it and/or modify
* it under the terms of the GNU General Public License as published by
* the Free Software Foundation, either version 3 of the License, or
* (at your option) any later version.
*
* This program is distributed in the hope that it will be useful,
* but WITHOUT ANY WARRANTY; without even the implied warranty of
* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
* GNU General Public License for more details.
*
* You should have received a copy of the GNU General Public License
* along with this program. If not, see <https://www.gnu.org/licenses/>.
*/
package com.rtbishop.look4sat
import android.app.Activity
import android.app.Application
import android.app.Application.ActivityLifecycleCallbacks
import android.os.Bundle
import com.rtbishop.look4sat.core.data.injection.MainContainer
import com.rtbishop.look4sat.core.domain.repository.IContainerProvider
import com.rtbishop.look4sat.core.domain.repository.IMainContainer
import com.rtbishop.look4sat.core.domain.repository.LoTWSyncMode
import com.rtbishop.look4sat.core.domain.repository.LoTWResult
import com.rtbishop.look4sat.core.domain.repository.applyLoTWGridResult
import com.rtbishop.look4sat.core.domain.repository.lotwCursorApi
import com.rtbishop.look4sat.core.domain.repository.lotwSyncToday
import com.rtbishop.look4sat.core.domain.repository.resolveLoTWSyncMode
import com.rtbishop.look4sat.core.domain.repository.shouldAutoSyncLoTW
import kotlinx.coroutines.launch
import java.text.SimpleDateFormat
import java.util.Date
import java.util.Locale
class MainApplication : Application(), IContainerProvider {
private lateinit var container: IMainContainer
override fun getMainContainer(): IMainContainer = container
override fun onCreate() {
super.onCreate()
container = MainContainer(this)
clearAmSatCacheOnAppBackground()
// trigger automatic update every 48 hours
container.appScope.launch { checkAutoUpdate() }
// automatic LoTW grid sync on every app start (gated, see checkLoTWAutoSync)
container.appScope.launch { checkLoTWAutoSync() }
// load satellite data on every app start
container.appScope.launch { container.satelliteRepo.initRepository() }
}
private fun clearAmSatCacheOnAppBackground() {
registerActivityLifecycleCallbacks(object : ActivityLifecycleCallbacks {
private var startedActivityCount = 0
override fun onActivityStarted(activity: Activity) {
if (startedActivityCount == 0) {
container.appScope.launch { container.amSatRepo.prefetchStatus() }
}
startedActivityCount += 1
}
override fun onActivityStopped(activity: Activity) {
startedActivityCount = (startedActivityCount - 1).coerceAtLeast(0)
if (startedActivityCount == 0) container.amSatRepo.clearStatusCache()
}
override fun onActivityCreated(activity: Activity, savedInstanceState: Bundle?) = Unit
override fun onActivityResumed(activity: Activity) = Unit
override fun onActivityPaused(activity: Activity) = Unit
override fun onActivitySaveInstanceState(activity: Activity, outState: Bundle) = Unit
override fun onActivityDestroyed(activity: Activity) = Unit
})
}
private suspend fun checkAutoUpdate(timeNow: Long = System.currentTimeMillis()) {
if (container.settingsRepo.otherSettings.value.stateOfAutoUpdate) {
val timeDelta = timeNow - container.settingsRepo.databaseState.value.updateTimestamp
if (timeDelta > 172_800_000L) { // 48 hours in ms
val sdf = SimpleDateFormat("d MMM yyyy - HH:mm:ss", Locale.getDefault())
println("Started periodic data update on ${sdf.format(Date())}")
container.databaseRepo.updateFromRemote()
}
}
}
/**
* Automatic LoTW grid sync, mirroring [checkAutoUpdate]: checked on every
* app start, but only pulls when due — LoTW credentials configured, the
* LoTW auto-sync toggle on, at least one prior (manual) sync, and not
* already synced today (ARRL limits report pulls, ~once a day per account).
* Incremental when the callsign is unchanged; a callsign change falls back
* to a full replace so no stale grids from another account linger.
* Failures are silent and simply retried on the next app start — the manual
* sync button still surfaces the explicit cause to the user.
*/
private suspend fun checkLoTWAutoSync(timeNow: Long = System.currentTimeMillis()) {
val settingsRepo = container.settingsRepo
val lotwSettings = settingsRepo.lotwSettings.value
if (!shouldAutoSyncLoTW(
isConfigured = lotwSettings.isConfigured,
autoLotwSyncEnabled = settingsRepo.otherSettings.value.stateOfAutoLotwSync,
lastSyncDate = settingsRepo.getLastLotwSyncDate(),
today = lotwSyncToday(timeNow)
)
) return
val callsign = lotwSettings.callsign.trim().uppercase()
val mode = resolveLoTWSyncMode(settingsRepo.getLastLotwSyncCallsign(), callsign, requested = null)
val since = if (mode == LoTWSyncMode.Incremental) lotwCursorApi(settingsRepo.getLastLotwSyncDate()) else ""
println("Started periodic LoTW grid sync (${mode.name.lowercase()})")
val result = container.lotwRepo.fetchConfirmedGridQsos(callsign, lotwSettings.password, since)
if (result is LoTWResult.Success) {
val count = applyLoTWGridResult(settingsRepo, result, mode, callsign, timeNow)
println("Periodic LoTW grid sync finished: $count worked grids")
} else {
println("Periodic LoTW grid sync skipped (${result::class.simpleName})")
}
}
}
@@ -1,349 +0,0 @@
/*
* Look4Sat. Amateur radio satellite tracker and pass predictor.
* Copyright (C) 2019-2026 Arty Bishop and contributors.
*
* This program is free software: you can redistribute it and/or modify
* it under the terms of the GNU General Public License as published by
* the Free Software Foundation, either version 3 of the License, or
* (at your option) any later version.
*
* This program is distributed in the hope that it will be useful,
* but WITHOUT ANY WARRANTY; without even the implied warranty of
* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
* GNU General Public License for more details.
*
* You should have received a copy of the GNU General Public License
* along with this program. If not, see <https://www.gnu.org/licenses/>.
*/
package com.rtbishop.look4sat
import androidx.compose.animation.core.LinearEasing
import androidx.compose.animation.core.RepeatMode
import androidx.compose.animation.core.animateFloat
import androidx.compose.animation.core.infiniteRepeatable
import androidx.compose.animation.core.rememberInfiniteTransition
import androidx.compose.animation.core.tween
import androidx.compose.animation.fadeIn
import androidx.compose.animation.fadeOut
import androidx.compose.animation.slideInHorizontally
import androidx.compose.animation.slideOutHorizontally
import androidx.compose.animation.togetherWith
import androidx.compose.foundation.background
import androidx.compose.foundation.clickable
import androidx.compose.foundation.layout.Box
import androidx.compose.foundation.layout.Column
import androidx.compose.foundation.layout.Row
import androidx.compose.foundation.layout.Spacer
import androidx.compose.foundation.layout.fillMaxSize
import androidx.compose.foundation.layout.fillMaxWidth
import androidx.compose.foundation.layout.padding
import androidx.compose.foundation.layout.size
import androidx.compose.foundation.layout.width
import androidx.compose.foundation.shape.CircleShape
import androidx.compose.material3.Icon
import androidx.compose.material3.MaterialTheme
import androidx.compose.material3.Surface
import androidx.compose.material3.Text
import androidx.compose.material3.adaptive.navigationsuite.NavigationSuiteDefaults
import androidx.compose.material3.adaptive.navigationsuite.NavigationSuiteScaffold
import androidx.compose.material3.adaptive.navigationsuite.NavigationSuiteType
import androidx.compose.runtime.Composable
import androidx.compose.runtime.CompositionLocalProvider
import androidx.compose.runtime.LaunchedEffect
import androidx.compose.runtime.getValue
import androidx.compose.runtime.remember
import androidx.compose.runtime.setValue
import androidx.compose.ui.Alignment
import androidx.compose.ui.Modifier
import androidx.compose.ui.draw.clip
import androidx.compose.ui.graphics.Color
import androidx.compose.ui.platform.LocalContext
import androidx.compose.ui.res.painterResource
import androidx.compose.ui.res.stringResource
import androidx.compose.ui.text.font.FontWeight
import androidx.compose.ui.unit.dp
import androidx.compose.ui.unit.sp
import androidx.lifecycle.ViewModelStoreOwner
import androidx.lifecycle.compose.collectAsStateWithLifecycle
import androidx.lifecycle.viewmodel.compose.viewModel
import androidx.lifecycle.viewmodel.navigation3.rememberViewModelStoreNavEntryDecorator
import androidx.navigation3.runtime.entryProvider
import androidx.navigation3.runtime.rememberNavBackStack
import androidx.navigation3.runtime.rememberSaveableStateHolderNavEntryDecorator
import androidx.navigation3.ui.NavDisplay
import com.rtbishop.look4sat.core.domain.repository.IContainerProvider
import com.rtbishop.look4sat.core.domain.repository.MutualPassData
import com.rtbishop.look4sat.core.presentation.DeeplinkResolver
import com.rtbishop.look4sat.core.presentation.ElevationThresholds
import com.rtbishop.look4sat.core.presentation.LocalElevationThresholds
import com.rtbishop.look4sat.core.presentation.RadarDestination
import com.rtbishop.look4sat.core.presentation.Screen
import com.rtbishop.look4sat.core.presentation.hasEnoughHeight
import com.rtbishop.look4sat.core.presentation.hasEnoughWidth
import com.rtbishop.look4sat.feature.map.MapDestination
import com.rtbishop.look4sat.feature.map.MapFilterViewModel
import com.rtbishop.look4sat.feature.mutual.MutualScreen
import com.rtbishop.look4sat.feature.mutual.MutualViewModel
import com.rtbishop.look4sat.feature.passes.PassesDestination
import com.rtbishop.look4sat.feature.radar.RadarDestination
import com.rtbishop.look4sat.feature.satellites.SatellitesDestination
import com.rtbishop.look4sat.feature.settings.SettingsDestination
import com.rtbishop.look4sat.feature.status.SatStatusDestination
@Composable
fun NavRoot(deeplink: String? = null) {
val rootBackStack = rememberNavBackStack(Screen.Passes)
val deeplinkResolver = DeeplinkResolver()
LaunchedEffect(deeplink) {
deeplink?.let { rootBackStack.add(deeplinkResolver.resolve(it)) }
}
val navigateBack: () -> Unit = { rootBackStack.removeLastOrNull() }
val navigateToRadar: () -> Unit = { rootBackStack.add(RadarDestination) }
// Incoming screen slides in from the right, outgoing drifts left at 1/3 speed (API35+ style)
val pushTransition = slideInHorizontally(tween(300)) { it } togetherWith
slideOutHorizontally(tween(300)) { -it / 3 }
// Reverse: outgoing slides out to the right, incoming drifts in from the left
val popTransition = slideInHorizontally(tween(300)) { -it / 3 } togetherWith
slideOutHorizontally(tween(300)) { it }
// Elevation color thresholds must be provided at the root level so that BOTH
// the tab content (MainScreen) and the root-level RadarDestination see the
// user's custom thresholds. RadarDestination is a sibling entry of MainScreen
// in this NavDisplay, so a provider inside MainScreen never reaches it.
val context = LocalContext.current
val container = (context.applicationContext as IContainerProvider).getMainContainer()
val otherSettings by container.settingsRepo.otherSettings.collectAsStateWithLifecycle()
CompositionLocalProvider(
LocalElevationThresholds provides ElevationThresholds(
low = otherSettings.lowElevation,
high = otherSettings.highElevation
)
) {
NavDisplay(
modifier = Modifier.fillMaxSize(),
backStack = rootBackStack,
onBack = navigateBack,
transitionSpec = { pushTransition },
popTransitionSpec = { popTransition },
predictivePopTransitionSpec = { popTransition },
entryDecorators = listOf(
rememberSaveableStateHolderNavEntryDecorator(),
rememberViewModelStoreNavEntryDecorator()
),
entryProvider = entryProvider {
entry<Screen.Passes> {
MainScreen(
navigateToRadar = navigateToRadar
)
}
entry<RadarDestination> {
Surface(
modifier = Modifier.fillMaxSize(),
color = MaterialTheme.colorScheme.background
) {
RadarDestination(navigateUp = navigateBack)
}
}
}
)
}
}
@Composable
fun MainScreen(
navigateToRadar: () -> Unit = {}
) {
val backStack = rememberNavBackStack(Screen.Passes)
val currentKey = backStack.lastOrNull()
val navigateBack: () -> Unit = { backStack.removeLastOrNull() }
val fadeTransition = fadeIn(animationSpec = tween(350)) togetherWith fadeOut(animationSpec = tween(350))
// Map sits at position 4 from the left, matching the upstream nav order
// (Satellites, Passes, AMSAT/Status, Map, ...), with the fork's Mutual tab
// appended before Settings.
val navItems = listOf(Screen.Satellites, Screen.Passes, Screen.AMSAT, Screen.Map, Screen.Mutual, Screen.Settings)
val context = LocalContext.current
val container = (context.applicationContext as IContainerProvider).getMainContainer()
val trackingState by container.radioTrackingService.state.collectAsStateWithLifecycle()
val otherSettings by container.settingsRepo.otherSettings.collectAsStateWithLifecycle()
// Activity-scoped so the mutual query results survive navigation to Radar and back
val mutualViewModel: MutualViewModel = viewModel(
viewModelStoreOwner = context as ViewModelStoreOwner,
factory = MutualViewModel.factory(container)
)
// Activity-scoped so the map's award filter survives page switches;
// resets to VUCC only on cold start (fresh process).
val mapFilterViewModel: MapFilterViewModel = viewModel(
viewModelStoreOwner = context as ViewModelStoreOwner,
factory = MapFilterViewModel.factory()
)
// Map grid-QSO dialog "Match" button: pre-fill the match page for that
// grid and run the query BEFORE navigating, so the page's first frame
// already contains the results (time-range card at the top, pass curves
// right below — no scroll flicker). Navigation happens once the query
// finishes (see the collector below).
val mutualState by mutualViewModel.uiState.collectAsStateWithLifecycle()
val matchCalculating = mutualState.pendingNavigation && mutualState.isCalculating
LaunchedEffect(mutualViewModel) {
mutualViewModel.uiState.collect { state ->
if (state.pendingNavigation && !state.isCalculating) {
mutualViewModel.consumePendingNavigation()
// Push Mutual on top of the Map entry instead of replacing the
// stack (bottom-nav style): the system back gesture then pops
// back to the map page, which is the page the user came from.
if (backStack.lastOrNull() !is Screen.Mutual) {
backStack.add(Screen.Mutual)
}
}
}
}
CompositionLocalProvider(
LocalElevationThresholds provides ElevationThresholds(
low = otherSettings.lowElevation,
high = otherSettings.highElevation
)
) {
NavigationSuiteScaffold(
navigationSuiteItems = {
navItems.forEach { screen ->
val isSelected = when (currentKey) {
is Screen.Satellites -> screen is Screen.Satellites
is Screen.Passes -> screen is Screen.Passes
is Screen.Map -> screen is Screen.Map
is Screen.AMSAT -> screen is Screen.AMSAT
is Screen.Mutual -> screen is Screen.Mutual
is Screen.Settings -> screen is Screen.Settings
else -> false
}
item(
icon = { Icon(painterResource(screen.iconResId), stringResource(screen.titleResId)) },
label = { Text(stringResource(screen.titleResId)) },
selected = isSelected,
onClick = {
if (isSelected) return@item
while (backStack.size > 1) backStack.removeAt(backStack.size - 1)
if (screen !is Screen.Passes) backStack.add(screen)
}
)
}
},
navigationSuiteColors = NavigationSuiteDefaults.colors(
navigationRailContainerColor = MaterialTheme.colorScheme.surfaceContainer
),
layoutType = when {
!hasEnoughHeight() && hasEnoughWidth() -> NavigationSuiteType.NavigationRail
!hasEnoughWidth() -> NavigationSuiteType.ShortNavigationBarCompact
else -> NavigationSuiteType.ShortNavigationBarMedium
}
) {
Column {
NavDisplay(
backStack = backStack,
modifier = Modifier.weight(1f),
onBack = navigateBack,
transitionSpec = { fadeTransition },
popTransitionSpec = { fadeTransition },
predictivePopTransitionSpec = { fadeTransition },
entryDecorators = listOf(
// Required for saving Compose state per entry
rememberSaveableStateHolderNavEntryDecorator(),
// Required for ViewModel scoping per entry
rememberViewModelStoreNavEntryDecorator()
),
entryProvider = entryProvider {
entry<Screen.Satellites> {
SatellitesDestination(navigateUp = navigateBack)
}
entry<Screen.Passes> {
PassesDestination(
navigateToRadar = { catNum, aosTime ->
container.setMutualPassData(MutualPassData())
container.satelliteRepo.selectPass(catNum, aosTime)
navigateToRadar()
}
)
}
entry<Screen.Map> {
MapDestination(
mapFilterViewModel = mapFilterViewModel,
matchCalculating = matchCalculating,
onMatchGrid = { grid ->
// Grid-QSO dialog "Match" button: pre-fill
// the match page for that grid and start the
// query. Navigation to the match page is
// handled by the uiState collector above,
// once the query finishes.
mutualViewModel.prefillMatchFromGrid(grid)
}
)
}
entry<Screen.Mutual> {
MutualScreen(
viewModel = mutualViewModel,
navigateToRadar = { catNum, aosTime, pass ->
container.setMutualPassData(pass ?: MutualPassData())
container.satelliteRepo.selectPass(catNum, aosTime)
navigateToRadar()
}
)
}
entry<Screen.AMSAT> { SatStatusDestination() }
entry<Screen.Settings> {
SettingsDestination()
}
}
)
// Radio tracking status banner
if (trackingState.isActive) {
val infiniteTransition = rememberInfiniteTransition(label = "trackingPulse")
val alpha by infiniteTransition.animateFloat(
initialValue = 1f, targetValue = 0.4f,
animationSpec = infiniteRepeatable(
animation = tween(1000, easing = LinearEasing),
repeatMode = RepeatMode.Reverse
), label = "pulseAlpha"
)
Row(
verticalAlignment = Alignment.CenterVertically,
modifier = Modifier
.fillMaxWidth()
.background(MaterialTheme.colorScheme.primaryContainer)
.clickable {
val pass = trackingState.currentPass
if (pass != null) {
container.setMutualPassData(MutualPassData())
container.satelliteRepo.selectPass(pass.catNum, pass.aosTime)
navigateToRadar()
}
}
.padding(horizontal = 12.dp, vertical = 6.dp)
) {
Box(
modifier = Modifier
.size(8.dp)
.clip(CircleShape)
.background(Color(0xFF4CAF50).copy(alpha = alpha))
)
Spacer(modifier = Modifier.width(8.dp))
Text(
text = "Tracking: ${trackingState.currentPass?.name ?: ""}",
fontSize = 13.sp,
fontWeight = FontWeight.Medium,
color = MaterialTheme.colorScheme.onPrimaryContainer,
modifier = Modifier.weight(1f)
)
val txOk = if (trackingState.txConnected) "TX" else ""
val rxOk = if (trackingState.rxConnected) "RX" else ""
Text(
text = listOf(txOk, rxOk).filter { it.isNotBlank() }.joinToString("/"),
fontSize = 12.sp,
color = MaterialTheme.colorScheme.onPrimaryContainer
)
}
}
}
}
}
}
-4
View File
@@ -1,4 +0,0 @@
<?xml version="1.0" encoding="utf-8"?>
<paths xmlns:android="http://schemas.android.com/apk/res/android">
<cache-path name="updates" path="." />
</paths>
@@ -1,4 +1,6 @@
<?xml version="1.0" encoding="utf-8"?>
<network-security-config>
<base-config cleartextTrafficPermitted="true" />
<domain-config cleartextTrafficPermitted="true">
<domain includeSubdomains="true">tianditu.gov.cn</domain>
</domain-config>
</network-security-config>
@@ -32,12 +32,10 @@ internal class ApplicationPlugin : Plugin<Project> {
implementation(project(":core:domain"))
implementation(project(":core:presentation"))
implementation(project(":feature:map"))
implementation(project(":feature:mutual"))
implementation(project(":feature:passes"))
implementation(project(":feature:radar"))
implementation(project(":feature:satellites"))
implementation(project(":feature:settings"))
implementation(project(":feature:status"))
implementation(libs.androidx.core.splashscreen)
implementation(libs.compose.material3.adaptive)
implementation(libs.compose.navigation3)
@@ -35,9 +35,6 @@ internal class CoreDataPlugin : Plugin<Project> {
ksp(libs.androidx.room.compiler)
implementation(libs.kotlin.coroutines)
implementation(libs.other.okhttp)
// android.jar's org.json is a stub ("not mocked") in unit tests;
// provide a real implementation so JSON parsing is testable.
testImplementation(libs.test.json)
}
}
}
@@ -69,7 +69,7 @@ internal fun Project.setupAndroidApp() {
release {
isMinifyEnabled = true
isShrinkResources = true
proguardFiles(getDefaultProguardFile("proguard-android-optimize.txt"))
proguardFiles(getDefaultProguardFile("proguard-android-optimize.txt"), "proguard-rules.pro")
}
}
androidResources {
@@ -60,7 +60,4 @@ interface Look4SatDao {
@Query("DELETE FROM radios")
suspend fun deleteRadios()
@Query("DELETE FROM radios WHERE isCustom = 0")
suspend fun deleteManagedRadios()
}
@@ -19,21 +19,19 @@ package com.rtbishop.look4sat.core.data.database
import androidx.room.Database
import androidx.room.RoomDatabase
import androidx.room.migration.Migration
import androidx.sqlite.db.SupportSQLiteDatabase
import com.rtbishop.look4sat.core.data.database.entity.SatEntry
import com.rtbishop.look4sat.core.data.database.entity.SatRadio
@Database(entities = [SatEntry::class, SatRadio::class], version = 2, exportSchema = false)
@Database(entities = [SatEntry::class, SatRadio::class], version = 1, exportSchema = false)
abstract class Look4SatDb : RoomDatabase() {
abstract fun look4SatDao(): Look4SatDao
}
/** Adds the mean motion derivative, needed to tell decayed satellites apart, and marks the
* transceivers that were imported from a file, so that remote updates leave them alone. */
val MIGRATION_1_2 = object : Migration(1, 2) {
override fun migrate(db: SupportSQLiteDatabase) {
db.execSQL("ALTER TABLE entries ADD COLUMN ndot REAL NOT NULL DEFAULT 0.0")
db.execSQL("ALTER TABLE radios ADD COLUMN isCustom INTEGER NOT NULL DEFAULT 0")
}
}
//val MIGRATION_1_2 = object : Migration(1, 2) {
// override fun migrate(database: SupportSQLiteDatabase) {
// database.execSQL("CREATE TABLE entries_backup (name TEXT NOT NULL, epoch REAL NOT NULL, meanmo REAL NOT NULL, eccn REAL NOT NULL, incl REAL NOT NULL, raan REAL NOT NULL, argper REAL NOT NULL, meanan REAL NOT NULL, catnum INTEGER NOT NULL, bstar REAL NOT NULL, xincl REAL NOT NULL, xnodeo REAL NOT NULL, omegao REAL NOT NULL, xmo REAL NOT NULL, xno REAL NOT NULL, orbitalPeriod REAL NOT NULL, isDeepSpace INTEGER NOT NULL, comment TEXT, PRIMARY KEY(catnum))")
// database.execSQL("INSERT INTO entries_backup (name, epoch, meanmo, eccn, incl, raan, argper, meanan, catnum, bstar, xincl, xnodeo, omegao, xmo, xno, orbitalPeriod, isDeepSpace, comment) SELECT name, epoch, meanmo, eccn, incl, raan, argper, meanan, catnum, bstar, xincl, xnodeo, omegao, xmo, xno, 1440 / meanmo, 1440 / meanmo >= 225.0, comment FROM entries")
// database.execSQL("DROP TABLE entries")
// database.execSQL("ALTER TABLE entries_backup RENAME TO entries")
// }
//}
@@ -30,6 +30,5 @@ data class SatEntry(
val argper: Double,
val meanan: Double,
val catnum: Int,
val bstar: Double,
val ndot: Double = 0.0
val bstar: Double
)
@@ -32,7 +32,5 @@ data class SatRadio(
val uplinkHigh: Long?,
val uplinkMode: String?,
val isInverted: Boolean,
val catnum: Int?,
/** Set for manually imported transceivers, which remote updates must not replace. */
val isCustom: Boolean = false
val catnum: Int?
)
@@ -1,364 +0,0 @@
/*
* Look4Sat. Amateur radio satellite tracker and pass predictor.
* Copyright (C) 2019-2026 Arty Bishop and contributors.
*
* This program is free software: you can redistribute it and/or modify
* it under the terms of the GNU General Public License as published by
* the Free Software Foundation, either version 3 of the License, or
* (at your option) any later version.
*
* This program is distributed in the hope that it will be useful,
* but WITHOUT ANY WARRANTY; without even the implied warranty of
* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
* GNU General Public License for more details.
*
* You should have received a copy of the GNU General Public License
* along with this program. If not, see <https://www.gnu.org/licenses/>.
*/
package com.rtbishop.look4sat.core.data.framework
import android.bluetooth.BluetoothManager
import android.bluetooth.BluetoothSocket
import android.util.Log
import com.rtbishop.look4sat.core.domain.repository.IRadioController
import kotlinx.coroutines.Dispatchers
import kotlinx.coroutines.delay
import kotlinx.coroutines.sync.Mutex
import kotlinx.coroutines.sync.withLock
import kotlinx.coroutines.withContext
import java.io.InputStream
import java.io.OutputStream
import java.util.UUID
/**
* Icom IC-705 CI-V controller over Bluetooth SPP.
*
* The IC-705 emits broadcast frames continuously (band scope, UTC, signal
* level, …). A reply to any command we send may therefore be buried in
* that noise. All response reads drain up to [ACK_TIMEOUT_MS] and scan the
* entire accumulated buffer for the frame we expect rather than assuming
* the very next byte is the response.
*/
class Ic705Controller(
private val bluetoothManager: BluetoothManager,
private val deviceAddress: String
) : IRadioController {
private val tag = "IC705"
private val sppId: UUID = UUID.fromString("00001101-0000-1000-8000-00805f9b34fb")
private val ioMutex = Mutex()
/** Time budget (ms) to wait for a response amid broadcast noise. */
private val ACK_TIMEOUT_MS = 500L
/** Polling interval while draining the input buffer. */
private val POLL_INTERVAL_MS = 20L
/** Small pause after writing a command before reading the response. */
private val WRITE_SETTLE_MS = 50L
private var socket: BluetoothSocket? = null
private var outputStream: OutputStream? = null
private var inputStream: InputStream? = null
override var isConnected: Boolean = false
private set
// ── Connection ──────────────────────────────────────────────────────────
override suspend fun connect(): Boolean = withContext(Dispatchers.IO) {
if (isConnected) return@withContext true
if (deviceAddress.isBlank()) return@withContext false
try {
val device = bluetoothManager.adapter.getRemoteDevice(deviceAddress)
val btSocket = device.createInsecureRfcommSocketToServiceRecord(sppId)
btSocket.connect()
socket = btSocket
outputStream = btSocket.outputStream
inputStream = btSocket.inputStream
isConnected = true
// Enter VFO mode — frequency/mode commands return FA if the radio
// is in memory-channel mode. Safe to send regardless of current state.
Log.i(tag, "Connected to $deviceAddress — entering VFO mode")
val vfoCmd = IcomCivProtocol.buildEnterVfoModeCommand()
Log.d(tag, "CMD enterVfoMode → ${IcomCivProtocol.toHex(vfoCmd)}")
ioMutex.withLock { sendAndWaitAck(vfoCmd) }
true
} catch (e: Exception) {
Log.e(tag, "Connect error: ${e.message}")
isConnected = false
false
}
}
override suspend fun disconnect() {
withContext(Dispatchers.IO) {
try {
inputStream?.close()
outputStream?.close()
socket?.close()
} catch (e: Exception) {
Log.e(tag, "Disconnect error: ${e.message}")
} finally {
inputStream = null
outputStream = null
socket = null
isConnected = false
Log.i(tag, "Disconnected from $deviceAddress")
}
}
}
// ── IRadioController – standard operations ──────────────────────────────
override suspend fun setFrequency(frequencyHz: Long): Boolean = withContext(Dispatchers.IO) {
Log.d(tag, "setFrequency: ${frequencyHz}Hz")
ioMutex.withLock {
val cmd = IcomCivProtocol.buildSetFreqCommand(frequencyHz)
Log.d(tag, "CMD setFreq → ${IcomCivProtocol.toHex(cmd)}")
sendAndWaitAck(cmd)
}
}
override suspend fun setMode(mode: String): Boolean = withContext(Dispatchers.IO) {
val cmd = IcomCivProtocol.buildSetModeCommand(mode) ?: run {
Log.w(tag, "setMode: unknown mode '$mode'")
return@withContext false
}
Log.d(tag, "setMode: $mode")
Log.d(tag, "CMD setMode → ${IcomCivProtocol.toHex(cmd)}")
ioMutex.withLock { sendAndWaitAck(cmd) }
}
override suspend fun setCtcssMode(enabled: Boolean): Boolean = withContext(Dispatchers.IO) {
Log.d(tag, "setCtcssMode: $enabled")
val cmd = IcomCivProtocol.buildCtcssModeCommand(enabled)
Log.d(tag, "CMD ctcssMode → ${IcomCivProtocol.toHex(cmd)}")
ioMutex.withLock { sendAndWaitAck(cmd) }
}
override suspend fun setCtcssTone(toneHz: Double): Boolean = withContext(Dispatchers.IO) {
Log.d(tag, "setCtcssTone: ${toneHz}Hz")
val cmd = IcomCivProtocol.buildSetCtcssToneCommand(toneHz)
Log.d(tag, "CMD ctcssTone → ${IcomCivProtocol.toHex(cmd)}")
ioMutex.withLock { sendAndWaitAck(cmd) }
}
override suspend fun readFrequencyAndMode(): Pair<Long, String>? = withContext(Dispatchers.IO) {
ioMutex.withLock {
val cmd = IcomCivProtocol.buildReadFreqCommand()
Log.d(tag, "CMD readFreq → ${IcomCivProtocol.toHex(cmd)}")
val payload = sendAndReadResponse(cmd, IcomCivProtocol.CMD_READ_FREQ) ?: return@withContext null
// Read-freq reply payload: [cmd byte already stripped by parseResponse] [5 freq bytes] [mode] [filter]
IcomCivProtocol.parseFreqModePayload(payload).also {
if (it != null) Log.d(tag, "readFreqMode: ${it.first}Hz, ${it.second}")
else Log.w(tag, "readFreqMode: parse failed, payload=${IcomCivProtocol.toHex(payload)}")
}
}
}
override suspend fun pttOn(): Boolean = withContext(Dispatchers.IO) {
Log.w(tag, "pttOn: not used for IC-705")
true
}
override suspend fun pttOff(): Boolean = withContext(Dispatchers.IO) {
Log.w(tag, "pttOff: not used for IC-705")
true
}
// ── IRadioController – IC-705 extended operations ───────────────────────
/** Select the band for [frequencyHz] via CMD 0x1A sub 0x00 (band stacking register). */
override suspend fun setBand(frequencyHz: Long): Boolean = withContext(Dispatchers.IO) {
val cmd = IcomCivProtocol.buildBandSelectCommand(frequencyHz) ?: run {
Log.w(tag, "setBand: no band code for ${frequencyHz}Hz — skipping")
return@withContext false
}
Log.d(tag, "CMD setBand (${frequencyHz}Hz) → ${IcomCivProtocol.toHex(cmd)}")
ioMutex.withLock { sendAndWaitAck(cmd) }
}
/** Select VFO-A (main/RX) or VFO-B (sub/TX). */
override suspend fun setVfo(vfoA: Boolean): Boolean = withContext(Dispatchers.IO) {
val cmd = if (vfoA) IcomCivProtocol.buildSelectVfoACommand()
else IcomCivProtocol.buildSelectVfoBCommand()
Log.d(tag, "CMD selectVFO${if (vfoA) "A" else "B"} → ${IcomCivProtocol.toHex(cmd)}")
ioMutex.withLock { sendAndWaitAck(cmd) }
}
/**
* Enable or disable SPLIT mode (TX on sub-VFO while listening on main VFO).
*/
override suspend fun setSplitMode(enabled: Boolean): Boolean = withContext(Dispatchers.IO) {
val cmd = IcomCivProtocol.buildSplitModeCommand(enabled)
Log.d(tag, "CMD split ${if (enabled) "ON" else "OFF"} → ${IcomCivProtocol.toHex(cmd)}")
ioMutex.withLock { sendAndWaitAck(cmd) }
}
/**
* Set the frequency of the **currently active** VFO (CMD 0x25 sub 0x00).
* In split mode the radio automatically switches active VFO on PTT, so
* always writing to the active VFO is the correct strategy.
*/
override suspend fun setWorkingFrequency(frequencyHz: Long): Boolean = withContext(Dispatchers.IO) {
Log.d(tag, "setWorkingFrequency (0x25/00): ${frequencyHz}Hz")
val cmd = IcomCivProtocol.buildSetWorkingFreqCommand(frequencyHz)
Log.d(tag, "CMD setWorkingFreq → ${IcomCivProtocol.toHex(cmd)}")
ioMutex.withLock { sendAndWaitAck(cmd) }
}
/**
* Set TX VFO frequency via CMD 0x25 sub 0x01 (unselected VFO).
* Sent every tracking cycle in split mode alongside [setWorkingFrequency].
*/
override suspend fun setTxVfoFrequency(frequencyHz: Long): Boolean = withContext(Dispatchers.IO) {
Log.d(tag, "setTxVfoFrequency (0x25/01): ${frequencyHz}Hz")
val cmd = IcomCivProtocol.buildSetUnselectedVfoFreqCommand(frequencyHz)
Log.d(tag, "CMD setTxVfoFreq → ${IcomCivProtocol.toHex(cmd)}")
ioMutex.withLock { sendAndWaitAck(cmd) }
}
/**
* Read the frequency of the currently active VFO (CMD 0x25 sub 0x00).
* Used for tuning detection in split mode.
*/
override suspend fun readWorkingFrequency(): Long? = withContext(Dispatchers.IO) {
ioMutex.withLock {
val cmd = IcomCivProtocol.buildReadWorkingFreqCommand()
Log.d(tag, "CMD readWorkingFreq → ${IcomCivProtocol.toHex(cmd)}")
val payload = sendAndReadResponse(cmd, IcomCivProtocol.CMD_SELECTED_VFO_FREQ) ?: return@withContext null
// Response payload: [sub] [5 freq bytes] — CMD byte already stripped by parseResponse
Log.d(tag, "readWorkingFreq: got ${payload.size} bytes: ${IcomCivProtocol.toHex(payload)}")
if (payload.size < 6) {
Log.w(tag, "readWorkingFreq: payload too short (${payload.size} bytes)")
return@withContext null
}
val freqBcd = payload.sliceArray(1..5)
val freq = IcomCivProtocol.decodeFrequencyBcd(freqBcd)
Log.d(tag, "readWorkingFreq: ${freq}Hz")
freq
}
}
/**
* Read the frequency of the inactive/TX VFO (CMD 0x25 sub 0x01).
* Used for tuning detection in split mode.
*/
override suspend fun readTxVfoFrequency(): Long? = withContext(Dispatchers.IO) {
ioMutex.withLock {
val cmd = IcomCivProtocol.buildReadTxVfoFreqCommand()
Log.d(tag, "CMD readTxVfoFreq → ${IcomCivProtocol.toHex(cmd)}")
val payload = sendAndReadResponse(cmd, IcomCivProtocol.CMD_SELECTED_VFO_FREQ) ?: return@withContext null
// Response payload: [sub] [5 freq bytes] — CMD byte already stripped by parseResponse
Log.d(tag, "readTxVfoFreq: got ${payload.size} bytes: ${IcomCivProtocol.toHex(payload)}")
if (payload.size < 6) {
Log.w(tag, "readTxVfoFreq: payload too short (${payload.size} bytes)")
return@withContext null
}
val freqBcd = payload.sliceArray(1..5)
val freq = IcomCivProtocol.decodeFrequencyBcd(freqBcd)
Log.d(tag, "readTxVfoFreq: ${freq}Hz")
freq
}
}
// ── Internal I/O helpers ────────────────────────────────────────────────
/**
* Write [cmd] to the radio and drain the input stream for up to
* [ACK_TIMEOUT_MS], looking for an OK/NG acknowledgement frame.
*/
private suspend fun sendAndWaitAck(cmd: ByteArray): Boolean {
if (!write(cmd)) return false
delay(WRITE_SETTLE_MS)
val buf = drainWithTimeout(ACK_TIMEOUT_MS)
val ok = IcomCivProtocol.containsAck(buf)
if (!ok) Log.w(tag, "ACK not found in ${buf.size} bytes: ${IcomCivProtocol.toHex(buf)}")
return ok
}
/**
* Write [cmd] to the radio and drain the input stream for up to
* [ACK_TIMEOUT_MS], scanning for a response frame carrying [expectCmd].
* Returns the payload bytes of that frame, or null on timeout/error.
*/
private suspend fun sendAndReadResponse(cmd: ByteArray, expectCmd: Byte): ByteArray? {
if (!write(cmd)) return null
delay(WRITE_SETTLE_MS)
val buf = drainWithTimeout(ACK_TIMEOUT_MS)
val response = IcomCivProtocol.parseResponse(buf, expectCmd)
if (response == null) {
Log.w(tag, "No response for cmd 0x${String.format("%02X", expectCmd.toInt() and 0xFF)} " +
"in ${buf.size} bytes: ${IcomCivProtocol.toHex(buf)}")
}
return response?.payload
}
/**
* Drain whatever bytes the radio has buffered within a [timeoutMs] window.
* Exits early as soon as a complete CI-V frame addressed to us is present
* in the buffer (i.e., FE FE E0 A4 … FD), so we don't waste the remaining
* timeout on responses that already arrived.
*/
private suspend fun drainWithTimeout(timeoutMs: Long): ByteArray {
val result = mutableListOf<Byte>()
val deadline = System.currentTimeMillis() + timeoutMs
val stream = inputStream ?: return ByteArray(0)
while (System.currentTimeMillis() < deadline) {
try {
val available = stream.available()
if (available > 0) {
val chunk = ByteArray(available)
val read = stream.read(chunk)
if (read > 0) {
result.addAll(chunk.take(read))
// Exit early once we have a complete frame for us
if (hasCompleteFrameForUs(result)) break
}
} else {
delay(POLL_INTERVAL_MS)
}
} catch (e: Exception) {
Log.e(tag, "Drain error: ${e.message}")
isConnected = false
break
}
}
return result.toByteArray()
}
/**
* Returns true if [buf] contains a complete CI-V frame addressed to the
* controller (FE FE [ADDR_CTRL] [ADDR_IC705] … FD).
* CI-V data bytes cannot be 0xFD, so the first 0xFD after the header is
* always the frame terminator.
*/
private fun hasCompleteFrameForUs(buf: List<Byte>): Boolean {
var i = 0
while (i < buf.size - 4) {
if (buf[i] == IcomCivProtocol.PREAMBLE &&
buf[i + 1] == IcomCivProtocol.PREAMBLE &&
buf[i + 2] == IcomCivProtocol.ADDR_CTRL &&
buf[i + 3] == IcomCivProtocol.ADDR_IC705
) {
for (k in i + 4 until buf.size) {
if (buf[k] == IcomCivProtocol.END_OF_MSG) return true
}
return false // header found but no FD yet
}
i++
}
return false
}
private fun write(bytes: ByteArray): Boolean {
return try {
outputStream?.write(bytes)
outputStream?.flush()
true
} catch (e: Exception) {
Log.e(tag, "Write error: ${e.message}")
isConnected = false
false
}
}
}
@@ -1,352 +0,0 @@
/*
* Look4Sat. Amateur radio satellite tracker and pass predictor.
* Copyright (C) 2019-2026 Arty Bishop and contributors.
*
* This program is free software: you can redistribute it and/or modify
* it under the terms of the GNU General Public License as published by
* the Free Software Foundation, either version 3 of the License, or
* (at your option) any later version.
*
* This program is distributed in the hope that it will be useful,
* but WITHOUT ANY WARRANTY; without even the implied warranty of
* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
* GNU General Public License for more details.
*
* You should have received a copy of the GNU General Public License
* along with this program. If not, see <https://www.gnu.org/licenses/>.
*/
package com.rtbishop.look4sat.core.data.framework
import java.util.Locale
/**
* Icom CI-V protocol encoder/decoder for the IC-705.
*
* Frame structure:
* FE FE <DEST> <SRC> <CMD> [<SUB>] [<DATA...>] FD
*
* IC-705 default CI-V address : 0xA4
* Controller (us) address : 0xE0
*/
object IcomCivProtocol {
// ── Framing constants ──────────────────────────────────────────────────
const val PREAMBLE: Byte = 0xFE.toByte()
const val END_OF_MSG: Byte = 0xFD.toByte()
const val ACK_OK: Byte = 0xFB.toByte()
const val ACK_NG: Byte = 0xFA.toByte()
// ── Address constants ──────────────────────────────────────────────────
/** Default CI-V address of the IC-705. */
const val ADDR_IC705: Byte = 0xA4.toByte()
/** Default CI-V address of the controller (us). */
const val ADDR_CTRL: Byte = 0xE0.toByte()
// ── Command bytes ──────────────────────────────────────────────────────
/** Read operating frequency (main VFO). */
const val CMD_READ_FREQ: Byte = 0x03
/** Set operating frequency (main VFO). */
const val CMD_SET_FREQ: Byte = 0x05
/** Set operating mode. */
const val CMD_SET_MODE: Byte = 0x06
/** Select VFO / memory. */
const val CMD_SELECT_VFO: Byte = 0x07
/**
* Select operating mode (VFO vs memory-channel).
* Sub 0x00 = VFO mode. Must be sent after connect if the radio is in
* memory-channel mode — frequency/mode commands return FA until it is.
*/
const val CMD_SELECT_OP_MODE: Byte = 0x08
/** Set repeater duplex / SPLIT. */
const val CMD_DUPLEX_SPLIT: Byte = 0x0F
/** Band stacking register / band select (sub 0x00 = select, data = BCD band number). */
const val CMD_BAND_SELECT: Byte = 0x1A
/** Read/write CTCSS tone frequency. */
const val CMD_CTCSS_TONE: Byte = 0x1B
/** Read/write misc settings (used for enabling CTCSS encode). */
const val CMD_MISC_SETTING: Byte = 0x16
/** Read/write selected-VFO frequency (cmd 0x25). */
const val CMD_SELECTED_VFO_FREQ: Byte = 0x25
// ── Sub-command bytes ──────────────────────────────────────────────────
/** Sub for CMD_SELECT_VFO: select VFO-A (main). */
const val SUB_VFO_A: Byte = 0x00
/** Sub for CMD_SELECT_VFO: select VFO-B (sub). */
const val SUB_VFO_B: Byte = 0x01
/** Sub for CMD_DUPLEX_SPLIT: simplex / split OFF. */
const val SUB_SPLIT_OFF: Byte = 0x00
/** Sub for CMD_DUPLEX_SPLIT: SPLIT ON. */
const val SUB_SPLIT_ON: Byte = 0x01
/** Sub for CMD_SELECTED_VFO_FREQ: selected (active) VFO frequency. */
const val SUB_SELECTED_VFO: Byte = 0x00
/** Sub for CMD_SELECTED_VFO_FREQ: unselected (inactive / TX in split) VFO frequency. */
const val SUB_UNSELECTED_VFO: Byte = 0x01
/** Sub for CMD_MISC_SETTING: CTCSS/DTCS tone squelch. */
const val SUB_CTCSS_SETTING: Byte = 0x42.toByte()
// ── Mode bytes ────────────────────────────────────────────────────────
/** Maps mode strings (upper-case) → IC-705 mode bytes. */
val MODE_TO_BYTE: Map<String, Byte> = mapOf(
"LSB" to 0x00,
"USB" to 0x01,
"AM" to 0x02,
"CW" to 0x03,
"RTTY" to 0x04,
"FM" to 0x05,
"WFM" to 0x06,
"CW-R" to 0x07,
"RTTY-R" to 0x08,
"DV" to 0x12,
"AFSK" to 0x05 // AFSK uses FM modulation
)
val BYTE_TO_MODE: Map<Byte, String> = MODE_TO_BYTE.entries.associate { it.value to it.key }
// ── Frequency BCD encoding ─────────────────────────────────────────────
/**
* Encode a frequency in Hz to the IC-705's 5-byte BCD format.
*
* The IC-705 uses 5 bytes, LSB pair first, with 1 Hz resolution.
* Example: 145,500,000 Hz → "0145500000" → pairs LSB→MSB:
* [00, 00, 50, 45, 01]
*/
fun encodeFrequencyBcd(frequencyHz: Long): ByteArray {
val digits = String.format(Locale.US, "%010d", frequencyHz)
val bcd = ByteArray(5)
for (i in 0 until 5) {
// digits are MSB first; we want pair index 0 = LSB pair
val pairIndex = 4 - i
val high = digits[pairIndex * 2] - '0'
val low = digits[pairIndex * 2 + 1] - '0'
bcd[i] = ((high shl 4) or low).toByte()
}
return bcd
}
/**
* Decode 5-byte BCD frequency (LSB pair first) to Hz.
*/
fun decodeFrequencyBcd(bcd: ByteArray): Long {
// Build digit string MSB→LSB by reversing the byte order
var freqHz = 0L
for (i in 4 downTo 0) {
val b = bcd[i].toInt() and 0xFF
val high = b shr 4
val low = b and 0x0F
freqHz = freqHz * 100 + high * 10 + low
}
return freqHz
}
/**
* Encode a CTCSS tone (Hz, e.g. 67.0) to 2-byte BCD (0.1 Hz resolution).
* 67.0 → 670 (tenths of Hz) → BCD bytes [0x06, 0x70].
*/
fun encodeCtcssToneBcd(toneHz: Double): ByteArray {
val tone01 = (toneHz * 10).toLong()
val digits = String.format(Locale.US, "%04d", tone01)
return byteArrayOf(
((digits[0] - '0') shl 4 or (digits[1] - '0')).toByte(),
((digits[2] - '0') shl 4 or (digits[3] - '0')).toByte()
)
}
// ── Message builders ───────────────────────────────────────────────────
/** Wrap payload bytes in a CI-V frame: FE FE DEST SRC ... FD. */
private fun frame(vararg payload: Byte): ByteArray {
return byteArrayOf(PREAMBLE, PREAMBLE, ADDR_IC705, ADDR_CTRL) +
payload +
byteArrayOf(END_OF_MSG)
}
/** Set operating frequency via CMD 0x05 (main VFO). */
fun buildSetFreqCommand(frequencyHz: Long): ByteArray {
return frame(CMD_SET_FREQ, *encodeFrequencyBcd(frequencyHz))
}
/**
* Set selected-VFO frequency via CMD 0x25 sub 0x00.
* This updates whichever VFO is currently active (RX or TX after split).
*/
fun buildSetWorkingFreqCommand(frequencyHz: Long): ByteArray {
return frame(CMD_SELECTED_VFO_FREQ, SUB_SELECTED_VFO, *encodeFrequencyBcd(frequencyHz))
}
/**
* Set unselected-VFO frequency via CMD 0x25 sub 0x01.
* In split mode while PTT is pressed the IC-705 makes VFO-B active, so
* this command targets VFO-A (the RX VFO) — and vice-versa when in RX.
* Use this to update the TX VFO when PTT is on.
*/
fun buildSetUnselectedVfoFreqCommand(frequencyHz: Long): ByteArray {
return frame(CMD_SELECTED_VFO_FREQ, SUB_UNSELECTED_VFO, *encodeFrequencyBcd(frequencyHz))
}
/** Read operating frequency (CMD 0x03). */
fun buildReadFreqCommand(): ByteArray = frame(CMD_READ_FREQ)
/** Read selected (active) VFO frequency (CMD 0x25 sub 0x00). */
fun buildReadWorkingFreqCommand(): ByteArray = frame(CMD_SELECTED_VFO_FREQ, SUB_SELECTED_VFO)
/** Read unselected (inactive/TX in split) VFO frequency (CMD 0x25 sub 0x01). */
fun buildReadTxVfoFreqCommand(): ByteArray = frame(CMD_SELECTED_VFO_FREQ, SUB_UNSELECTED_VFO)
/**
* Select band via CMD 0x1A sub 0x00.
* Band codes are BCD-numbered: 1=160m, 2=80m, …, 9=10m, 0x10=6m, 0x11=2m, 0x12=70cm, 0x13=23cm.
* Returns null if [frequencyHz] doesn't fall in a known amateur band.
*/
fun buildBandSelectCommand(frequencyHz: Long): ByteArray? {
val code = bandCodeForFrequency(frequencyHz) ?: return null
return frame(CMD_BAND_SELECT, 0x00, code)
}
/**
* Map a frequency in Hz to the IC-705 band stacking register code.
* Codes are BCD (band number in decimal expressed as hex nibbles).
*/
fun bandCodeForFrequency(frequencyHz: Long): Byte? = when {
frequencyHz in 1_800_000L ..1_999_999L -> 0x01 // 160 m
frequencyHz in 3_500_000L ..3_999_999L -> 0x02 // 80 m
frequencyHz in 7_000_000L ..7_299_999L -> 0x03 // 40 m
frequencyHz in 10_100_000L ..10_149_999L -> 0x04 // 30 m
frequencyHz in 14_000_000L ..14_349_999L -> 0x05 // 20 m
frequencyHz in 18_068_000L ..18_167_999L -> 0x06 // 17 m
frequencyHz in 21_000_000L ..21_449_999L -> 0x07 // 15 m
frequencyHz in 24_890_000L ..24_989_999L -> 0x08 // 12 m
frequencyHz in 28_000_000L ..29_699_999L -> 0x09 // 10 m
frequencyHz in 50_000_000L ..53_999_999L -> 0x10 // 6 m (BCD 10)
frequencyHz in 144_000_000L ..147_999_999L -> 0x11 // 2 m (BCD 11)
frequencyHz in 420_000_000L ..449_999_999L -> 0x12 // 70 cm (BCD 12)
frequencyHz in 1_240_000_000L ..1_299_999_999L -> 0x13 // 23 cm (BCD 13)
else -> null
}
/** Set operating mode (CMD 0x06). Filter byte is omitted — radio uses its default filter for the mode. */
fun buildSetModeCommand(mode: String): ByteArray? {
val modeByte = MODE_TO_BYTE[mode.uppercase(Locale.US)] ?: return null
return frame(CMD_SET_MODE, modeByte)
}
/** Select VFO-A (CMD 0x07 sub 0x00). */
fun buildSelectVfoACommand(): ByteArray = frame(CMD_SELECT_VFO, SUB_VFO_A)
/** Select VFO-B (CMD 0x07 sub 0x01). */
fun buildSelectVfoBCommand(): ByteArray = frame(CMD_SELECT_VFO, SUB_VFO_B)
/**
* Enter VFO operating mode (CMD 0x08 sub 0x00).
* Sent after connect — if the radio is in memory-channel mode frequency
* and mode commands return FA until this is issued.
*/
fun buildEnterVfoModeCommand(): ByteArray = frame(CMD_SELECT_OP_MODE, 0x00)
/** Enable or disable SPLIT mode (CMD 0x0F). */
fun buildSplitModeCommand(enable: Boolean): ByteArray {
val sub = if (enable) SUB_SPLIT_ON else SUB_SPLIT_OFF
return frame(CMD_DUPLEX_SPLIT, sub)
}
/**
* Enable/disable CTCSS encode (CMD 0x16 sub 0x42).
* 0x01 = CTCSS encoder ON, 0x00 = OFF.
*/
fun buildCtcssModeCommand(enabled: Boolean): ByteArray {
val value: Byte = if (enabled) 0x01 else 0x00
return frame(CMD_MISC_SETTING, SUB_CTCSS_SETTING, value)
}
/**
* Set CTCSS tone frequency (CMD 0x1B sub 0x00).
*/
fun buildSetCtcssToneCommand(toneHz: Double): ByteArray {
val bcd = encodeCtcssToneBcd(toneHz)
return frame(CMD_CTCSS_TONE, 0x00, *bcd)
}
// ── Response parsing ───────────────────────────────────────────────────
/**
* Find and parse a complete CI-V response frame from a buffer.
*
* Returns the bytes between "FE FE E0 A4 <CMD>" and FD, or null if no
* complete frame was found. The search is tolerant of interleaved
* broadcast traffic.
*
* @param buf bytes accumulated from the radio
* @param expectCmd the command byte we are looking for in the reply, or
* null to accept any command response from the radio
*/
fun parseResponse(buf: ByteArray, expectCmd: Byte?): ParsedResponse? {
var i = 0
while (i < buf.size - 5) {
// Look for FE FE preamble
if (buf[i] != PREAMBLE || buf[i + 1] != PREAMBLE) { i++; continue }
val dest = buf[i + 2]
val src = buf[i + 3]
val cmd = buf[i + 4]
// We only care about frames addressed to us from the radio
if (dest != ADDR_CTRL || src != ADDR_IC705) { i++; continue }
// Find the terminating FD
val fdIdx = buf.indexOf(END_OF_MSG, startIndex = i + 5)
if (fdIdx < 0) break // incomplete frame, wait for more data
val payload = buf.copyOfRange(i + 5, fdIdx)
if (expectCmd == null || cmd == expectCmd) {
return ParsedResponse(cmd, payload, fdIdx + 1)
}
i = fdIdx + 1
}
return null
}
private fun ByteArray.indexOf(b: Byte, startIndex: Int): Int {
for (k in startIndex until size) if (this[k] == b) return k
return -1
}
/**
* Check whether a buffer contains an OK acknowledgement (FB FD) from
* the radio. Tolerates broadcast noise before the ACK.
*/
fun containsAck(buf: ByteArray): Boolean {
var i = 0
while (i < buf.size - 5) {
if (buf[i] != PREAMBLE || buf[i + 1] != PREAMBLE) { i++; continue }
val dest = buf[i + 2]
val src = buf[i + 3]
val cmd = buf[i + 4]
if (dest != ADDR_CTRL || src != ADDR_IC705) { i++; continue }
// Skip to FD
val fdIdx = buf.indexOf(END_OF_MSG, startIndex = i + 5)
if (fdIdx < 0) break
if (cmd == ACK_OK) return true
if (cmd == ACK_NG) return false
i = fdIdx + 1
}
return false
}
/**
* Parse frequency + mode from a CMD_READ_FREQ reply payload.
* Payload layout after stripping command byte: [5 freq bytes] [mode byte] [filter byte]
*/
fun parseFreqModePayload(payload: ByteArray): Pair<Long, String>? {
if (payload.size < 6) return null
val freqHz = decodeFrequencyBcd(payload.copyOfRange(0, 5))
val mode = BYTE_TO_MODE[payload[5]] ?: return null
return freqHz to mode
}
/** Hex dump of bytes, useful for debug logging. */
fun toHex(bytes: ByteArray): String =
bytes.joinToString(" ") { String.format(Locale.US, "%02X", it.toInt() and 0xFF) }
data class ParsedResponse(
val cmd: Byte,
val payload: ByteArray,
/** Index in the source buffer immediately after the FD terminator. */
val nextOffset: Int
)
}
@@ -17,10 +17,8 @@
*/
package com.rtbishop.look4sat.core.data.framework
import com.rtbishop.look4sat.core.domain.model.Constants
import com.rtbishop.look4sat.core.domain.repository.IReporter
import kotlinx.coroutines.CoroutineScope
import kotlinx.coroutines.channels.Channel
import kotlinx.coroutines.launch
import kotlinx.coroutines.sync.Mutex
import kotlinx.coroutines.sync.withLock
@@ -33,30 +31,18 @@ class NetworkReporter(
private val rotatorServer: String,
private val rotatorPort: Int,
private val frequencyServer: String,
private val frequencyPort: Int,
private val frequencyOffsetHz: Long = 0L
private val frequencyPort: Int
) : IReporter {
private val writeMutex = Mutex()
private val connectionMutex = Mutex()
private val frequencyCommands = Channel<String>(Channel.CONFLATED)
private var rotatorSocket: SocketChannel? = null
private var rotatorConnected = false
private var rotatorConnecting = false
private var frequencySocket: SocketChannel? = null
private var frequencyConnected = false
init {
// Keep only the latest frequency command to avoid stale backlog and effective lag.
reporterScope.launch {
for (command in frequencyCommands) {
ensureFrequencyConnected()
if (!frequencyConnected) continue
write(frequencySocket, command) { resetFrequencyConnection() }
}
}
}
private var frequencyConnecting = false
override fun reportRotation(format: String, azimuth: Double, elevation: Double) {
reporterScope.launch {
@@ -67,48 +53,51 @@ class NetworkReporter(
.replace($$"$AZ", azimuth.toString())
.replace($$"$EL", el.toString())
.unescapeControlChars()
write(rotatorSocket, command) { resetRotatorConnection() }
write(rotatorSocket, command) { rotatorConnected = false }
}
}
override fun reportFrequency(format: String, frequency: Long) {
val clampedOffset = frequencyOffsetHz.coerceIn(
Constants.FREQ_OFFSET_MIN_HZ,
Constants.FREQ_OFFSET_MAX_HZ
)
val correctedFreq = frequency.coerceAtLeast(0L).safeAdd(clampedOffset).coerceAtLeast(0L)
val command = format
.replace($$"$FREQ", correctedFreq.toString())
.unescapeControlChars()
frequencyCommands.trySend(command)
reporterScope.launch {
ensureFrequencyConnected()
if (!frequencyConnected) return@launch
val command = format
.replace($$"$FREQ", frequency.toString())
.unescapeControlChars()
write(frequencySocket, command) { frequencyConnected = false }
}
}
private suspend fun ensureRotatorConnected() {
connectionMutex.withLock {
if (rotatorConnected || rotatorServer.isBlank()) return
private fun ensureRotatorConnected() {
if (rotatorConnected || rotatorConnecting || rotatorServer.isBlank()) return
reporterScope.launch {
try {
resetRotatorConnection()
rotatorConnecting = true
rotatorSocket = SocketChannel.open(InetSocketAddress(rotatorServer, rotatorPort))
rotatorConnected = true
println("NetworkReporter: Rotator connected to $rotatorServer:$rotatorPort")
} catch (e: Exception) {
println("NetworkReporter rotator connect error: ${e.message}")
resetRotatorConnection()
rotatorConnected = false
} finally {
rotatorConnecting = false
}
}
}
private suspend fun ensureFrequencyConnected() {
connectionMutex.withLock {
if (frequencyConnected || frequencyServer.isBlank()) return
private fun ensureFrequencyConnected() {
if (frequencyConnected || frequencyConnecting || frequencyServer.isBlank()) return
reporterScope.launch {
try {
resetFrequencyConnection()
frequencyConnecting = true
frequencySocket = SocketChannel.open(InetSocketAddress(frequencyServer, frequencyPort))
frequencyConnected = true
println("NetworkReporter: Frequency connected to $frequencyServer:$frequencyPort")
} catch (e: Exception) {
println("NetworkReporter frequency connect error: ${e.message}")
resetFrequencyConnection()
frequencyConnected = false
} finally {
frequencyConnecting = false
}
}
}
@@ -117,9 +106,7 @@ class NetworkReporter(
try {
writeMutex.withLock {
val buffer = ByteBuffer.wrap("$command\n".toByteArray())
while (buffer.hasRemaining()) {
socket?.write(buffer)
}
socket?.write(buffer)
}
} catch (e: Exception) {
println("NetworkReporter write error: ${e.message}")
@@ -127,34 +114,6 @@ class NetworkReporter(
}
}
private fun resetRotatorConnection() {
rotatorConnected = false
closeQuietly(rotatorSocket)
rotatorSocket = null
}
private fun resetFrequencyConnection() {
frequencyConnected = false
closeQuietly(frequencySocket)
frequencySocket = null
}
private fun closeQuietly(socket: SocketChannel?) {
try {
socket?.close()
} catch (_: Exception) {}
}
private fun Long.safeAdd(delta: Long): Long {
return when {
delta > 0 && this > Long.MAX_VALUE - delta -> Long.MAX_VALUE
delta < 0 && this < Long.MIN_VALUE - delta -> Long.MIN_VALUE
else -> this + delta
}
}
private fun String.unescapeControlChars(): String =
replace("""\r""", 13.toChar().toString())
.replace("""\n""", 10.toChar().toString())
.replace("""\t""", 9.toChar().toString())
replace("\\r", "\r").replace("\\n", "\n").replace("\\t", "\t")
}
@@ -19,10 +19,8 @@ package com.rtbishop.look4sat.core.data.framework
import android.bluetooth.BluetoothManager
import android.util.Log
import com.rtbishop.look4sat.core.domain.model.RadioControlSettings
import com.rtbishop.look4sat.core.domain.model.SatRadio
import com.rtbishop.look4sat.core.domain.predict.OrbitalPass
import com.rtbishop.look4sat.core.domain.predict.SPEED_OF_LIGHT
import com.rtbishop.look4sat.core.domain.repository.IRadioController
import com.rtbishop.look4sat.core.domain.repository.IRadioTrackingService
import com.rtbishop.look4sat.core.domain.repository.ISatelliteRepo
@@ -31,7 +29,6 @@ import com.rtbishop.look4sat.core.domain.repository.RadioTrackingState
import com.rtbishop.look4sat.core.domain.utility.TransponderMapper
import kotlinx.coroutines.CoroutineScope
import kotlinx.coroutines.Job
import kotlinx.coroutines.currentCoroutineContext
import kotlinx.coroutines.delay
import kotlinx.coroutines.flow.MutableStateFlow
import kotlinx.coroutines.flow.StateFlow
@@ -47,8 +44,6 @@ class RadioTrackingService(
) : IRadioTrackingService {
private val tag = "RadioTracking"
/** Delay between each step of the split-mode init sequence (ms). */
private val INIT_STEP_DELAY_MS = 200L
private val _state = MutableStateFlow(RadioTrackingState())
override val state: StateFlow<RadioTrackingState> = _state
@@ -56,427 +51,227 @@ class RadioTrackingService(
private var rxController: IRadioController? = null
private var trackingJob: Job? = null
// ── Connection ──────────────────────────────────────────────────────────
override suspend fun connectRadios() {
// Disconnect old controllers if any
txController?.disconnect()
rxController?.disconnect()
// Read current addresses from settings
val rcSettings = settingsRepo.radioControlSettings.value
val txAddr = rcSettings.txRadioAddress
val rxAddr = rcSettings.rxRadioAddress
val isIcom = rcSettings.radioModel == RadioControlSettings.MODEL_ICOM_IC705
val isSplit = isIcom && rcSettings.splitMode
val txAddr = rcSettings.txRadioAddress
val rxAddr = rcSettings.rxRadioAddress
Log.i(tag, "connectRadios model=${rcSettings.radioModel} split=$isSplit TX=$txAddr RX=$rxAddr")
Log.i(tag, "Connecting TX=$txAddr RX=$rxAddr")
if (isSplit) {
// Single-radio split mode: only TX slot is used
if (txAddr.isBlank()) {
_state.update { it.copy(errorMessage = "No radio address configured in Settings") }
return
}
val tx = makeController(isIcom, txAddr)
txController = tx
rxController = null
_state.update { it.copy(errorMessage = null) }
val txOk = tx.connect()
_state.update {
it.copy(
txConnected = txOk,
rxConnected = false,
errorMessage = if (!txOk) "Could not connect to radio ($txAddr)" else null
)
}
Log.i(tag, "IC-705 split mode connected: txOk=$txOk")
} else {
if (txAddr.isBlank() && rxAddr.isBlank()) {
_state.update { it.copy(errorMessage = "No radio addresses configured in Settings") }
return
}
val tx = makeController(isIcom, txAddr)
val rx = makeController(isIcom, rxAddr)
txController = tx
rxController = rx
_state.update { it.copy(errorMessage = null) }
val txOk = if (txAddr.isNotBlank()) tx.connect() else false
val rxOk = if (rxAddr.isNotBlank()) rx.connect() else false
_state.update {
it.copy(
txConnected = txOk,
rxConnected = rxOk,
errorMessage = when {
!txOk && !rxOk -> "Could not connect to TX and RX radios"
!txOk -> "Could not connect to TX radio ($txAddr)"
!rxOk -> "Could not connect to RX radio ($rxAddr)"
else -> null
}
)
}
Log.i(tag, "Dual-radio connected: txOk=$txOk rxOk=$rxOk")
if (txAddr.isBlank() && rxAddr.isBlank()) {
_state.update { it.copy(errorMessage = "No radio addresses configured in Settings") }
return
}
val tx = Ft817Controller(bluetoothManager, txAddr)
val rx = Ft817Controller(bluetoothManager, rxAddr)
txController = tx
rxController = rx
_state.update { it.copy(errorMessage = null) }
val txOk = if (txAddr.isNotBlank()) tx.connect() else false
val rxOk = if (rxAddr.isNotBlank()) rx.connect() else false
_state.update {
it.copy(
txConnected = txOk,
rxConnected = rxOk,
errorMessage = when {
!txOk && !rxOk -> "Could not connect to TX and RX radios"
!txOk -> "Could not connect to TX radio ($txAddr)"
!rxOk -> "Could not connect to RX radio ($rxAddr)"
else -> null
}
)
}
}
private fun makeController(isIcom: Boolean, address: String): IRadioController =
if (isIcom) Ic705Controller(bluetoothManager, address)
else Ft817Controller(bluetoothManager, address)
override suspend fun disconnectRadios() {
stopTracking()
txController?.disconnect()
rxController?.disconnect()
txController = null
rxController = null
_state.update { it.copy(txConnected = false, rxConnected = false, isActive = false) }
_state.update {
it.copy(
txConnected = false,
rxConnected = false,
isActive = false
)
}
}
// ── Tracking ────────────────────────────────────────────────────────────
override fun startTracking(pass: OrbitalPass, transponder: SatRadio, txBaseFreqHz: Long?) {
_state.update {
it.copy(
isActive = true,
currentPass = pass,
selectedTransponder = transponder,
txBaseFrequencyHz = txBaseFreqHz
isActive = true,
currentPass = pass,
selectedTransponder = transponder,
txBaseFrequencyHz = txBaseFreqHz
)
}
trackingJob?.cancel()
val rcSettings = settingsRepo.radioControlSettings.value
val isIcom = rcSettings.radioModel == RadioControlSettings.MODEL_ICOM_IC705
val isSplit = isIcom && rcSettings.splitMode
if (isSplit) {
trackingJob = appScope.launch { runSplitTracking(transponder, txBaseFreqHz) }
} else {
trackingJob = appScope.launch { runDualRadioTracking(transponder, txBaseFreqHz) }
}
}
// ── Dual-radio tracking (Yaesu or two IC-705s) ──────────────────────────
private suspend fun runDualRadioTracking(transponder: SatRadio, initialTxBaseFreqHz: Long?) {
val tx = txController
val rx = rxController
// Initial setup: set band/mode/CTCSS on both radios
val txMode = transponder.uplinkMode
val rxMode = transponder.downlinkMode
?: transponder.uplinkMode?.let {
TransponderMapper.mapUplinkModeToDownlinkMode(it, transponder.isInverted)
trackingJob = appScope.launch {
// Set modes on both radios at tracking start
val tx = txController
val rx = rxController
val txMode = transponder.uplinkMode
val rxMode = transponder.downlinkMode
?: transponder.uplinkMode?.let {
TransponderMapper.mapUplinkModeToDownlinkMode(it, transponder.isInverted)
}
if (tx != null && tx.isConnected && txMode != null) {
tx.setMode(txMode)
Log.i(tag, "TX mode set to $txMode")
}
Log.i(tag, "DualRadio start: txMode=$txMode rxMode=$rxMode")
if (tx != null && tx.isConnected && txMode != null) {
Log.d(tag, "Setting TX mode: $txMode")
tx.setMode(txMode)
}
if (rx != null && rx.isConnected && rxMode != null) {
Log.d(tag, "Setting RX mode: $rxMode")
rx.setMode(rxMode)
}
if (txMode?.uppercase() == "FM") {
_state.value.ctcssTone?.let { tone ->
Log.d(tag, "Setting CTCSS: ${tone}Hz")
tx?.setCtcssTone(tone)
tx?.setCtcssMode(true)
if (rx != null && rx.isConnected && rxMode != null) {
rx.setMode(rxMode)
Log.i(tag, "RX mode set to $rxMode")
}
}
_state.update { it.copy(txMode = txMode, rxMode = rxMode) }
// Set CTCSS if FM
if (txMode?.uppercase() == "FM") {
_state.value.ctcssTone?.let { tone ->
tx?.setCtcssTone(tone)
tx?.setCtcssMode(true)
}
}
_state.update { it.copy(txMode = txMode, rxMode = rxMode) }
var lastSetTxFreq = 0.0
var lastSetRxFreq = 0.0
var tuningRadio = ""
var lastReadFreq = 0L
var stableCount = 0
var lastSetTxFreq = 0.0
var lastSetRxFreq = 0.0
var tuningRadio = "" // "", "tx", or "rx" - which radio the user is tuning
var lastReadFreq = 0L
var stableCount = 0
while (currentCoroutineContext().isActive) {
val currentState = _state.value
if (!currentState.isActive) break
while (isActive) {
val currentState = _state.value
if (!currentState.isActive) break
val satPass = currentState.currentPass ?: break
val xpdr = currentState.selectedTransponder ?: break
var txBaseFreq = currentState.txBaseFrequencyHz
val stationPos = settingsRepo.stationPosition.value
val pos = satelliteRepo.getPosition(satPass.orbitalObject, stationPos, System.currentTimeMillis())
val txNow = txController
val rxNow = rxController
val v = pos.distanceRate * 1000.0
val satPass = currentState.currentPass ?: break
val xpdr = currentState.selectedTransponder ?: break
var txBaseFreq = currentState.txBaseFrequencyHz
val stationPos = settingsRepo.stationPosition.value
val timeNow = System.currentTimeMillis()
if (tuningRadio.isNotEmpty()) {
val radio = if (tuningRadio == "tx") txNow else rxNow
if (radio != null && radio.isConnected) {
val read = radio.readFrequencyAndMode()
if (read != null) {
val (freq, _) = read
if (kotlin.math.abs(freq - lastReadFreq) <= 20) stableCount++
else { stableCount = 0; lastReadFreq = freq }
if (stableCount >= 2) {
if (tuningRadio == "tx" && txBaseFreq != null) {
val newBase = (freq.toDouble() * SPEED_OF_LIGHT / (SPEED_OF_LIGHT + v)).toLong()
if (newBase > 0) {
txBaseFreq = newBase
_state.update { it.copy(txBaseFrequencyHz = newBase) }
Log.i(tag, "TX tuning done → base=$newBase")
}
} else if (tuningRadio == "rx") {
val rxNominal = (freq.toDouble() * SPEED_OF_LIGHT / (SPEED_OF_LIGHT - v)).toLong()
val newTxBase = TransponderMapper.mapDownlinkToUplink(rxNominal, xpdr)
if (newTxBase != null && newTxBase > 0) {
txBaseFreq = newTxBase
_state.update { it.copy(txBaseFrequencyHz = newTxBase) }
Log.i(tag, "RX tuning done → txBase=$newTxBase")
}
val pos = satelliteRepo.getPosition(satPass.orbitalObject, stationPos, timeNow)
val tx = txController
val rx = rxController
val hasUplink = txBaseFreq != null
val c = com.rtbishop.look4sat.core.domain.predict.SPEED_OF_LIGHT
val v = pos.distanceRate * 1000.0
if (tuningRadio.isNotEmpty()) {
// --- User is tuning: keep reading, wait for stabilization ---
val radio = if (tuningRadio == "tx") tx else rx
if (radio != null && radio.isConnected) {
val readResult = radio.readFrequencyAndMode()
if (readResult != null) {
val (freq, _) = readResult
if (kotlin.math.abs(freq - lastReadFreq) <= 20) {
stableCount++
} else {
stableCount = 0
lastReadFreq = freq
}
// Stable for 2 reads → user stopped turning
if (stableCount >= 2) {
if (tuningRadio == "tx" && txBaseFreq != null) {
val newBase = (freq.toDouble() * c / (c + v)).toLong()
if (newBase > 0) {
txBaseFreq = newBase
_state.update { it.copy(txBaseFrequencyHz = newBase) }
Log.i(tag, "TX tuning done → base=$newBase")
}
} else if (tuningRadio == "rx") {
val rxNominal = (freq.toDouble() * c / (c - v)).toLong()
val newTxBase = TransponderMapper.mapDownlinkToUplink(rxNominal, xpdr)
if (newTxBase != null && newTxBase > 0) {
txBaseFreq = newTxBase
_state.update { it.copy(txBaseFrequencyHz = newTxBase) }
Log.i(tag, "RX tuning done → txBase=$newTxBase")
}
}
tuningRadio = ""
stableCount = 0
lastSetTxFreq = 0.0
lastSetRxFreq = 0.0
}
}
}
} else {
// --- Normal tracking: read, detect changes, command ---
// TX dial feedback
if (hasUplink && tx != null && tx.isConnected && lastSetTxFreq > 0.0) {
val readResult = tx.readFrequencyAndMode()
if (readResult != null) {
val (actualTxFreq, _) = readResult
if (kotlin.math.abs(actualTxFreq - lastSetTxFreq) >= 20.0) {
tuningRadio = "tx"
lastReadFreq = actualTxFreq
stableCount = 0
Log.i(tag, "TX tuning detected (read=$actualTxFreq, lastSet=$lastSetTxFreq)")
}
}
}
// RX dial feedback (only if TX not tuning)
if (tuningRadio.isEmpty() && rx != null && rx.isConnected && lastSetRxFreq > 0.0) {
val readResult = rx.readFrequencyAndMode()
if (readResult != null) {
val (actualRxFreq, _) = readResult
if (kotlin.math.abs(actualRxFreq - lastSetRxFreq) >= 20.0) {
tuningRadio = "rx"
lastReadFreq = actualRxFreq
stableCount = 0
Log.i(tag, "RX tuning detected (read=$actualRxFreq, lastSet=$lastSetRxFreq)")
}
tuningRadio = ""
stableCount = 0
lastSetTxFreq = 0.0
lastSetRxFreq = 0.0
}
}
}
} else {
// Detect manual dial changes
if (txBaseFreq != null && txNow != null && txNow.isConnected && lastSetTxFreq > 0.0) {
val read = txNow.readFrequencyAndMode()
if (read != null && kotlin.math.abs(read.first - lastSetTxFreq) >= 20.0) {
tuningRadio = "tx"
lastReadFreq = read.first
stableCount = 0
Log.i(tag, "TX tuning detected (read=${read.first}, lastSet=$lastSetTxFreq)")
// Compute Doppler-corrected frequencies
val txRadioFreq = txBaseFreq?.let { pos.getUplinkFreq(it) }
val rxBaseFreq = if (txBaseFreq != null) {
TransponderMapper.mapUplinkToDownlink(txBaseFreq, xpdr)
} else {
xpdr.downlinkLow
}
val rxRadioFreq = rxBaseFreq?.let { pos.getDownlinkFreq(it) }
// Command radios (only when not tuning)
if (tuningRadio.isEmpty()) {
if (tx != null && tx.isConnected && txRadioFreq != null) {
tx.setFrequency(txRadioFreq)
lastSetTxFreq = txRadioFreq.toDouble()
}
if (rx != null && rx.isConnected && rxRadioFreq != null) {
rx.setFrequency(rxRadioFreq)
lastSetRxFreq = rxRadioFreq.toDouble()
}
}
if (tuningRadio.isEmpty() && rxNow != null && rxNow.isConnected && lastSetRxFreq > 0.0) {
val read = rxNow.readFrequencyAndMode()
if (read != null && kotlin.math.abs(read.first - lastSetRxFreq) >= 20.0) {
tuningRadio = "rx"
lastReadFreq = read.first
stableCount = 0
Log.i(tag, "RX tuning detected (read=${read.first}, lastSet=$lastSetRxFreq)")
}
}
}
val txRadioFreq = txBaseFreq?.let { pos.getUplinkFreq(it) }
val rxBaseFreq = if (txBaseFreq != null) {
TransponderMapper.mapUplinkToDownlink(txBaseFreq, xpdr)
} else xpdr.downlinkLow
val rxRadioFreq = rxBaseFreq?.let { pos.getDownlinkFreq(it) }
if (tuningRadio.isEmpty()) {
if (txNow != null && txNow.isConnected && txRadioFreq != null) {
txNow.setFrequency(txRadioFreq)
lastSetTxFreq = txRadioFreq.toDouble()
_state.update {
it.copy(
txConnected = tx?.isConnected ?: false,
rxConnected = rx?.isConnected ?: false,
txFrequencyHz = txRadioFreq,
rxFrequencyHz = rxRadioFreq,
azimuth = Math.toDegrees(pos.azimuth),
elevation = Math.toDegrees(pos.elevation),
distance = pos.distance
)
}
if (rxNow != null && rxNow.isConnected && rxRadioFreq != null) {
rxNow.setFrequency(rxRadioFreq)
lastSetRxFreq = rxRadioFreq.toDouble()
}
}
_state.update {
it.copy(
txConnected = txNow?.isConnected ?: false,
rxConnected = rxNow?.isConnected ?: false,
txFrequencyHz = txRadioFreq,
rxFrequencyHz = rxRadioFreq,
azimuth = Math.toDegrees(pos.azimuth),
elevation = Math.toDegrees(pos.elevation),
distance = pos.distance
)
delay(1000)
}
delay(1000)
}
}
// ── IC-705 split-radio tracking ─────────────────────────────────────────
private suspend fun runSplitTracking(transponder: SatRadio, initialTxBaseFreqHz: Long?) {
val radio = txController ?: return
if (!radio.isConnected) return
val txMode = transponder.uplinkMode
val rxMode = transponder.downlinkMode
?: transponder.uplinkMode?.let {
TransponderMapper.mapUplinkModeToDownlinkMode(it, transponder.isInverted)
}
// Compute nominal base frequencies
val txCenter = when {
transponder.uplinkLow != null && transponder.uplinkHigh != null ->
(transponder.uplinkLow!! + transponder.uplinkHigh!!) / 2
transponder.uplinkLow != null -> transponder.uplinkLow!!
else -> null
}
val rxNominal = if (txCenter != null) {
TransponderMapper.mapUplinkToDownlink(txCenter, transponder)
} else transponder.downlinkLow
val txBase = initialTxBaseFreqHz ?: txCenter
Log.i(tag, "IC-705 split setup: txBase=${txBase}Hz rxNominal=${rxNominal}Hz txMode=$txMode rxMode=$rxMode")
// ── Initial setup sequence ──────────────────────────────────────────
// Sequence per IC-705: explicitly select VFO, then band → freq → mode.
// ACK from each command gates the next — no fixed delays needed.
// VFO-A = RX (downlink)
Log.d(tag, "Split init: selecting VFO-A for RX (downlink)")
radio.setVfo(vfoA = true)
if (rxNominal != null) {
Log.d(tag, "Split init: VFO-A band for ${rxNominal}Hz")
radio.setBand(rxNominal)
Log.d(tag, "Split init: VFO-A freq=${rxNominal}Hz")
radio.setFrequency(rxNominal)
}
if (rxMode != null) {
Log.d(tag, "Split init: VFO-A mode=$rxMode")
radio.setMode(rxMode)
}
// VFO-B = TX (uplink)
Log.d(tag, "Split init: selecting VFO-B for TX (uplink)")
radio.setVfo(vfoA = false)
if (txBase != null) {
Log.d(tag, "Split init: VFO-B band for ${txBase}Hz")
radio.setBand(txBase)
Log.d(tag, "Split init: VFO-B freq=${txBase}Hz")
radio.setFrequency(txBase)
}
if (txMode != null) {
Log.d(tag, "Split init: VFO-B mode=$txMode")
radio.setMode(txMode)
}
if (txMode?.uppercase() == "FM") {
val tone = _state.value.ctcssTone
if (tone != null) {
Log.d(tag, "Split init: CTCSS=${tone}Hz")
radio.setCtcssTone(tone)
radio.setCtcssMode(true)
} else {
radio.setCtcssMode(false)
}
}
// Enable SPLIT on VFO-A (return display to RX VFO first)
Log.d(tag, "Split init: returning to VFO-A, then enabling SPLIT mode")
radio.setVfo(vfoA = true)
radio.setSplitMode(enabled = true)
_state.update { it.copy(txMode = txMode, rxMode = rxMode, txBaseFrequencyHz = txBase) }
Log.i(tag, "IC-705 split init done — entering tracking loop")
// ── Tracking loop with tuning detection ─────────────────────────────
var lastSetTxFreq = 0.0
var lastSetRxFreq = 0.0
var tuningRadio = "" // "tx" or "rx" when manual tuning detected
var lastReadFreq = 0L
var stableCount = 0
while (currentCoroutineContext().isActive) {
val currentState = _state.value
if (!currentState.isActive) break
val satPass = currentState.currentPass ?: break
val xpdr = currentState.selectedTransponder ?: break
var txBaseFreq = currentState.txBaseFrequencyHz
val stationPos = settingsRepo.stationPosition.value
val pos = satelliteRepo.getPosition(satPass.orbitalObject, stationPos, System.currentTimeMillis())
val v = pos.distanceRate * 1000.0
if (tuningRadio.isNotEmpty()) {
// User is tuning — wait for frequency to stabilize
val readFreq = if (tuningRadio == "tx") radio.readTxVfoFrequency() else radio.readWorkingFrequency()
if (readFreq != null) {
if (kotlin.math.abs(readFreq - lastReadFreq) <= 20) stableCount++
else { stableCount = 0; lastReadFreq = readFreq }
if (stableCount >= 2) {
// Frequency stable — reverse-calculate base frequency
if (tuningRadio == "tx" && txBaseFreq != null) {
val newBase = (readFreq.toDouble() * SPEED_OF_LIGHT / (SPEED_OF_LIGHT + v)).toLong()
if (newBase > 0) {
txBaseFreq = newBase
_state.update { it.copy(txBaseFrequencyHz = newBase) }
Log.i(tag, "Split TX tuning done → base=$newBase")
}
} else if (tuningRadio == "rx") {
val rxNominal = (readFreq.toDouble() * SPEED_OF_LIGHT / (SPEED_OF_LIGHT - v)).toLong()
val newTxBase = TransponderMapper.mapDownlinkToUplink(rxNominal, xpdr)
if (newTxBase != null && newTxBase > 0) {
txBaseFreq = newTxBase
_state.update { it.copy(txBaseFrequencyHz = newTxBase) }
Log.i(tag, "Split RX tuning done → txBase=$newTxBase")
}
}
tuningRadio = ""
stableCount = 0
lastSetTxFreq = 0.0
lastSetRxFreq = 0.0
}
}
} else {
// Detect manual dial changes
if (txBaseFreq != null && lastSetTxFreq > 0.0) {
val readTx = radio.readTxVfoFrequency()
if (readTx != null && kotlin.math.abs(readTx - lastSetTxFreq) >= 20.0) {
tuningRadio = "tx"
lastReadFreq = readTx
stableCount = 0
Log.i(tag, "Split TX tuning detected (read=${readTx}, lastSet=$lastSetTxFreq)")
}
}
if (tuningRadio.isEmpty() && lastSetRxFreq > 0.0) {
val readRx = radio.readWorkingFrequency()
if (readRx != null && kotlin.math.abs(readRx - lastSetRxFreq) >= 20.0) {
tuningRadio = "rx"
lastReadFreq = readRx
stableCount = 0
Log.i(tag, "Split RX tuning detected (read=${readRx}, lastSet=$lastSetRxFreq)")
}
}
}
// Determine Doppler-corrected frequencies
val txRadioFreq = txBaseFreq?.let { pos.getUplinkFreq(it) }
val rxBaseCalc = if (txBaseFreq != null) {
TransponderMapper.mapUplinkToDownlink(txBaseFreq, xpdr)
} else xpdr.downlinkLow
val rxRadioFreq = rxBaseCalc?.let { pos.getDownlinkFreq(it) }
if (radio.isConnected && tuningRadio.isEmpty()) {
// Update both VFOs every cycle — no PTT polling needed.
// 0x25/00 = active (RX) VFO, 0x25/01 = inactive (TX) VFO.
if (rxRadioFreq != null) {
Log.d(tag, "Split loop RX (0x25/00): ${rxRadioFreq}Hz")
radio.setWorkingFrequency(rxRadioFreq)
lastSetRxFreq = rxRadioFreq.toDouble()
}
if (txRadioFreq != null) {
Log.d(tag, "Split loop TX (0x25/01): ${txRadioFreq}Hz")
radio.setTxVfoFrequency(txRadioFreq)
lastSetTxFreq = txRadioFreq.toDouble()
}
}
_state.update {
it.copy(
txConnected = radio.isConnected,
rxConnected = false, // single radio
txFrequencyHz = txRadioFreq,
rxFrequencyHz = rxRadioFreq,
azimuth = Math.toDegrees(pos.azimuth),
elevation = Math.toDegrees(pos.elevation),
distance = pos.distance
)
}
delay(1000)
}
}
// ── Other IRadioTrackingService methods ─────────────────────────────────
override fun stopTracking() {
trackingJob?.cancel()
trackingJob = null
@@ -493,6 +288,7 @@ class RadioTrackingService(
TransponderMapper.mapUplinkModeToDownlinkMode(it, transponder.isInverted)
}
rxMode?.let { rx?.setMode(it) }
if (transponder.uplinkMode?.uppercase() == "FM") {
_state.value.ctcssTone?.let { tone ->
tx?.setCtcssTone(tone)
@@ -506,17 +302,21 @@ class RadioTrackingService(
transponder.uplinkLow != null -> transponder.uplinkLow!!
else -> null
}
// Show nominal frequencies immediately
val rxNominal = if (txCenter != null) {
TransponderMapper.mapUplinkToDownlink(txCenter, transponder)
} else transponder.downlinkLow
} else {
// Downlink-only transponder (beacon etc.) - use downlink directly
transponder.downlinkLow
}
_state.update {
it.copy(
selectedTransponder = transponder,
txBaseFrequencyHz = txCenter,
txFrequencyHz = txCenter,
rxFrequencyHz = rxNominal,
txMode = transponder.uplinkMode,
rxMode = transponder.downlinkMode
txBaseFrequencyHz = txCenter,
txFrequencyHz = txCenter,
rxFrequencyHz = rxNominal,
txMode = transponder.uplinkMode,
rxMode = transponder.downlinkMode
?: transponder.uplinkMode?.let { m ->
TransponderMapper.mapUplinkModeToDownlinkMode(m, transponder.isInverted)
}
@@ -553,4 +353,5 @@ class RadioTrackingService(
}
_state.update { it.copy(txMode = txMode, rxMode = rxMode) }
}
}
@@ -24,40 +24,30 @@ import android.hardware.display.DisplayManager
import android.location.LocationManager
import androidx.room.Room
import com.rtbishop.look4sat.core.data.database.Look4SatDb
import com.rtbishop.look4sat.core.data.database.MIGRATION_1_2
import com.rtbishop.look4sat.core.data.framework.BluetoothReporter
import com.rtbishop.look4sat.core.data.framework.Ft817Controller
import com.rtbishop.look4sat.core.data.framework.Ic705Controller
import com.rtbishop.look4sat.core.data.framework.NetworkReporter
import com.rtbishop.look4sat.core.data.framework.RadioTrackingService
import com.rtbishop.look4sat.core.data.repository.AmSatRepository
import com.rtbishop.look4sat.core.data.repository.DatabaseRepo
import com.rtbishop.look4sat.core.data.repository.SatelliteRepo
import com.rtbishop.look4sat.core.data.repository.SelectionRepo
import com.rtbishop.look4sat.core.data.repository.SensorsRepo
import com.rtbishop.look4sat.core.data.repository.SettingsRepo
import com.rtbishop.look4sat.core.data.repository.UpdateRepository
import com.rtbishop.look4sat.core.data.repository.LoTWRepository
import com.rtbishop.look4sat.core.data.repository.WavelogRepository
import com.rtbishop.look4sat.core.data.source.LocalSource
import com.rtbishop.look4sat.core.data.source.RemoteSource
import com.rtbishop.look4sat.core.data.usecase.AddToCalendar
import com.rtbishop.look4sat.core.data.usecase.AudioCapture
import com.rtbishop.look4sat.core.data.usecase.SaveImage
import com.rtbishop.look4sat.core.data.usecase.ShowToast
import com.rtbishop.look4sat.core.domain.model.RadioControlSettings
import com.rtbishop.look4sat.core.domain.repository.IDatabaseRepo
import com.rtbishop.look4sat.core.domain.repository.IMainContainer
import com.rtbishop.look4sat.core.domain.repository.IRadioController
import com.rtbishop.look4sat.core.domain.repository.IRadioTrackingService
import com.rtbishop.look4sat.core.domain.repository.IReporter
import com.rtbishop.look4sat.core.domain.repository.ILoTWRepository
import com.rtbishop.look4sat.core.domain.repository.ISatelliteRepo
import com.rtbishop.look4sat.core.domain.repository.ISelectionRepo
import com.rtbishop.look4sat.core.domain.repository.ISensorsRepo
import com.rtbishop.look4sat.core.domain.repository.ISettingsRepo
import com.rtbishop.look4sat.core.domain.repository.IWavelogRepository
import com.rtbishop.look4sat.core.domain.repository.MutualPassData
import com.rtbishop.look4sat.core.domain.source.ILocalSource
import com.rtbishop.look4sat.core.domain.source.IRemoteSource
import com.rtbishop.look4sat.core.domain.usecase.IAddToCalendar
@@ -69,37 +59,22 @@ import kotlinx.coroutines.CoroutineExceptionHandler
import kotlinx.coroutines.CoroutineScope
import kotlinx.coroutines.Dispatchers
import kotlinx.coroutines.SupervisorJob
import kotlinx.coroutines.flow.MutableStateFlow
import kotlinx.coroutines.flow.StateFlow
import kotlinx.coroutines.flow.asStateFlow
import okhttp3.OkHttpClient
class MainContainer(private val context: Context) : IMainContainer {
private val localSource = provideLocalSource()
private val remoteSource = provideRemoteSource()
private val mainHandler = CoroutineExceptionHandler { _, error -> println("MainHandler: $error") }
override val appScope = CoroutineScope(SupervisorJob() + Dispatchers.Default + mainHandler)
override val settingsRepo = provideSettingsRepo()
override val selectionRepo = provideSelectionRepo()
override val satelliteRepo = provideSatelliteRepo()
override val databaseRepo = provideDatabaseRepo()
override val amSatRepo by lazy { AmSatRepository(remoteSource, appScope) }
override val updateRepo by lazy { UpdateRepository(remoteSource) }
override val wavelogRepo: IWavelogRepository by lazy { WavelogRepository() }
override val lotwRepo: ILoTWRepository by lazy { LoTWRepository() }
override val radioTrackingService: IRadioTrackingService by lazy {
val manager = context.getSystemService(Context.BLUETOOTH_SERVICE) as BluetoothManager
RadioTrackingService(appScope, manager, satelliteRepo, settingsRepo)
}
private val _mutualPassData = MutableStateFlow(MutualPassData())
override val mutualPassData: StateFlow<MutualPassData> = _mutualPassData.asStateFlow()
override fun setMutualPassData(data: MutualPassData) {
_mutualPassData.value = data
}
override fun provideAddToCalendar(): IAddToCalendar = AddToCalendar(context)
override fun provideShowToast(): IShowToast = ShowToast(context)
@@ -126,31 +101,20 @@ class MainContainer(private val context: Context) : IMainContainer {
rc.rotatorAddress,
rc.rotatorPort.toIntOrNull() ?: 0,
rc.frequencyAddress,
rc.frequencyPort.toIntOrNull() ?: 0,
rc.frequencyOffsetHz
rc.frequencyPort.toIntOrNull() ?: 0
)
}
override fun provideTxRadioController(): IRadioController {
val manager = context.getSystemService(Context.BLUETOOTH_SERVICE) as BluetoothManager
val settings = settingsRepo.radioControlSettings.value
val address = settings.txRadioAddress
return if (settings.radioModel == RadioControlSettings.MODEL_ICOM_IC705) {
Ic705Controller(manager, address)
} else {
Ft817Controller(manager, address)
}
val manager = context.getSystemService(Context.BLUETOOTH_SERVICE) as BluetoothManager
val address = settingsRepo.radioControlSettings.value.txRadioAddress
return Ft817Controller(manager, address)
}
override fun provideRxRadioController(): IRadioController {
val manager = context.getSystemService(Context.BLUETOOTH_SERVICE) as BluetoothManager
val settings = settingsRepo.radioControlSettings.value
val address = settings.rxRadioAddress
return if (settings.radioModel == RadioControlSettings.MODEL_ICOM_IC705) {
Ic705Controller(manager, address)
} else {
Ft817Controller(manager, address)
}
val manager = context.getSystemService(Context.BLUETOOTH_SERVICE) as BluetoothManager
val address = settingsRepo.radioControlSettings.value.rxRadioAddress
return Ft817Controller(manager, address)
}
override fun provideSensorsRepo(): ISensorsRepo {
@@ -168,10 +132,7 @@ class MainContainer(private val context: Context) : IMainContainer {
private fun provideLocalSource(): ILocalSource {
val builder = Room.databaseBuilder(context, Look4SatDb::class.java, "Look4SatDBv400")
val database = builder
.addMigrations(MIGRATION_1_2)
.fallbackToDestructiveMigration(false)
.build()
val database = builder.fallbackToDestructiveMigration(false).build()
return LocalSource(database.look4SatDao())
}
@@ -1,288 +0,0 @@
package com.rtbishop.look4sat.core.data.repository
import com.rtbishop.look4sat.core.domain.model.AmSatReportSubmission
import com.rtbishop.look4sat.core.domain.model.AmSatReportSubmitResult
import com.rtbishop.look4sat.core.domain.model.SatDay
import com.rtbishop.look4sat.core.domain.model.SatReport
import com.rtbishop.look4sat.core.domain.model.SatSlot
import com.rtbishop.look4sat.core.domain.model.SatStatus
import com.rtbishop.look4sat.core.domain.model.SatStatusPage
import com.rtbishop.look4sat.core.domain.repository.IAmSatRepository
import com.rtbishop.look4sat.core.domain.source.IRemoteSource
import kotlinx.coroutines.CoroutineScope
import kotlinx.coroutines.Deferred
import kotlinx.coroutines.Dispatchers
import kotlinx.coroutines.SupervisorJob
import kotlinx.coroutines.async
import kotlinx.coroutines.sync.Mutex
import kotlinx.coroutines.sync.withLock
import kotlinx.coroutines.withContext
import org.json.JSONObject
import java.text.SimpleDateFormat
import java.util.Calendar
import java.util.Date
import java.util.Locale
import java.util.TimeZone
/** One report from the AMSAT API (data layer model). */
private data class ApiReport(
val id: String,
val name: String,
val callsign: String,
val report: String,
val gridSquare: String,
val reportedTimeUtcSec: Long
)
/** AMSAT status repository using RemoteSource (Clean Architecture: data layer handles HTTP). */
class AmSatRepository(
private val remoteSource: IRemoteSource,
private val scope: CoroutineScope = CoroutineScope(SupervisorJob() + Dispatchers.IO)
) : IAmSatRepository {
private val statusCacheMutex = Mutex()
@Volatile
private var statusCache: SatStatusPage? = null
@Volatile
private var statusFetchInFlight: Deferred<SatStatusPage?>? = null
@Volatile
private var cacheGeneration = 0
private val isoUtcFormat = SimpleDateFormat("yyyy-MM-dd'T'HH:mm:ss'Z'", Locale.US).apply {
timeZone = TimeZone.getTimeZone("UTC")
}
override fun getCachedStatus(): SatStatusPage? = statusCache
override suspend fun fetchStatus(forceRefresh: Boolean): SatStatusPage? {
if (!forceRefresh) statusCache?.let { return it }
var cachedPage: SatStatusPage? = null
val inFlightFetch = statusCacheMutex.withLock {
if (!forceRefresh) {
val cached = statusCache
if (cached != null) {
cachedPage = cached
return@withLock null
}
}
statusFetchInFlight ?: scope.async(Dispatchers.IO) {
fetchStatusFromRemote(cacheGeneration)
}.also { statusFetchInFlight = it }
}
cachedPage?.let { return it }
val fetch = inFlightFetch ?: return null
return try {
fetch.await()
} finally {
statusCacheMutex.withLock {
if (statusFetchInFlight === fetch && fetch.isCompleted) statusFetchInFlight = null
}
}
}
private suspend fun fetchStatusFromRemote(generation: Int): SatStatusPage? {
val nowSec = System.currentTimeMillis() / 1000
val catalogJson = remoteSource.getAmSatCatalog() ?: return null
// 72h = 3 days; API hard cap is limit=500 regardless of what we send.
// 500 records across ~100 catalog satellites ≈ ~1-5 reports/satellite/day — enough for 3 days.
// Upgrade path: paginate or request AMSAT to raise the cap if catalog grows beyond ~200 sats.
val reportsJson = remoteSource.getAmSatReports(hours = 72, limit = 500) ?: return null
val names = parseCatalog(catalogJson)
val reports = parseReports(reportsJson)
if (names.isEmpty() && reports.isEmpty()) return null
val statuses = buildStatuses(names, reports, nowSec)
val reportMap = reports.associate { it.id to toSatReport(it) }
return SatStatusPage(System.currentTimeMillis(), statuses, reportMap).also { page ->
if (generation == cacheGeneration) statusCache = page
}
}
override suspend fun prefetchStatus() {
fetchStatus(forceRefresh = false)
}
override fun clearStatusCache() {
cacheGeneration += 1
statusCache = null
statusFetchInFlight = null
}
override suspend fun submitReport(submission: AmSatReportSubmission): AmSatReportSubmitResult = withContext(Dispatchers.IO) {
val payload = JSONObject().apply {
put("name", submission.name)
put("report", submission.report)
put("callsign", submission.callsign)
put("reported_at", isoUtcFormat.format(Date(submission.reportedAtUtcMillis)))
if (submission.gridSquare.isNotBlank()) put("grid_square", submission.gridSquare)
}
val response = remoteSource.submitAmSatReport(payload.toString())
?: return@withContext AmSatReportSubmitResult(success = false, message = "Network request failed")
val (code, body) = response
val errorMessage = parseSubmitError(body)
return@withContext if (code in 200..299 && errorMessage.isBlank()) {
AmSatReportSubmitResult(success = true, reportId = parseSubmitReportId(body))
} else {
AmSatReportSubmitResult(
success = false,
message = errorMessage.ifBlank { "HTTP $code" }
)
}
}
private fun parseSubmitError(json: String): String {
return try {
JSONObject(json).optJSONObject("error")?.optString("message").orEmpty()
} catch (_: Exception) {
""
}
}
private fun parseSubmitReportId(json: String): String? {
return try {
val obj = JSONObject(json)
obj.optJSONObject("data")?.optString("id")?.takeIf { it.isNotBlank() }
?: obj.optString("id").takeIf { it.isNotBlank() }
} catch (_: Exception) {
null
}
}
/** Parse catalog JSON to list of satellite names */
private fun parseCatalog(json: String): List<String> {
return try {
val arr = JSONObject(json).getJSONArray("data")
(0 until arr.length()).map { arr.getJSONObject(it).getString("name") }
} catch (_: Exception) {
emptyList()
}
}
/** Parse reports JSON to list of ApiReport domain objects */
private fun parseReports(json: String): List<ApiReport> {
return try {
val arr = JSONObject(json).getJSONArray("data")
(0 until arr.length()).mapNotNull { i ->
val o = arr.getJSONObject(i)
val iso = o.optString("reported_time", "")
if (iso.isEmpty()) null else ApiReport(
id = o.optString("id", ""),
name = o.optString("name", ""),
callsign = o.optString("callsign", ""),
report = o.optString("report", ""),
gridSquare = o.optString("grid_square", ""),
reportedTimeUtcSec = parseIsoUtcSec(iso)
)
}
} catch (_: Exception) {
emptyList()
}
}
/** Parse ISO 8601 UTC timestamp to epoch seconds (e.g., "2026-08-05T07:30:00Z") */
private fun parseIsoUtcSec(iso: String): Long {
return try {
(isoUtcFormat.parse(iso)?.time ?: 0L) / 1000
} catch (_: Exception) {
0L
}
}
/** Build one SatStatus (3 days x 12 slots) per catalog satellite, slotting reports by age. */
private fun buildStatuses(names: List<String>, reports: List<ApiReport>, nowSec: Long): List<SatStatus> {
val byName = reports.groupBy { it.name }
val utc = Calendar.getInstance(TimeZone.getTimeZone("UTC"))
val labels = (0 until 3).map { d ->
utc.timeInMillis = (nowSec - d * 86400L) * 1000
formatDayLabel(utc)
}
return names.map { name ->
val slots = (0 until 36).map { slotIdx ->
val slotStart = nowSec - (slotIdx + 1) * 7200L
val slotEnd = nowSec - slotIdx * 7200L
val inSlot = byName[name].orEmpty().filter { it.reportedTimeUtcSec in slotStart until slotEnd }
if (inSlot.isEmpty()) {
SatSlot(statusColor = NO_REPORT_GRAY, count = 0)
} else {
val newest = inSlot.maxByOrNull { it.reportedTimeUtcSec }!!
SatSlot(
statusColor = statusColorOf(newest.report),
count = inSlot.size,
reportIds = inSlot.map { it.id }
)
}
}
val days = (0 until 3).map { d ->
// 当天最近连续相同状态报告数:从最新一条往回数,遇状态不同即停。
// 空时段(无报告)不打断;按状态文本严格比较,不跨天。
val dayStart = nowSec - (d + 1) * 86400L
val dayEnd = nowSec - d * 86400L
val dayReports = byName[name].orEmpty()
.filter { it.reportedTimeUtcSec in dayStart until dayEnd }
.sortedByDescending { it.reportedTimeUtcSec }
val streakCount = if (dayReports.isEmpty()) 0 else {
val newestStatus = dayReports.first().report
dayReports.takeWhile { it.report == newestStatus }.size
}
SatDay(
dateLabel = labels[d],
slots = slots.subList(d * 12, (d + 1) * 12),
streakCount = streakCount
)
}
SatStatus(name = name, days = days)
}
}
private fun formatDayLabel(calendar: Calendar): String {
return if (Locale.getDefault().language == Locale.CHINESE.language) {
"${calendar.get(Calendar.MONTH) + 1}月${calendar.get(Calendar.DAY_OF_MONTH)}日"
} else {
val monthAbbr = arrayOf("Jan", "Feb", "Mar", "Apr", "May", "Jun", "Jul", "Aug", "Sep", "Oct", "Nov", "Dec")
"${monthAbbr[calendar.get(Calendar.MONTH)]} ${calendar.get(Calendar.DAY_OF_MONTH)}"
}
}
private fun toSatReport(r: ApiReport): SatReport {
val cal = Calendar.getInstance(TimeZone.getTimeZone("UTC"))
cal.timeInMillis = r.reportedTimeUtcSec * 1000
val hh = cal.get(Calendar.HOUR_OF_DAY).toString().padStart(2, '0')
val mm = cal.get(Calendar.MINUTE).toString().padStart(2, '0')
val y = cal.get(Calendar.YEAR)
val mo = (cal.get(Calendar.MONTH) + 1).toString().padStart(2, '0')
val d = cal.get(Calendar.DAY_OF_MONTH).toString().padStart(2, '0')
return SatReport(
id = r.id,
statusText = r.report,
call = r.callsign,
grid = r.gridSquare,
dateUtc = "$y-$mo-$d",
timeUtc = "$hh:$mm UTC"
)
}
/** Map status text to color value (for UI rendering). */
private fun statusColorOf(report: String): Long = when (report.lowercase()) {
"heard", "crew active" -> ACTIVE_BLUE
"telemetry only" -> TLM_ORANGE
"not heard" -> NOT_HEARD_PINK
else -> CONFLICT_DEEP_ORANGE
}
companion object {
// AMSAT official status colors (from amsat.org/status)
private const val ACTIVE_BLUE = 0xFF648FFF
private const val TLM_ORANGE = 0xFFFFB000
private const val NOT_HEARD_PINK = 0xFFDC267F
private const val CONFLICT_DEEP_ORANGE = 0xFFFE6100
private const val NO_REPORT_GRAY = 0xFFC0C0C0
}
}
@@ -42,79 +42,49 @@ class DatabaseRepo(
private val customSourceType = "Other"
override suspend fun updateTLEFromFile(uri: String): Int = withContext(dispatcher) {
var importedCount = 0
override suspend fun updateTLEFromFile(uri: String) = withContext(dispatcher) {
remoteSource.getFileStream(uri)?.let { stream ->
val entries = parseSatelliteStream(uri, unwrapIfZipped(uri, stream))
val entries = dataParser.parseTLEStream(unwrapIfZipped(uri, stream))
localSource.insertEntries(entries)
settingsRepo.setSatelliteTypeIds(customSourceType, entries.map { it.catnum })
importedCount = entries.size
}
setUpdateSuccessful(System.currentTimeMillis())
importedCount
}
override suspend fun updateTransceiversFromFile(uri: String): Int = withContext(dispatcher) {
var importedCount = 0
override suspend fun updateTransceiversFromFile(uri: String) = withContext(dispatcher) {
remoteSource.getFileStream(uri)?.let { stream ->
val transceivers = dataParser.parseJSONStream(unwrapIfZipped(uri, stream))
localSource.insertRadios(transceivers, isCustom = true)
importedCount = transceivers.size
localSource.insertRadios(transceivers)
}
setUpdateSuccessful(System.currentTimeMillis())
importedCount
}
override suspend fun updateFromRemote() = withContext(dispatcher) {
val settings = settingsRepo.dataSourcesSettings.value
// Keep the raw URL as the status key (matches what the settings UI
// displays) while requesting with the normalized URL.
val tleUrls = settings.satelliteUrls
.filterIndexed { i, url -> url.isNotBlank() && settings.isSatelliteEnabled(i) }
.map { it to normalizeUrl(it) }
.distinctBy { it.second }
val radioUrls = settings.transceiversUrls
.filterIndexed { i, url -> url.isNotBlank() && settings.isTransceiverEnabled(i) }
.map { it to normalizeUrl(it) }
.distinctBy { it.second }
val builtinTypesByUrl = Sources.satelliteDataUrls
.filterValues { it.isNotBlank() }
.mapValues { normalizeUrl(it.value) }
.entries
.associate { (type, url) -> url to type }
val importedTypeIds = mutableMapOf<String, MutableList<Int>>()
// launch all network requests concurrently, keeping the raw url as key for status reporting
val tleJobs = tleUrls.map { (raw, norm) -> async { raw to remoteSource.getNetworkStream(norm) } }
val radioJobs = radioUrls.map { (raw, norm) -> async { raw to remoteSource.getNetworkStream(norm) } }
val tleResults = tleJobs.awaitAll()
val radioResults = radioJobs.awaitAll()
// report the HTTP status code of every source (200, 404, ...)
settingsRepo.updateDataSourcesStatus(
(tleResults + radioResults).associate { (url, result) -> url to result.code }
)
// parse fetched data concurrently and associate known built-in URLs with existing type filters.
val importedEntries = tleResults.flatMap { (rawUrl, result) ->
val normUrl = normalizeUrl(rawUrl)
val entries = result.stream?.let { parseSatelliteStream(normUrl, unwrapIfZipped(normUrl, it)) }.orEmpty()
val type = builtinTypesByUrl[normUrl] ?: customSourceType
importedTypeIds.getOrPut(type) { mutableListOf() }.addAll(entries.map { it.catnum })
entries
}.distinctBy { it.catnum }
importedTypeIds.forEach { (type, ids) -> settingsRepo.setSatelliteTypeIds(type, ids.distinct()) }
val importedRadios = radioResults.flatMap { (rawUrl, result) ->
val normUrl = normalizeUrl(rawUrl)
result.stream?.let { dataParser.parseJSONStream(unwrapIfZipped(normUrl, it)) }.orEmpty()
}.filter { it.uuid.isNotBlank() }.distinctBy { it.uuid }
// insert parsed data into the database.
// Transceivers are a full snapshot: sources publish active entries only, so a retired
// transceiver simply disappears from the feed and has to be dropped locally as well.
// Manually imported ones (isCustom) are kept: no source can refresh them, so nothing
// would bring them back if they were replaced here.
if (importedRadios.isNotEmpty()) {
localSource.deleteManagedRadios()
localSource.insertRadios(importedRadios)
val dataSourcesSettings = settingsRepo.dataSourcesSettings.value
val tleUrls = buildMap {
putAll(Sources.satelliteDataUrls)
if (dataSourcesSettings.useCustomTLE) put(customSourceType, dataSourcesSettings.tleUrl)
}.filterValues { it.isNotBlank() }
val radioUrls = buildMap {
putAll(Sources.transceiversDataUrls)
if (dataSourcesSettings.useCustomTransceivers) put(customSourceType, dataSourcesSettings.transceiversUrl)
}.filterValues { it.isNotBlank() }
// launch all network requests concurrently
val tleJobs = tleUrls.values.map { url -> async { url to remoteSource.getNetworkStream(url) } }
val radioJobs = radioUrls.values.map { url -> async { url to remoteSource.getNetworkStream(url) } }
// parse fetched data concurrently and associate with types
val importedEntries = tleJobs.awaitAll().flatMap { (url, stream) ->
val type = tleUrls.entries.find { it.value == url }?.key ?: customSourceType
stream?.let { parseSatelliteStream(url, unwrapIfZipped(url, it)) }.orEmpty().also { entries ->
settingsRepo.setSatelliteTypeIds(type, entries.map { it.catnum })
}
}
if (importedEntries.isNotEmpty()) localSource.insertEntries(importedEntries)
val importedRadios = radioJobs.awaitAll().flatMap { (url, stream) ->
stream?.let { dataParser.parseJSONStream(unwrapIfZipped(url, it)) }.orEmpty()
}
// insert parsed data into the database
localSource.insertEntries(importedEntries)
localSource.insertRadios(importedRadios)
setUpdateSuccessful(System.currentTimeMillis())
}
@@ -124,34 +94,9 @@ class DatabaseRepo(
setUpdateSuccessful(0L)
}
private fun normalizeUrl(url: String): String =
if (url.startsWith("http", ignoreCase = true)) url else "https://$url"
private suspend fun parseSatelliteStream(url: String, stream: InputStream): List<OrbitalData> {
val bufferedStream = stream.buffered()
return when {
hasCsvHint(url) || looksLikeCsv(bufferedStream) -> dataParser.parseCSVStream(bufferedStream)
else -> dataParser.parseTLEStream(bufferedStream)
}
}
private fun hasCsvHint(url: String): Boolean {
return url.contains("FORMAT=csv", ignoreCase = true) ||
url.endsWith(".csv", ignoreCase = true) ||
url.endsWith(".csv.zip", ignoreCase = true)
}
private fun looksLikeCsv(stream: InputStream): Boolean {
if (!stream.markSupported()) return false
stream.mark(4096)
val preview = ByteArray(4096)
val length = stream.read(preview)
stream.reset()
if (length <= 0) return false
val line = preview.decodeToString(0, length).lineSequence().firstOrNull()?.trim().orEmpty()
return line.contains("OBJECT_NAME", ignoreCase = true) ||
line.contains("NORAD_CAT_ID", ignoreCase = true) ||
line.count { it == ',' } >= 4
private suspend fun parseSatelliteStream(url: String, stream: InputStream): List<OrbitalData> = when {
url.contains("FORMAT=csv", ignoreCase = true) -> dataParser.parseCSVStream(stream)
else -> dataParser.parseTLEStream(stream)
}
private suspend fun setUpdateSuccessful(timestamp: Long) {
@@ -1,460 +0,0 @@
/*
* Look4Sat. Amateur radio satellite tracker and pass predictor.
* Copyright (C) 2019-2026 Arty Bishop and contributors.
*
* This program is free software: you can redistribute it and/or modify
* it under the terms of the GNU General Public License as published by
* the Free Software Foundation, either version 3 of the License, or
* (at your option) any later version.
*
* This program is distributed in the hope that it will be useful,
* but WITHOUT ANY WARRANTY; without even the implied warranty of
* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
* GNU General Public License for more details.
*
* You should have received a copy of the GNU General Public License
* along with this program. If not, see <https://www.gnu.org/licenses/>.
*/
package com.rtbishop.look4sat.core.data.repository
import com.rtbishop.look4sat.core.domain.repository.ILoTWRepository
import com.rtbishop.look4sat.core.domain.repository.LoTWPhase
import com.rtbishop.look4sat.core.domain.repository.LoTWProgress
import com.rtbishop.look4sat.core.domain.repository.LoTWResult
import kotlinx.coroutines.Dispatchers
import kotlinx.coroutines.ensureActive
import kotlinx.coroutines.withContext
import kotlin.coroutines.coroutineContext
import java.net.HttpURLConnection
import java.net.SocketTimeoutException
import java.net.URL
import java.net.URLEncoder
import java.io.IOException
import javax.net.ssl.SSLException
/**
* Fetches confirmed gridsquares directly from ARRL LoTW via the official report endpoint:
* GET https://lotw.arrl.org/lotwuser/lotwreport.adi?login=<call>&password=<pwd>
* &qso_query=1&qso_qsl=yes&qso_qsldetail=yes&qso_mydetail=yes&qso_qslsince=<date>
*
* Only QSL_RCVD=Y records are returned by LoTW for qso_qsl=yes, so every grid in the
* report is a *confirmed* grid (green on the map). GRIDSQUARE may be a 4- or 6-char
* value; VUCC_GRIDS ("EN52en,EN53fa") also yields 4-char fields. All values are
* truncated/expanded to the 4-char form used by the map overlay.
*
* ARRL rate-limits the report endpoint: one download in progress per user id, and
* frequent full-report pulls get refused. Failures are reported with an explicit
* cause (see LoTWResult) so the UI can tell the user what to do next.
*/
class LoTWRepository : ILoTWRepository {
override suspend fun fetchConfirmedGrids(callsign: String, password: String): LoTWResult =
withContext(Dispatchers.IO) {
fetchReportBody(callsign, password, since = "", onProgress = {}).fold(
onSuccess = { body ->
parseBoth(body)?.let { (grids, _, roamed) ->
LoTWResult.Success(grids, emptyMap(), roamed)
} ?: LoTWResult.RateLimited
},
onFailure = { toResult(it) }
)
}
override suspend fun fetchConfirmedGridQsos(
callsign: String,
password: String,
since: String,
onProgress: (LoTWProgress) -> Unit
): LoTWResult = withContext(Dispatchers.IO) {
fetchReportBody(callsign, password, since, onProgress).fold(
onSuccess = { body ->
parseBoth(body)?.let { (grids, qsos, roamed) ->
LoTWResult.Success(grids, qsos, roamed)
} ?: LoTWResult.RateLimited
},
onFailure = { toResult(it) }
)
}
internal fun toResult(e: Throwable): LoTWResult = when (e) {
is CredentialsException -> LoTWResult.BadCredentials
is RateLimitException -> LoTWResult.RateLimited
is TimeoutException -> LoTWResult.Timeout
else -> LoTWResult.NetworkError(e.message ?: e.javaClass.simpleName)
}
/** Single report fetch feeding the grid set, the per-QSO detail and the roamed set. */
private fun parseBoth(
body: String
): Triple<Set<String>, Map<String, List<com.rtbishop.look4sat.core.domain.model.GridQso>>, Set<String>>? {
val grids = parseConfirmedGrids(body) ?: return null
val qsos = parseConfirmedGridQsos(body) ?: return null
val roamed = parseRoamedGrids(body) ?: return null
return Triple(grids, qsos, roamed)
}
private suspend fun fetchReportBody(
callsign: String,
password: String,
since: String,
onProgress: (LoTWProgress) -> Unit
): Result<String> {
val call = callsign.trim().uppercase()
val pwd = password.trim()
if (call.isBlank() || pwd.isBlank()) return Result.failure(IOException("empty credentials"))
// Empty since -> full report. qso_qslsince with an early date forces a
// FULL confirmed-QSL report; without it LoTW applies a "system supplied
// default" since-date and only returns confirmations newer than the
// account's last query — subsequent syncs would be incremental/empty.
val effectiveSince = since.ifBlank { "2000-01-01" }
val query = buildString {
append("login=").append(URLEncoder.encode(call, "UTF-8"))
append("&password=").append(URLEncoder.encode(pwd, "UTF-8"))
append("&qso_query=1&qso_qsl=yes&qso_qsldetail=yes&qso_mydetail=yes")
append("&qso_qslsince=").append(URLEncoder.encode(effectiveSince, "UTF-8"))
}
return try {
val connection = URL("$BASE_URL?$query").openConnection() as HttpURLConnection
// ARRL can be slow to accept connections from mobile networks
// (long TLS handshakes across the Pacific, occasional server-side
// queueing — a busy server took 36.5 s to accept a connection in
// testing, so 30 s connect would have killed it).
//
// NOTE: readTimeout is NOT a total-download cap. It is the longest
// wait for the NEXT chunk of data (a stall timeout). A full report
// for a huge account (tens of thousands of QSLs ≈ tens of MB at
// ARRL's ~10 KB/s stream rate) legitimately takes 30+ minutes;
// as long as chunks keep arriving it must never be cut off.
// 600 s tolerates long server-side pauses while it generates the
// report; a truly dead link (no data at all) still fails within it.
connection.connectTimeout = 60_000
connection.readTimeout = 600_000
connection.requestMethod = "GET"
connection.setRequestProperty("Accept-Encoding", "gzip")
connection.instanceFollowRedirects = true
onProgress(LoTWProgress(LoTWPhase.Connecting))
val code = connection.responseCode
if (code !in 200..299) {
connection.disconnect()
// Observed in the wild (CQRLOG #2422): LoTW answers a throttled
// report pull with HTTP 503 "Page request limit".
return if (code == 503 || code == 429) Result.failure(RateLimitException())
else Result.failure(IOException("HTTP $code"))
}
val stream = connection.inputStream
val isGzip = "gzip".equals(connection.contentEncoding, ignoreCase = true)
val body = readBodyWithProgress(stream, isGzip, onProgress)
connection.disconnect()
when {
// Login failure: HTTP 200 + HTML login page with the error text.
body.contains("incorrect", ignoreCase = true) &&
body.contains("assword", ignoreCase = true) -> Result.failure(CredentialsException())
// Any other non-ADIF body: rate-limit refusal / server error page.
!body.contains("<eoh>", ignoreCase = true) -> Result.failure(RateLimitException())
else -> Result.success(body)
}
} catch (e: java.util.concurrent.CancellationException) {
// Cancellation must propagate — it is not a network failure.
throw e
} catch (e: SocketTimeoutException) {
Result.failure(TimeoutException(e.message ?: "timed out"))
} catch (e: SSLException) {
Result.failure(IOException("TLS: ${e.message ?: "handshake failed"}"))
} catch (e: Exception) {
println("LoTWRepository fetch failure: $e")
Result.failure(IOException(e.message ?: e.javaClass.simpleName))
}
}
/**
* Streams the report body into a string while reporting download progress.
* Once the header's record count (<APP_LoTW_NUMREC>) is seen, the total
* body size is estimated as NUMREC * AVG_RECORD_BYTES so the UI can show a
* meaningful progress bar and remaining-time estimate.
*/
private suspend fun readBodyWithProgress(
stream: java.io.InputStream,
isGzip: Boolean,
onProgress: (LoTWProgress) -> Unit
): String {
val input = if (isGzip) java.util.zip.GZIPInputStream(stream) else stream
val reader = java.io.InputStreamReader(input, Charsets.UTF_8)
val sb = StringBuilder()
val buf = CharArray(8192)
var bytesRead = 0L
var expected = 0L
var qsoCount = 0L
var speed = 0L
var headerSeen = false
var lastSampleMs = System.currentTimeMillis()
var lastSampleBytes = 0L
var lastEmitMs = 0L
while (true) {
// Cooperative cancellation: lets the user abort a full sync that
// was started by mistake. Throws CancellationException once the
// job is cancelled; the blocking read below is fast while chunks
// keep arriving, so the abort lands on the next chunk boundary.
coroutineContext.ensureActive()
val n = reader.read(buf)
if (n <= 0) break
sb.append(buf, 0, n)
bytesRead += n
// The record count sits in the report header, long before the data.
if (!headerSeen) {
NUMREC_REGEX.find(sb)?.let { m ->
qsoCount = m.groupValues[1].toLongOrNull() ?: 0L
expected = qsoCount * AVG_RECORD_BYTES
headerSeen = true
}
}
// Sample speed every 500ms, EMA-smoothed.
val now = System.currentTimeMillis()
if (now - lastSampleMs >= 500) {
val elapsedS = (now - lastSampleMs) / 1000.0
if (elapsedS > 0) {
val inst = ((bytesRead - lastSampleBytes) / elapsedS).toLong()
speed = if (speed == 0L) inst else (speed * 7 + inst * 3) / 10
lastSampleMs = now
lastSampleBytes = bytesRead
}
}
// Throttle callbacks to ~4/s so StateFlow updates stay cheap.
if (now - lastEmitMs >= 250) {
onProgress(LoTWProgress(LoTWPhase.Downloading, bytesRead, expected, speed, qsoCount))
lastEmitMs = now
}
}
onProgress(LoTWProgress(LoTWPhase.Downloading, bytesRead, expected, speed, qsoCount))
return sb.toString()
}
internal class CredentialsException : Exception("bad callsign/password")
internal class RateLimitException : Exception("report refused (rate limit / server error)")
internal class TimeoutException(message: String) : Exception(message)
internal fun parseConfirmedGridQsos(
body: String
): Map<String, List<com.rtbishop.look4sat.core.domain.model.GridQso>>? {
if (!body.contains("<eoh>", ignoreCase = true)) return null
// One ADIF record = fields up to <EOR>. We buffer the fields we care
// about, then emit a GridQso on <EOR> when the record is a satellite
// QSO (PROP_MODE=SAT) carrying a grid.
val result = mutableMapOf<String, MutableList<com.rtbishop.look4sat.core.domain.model.GridQso>>()
var propMode: String? = null
var call = ""
var qsoDate = ""
var timeOn = ""
var satName = ""
var mode = ""
var bandUp = ""
var bandDown = ""
var dxcc: Int? = null
var country: String? = null
var cqz: Int? = null
var state: String? = null
var myGrid: String? = null
val gridsInRecord = mutableListOf<String>()
fun emitRecord() {
if (propMode != "SAT" || gridsInRecord.isEmpty()) return
val epochMs = adifTimestampToEpoch(qsoDate, timeOn)
val qso = com.rtbishop.look4sat.core.domain.model.GridQso(
call = call, epochMs = epochMs, satName = satName,
mode = mode, bandUp = bandUp, bandDown = bandDown,
dxcc = dxcc, country = country, cqz = cqz, state = state,
myGrid = myGrid
)
for (grid in gridsInRecord) {
result.getOrPut(grid) { mutableListOf() }.add(qso)
}
}
fun resetRecord() {
propMode = null; call = ""; qsoDate = ""; timeOn = ""
satName = ""; mode = ""; bandUp = ""; bandDown = ""
dxcc = null; country = null; cqz = null; state = null
myGrid = null
gridsInRecord.clear()
}
for (raw in body.lineSequence()) {
val line = raw.trim()
when {
line.equals("<EOR>", ignoreCase = true) -> {
emitRecord()
resetRecord()
}
line.startsWith("<PROP_MODE:") ->
propMode = adifValue(line).uppercase()
line.startsWith("<CALL:") ->
call = adifValue(line).uppercase()
line.startsWith("<QSO_DATE:") ->
qsoDate = adifValue(line)
line.startsWith("<TIME_ON:") ->
timeOn = adifValue(line)
line.startsWith("<SAT_NAME:") ->
satName = adifValue(line)
line.startsWith("<MODE:") ->
mode = adifValue(line)
line.startsWith("<BAND_RX:") ->
bandUp = adifValue(line).uppercase()
line.startsWith("<BAND:") && !line.startsWith("<BAND_RX:") ->
bandDown = adifValue(line).uppercase()
line.startsWith("<DXCC:") ->
dxcc = adifValue(line).toIntOrNull()
line.startsWith("<COUNTRY:") ->
country = adifValue(line).ifBlank { null }
line.startsWith("<CQZ:") ->
cqz = adifValue(line).toIntOrNull()
line.startsWith("<STATE:") ->
state = adifValue(line).trim().ifBlank { null }?.let { normalizeState(it) }
line.startsWith("<MY_GRIDSQUARE:") -> {
// Own-station grid (must not be confused with GRIDSQUARE —
// the opposite station's grid). Recorded per QSO so awards
// can be counted per operated grid.
val value = adifValue(line)
if (value.length >= 4) myGrid = value.take(4).uppercase()
}
line.startsWith("<GRIDSQUARE:") || line.startsWith("<VUCC_GRIDS:") -> {
// VUCC_GRIDS holds a comma-separated list of grids
// ("EN52en,EN53fa"), up to four for contacts spanning
// several squares; split and keep every 4-char field.
adifValue(line).split(',').forEach { grid ->
val field = grid.trim().uppercase()
if (field.length >= 4) gridsInRecord.add(field.take(4))
}
}
}
}
return result
}
/** ADIF field value: "<GRIDSQUARE:4>OL62" -> "OL62". */
private fun adifValue(line: String): String =
line.substringAfter('>').substringBefore("E<").trim()
/**
* LoTW returns STATE as "CODE // NAME" (e.g. "HB // Hubei" for China,
* "34 // Tottori-ken" for Japan, "CA // California" for the US). The award
* statistics match on the short CODE only (China 2-letter province pinyin,
* Japan 2-digit prefecture, US 2-letter state), so strip the " // NAME"
* suffix here once, storing the clean code for every downstream consumer
* (persistence, AwardCalculator).
*/
private fun normalizeState(raw: String): String = raw.substringBefore(" // ").trim()
/** "20260820" + "1130" (or "113000") -> UTC epoch ms; 0 when unparseable. */
private fun adifTimestampToEpoch(date: String, time: String): Long = try {
val d = date.trim()
val t = time.trim().padEnd(6, '0').take(6)
val fmt = java.time.format.DateTimeFormatterBuilder()
.appendPattern("yyyyMMddHHmmss")
.toFormatter()
.withZone(java.time.ZoneOffset.UTC)
java.time.Instant.from(fmt.parse(d + t)).toEpochMilli()
} catch (_: Exception) {
0L
}
internal fun parseConfirmedGrids(body: String): Set<String>? {
// LoTW answers with ADIF text; on bad credentials it returns a short error
// page without an <eoh> header terminator. Real reports always carry <eoh>
// (LoTW writes it lowercase). Match case-insensitively to be safe.
if (!body.contains("<eoh>", ignoreCase = true)) return null
val grids = mutableSetOf<String>()
// ADIF fields of one QSO record span multiple lines and are terminated by
// <EOR>. Satellite QSOs carry <PROP_MODE:3>SAT (plus <SAT_NAME>); ground
// QSOs omit it. Grid fields (GRIDSQUARE / VUCC_GRIDS) must only be
// collected for records whose PROP_MODE is SAT, otherwise the map mixes
// in terrestrial contacts.
//
// Buffered per-record pattern (same as parseConfirmedGridQsos): field order
// is NOT reliable — ADIF producers (incl. LoTW) emit fields alphabetically,
// so <GRIDSQUARE> (G) arrives BEFORE <PROP_MODE> (P) within a record. A
// sequential gate ("only add while propMode == SAT") silently drops every
// grid on real reports. Buffer the record and decide at <EOR> instead.
var propMode: String? = null
var pendingGrids = mutableListOf<String>()
for (raw in body.lineSequence()) {
val line = raw.trim()
when {
line.equals("<EOR>", ignoreCase = true) -> {
if (propMode == "SAT") grids.addAll(pendingGrids)
propMode = null
pendingGrids = mutableListOf()
}
line.startsWith("<PROP_MODE:") -> {
propMode = adifValue(line).uppercase()
}
line.startsWith("<GRIDSQUARE:") || line.startsWith("<VUCC_GRIDS:") -> {
// VUCC_GRIDS holds a comma-separated PAIR of grids
// ("EN52en,EN53fa") for contacts spanning two squares —
// split on ',' and take the 4-char field of each, or the
// second grid is silently dropped.
val value = adifValue(line)
value.split(',').forEach { grid ->
val field = grid.trim().uppercase()
if (field.length >= 4) pendingGrids.add(field.take(4))
}
}
}
}
return grids
}
/**
* Distinct 4-char gridsquares the account itself operated from, taken from
* ADIF <MY_GRIDSQUARE> of satellite QSO records only. This is the
* "roamed / activated" set shown as blue stripes on the map — the grids
* where the operator's own station was located during confirmed QSOs (a
* rover may log several distinct grids; the home grid is included too).
* Returns null when the body is not an ADIF report (mirrors the other parsers).
*/
internal fun parseRoamedGrids(body: String): Set<String>? {
if (!body.contains("<eoh>", ignoreCase = true)) return null
val grids = mutableSetOf<String>()
// Buffered per-record pattern (same as parseConfirmedGridQsos): field
// order is NOT reliable — ADIF producers (incl. LoTW) emit fields
// alphabetically, so <MY_GRIDSQUARE> (M) arrives BEFORE <PROP_MODE> (P)
// within a record. A sequential gate ("only add while propMode == SAT")
// would silently drop every own grid on real reports; buffer the record
// and decide at <EOR> instead.
var propMode: String? = null
var myGrid: String? = null
for (raw in body.lineSequence()) {
val line = raw.trim()
when {
line.equals("<EOR>", ignoreCase = true) -> {
if (propMode == "SAT" && myGrid != null) grids.add(myGrid)
propMode = null
myGrid = null
}
line.startsWith("<PROP_MODE:") -> {
propMode = adifValue(line).uppercase()
}
line.startsWith("<MY_GRIDSQUARE:") -> {
// MY_GRIDSQUARE must not be mistaken for GRIDSQUARE (the
// opposite station's grid) — only own-station grids count.
val value = adifValue(line)
if (value.length >= 4) myGrid = value.take(4)
}
}
}
return grids
}
private companion object {
const val BASE_URL = "https://lotw.arrl.org/lotwuser/lotwreport.adi"
/** Record count in the report header: `<APP_LoTW_NUMREC:4>2367`. */
val NUMREC_REGEX = Regex("<APP_LoTW_NUMREC:\\d+>(\\d+)")
/**
* Measured 2026-09-16 (BH6RJD, 2367 QSLs): 1.7 MB body streamed at
* ~9.5 KB/s ≈ 180 s, i.e. ≈ 720 bytes per ADIF record. Use a
* CONSERVATIVE (larger) estimate so the progress bar never hits 100%
* before the download truly ends — an under-estimate made the bar sit
* at 100% while data was still flowing, read as "finished but stuck".
*/
const val AVG_RECORD_BYTES = 900L
}
}
@@ -34,12 +34,8 @@ import kotlinx.coroutines.coroutineScope
import kotlinx.coroutines.delay
import kotlinx.coroutines.flow.MutableStateFlow
import kotlinx.coroutines.flow.StateFlow
import kotlinx.coroutines.flow.combine
import kotlinx.coroutines.flow.distinctUntilChanged
import kotlinx.coroutines.flow.map
import kotlinx.coroutines.flow.update
import kotlinx.coroutines.withContext
import java.util.TimeZone
class SatelliteRepo(
private val dispatcher: CoroutineDispatcher,
@@ -66,28 +62,11 @@ class SatelliteRepo(
override suspend fun getRadiosWithId(id: Int) = localStorage.getRadiosWithId(id)
override suspend fun initRepository() = withContext(dispatcher) {
combine(
settingsRepo.selectedIds,
settingsRepo.stationPosition,
// Recalculate passes when the UTC display toggle changes, so an existing
// AOS time window is reapplied in the newly selected timezone.
settingsRepo.otherSettings.map { it.stateOfUtc }.distinctUntilChanged()
) { selectedIds, _, _ -> selectedIds }
.collect { selectedIds ->
_satellites.update { localStorage.getEntriesWithIds(selectedIds) }
val settings = settingsRepo.passesSettings.value
val now = System.currentTimeMillis()
// 历史过境: 回看窗口 hoursBefore 小时, 过境列表从更早时间开始计算.
calculatePasses(
time = now - settings.hoursBefore * 60L * 60L * 1000L,
hoursAhead = settings.hoursBefore + settings.hoursAhead,
minElevation = settings.minElevation,
aosStartMinute = settings.aosStartMinute,
aosEndMinute = settings.aosEndMinute,
invertAosTimeWindow = settings.invertAosTimeWindow,
modes = settings.selectedModes
)
}
settingsRepo.selectedIds.collect { selectedIds ->
_satellites.update { localStorage.getEntriesWithIds(selectedIds) }
val (_, hoursAhead, minElevation, modes) = settingsRepo.passesSettings.value
calculatePasses(System.currentTimeMillis(), hoursAhead, minElevation, modes)
}
}
override suspend fun getPosition(sat: OrbitalObject, pos: GeoPos, time: Long): OrbitalPos {
@@ -126,15 +105,7 @@ class SatelliteRepo(
}
}
override suspend fun calculatePasses(
time: Long,
hoursAhead: Int,
minElevation: Double,
aosStartMinute: Int,
aosEndMinute: Int,
invertAosTimeWindow: Boolean,
modes: List<String>
) {
override suspend fun calculatePasses(time: Long, hoursAhead: Int, minElevation: Double, modes: List<String>) {
_isCalculating.value = true
// Normalize to the start of the current minute so that coarse 60-second stepping
// in getLeoPass always begins from the same phase, producing stable AOS/LOS times
@@ -159,12 +130,7 @@ class SatelliteRepo(
val newPasses = ArrayList<OrbitalPass>()
for (list in passLists) {
for (pass in list) {
if (
pass.losTime > time
&& pass.aosTime < timeFuture
&& pass.maxElevation > minElevation
&& (pass.isDeepSpace || isAosInRange(pass.aosTime, aosStartMinute, aosEndMinute, invertAosTimeWindow))
) {
if (pass.losTime > time && pass.aosTime < timeFuture && pass.maxElevation > minElevation) {
newPasses.add(pass)
}
}
@@ -176,32 +142,6 @@ class SatelliteRepo(
_isCalculating.value = false
}
private fun isAosInRange(
aosTime: Long,
aosStartMinute: Int,
aosEndMinute: Int,
invertAosTimeWindow: Boolean
): Boolean {
// Follow the UTC display toggle: with UTC enabled the window is interpreted
// in UTC, otherwise in the device's local timezone. Otherwise the pass list
// shows UTC times while the filter silently uses local time — the two
// disagree by the timezone offset (e.g. 8h for China).
val tz = if (settingsRepo.otherSettings.value.stateOfUtc) {
TimeZone.getTimeZone("UTC")
} else {
TimeZone.getDefault()
}
val offsetMillis = tz.getOffset(aosTime).toLong()
val localMillis = Math.floorMod(aosTime + offsetMillis, 24L * 60L * 60L * 1000L)
val aosMinute = (localMillis / 60_000L).toInt()
val inRange = if (aosStartMinute <= aosEndMinute) {
aosMinute in aosStartMinute..aosEndMinute
} else {
aosMinute >= aosStartMinute || aosMinute <= aosEndMinute
}
return if (invertAosTimeWindow) !inRange else inRange
}
private fun OrbitalObject.getPasses(pos: GeoPos, time: Long, hours: Int): List<OrbitalPass> {
val passes = mutableListOf<OrbitalPass>()
val endDate = time + hours * 60L * 60L * 1000L
@@ -111,29 +111,12 @@ class SelectionRepo(
/**
* Filters items by query. Uses toIntOrNull() instead of exception-based flow,
* and lowercases the query once up front instead of per-item.
*
* Fuzzy search: the query is split into space-separated tokens and every
* token must appear in the satellite name after both sides are normalized
* (lowercased, non-alphanumeric separators such as dashes, spaces, brackets
* and dots stripped). This makes "ao7" match "AO-7 (AMSAT-OSCAR 7)" and
* "iss zarya" match "ISS (ZARYA)" — exact continuous-substring matching
* previously failed whenever the name contained a separator the query lacked.
*/
private fun filterByQuery(items: List<SatItem>, query: String): List<SatItem> {
if (query.isBlank()) return items
val catnum = query.toIntOrNull()
if (catnum != null) return items.filter { it.catnum == catnum }
val tokens = query.split(' ')
.map { normalizeForSearch(it) }
.filter { it.isNotEmpty() }
if (tokens.isEmpty()) return items
return items.filter { item ->
val normalizedName = normalizeForSearch(item.name)
tokens.all { normalizedName.contains(it) }
}
val lowerQuery = query.lowercase()
return items.filter { it.name.lowercase().contains(lowerQuery) }
}
/** Lowercases and strips all non-alphanumeric chars for fuzzy matching. */
private fun normalizeForSearch(text: String): String =
text.lowercase().filter { it.isLetterOrDigit() }
}
@@ -27,7 +27,6 @@ import android.view.Display
import android.view.Surface
import com.rtbishop.look4sat.core.domain.predict.GeoPos
import com.rtbishop.look4sat.core.domain.predict.RAD2DEG
import com.rtbishop.look4sat.core.domain.repository.CompassAccuracy
import com.rtbishop.look4sat.core.domain.repository.ISensorsRepo
import kotlinx.coroutines.flow.MutableStateFlow
import kotlinx.coroutines.flow.StateFlow
@@ -42,12 +41,7 @@ class SensorsRepo(
) : ISensorsRepo, SensorEventListener {
private val _sensorData = MutableStateFlow(Pair(0f, 0f))
private val rotationSensor: Sensor? = sensorManager.getDefaultSensor(Sensor.TYPE_ROTATION_VECTOR)
private val magneticSensor: Sensor? = sensorManager.getDefaultSensor(Sensor.TYPE_MAGNETIC_FIELD)
private val _compassAccuracy = MutableStateFlow(
if (rotationSensor == null || magneticSensor == null) CompassAccuracy.UNAVAILABLE
else CompassAccuracy.UNRELIABLE
)
private val sensor: Sensor? = sensorManager.getDefaultSensor(Sensor.TYPE_ROTATION_VECTOR)
private val rotationMatrix = FloatArray(9)
private val tempMatrix = FloatArray(9)
private val orientationValues = FloatArray(3)
@@ -56,7 +50,6 @@ class SensorsRepo(
private var hasInitialReading = false
override val sensorData: StateFlow<Pair<Float, Float>> = _sensorData
override val compassAccuracy: StateFlow<CompassAccuracy> = _compassAccuracy
override fun getMagDeclination(geoPos: GeoPos, time: Long): Float {
return GeomagneticField(
@@ -69,41 +62,15 @@ class SensorsRepo(
override fun enableSensor() {
hasInitialReading = false
if (rotationSensor == null || magneticSensor == null) {
_compassAccuracy.value = CompassAccuracy.UNAVAILABLE
return
}
_compassAccuracy.value = CompassAccuracy.UNRELIABLE
val rotationRegistered = sensorManager.registerListener(this, rotationSensor, SENSOR_RATE_US)
val magneticRegistered = sensorManager.registerListener(this, magneticSensor, SENSOR_RATE_US)
if (!rotationRegistered || !magneticRegistered) {
sensorManager.unregisterListener(this)
_compassAccuracy.value = CompassAccuracy.UNAVAILABLE
}
sensor?.let { sensorManager.registerListener(this, it, SENSOR_RATE_US) }
}
override fun disableSensor() = sensorManager.unregisterListener(this)
override fun onAccuracyChanged(sensor: Sensor, accuracy: Int) {
if (sensor.type == Sensor.TYPE_MAGNETIC_FIELD) {
updateAccuracy(accuracy)
}
}
override fun onAccuracyChanged(sensor: Sensor, accuracy: Int) = Unit
override fun onSensorChanged(event: SensorEvent) {
when (event.sensor.type) {
Sensor.TYPE_ROTATION_VECTOR -> handleSensorEvent(event)
Sensor.TYPE_MAGNETIC_FIELD -> updateAccuracy(event.accuracy)
}
}
private fun updateAccuracy(accuracy: Int) {
_compassAccuracy.value = when (accuracy) {
SensorManager.SENSOR_STATUS_ACCURACY_HIGH -> CompassAccuracy.HIGH
SensorManager.SENSOR_STATUS_ACCURACY_MEDIUM -> CompassAccuracy.MEDIUM
SensorManager.SENSOR_STATUS_ACCURACY_LOW -> CompassAccuracy.LOW
else -> CompassAccuracy.UNRELIABLE
}
if (event.sensor.type == Sensor.TYPE_ROTATION_VECTOR) handleSensorEvent(event)
}
private fun getDisplayRotation(): Int {
@@ -25,11 +25,11 @@ import androidx.core.location.LocationListenerCompat
import androidx.core.location.LocationManagerCompat
import com.rtbishop.look4sat.core.domain.model.DataSourcesSettings
import com.rtbishop.look4sat.core.domain.model.DatabaseState
import com.rtbishop.look4sat.core.domain.model.MapSource
import com.rtbishop.look4sat.core.domain.model.OtherSettings
import com.rtbishop.look4sat.core.domain.model.PassesSettings
import com.rtbishop.look4sat.core.domain.model.RCSettings
import com.rtbishop.look4sat.core.domain.model.RadioControlSettings
import com.rtbishop.look4sat.core.domain.model.WavelogSettings
import com.rtbishop.look4sat.core.domain.predict.GeoPos
import com.rtbishop.look4sat.core.domain.repository.ISettingsRepo
import com.rtbishop.look4sat.core.domain.utility.positionToQth
@@ -38,10 +38,6 @@ import com.rtbishop.look4sat.core.domain.utility.round
import kotlinx.coroutines.flow.MutableStateFlow
import kotlinx.coroutines.flow.StateFlow
import kotlinx.coroutines.flow.update
import org.json.JSONObject
import java.util.Locale
import com.rtbishop.look4sat.core.domain.model.Constants
import com.rtbishop.look4sat.core.domain.source.Sources
class SettingsRepo(
private val locationManager: LocationManager,
@@ -58,11 +54,7 @@ class SettingsRepo(
private val keyBluetoothFrequencyFormat = "bluetoothFrequencyFormat"
private val keyFilterShowDeepSpace = "filterShowDeepSpace"
private val keyFilterHoursAhead = "filterHoursAhead"
private val keyFilterHoursBefore = "filterHoursBefore"
private val keyFilterMinElevation = "filterMinElevation"
private val keyFilterAosStartMinute = "filterAosStartMinute"
private val keyFilterAosEndMinute = "filterAosEndMinute"
private val keyFilterAosInvert = "filterAosInvert"
private val keyNumberOfRadios = "numberOfRadios"
private val keyNumberOfSatellites = "numberOfSatellites"
private val keyRotatorAddress = "rotatorAddress"
@@ -73,20 +65,15 @@ class SettingsRepo(
private val keyFrequencyAddress = "frequencyAddress"
private val keyFrequencyPort = "frequencyPort"
private val keyFrequencyFormat = "frequencyFormat"
private val keyFrequencyOffsetHz = "frequencyOffsetHz"
private val keySelectedIds = "selectedIds"
private val keySelectedTypes = "selectedTypes"
private val keySelectedModes = "selectedModes"
private val keyStateOfAutoUpdate = "stateOfAutoUpdate"
private val keyStateOfAutoLotwSync = "stateOfAutoLotwSync"
private val keyStateOfSensors = "stateOfSensors"
private val keyCompassOffsetDegrees = "compassOffsetDegrees"
private val keyStateOfSweep = "stateOfSweep"
private val keyStateOfUtc = "stateOfUtc"
private val keyStateOfLightTheme = "stateOfLightTheme"
private val keyStateOfNightMode = "stateOfNightMode"
private val keyStateOfMapGrid = "stateOfMapGrid"
private val keyStateOfMapFirstCall = "stateOfMapFirstCall"
private val keyStationAltitude = "stationAltitude"
private val keyStationLatitude = "stationLatitude"
private val keyStationLongitude = "stationLongitude"
@@ -96,21 +83,13 @@ class SettingsRepo(
private val keyShouldSeeWarning = "shouldSeeWarning"
private val keyShouldSeeWhatsNew = "shouldSeeWhatsNew_v$appVersionName"
private val keySstvMode = "sstvMode"
private val keyLowElevation = "lowElevation"
private val keyHighElevation = "highElevation"
private val keyMapSource = "mapSource"
private val keyTiandituKey = "tiandituKey"
private val keyUseCustomTle = "useCustomTle"
private val keyUseCustomTransceivers = "useCustomTransceivers"
private val keyTleUrl = "tleUrl"
private val keyTransceiversUrl = "transceiversUrl"
private val keySatelliteUrls = "satelliteUrls"
private val keyTransceiversUrls = "transceiversUrls"
private val keySatelliteEnabled = "satelliteEnabled"
private val keyTransceiversEnabled = "transceiversEnabled"
private val keySatnogsTleSourceMigration = "satnogsTleSourceMigration"
private val separatorComma = ","
private val separatorUrl = "\n"
private val legacyCelestrakSatnogsUrl =
"https://celestrak.org/NORAD/elements/gp.php?GROUP=satnogs&FORMAT=csv"
//region # Satellites selection settings
private val _satelliteSelection = MutableStateFlow(getSelectedIds())
@@ -143,225 +122,14 @@ class SettingsRepo(
}
//endregion
//region # Wavelog worked-grids settings
private val keyWavelogUrl = "wavelogUrl"
private val keyWavelogToken = "wavelogToken"
private val keyWorkedGrids = "workedGrids"
private val _wavelogSettings = MutableStateFlow(getWavelogSettings())
override val wavelogSettings: StateFlow<WavelogSettings> = _wavelogSettings
override fun updateWavelogSettings(settings: WavelogSettings) {
preferences.edit {
putString(keyWavelogUrl, settings.url.trim())
putString(keyWavelogToken, settings.token.trim())
}
_wavelogSettings.value = settings.copy(url = settings.url.trim(), token = settings.token.trim())
}
private fun getWavelogSettings(): WavelogSettings = WavelogSettings(
url = preferences.getString(keyWavelogUrl, null).orEmpty(),
token = preferences.getString(keyWavelogToken, null).orEmpty()
)
override fun getWorkedGrids(): Set<String> {
val json = preferences.getString(keyWorkedGrids, null).orEmpty()
if (json.isBlank()) return emptySet()
return try {
val array = org.json.JSONArray(json)
(0 until array.length()).mapNotNull { i ->
array.optString(i).takeIf { it.isNotBlank() }
}.toSet()
} catch (_: Exception) {
emptySet()
}
}
override fun setWorkedGrids(grids: Set<String>) {
val array = org.json.JSONArray()
grids.sorted().forEach { array.put(it) }
preferences.edit { putString(keyWorkedGrids, array.toString()) }
}
// Confirmed satellite QSOs per worked gridsquare, persisted as a single JSON
// object: {"OL62":[{"c":call,"t":epochMs,"s":sat,"m":mode,"bu":up,"bd":down}]}.
private val keyWorkedGridQsos = "workedGridQsos"
override fun getWorkedGridQsos(): Map<String, List<com.rtbishop.look4sat.core.domain.model.GridQso>> {
val json = preferences.getString(keyWorkedGridQsos, null).orEmpty()
if (json.isBlank()) return emptyMap()
return try {
val root = org.json.JSONObject(json)
val result = mutableMapOf<String, List<com.rtbishop.look4sat.core.domain.model.GridQso>>()
for (grid in root.keys()) {
val array = root.optJSONArray(grid) ?: continue
val list = (0 until array.length()).mapNotNull { i ->
val o = array.optJSONObject(i) ?: return@mapNotNull null
com.rtbishop.look4sat.core.domain.model.GridQso(
call = o.optString("c"),
epochMs = o.optLong("t"),
satName = o.optString("s"),
mode = o.optString("m"),
bandUp = o.optString("bu"),
bandDown = o.optString("bd"),
// New award fields: absent in pre-award data -> null.
dxcc = o.optInt("dx", 0).takeIf { it > 0 },
country = o.optString("cty").ifBlank { null },
cqz = o.optInt("cq", 0).takeIf { it > 0 },
state = o.optString("st").ifBlank { null },
// Own-grid field: absent in pre-myGrid data -> null.
myGrid = o.optString("mg").ifBlank { null }
)
}
if (list.isNotEmpty()) result[grid] = list
}
result
} catch (_: Exception) {
emptyMap()
}
}
override fun setWorkedGridQsos(qsos: Map<String, List<com.rtbishop.look4sat.core.domain.model.GridQso>>) {
val root = org.json.JSONObject()
for ((grid, list) in qsos) {
val array = org.json.JSONArray()
for (q in list) {
array.put(
org.json.JSONObject()
.put("c", q.call)
.put("t", q.epochMs)
.put("s", q.satName)
.put("m", q.mode)
.put("bu", q.bandUp)
.put("bd", q.bandDown)
.put("dx", q.dxcc ?: 0)
.put("cty", q.country ?: "")
.put("cq", q.cqz ?: 0)
.put("st", q.state ?: "")
.put("mg", q.myGrid ?: "")
)
}
root.put(grid, array)
}
preferences.edit { putString(keyWorkedGridQsos, root.toString()) }
}
// Distinct 4-char gridsquares the account operated from (LoTW <MY_GRIDSQUARE>,
// satellite QSOs only). Stored as a JSONArray like workedGrids.
private val keyRoamedGrids = "roamedGrids"
override fun getRoamedGrids(): Set<String> {
val json = preferences.getString(keyRoamedGrids, null).orEmpty()
if (json.isBlank()) return emptySet()
return try {
val array = org.json.JSONArray(json)
(0 until array.length()).mapNotNull { i ->
array.optString(i).takeIf { it.isNotBlank() }
}.toSet()
} catch (_: Exception) {
emptySet()
}
}
override fun setRoamedGrids(grids: Set<String>) {
val array = org.json.JSONArray()
grids.sorted().forEach { array.put(it) }
preferences.edit { putString(keyRoamedGrids, array.toString()) }
}
// Marked stations in unworked gridsquares, persisted as a single JSON
// object: {"OL62":{"c":call,"t":epochMs}}. One mark per grid.
private val keyMarkedGridStations = "markedGridStations"
override fun getMarkedGridStations(): Map<String, com.rtbishop.look4sat.core.domain.model.MarkedStation> {
val json = preferences.getString(keyMarkedGridStations, null).orEmpty()
if (json.isBlank()) return emptyMap()
return try {
val root = org.json.JSONObject(json)
val result = mutableMapOf<String, com.rtbishop.look4sat.core.domain.model.MarkedStation>()
for (grid in root.keys()) {
val o = root.optJSONObject(grid) ?: continue
val call = o.optString("c").ifBlank { continue }
result[grid] = com.rtbishop.look4sat.core.domain.model.MarkedStation(
call = call,
epochMs = o.optLong("t")
)
}
result
} catch (_: Exception) {
emptyMap()
}
}
override fun setMarkedGridStations(stations: Map<String, com.rtbishop.look4sat.core.domain.model.MarkedStation>) {
val root = org.json.JSONObject()
for ((grid, station) in stations) {
root.put(
grid,
org.json.JSONObject()
.put("c", station.call)
.put("t", station.epochMs)
)
}
preferences.edit { putString(keyMarkedGridStations, root.toString()) }
}
// LoTW credentials (stored locally on the device only)
private val keyLoTWCall = "lotwCallsign"
private val keyLoTWPass = "lotwPassword"
override val lotwSettings: kotlinx.coroutines.flow.StateFlow<com.rtbishop.look4sat.core.domain.model.LoTWSettings>
get() = _lotwSettings
private val _lotwSettings = MutableStateFlow(getLoTWSettings())
override fun updateLoTWSettings(settings: com.rtbishop.look4sat.core.domain.model.LoTWSettings) {
preferences.edit {
putString(keyLoTWCall, settings.callsign.trim().uppercase())
putString(keyLoTWPass, settings.password)
}
_lotwSettings.value = settings.copy(
callsign = settings.callsign.trim().uppercase(),
password = settings.password
)
}
private fun getLoTWSettings(): com.rtbishop.look4sat.core.domain.model.LoTWSettings =
com.rtbishop.look4sat.core.domain.model.LoTWSettings(
callsign = preferences.getString(keyLoTWCall, null).orEmpty(),
password = preferences.getString(keyLoTWPass, null).orEmpty()
)
// Last successful sync bookkeeping: date ("yyyyMMdd") and callsign. Used to
// decide incremental (same callsign) vs full (first time / callsign change)
// report requests and to merge increments into the stored grid data.
private val keyLastLotwSyncDate = "lotwLastSyncDate"
private val keyLastLotwSyncCallsign = "lotwLastSyncCallsign"
override fun getLastLotwSyncDate(): String =
preferences.getString(keyLastLotwSyncDate, null).orEmpty()
override fun setLastLotwSyncDate(date: String) =
preferences.edit { putString(keyLastLotwSyncDate, date) }
override fun getLastLotwSyncCallsign(): String =
preferences.getString(keyLastLotwSyncCallsign, null).orEmpty()
override fun setLastLotwSyncCallsign(callsign: String) =
preferences.edit { putString(keyLastLotwSyncCallsign, callsign.trim().uppercase()) }
//endregion
//region # Transceivers settings
//region # Passes filter settings
private val _passesSettings = MutableStateFlow(getPassesSettings())
override val passesSettings: StateFlow<PassesSettings> = _passesSettings
override fun setPassesSettings(settings: PassesSettings) = preferences.edit {
putBoolean(keyFilterShowDeepSpace, settings.showDeepSpace)
putInt(keyFilterHoursAhead, settings.hoursAhead)
putInt(keyFilterHoursBefore, settings.hoursBefore)
putLong(keyFilterMinElevation, settings.minElevation.toRawBits())
putInt(keyFilterAosStartMinute, settings.aosStartMinute)
putInt(keyFilterAosEndMinute, settings.aosEndMinute)
putBoolean(keyFilterAosInvert, settings.invertAosTimeWindow)
putString(keySelectedModes, settings.selectedModes.joinToString(separatorComma))
_passesSettings.value = settings
}
@@ -369,23 +137,10 @@ class SettingsRepo(
private fun getPassesSettings(): PassesSettings {
val showDeepSpace = preferences.getBoolean(keyFilterShowDeepSpace, true)
val hoursAhead = preferences.getInt(keyFilterHoursAhead, 24)
val hoursBefore = preferences.getInt(keyFilterHoursBefore, 0).coerceIn(0, 240)
val minElevation = Double.fromBits(preferences.getLong(keyFilterMinElevation, 16.0.toRawBits()))
val aosStartMinute = preferences.getInt(keyFilterAosStartMinute, 0).coerceIn(0, 23 * 60 + 59)
val aosEndMinute = preferences.getInt(keyFilterAosEndMinute, 23 * 60 + 59).coerceIn(0, 23 * 60 + 59)
val invertAosTimeWindow = preferences.getBoolean(keyFilterAosInvert, false)
val selectedModesString = preferences.getString(keySelectedModes, null)
val selectedModes = selectedModesString?.split(separatorComma)?.sorted() ?: emptyList()
return PassesSettings(
showDeepSpace,
hoursAhead,
minElevation,
aosStartMinute,
aosEndMinute,
invertAosTimeWindow,
selectedModes,
hoursBefore
)
return PassesSettings(showDeepSpace, hoursAhead, minElevation, selectedModes)
}
//endregion
@@ -527,10 +282,6 @@ class SettingsRepo(
override val rcSettings: StateFlow<RCSettings> = _rcSettings
override fun updateRCSettings(settings: RCSettings) {
val clampedFreqOffsetHz = settings.frequencyOffsetHz.coerceIn(
Constants.FREQ_OFFSET_MIN_HZ,
Constants.FREQ_OFFSET_MAX_HZ
)
preferences.edit {
putBoolean(keyRotatorState, settings.rotatorState)
putString(keyRotatorAddress, settings.rotatorAddress)
@@ -540,7 +291,6 @@ class SettingsRepo(
putString(keyFrequencyAddress, settings.frequencyAddress)
putString(keyFrequencyPort, settings.frequencyPort)
putString(keyFrequencyFormat, settings.frequencyFormat)
putLong(keyFrequencyOffsetHz, clampedFreqOffsetHz)
putBoolean(keyBluetoothRotatorState, settings.bluetoothRotatorState)
putString(keyBluetoothRotatorFormat, settings.bluetoothRotatorFormat)
putString(keyBluetoothRotatorName, settings.bluetoothRotatorName)
@@ -549,7 +299,7 @@ class SettingsRepo(
putString(keyBluetoothFrequencyFormat, settings.bluetoothFrequencyFormat)
putString(keyBluetoothFrequencyAddress, settings.bluetoothFrequencyAddress)
}
_rcSettings.value = settings.copy(frequencyOffsetHz = clampedFreqOffsetHz)
_rcSettings.value = settings
}
private fun getRCSettings(): RCSettings = RCSettings(
@@ -561,8 +311,6 @@ class SettingsRepo(
frequencyAddress = preferences.getString(keyFrequencyAddress, null) ?: "127.0.0.1",
frequencyPort = preferences.getString(keyFrequencyPort, null) ?: "4532",
frequencyFormat = preferences.getString(keyFrequencyFormat, null) ?: $$"F $FREQ",
frequencyOffsetHz = preferences.getLong(keyFrequencyOffsetHz, 0L)
.coerceIn(Constants.FREQ_OFFSET_MIN_HZ, Constants.FREQ_OFFSET_MAX_HZ),
bluetoothRotatorState = preferences.getBoolean(keyBluetoothRotatorState, false),
bluetoothRotatorFormat = preferences.getString(keyBluetoothRotatorFormat, null) ?: $$"P $AZ $EL",
bluetoothRotatorName = preferences.getString(keyBluetoothRotatorName, null) ?: "Default",
@@ -582,20 +330,16 @@ class SettingsRepo(
val new = transform(current)
preferences.edit {
putBoolean(keyStateOfAutoUpdate, new.stateOfAutoUpdate)
putBoolean(keyStateOfAutoLotwSync, new.stateOfAutoLotwSync)
putBoolean(keyStateOfSensors, new.stateOfSensors)
putFloat(keyCompassOffsetDegrees, new.compassOffsetDegrees.coerceIn(-180f, 180f))
putBoolean(keyStateOfSweep, new.stateOfSweep)
putBoolean(keyStateOfUtc, new.stateOfUtc)
putBoolean(keyStateOfLightTheme, new.stateOfLightTheme)
putBoolean(keyStateOfNightMode, new.stateOfNightMode)
putBoolean(keyStateOfMapGrid, new.stateOfMapGrid)
putBoolean(keyStateOfMapFirstCall, new.stateOfMapFirstCall)
putBoolean(keyShouldSeeWarning, new.shouldSeeWarning)
putBoolean(keyShouldSeeWhatsNew, new.shouldSeeWhatsNew)
putString(keySstvMode, new.sstvMode)
putLong(keyLowElevation, new.lowElevation.toRawBits())
putLong(keyHighElevation, new.highElevation.toRawBits())
putString(keyMapSource, MapSource.normalize(new.mapSource))
putString(keyTiandituKey, new.tiandituKey)
}
new
}
@@ -603,20 +347,16 @@ class SettingsRepo(
private fun getOtherSettings(): OtherSettings = OtherSettings(
stateOfAutoUpdate = preferences.getBoolean(keyStateOfAutoUpdate, true),
stateOfAutoLotwSync = preferences.getBoolean(keyStateOfAutoLotwSync, true),
stateOfSensors = preferences.getBoolean(keyStateOfSensors, true),
compassOffsetDegrees = preferences.getFloat(keyCompassOffsetDegrees, 0f).coerceIn(-180f, 180f),
stateOfSweep = preferences.getBoolean(keyStateOfSweep, true),
stateOfUtc = preferences.getBoolean(keyStateOfUtc, false),
stateOfLightTheme = preferences.getBoolean(keyStateOfLightTheme, false),
stateOfNightMode = preferences.getBoolean(keyStateOfNightMode, false),
stateOfMapGrid = preferences.getBoolean(keyStateOfMapGrid, false),
stateOfMapFirstCall = preferences.getBoolean(keyStateOfMapFirstCall, false),
shouldSeeWarning = preferences.getBoolean(keyShouldSeeWarning, true),
shouldSeeWhatsNew = preferences.getBoolean(keyShouldSeeWhatsNew, true),
sstvMode = preferences.getString(keySstvMode, null) ?: "Auto",
lowElevation = Double.fromBits(preferences.getLong(keyLowElevation, 15.0.toRawBits())),
highElevation = Double.fromBits(preferences.getLong(keyHighElevation, 45.0.toRawBits()))
mapSource = MapSource.normalize(preferences.getString(keyMapSource, null) ?: MapSource.TIANDITU_VECTOR),
tiandituKey = preferences.getString(keyTiandituKey, null) ?: ""
)
//endregion
@@ -625,108 +365,21 @@ class SettingsRepo(
override val dataSourcesSettings: StateFlow<DataSourcesSettings> = _dataSourcesSettings
override fun updateDataSourcesSettings(settings: DataSourcesSettings) {
// Normalize the enabled lists so they are positionally aligned with the URL lists.
// Missing entries default to enabled (true), keeping the persisted "one flag per URL"
// invariant intact even when a default empty list is used to construct the model.
val normalized = settings.copy(
satelliteEnabled = alignFlags(settings.satelliteUrls, settings.satelliteEnabled),
transceiversEnabled = alignFlags(settings.transceiversUrls, settings.transceiversEnabled)
)
preferences.edit {
putString(keySatelliteUrls, normalized.satelliteUrls.joinToString(separatorUrl))
putString(keyTransceiversUrls, normalized.transceiversUrls.joinToString(separatorUrl))
putString(keySatelliteEnabled, normalized.satelliteEnabled.joinToString(separatorComma))
putString(keyTransceiversEnabled, normalized.transceiversEnabled.joinToString(separatorComma))
putBoolean(keySatnogsTleSourceMigration, true)
putBoolean(keyUseCustomTle, settings.useCustomTLE)
putBoolean(keyUseCustomTransceivers, settings.useCustomTransceivers)
putString(keyTleUrl, settings.tleUrl)
putString(keyTransceiversUrl, settings.transceiversUrl)
}
_dataSourcesSettings.value = normalized
_dataSourcesSettings.value = settings
}
private fun getDataSourcesSettings(): DataSourcesSettings = DataSourcesSettings(
satelliteUrls = getDataSourceUrls(
key = keySatelliteUrls,
defaultUrls = Sources.satelliteDataUrls.values.filter { it.isNotBlank() },
legacyEnabledKey = keyUseCustomTle,
legacyUrlKey = keyTleUrl
).migrateSatnogsTleSource(),
transceiversUrls = getDataSourceUrls(
key = keyTransceiversUrls,
defaultUrls = Sources.transceiversDataUrls.values.filter { it.isNotBlank() },
legacyEnabledKey = keyUseCustomTransceivers,
legacyUrlKey = keyTransceiversUrl
),
satelliteEnabled = readEnabledFlags(keySatelliteEnabled),
transceiversEnabled = readEnabledFlags(keyTransceiversEnabled)
useCustomTLE = preferences.getBoolean(keyUseCustomTle, false),
useCustomTransceivers = preferences.getBoolean(keyUseCustomTransceivers, false),
tleUrl = preferences.getString(keyTleUrl, "https://example.com/tle.txt") ?: "",
transceiversUrl = preferences.getString(keyTransceiversUrl, "https://example.com/radio.json") ?: ""
)
/** Read the persisted per-source enabled flags (empty when never stored). */
private fun readEnabledFlags(key: String): List<Boolean> {
return preferences.getString(key, null)
?.split(separatorComma)
?.mapNotNull { it.trim() }
?.filter { it == "true" || it == "false" }
?.map { it == "true" }
?: emptyList()
}
/** Keep the flags positionally aligned with the URL list, defaulting to enabled. */
private fun alignFlags(urls: List<String>, flags: List<Boolean>): List<Boolean> {
if (flags.size >= urls.size) return flags.take(urls.size)
return flags + List(urls.size - flags.size) { true }
}
private fun getDataSourceUrls(
key: String,
defaultUrls: List<String>,
legacyEnabledKey: String,
legacyUrlKey: String
): List<String> {
val stored = preferences.getString(key, null)
?.split(separatorUrl)
?.map { it.trim() }
?.filter { it.isNotBlank() }
if (stored != null) return stored
val legacyCustomUrl = preferences.getString(legacyUrlKey, null)?.trim().orEmpty()
return if (preferences.getBoolean(legacyEnabledKey, false) && legacyCustomUrl.isNotBlank()) {
(defaultUrls + legacyCustomUrl).distinct()
} else {
defaultUrls
}
}
private fun List<String>.migrateSatnogsTleSource(): List<String> {
if (preferences.getBoolean(keySatnogsTleSourceMigration, false)) return this
val satnogsTleUrl = Sources.satelliteDataUrls["SatNOGS"].orEmpty()
if (satnogsTleUrl.isBlank() || containsSourceUrl(satnogsTleUrl)) return this
val celestrakSatnogsIndex = indexOfFirst { isSameSourceUrl(it, legacyCelestrakSatnogsUrl) }
if (celestrakSatnogsIndex < 0) return this
val migrated = toMutableList().apply { add(celestrakSatnogsIndex + 1, satnogsTleUrl) }
preferences.edit {
putString(keySatelliteUrls, migrated.joinToString(separatorUrl))
putBoolean(keySatnogsTleSourceMigration, true)
}
return migrated
}
private fun List<String>.containsSourceUrl(url: String): Boolean = any { isSameSourceUrl(it, url) }
private fun isSameSourceUrl(first: String, second: String): Boolean =
normalizeSourceUrl(first).equals(normalizeSourceUrl(second), ignoreCase = true)
private fun normalizeSourceUrl(url: String): String {
val trimmed = url.trim()
return if (trimmed.startsWith("http", ignoreCase = true)) trimmed else "https://$trimmed"
}
//endregion
//region # Data sources status
private val _dataSourcesStatus = MutableStateFlow<Map<String, Int>>(emptyMap())
override val dataSourcesStatus: StateFlow<Map<String, Int>> = _dataSourcesStatus
override fun updateDataSourcesStatus(status: Map<String, Int>) {
_dataSourcesStatus.value = status
}
//endregion
//region # Radio control settings
@@ -737,7 +390,6 @@ class SettingsRepo(
private val keyTxRadioName = "txRadioName"
private val keyRxRadioName = "rxRadioName"
private val keyRadioBaudRate = "radioBaudRate"
private val keyRadioSplitMode = "radioSplitMode"
private val _radioControlSettings = MutableStateFlow(getRadioControlSettings())
override val radioControlSettings: StateFlow<RadioControlSettings> = _radioControlSettings
@@ -751,71 +403,18 @@ class SettingsRepo(
putString(keyTxRadioName, settings.txRadioName)
putString(keyRxRadioName, settings.rxRadioName)
putInt(keyRadioBaudRate, settings.baudRate)
putBoolean(keyRadioSplitMode, settings.splitMode)
}
_radioControlSettings.value = settings
}
private fun getRadioControlSettings(): RadioControlSettings = RadioControlSettings(
enabled = preferences.getBoolean(keyRadioControlEnabled, false),
radioModel = preferences.getString(keyRadioModel, null) ?: RadioControlSettings.MODEL_YAESU_FT817,
radioModel = preferences.getString(keyRadioModel, null) ?: "Yaesu FT-817/818",
txRadioAddress = preferences.getString(keyTxRadioAddress, null) ?: "",
rxRadioAddress = preferences.getString(keyRxRadioAddress, null) ?: "",
txRadioName = preferences.getString(keyTxRadioName, null) ?: "TX Radio",
rxRadioName = preferences.getString(keyRxRadioName, null) ?: "RX Radio",
baudRate = preferences.getInt(keyRadioBaudRate, 4800),
splitMode = preferences.getBoolean(keyRadioSplitMode, false)
baudRate = preferences.getInt(keyRadioBaudRate, 4800)
)
//endregion
//region # Per-satellite calculator offset settings
private val keySatelliteOffsets = "satelliteOffsets"
private val keyLegacySatelliteOffsetPrefix = "offset_khz_"
override fun getSatelliteOffset(catnum: Int): String {
val json = preferences.getString(keySatelliteOffsets, "{}") ?: "{}"
val stored = try {
JSONObject(json).optString(catnum.toString(), "")
} catch (_: Exception) {
""
}
if (stored.isNotEmpty()) return stored
// Lazy migration from the fork's old UI-layer implementation, which stored
// one SharedPreferences entry per satellite directly from TransceiversPage.
val legacyKey = "$keyLegacySatelliteOffsetPrefix$catnum"
val legacy = preferences.getString(legacyKey, "").orEmpty()
if (legacy.isNotEmpty()) {
setSatelliteOffset(catnum, legacy)
}
return legacy
}
override fun setSatelliteOffset(catnum: Int, offset: String) {
val json = preferences.getString(keySatelliteOffsets, "{}") ?: "{}"
val updated = try {
val obj = JSONObject(json)
if (offset.isEmpty()) obj.remove(catnum.toString()) else obj.put(catnum.toString(), offset)
obj.toString()
} catch (_: Exception) {
if (offset.isEmpty()) "{}" else """{"$catnum": "$offset"}"""
}
preferences.edit {
putString(keySatelliteOffsets, updated)
remove("$keyLegacySatelliteOffsetPrefix$catnum")
}
}
//endregion
//region # AMSAT status report settings
private val keyAmSatCallsign = "amSatCallsign"
override fun getAmSatCallsign(): String {
return preferences.getString(keyAmSatCallsign, "").orEmpty()
}
override fun setAmSatCallsign(callsign: String) {
preferences.edit { putString(keyAmSatCallsign, callsign.trim().uppercase(Locale.US)) }
}
//endregion
}
@@ -1,106 +0,0 @@
package com.rtbishop.look4sat.core.data.repository
import com.rtbishop.look4sat.core.domain.model.LatestRelease
import com.rtbishop.look4sat.core.domain.repository.IUpdateRepository
import com.rtbishop.look4sat.core.domain.source.IRemoteSource
import kotlinx.coroutines.Dispatchers
import kotlinx.coroutines.withContext
import java.io.File
class UpdateRepository(
private val remoteSource: IRemoteSource
) : IUpdateRepository {
override suspend fun getLatestRelease(): LatestRelease? = withContext(Dispatchers.IO) {
// Use the GitHub releases web page instead of the REST API endpoint:
// the API endpoint is rate-limited to 60 requests/hour per IP, which is
// quickly exhausted on shared egress IPs (e.g. VPN proxies), causing 403
// failures. The web endpoint redirects to the latest tag with no such limit.
// When GitHub is unreachable (common on mainland-China networks without a
// proxy), fall back to community GitHub accelerator mirrors that proxy the
// same page; each mirror resolves the identical tag and asset URLs.
for (baseUrl in LATEST_RELEASE_URLS) {
val result = remoteSource.getNetworkStream(baseUrl)
val stream = result.stream ?: continue
val parsed = try {
parseRelease(stream.bufferedReader().use { it.readText() }, baseUrl)
} catch (e: Exception) {
println("UpdateRepository parse failure: $e")
null
}
if (parsed != null) return@withContext parsed
}
null
}
override suspend fun downloadApk(url: String, dest: File): Boolean = withContext(Dispatchers.IO) {
if (url.isBlank()) return@withContext false
val result = remoteSource.getNetworkStream(url)
val stream = result.stream ?: return@withContext false
try {
dest.outputStream().use { out -> stream.use { it.copyTo(out) } }
true
} catch (e: Exception) {
println("UpdateRepository download failure: $e")
false
}
}
private fun parseRelease(html: String, sourceUrl: String): LatestRelease? {
// The redirect target is the latest release's tag page. Extract the tag
// from the og:url meta tag ("…/releases/tag/v4.4.6-ba7opf.8") — stable and
// unambiguous. The <title> also holds the release name, but that is free
// text and cannot be used to build the asset URL.
val ogUrl = Regex("<meta\\s+property=\"og:url\"\\s+content=\"([^\"]*)\"").find(html)
?.groupValues?.get(1) ?: return null
val tag = Regex("/releases/tag/(v[0-9][0-9A-Za-z.\\-]*)$").find(ogUrl)
?.groupValues?.get(1) ?: return null
val title = Regex("<title>(.*?)</title>", RegexOption.DOT_MATCHES_ALL)
.find(html)?.groupValues?.get(1)?.trim()
?.substringBefore("·")?.removePrefix("Release")?.trim() ?: tag
// Release notes live in the page's markdown-body section (first occurrence
// is the release description). Strip HTML tags for plain-text display.
val raw = Regex("<div[^>]*class=\"[^\"]*markdown-body[^\"]*\"[^>]*>(.*?)</div>", RegexOption.DOT_MATCHES_ALL)
.find(html)?.groupValues?.get(1) ?: ""
val body = raw.replace(Regex("<[^>]+>"), "")
.replace("&lt;", "<").replace("&gt;", ">").replace("&amp;", "&")
.replace("&quot;", "\"").replace("&#39;", "'")
.trim()
// The release APK asset naming: Look4Sat-<tag without leading v>.apk
// (since v4.4.6-ba7opf.9.9 the releases are uploaded with the bare
// versioned filename, no "-release" suffix). When the page was fetched
// through an accelerator mirror (https://<mirror>/https://github.com/...),
// download through the same mirror — raw github.com is unreachable on the
// networks that needed the mirror in the first place.
val mirrorPrefix = sourceUrl.substringBefore("https://github.com")
val apkName = "Look4Sat-${tag.removePrefix("v")}.apk"
val apkUrl = if (mirrorPrefix.isEmpty()) {
"$DOWNLOAD_BASE_URL/$tag/$apkName"
} else {
"${mirrorPrefix}https://github.com/atsunatsu/Look4Sat/releases/download/$tag/$apkName"
}
return LatestRelease(
versionTag = tag,
title = title,
body = body,
apkUrl = apkUrl
)
}
private companion object {
// Web pages are used instead of api.github.com to avoid the 60 req/hour
// anonymous rate limit (see getLatestRelease above). The GitHub URL is
// tried first; if it is unreachable (no proxy on mainland networks) the
// accelerator mirrors are tried in order. Download URLs always point at
// the mirrors too — raw github.com release downloads are equally blocked
// without a proxy, so a mirror-resolved tag must be downloaded via the
// same mirror.
val LATEST_RELEASE_URLS = listOf(
"https://github.com/atsunatsu/Look4Sat/releases/latest",
"https://ghfast.top/https://github.com/atsunatsu/Look4Sat/releases/latest",
"https://gh.llkk.cc/https://github.com/atsunatsu/Look4Sat/releases/latest",
"https://github.moeyy.xyz/https://github.com/atsunatsu/Look4Sat/releases/latest"
)
const val DOWNLOAD_BASE_URL = "https://github.com/atsunatsu/Look4Sat/releases/download"
}
}
@@ -1,97 +0,0 @@
/*
* Look4Sat. Amateur radio satellite tracker and pass predictor.
* Copyright (C) 2019-2026 Arty Bishop and contributors.
*
* This program is free software: you can redistribute it and/or modify
* it under the terms of the GNU General Public License as published by
* the Free Software Foundation, either version 3 of the License, or
* (at your option) any later version.
*
* This program is distributed in the hope that it will be useful,
* but WITHOUT ANY WARRANTY; without even the implied warranty of
* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
* GNU General Public License for more details.
*
* You should have received a copy of the GNU General Public License
* along with this program. If not, see <https://www.gnu.org/licenses/>.
*/
package com.rtbishop.look4sat.core.data.repository
import com.rtbishop.look4sat.core.domain.repository.IWavelogRepository
import kotlinx.coroutines.Dispatchers
import kotlinx.coroutines.withContext
import org.json.JSONArray
import org.json.JSONObject
/**
* Fetches the list of worked gridsquares from a self-hosted Wavelog instance.
*
* Uses the Wavelog v1 API endpoint (verified against Wavelog 3.0.2):
* POST {base}/index.php/api/logbook_get_worked_grids
* Body: {"key": "<api key>", "logbook_id": "<logbook id>"}
* Response 201: JSON array of 4-char gridsquares, e.g. ["JN47","JO30"]
* (see Wavelog Api.php logbook_get_worked_grids / Api_model::get_grids_worked_in_logbook)
*
* The token field carries "<api_key>:<logbook_id>" so one credential line
* configures both values (the dialog explains this to the user).
*/
class WavelogRepository : IWavelogRepository {
override suspend fun fetchWorkedGrids(url: String, token: String): Set<String>? = withContext(Dispatchers.IO) {
val parts = token.trim().split(":")
val apiKey = parts.getOrNull(0)?.trim().orEmpty()
val logbookId = parts.getOrNull(1)?.trim().orEmpty()
if (url.isBlank() || apiKey.isBlank() || logbookId.isBlank()) return@withContext null
val base = url.trim().trimEnd('/')
val requestUrl = "$base/index.php/api/logbook_get_worked_grids"
try {
val connection = java.net.URL(requestUrl).openConnection() as java.net.HttpURLConnection
connection.connectTimeout = 10_000
connection.readTimeout = 15_000
connection.requestMethod = "POST"
connection.doOutput = true
connection.setRequestProperty("Content-Type", "application/json")
val body = JSONObject().apply {
put("key", apiKey)
put("logbook_id", logbookId)
}.toString().toByteArray()
connection.outputStream.use { it.write(body) }
val code = connection.responseCode
if (code !in 200..299) {
connection.disconnect()
return@withContext null
}
val response = connection.inputStream.bufferedReader().use { it.readText() }
connection.disconnect()
parseWorkedGrids(response)
} catch (e: Exception) {
println("WavelogRepository fetch failure: $e")
null
}
}
internal fun parseWorkedGrids(body: String): Set<String>? {
return try {
val array = when {
body.trimStart().startsWith("[") -> JSONArray(body)
else -> {
// Tolerate {"grids": [...]} wrappers too
JSONObject(body).optJSONArray("grids") ?: return null
}
}
val result = mutableSetOf<String>()
for (i in 0 until array.length()) {
val grid = array.optString(i, "").trim().uppercase()
// Keep only well-formed 4-character Maidenhead squares (e.g. OL62)
if (grid.length == 4 && grid[0] in 'A'..'R' && grid[1] in 'A'..'R'
&& grid[2] in '0'..'9' && grid[3] in '0'..'9'
) {
result.add(grid)
}
}
result
} catch (_: Exception) {
null
}
}
}
@@ -51,12 +51,12 @@ class LocalSource(private val look4SatDao: Look4SatDao) : ILocalSource {
private fun FrameworkEntry.toDomain() = OrbitalData(
this.name, this.epoch, this.meanmo, this.eccn, this.incl,
this.raan, this.argper, this.meanan, this.catnum, this.bstar, this.ndot
this.raan, this.argper, this.meanan, this.catnum, this.bstar
)
private fun OrbitalData.toEntity() = FrameworkEntry(
this.name, this.epoch, this.meanmo, this.eccn, this.incl,
this.raan, this.argper, this.meanan, this.catnum, this.bstar, this.ndot
this.raan, this.argper, this.meanan, this.catnum, this.bstar
)
private fun List<OrbitalData>.toEntity() = this.map { item -> item.toEntity() }
@@ -73,22 +73,20 @@ class LocalSource(private val look4SatDao: Look4SatDao) : ILocalSource {
return look4SatDao.getRadiosWithId(id).toDomainRadios()
}
override suspend fun insertRadios(radios: List<SatRadio>, isCustom: Boolean) {
look4SatDao.insertRadios(radios.map { it.copy(isCustom = isCustom) }.toFrameworkRadios())
override suspend fun insertRadios(radios: List<SatRadio>) {
look4SatDao.insertRadios(radios.toFrameworkRadios())
}
override suspend fun deleteManagedRadios() = look4SatDao.deleteManagedRadios()
override suspend fun deleteRadios() = look4SatDao.deleteRadios()
private fun DomainRadio.toFramework() = FrameworkRadio(
this.uuid, this.info, this.isAlive, this.downlinkLow, this.downlinkHigh, this.downlinkMode,
this.uplinkLow, this.uplinkHigh, this.uplinkMode, this.isInverted, this.catnum, this.isCustom
this.uplinkLow, this.uplinkHigh, this.uplinkMode, this.isInverted, this.catnum
)
private fun FrameworkRadio.toDomain() = DomainRadio(
this.uuid, this.info, this.isAlive, this.downlinkLow, this.downlinkHigh, this.downlinkMode,
this.uplinkLow, this.uplinkHigh, this.uplinkMode, this.isInverted, this.catnum, this.isCustom
this.uplinkLow, this.uplinkHigh, this.uplinkMode, this.isInverted, this.catnum
)
private fun List<DomainRadio>.toFrameworkRadios() = this.map { radio -> radio.toFramework() }
@@ -20,13 +20,11 @@ package com.rtbishop.look4sat.core.data.source
import android.content.ContentResolver
import androidx.core.net.toUri
import com.rtbishop.look4sat.core.domain.source.IRemoteSource
import com.rtbishop.look4sat.core.domain.source.NetworkResult
import kotlinx.coroutines.CoroutineDispatcher
import kotlinx.coroutines.withContext
import okhttp3.MediaType.Companion.toMediaType
import okhttp3.OkHttpClient
import okhttp3.Request
import okhttp3.RequestBody.Companion.toRequestBody
import java.io.ByteArrayInputStream
import java.io.InputStream
class RemoteSource(
@@ -45,74 +43,15 @@ class RemoteSource(
}
}
override suspend fun getNetworkStream(url: String): NetworkResult = withContext(dispatcher) {
override suspend fun getNetworkStream(url: String): InputStream? = withContext(dispatcher) {
try {
val networkRequest = Request.Builder().url(url).build()
val response = httpClient.newCall(networkRequest).execute()
if (!response.isSuccessful) {
val code = response.code
response.close()
return@withContext NetworkResult(code, null)
httpClient.newCall(networkRequest).execute().use { response ->
if (!response.isSuccessful) return@withContext null
ByteArrayInputStream(response.body.bytes())
}
// Return the body stream directly as the caller is responsible for closing it.
// Closing the stream returns the connection to OkHttp's pool.
val body = response.body
if (body == null) {
response.close()
return@withContext NetworkResult(response.code, null)
}
NetworkResult(response.code, body.byteStream().buffered())
} catch (exception: Exception) {
println("RemoteSource network stream exception: $exception")
NetworkResult(NetworkResult.CONNECTION_ERROR, null)
}
}
override suspend fun getAmSatCatalog(): String? = withContext(dispatcher) {
try {
val request = Request.Builder()
.url("https://www.amsat.org/status/api/v1/catalog.php")
.header("User-Agent", "Look4Sat")
.build()
httpClient.newCall(request).execute().use { response ->
if (!response.isSuccessful) return@use null
response.body.string()
}
} catch (exception: Exception) {
println("RemoteSource getAmSatCatalog exception: $exception")
null
}
}
override suspend fun getAmSatReports(hours: Int, limit: Int): String? = withContext(dispatcher) {
try {
val request = Request.Builder()
.url("https://www.amsat.org/status/api/v1/reports.php?hours=$hours&limit=$limit")
.header("User-Agent", "Look4Sat")
.build()
httpClient.newCall(request).execute().use { response ->
if (!response.isSuccessful) return@use null
response.body.string()
}
} catch (exception: Exception) {
println("RemoteSource getAmSatReports exception: $exception")
null
}
}
override suspend fun submitAmSatReport(payloadJson: String): Pair<Int, String>? = withContext(dispatcher) {
try {
val body = payloadJson.toRequestBody("application/json; charset=utf-8".toMediaType())
val request = Request.Builder()
.url("https://www.amsat.org/status/api/v1/reports.php")
.header("User-Agent", "Look4Sat")
.post(body)
.build()
httpClient.newCall(request).execute().use { response ->
response.code to response.body.string()
}
} catch (exception: Exception) {
println("RemoteSource submitAmSatReport exception: $exception")
null
}
}
@@ -1,29 +1,30 @@
package com.rtbishop.look4sat.core.data.framework
package com.rtbishop.look4sat.core.data
import org.junit.Assert.assertArrayEquals
import org.junit.Assert.assertEquals
import org.junit.Assert.assertNotNull
import org.junit.Assert.assertNull
import com.rtbishop.look4sat.core.data.framework.Ft817CatProtocol
import org.junit.Test
import kotlin.test.assertContentEquals
import kotlin.test.assertEquals
import kotlin.test.assertNotNull
import kotlin.test.assertNull
class Ft817CatProtocolTest {
@Test
fun encodeFrequencyBcd_145500000() {
val bcd = Ft817CatProtocol.encodeFrequencyBcd(145500000L)
assertArrayEquals(byteArrayOf(0x14, 0x55, 0x00, 0x00), bcd)
assertContentEquals(byteArrayOf(0x14, 0x55, 0x00, 0x00), bcd)
}
@Test
fun encodeFrequencyBcd_435100000() {
val bcd = Ft817CatProtocol.encodeFrequencyBcd(435100000L)
assertArrayEquals(byteArrayOf(0x43, 0x51, 0x00, 0x00), bcd)
assertContentEquals(byteArrayOf(0x43, 0x51, 0x00, 0x00), bcd)
}
@Test
fun encodeFrequencyBcd_7074000() {
val bcd = Ft817CatProtocol.encodeFrequencyBcd(7074000L)
assertArrayEquals(byteArrayOf(0x00, 0x70, 0x74, 0x00), bcd)
assertContentEquals(byteArrayOf(0x00, 0x70, 0x74, 0x00), bcd)
}
@Test
@@ -41,21 +42,21 @@ class Ft817CatProtocolTest {
val cmd = Ft817CatProtocol.buildSetFreqCommand(145500000L)
assertEquals(5, cmd.size)
assertEquals(0x01.toByte(), cmd[4])
assertArrayEquals(byteArrayOf(0x14, 0x55, 0x00, 0x00, 0x01), cmd)
assertContentEquals(byteArrayOf(0x14, 0x55, 0x00, 0x00, 0x01), cmd)
}
@Test
fun buildSetModeCommand_usb() {
val cmd = Ft817CatProtocol.buildSetModeCommand("USB")
assertNotNull(cmd)
assertArrayEquals(byteArrayOf(0x01, 0x00, 0x00, 0x00, 0x07), cmd)
assertContentEquals(byteArrayOf(0x01, 0x00, 0x00, 0x00, 0x07), cmd)
}
@Test
fun buildSetModeCommand_fm() {
val cmd = Ft817CatProtocol.buildSetModeCommand("FM")
assertNotNull(cmd)
assertArrayEquals(byteArrayOf(0x08, 0x00, 0x00, 0x00, 0x07), cmd)
assertContentEquals(byteArrayOf(0x08, 0x00, 0x00, 0x00, 0x07), cmd)
}
@Test
@@ -66,19 +67,19 @@ class Ft817CatProtocolTest {
@Test
fun encodeCtcssTone_67_0() {
val bcd = Ft817CatProtocol.encodeCtcssToneBcd(67.0)
assertArrayEquals(byteArrayOf(0x06, 0x70), bcd)
assertContentEquals(byteArrayOf(0x06, 0x70), bcd)
}
@Test
fun encodeCtcssTone_74_4() {
val bcd = Ft817CatProtocol.encodeCtcssToneBcd(74.4)
assertArrayEquals(byteArrayOf(0x07, 0x44), bcd)
assertContentEquals(byteArrayOf(0x07, 0x44), bcd)
}
@Test
fun encodeCtcssTone_141_3() {
val bcd = Ft817CatProtocol.encodeCtcssToneBcd(141.3)
assertArrayEquals(byteArrayOf(0x14, 0x13), bcd)
assertContentEquals(byteArrayOf(0x14, 0x13), bcd)
}
@Test
@@ -86,13 +87,13 @@ class Ft817CatProtocolTest {
val cmd = Ft817CatProtocol.buildSetCtcssToneCommand(67.0)
assertEquals(5, cmd.size)
assertEquals(0x0B.toByte(), cmd[4])
assertArrayEquals(byteArrayOf(0x06, 0x70, 0x00, 0x00, 0x0B), cmd)
assertContentEquals(byteArrayOf(0x06, 0x70, 0x00, 0x00, 0x0B), cmd)
}
@Test
fun buildCtcssModeCommand_enable() {
val cmd = Ft817CatProtocol.buildCtcssModeCommand(true)
assertArrayEquals(byteArrayOf(0x2A, 0x00, 0x00, 0x00, 0x0A), cmd)
assertContentEquals(byteArrayOf(0x2A, 0x00, 0x00, 0x00, 0x0A), cmd)
}
@Test
@@ -107,7 +108,6 @@ class Ft817CatProtocolTest {
val response = byteArrayOf(0x14, 0x55, 0x00, 0x00, 0x01)
val result = Ft817CatProtocol.parseReadResponse(response)
assertNotNull(result)
result ?: return
assertEquals(145500000L, result.first)
assertEquals("USB", result.second)
}
@@ -117,7 +117,6 @@ class Ft817CatProtocolTest {
val response = byteArrayOf(0x14, 0x60, 0x00, 0x00, 0x08)
val result = Ft817CatProtocol.parseReadResponse(response)
assertNotNull(result)
result ?: return
assertEquals(146000000L, result.first)
assertEquals("FM", result.second)
}
@@ -136,7 +135,7 @@ class Ft817CatProtocolTest {
@Test
fun buildPttCommands() {
val on = Ft817CatProtocol.buildPttOnCommand()
assertArrayEquals(byteArrayOf(0x00, 0x00, 0x00, 0x00, 0x08), on)
assertContentEquals(byteArrayOf(0x00, 0x00, 0x00, 0x00, 0x08), on)
val off = Ft817CatProtocol.buildPttOffCommand()
assertEquals(0x88.toByte(), off[4])
@@ -145,6 +144,6 @@ class Ft817CatProtocolTest {
@Test
fun buildReadCommand() {
val cmd = Ft817CatProtocol.buildReadFreqModeCommand()
assertArrayEquals(byteArrayOf(0x00, 0x00, 0x00, 0x00, 0x03), cmd)
assertContentEquals(byteArrayOf(0x00, 0x00, 0x00, 0x00, 0x03), cmd)
}
}
@@ -1,171 +0,0 @@
package com.rtbishop.look4sat.core.data.repository
import com.rtbishop.look4sat.core.domain.model.SatStatus
import com.rtbishop.look4sat.core.domain.model.SatStatusPage
import com.rtbishop.look4sat.core.domain.source.IRemoteSource
import com.rtbishop.look4sat.core.domain.source.NetworkResult
import kotlinx.coroutines.async
import kotlinx.coroutines.delay
import kotlinx.coroutines.test.runTest
import org.junit.Assert.assertEquals
import org.junit.Assert.assertNull
import org.junit.Assert.assertSame
import org.junit.Test
import java.io.InputStream
import java.text.SimpleDateFormat
import java.util.Date
import java.util.Locale
import java.util.TimeZone
class AmSatRepositoryTest {
@Test
fun fetchStatusReturnsSeededCacheUntilCacheIsCleared() = runTest {
val remoteSource = FakeAmSatRemoteSource()
val repository = AmSatRepository(remoteSource)
val cachedPage = SatStatusPage(
fetchedAtUtcMs = 123L,
statuses = listOf(SatStatus(name = "AO-7", days = emptyList())),
reports = emptyMap()
)
repository.seedStatusCache(cachedPage)
val firstPage = repository.fetchStatus()
val secondPage = repository.fetchStatus()
assertSame(cachedPage, firstPage)
assertSame(cachedPage, secondPage)
assertSame(cachedPage, repository.getCachedStatus())
assertEquals(0, remoteSource.catalogRequests)
assertEquals(0, remoteSource.reportRequests)
repository.clearStatusCache()
assertNull(repository.getCachedStatus())
repository.fetchStatus()
assertEquals(1, remoteSource.catalogRequests)
assertEquals(1, remoteSource.reportRequests)
}
@Test
fun forceRefreshBypassesCachedPage() = runTest {
val remoteSource = FakeAmSatRemoteSource()
val repository = AmSatRepository(remoteSource)
repository.seedStatusCache(
SatStatusPage(
fetchedAtUtcMs = 123L,
statuses = listOf(SatStatus(name = "AO-7", days = emptyList())),
reports = emptyMap()
)
)
repository.fetchStatus(forceRefresh = true)
assertEquals(1, remoteSource.catalogRequests)
assertEquals(1, remoteSource.reportRequests)
}
@Test
fun fetchStatusSharesStartupPrefetchRequest() = runTest {
val remoteSource = FakeAmSatRemoteSource(responseDelayMillis = 50)
val repository = AmSatRepository(remoteSource)
val prefetch = async { repository.prefetchStatus() }
val pageFetch = async { repository.fetchStatus() }
prefetch.await()
val page = pageFetch.await()
assertSame(page, repository.getCachedStatus())
assertEquals(1, remoteSource.catalogRequests)
assertEquals(1, remoteSource.reportRequests)
}
@Test
fun buildStatusesStreakCountsConsecutiveSameStatusReportsPerDay() = runTest {
val nowSec = System.currentTimeMillis() / 1000
val remoteSource = FakeAmSatRemoteSource(
reportsJson = amSatReportsJson(
// 当天(day 0)最新槽(slot 0)混合状态:最新 Heard、次新 Heard、再旧 Not Heard → 连续=2
report("r1", "AO-7", "Heard", nowSec - 3600),
report("r2", "AO-7", "Heard", nowSec - 5400),
report("r3", "AO-7", "Not Heard", nowSec - 7000),
// 空时段(无报告)不打断:slot 8 的 Heard 更旧,不应计入(被 r3 打断)
report("r4", "AO-7", "Heard", nowSec - 63000),
// 前一天(day 1):最新 Heard,更旧的 Not Heard → 连续=1,且不跨天合并
report("r5", "AO-7", "Heard", nowSec - 90000),
report("r6", "AO-7", "Not Heard", nowSec - 100000)
// day 2 无报告 → 0
)
)
val repository = AmSatRepository(remoteSource)
val page = repository.fetchStatus()
val status = page?.statuses?.single()
assertEquals("AO-7", status?.name)
assertEquals(3, status?.days?.size)
assertEquals(2, status?.days?.get(0)?.streakCount)
assertEquals(1, status?.days?.get(1)?.streakCount)
assertEquals(0, status?.days?.get(2)?.streakCount)
}
@Test
fun buildStatusesStreakCountsAllReportsWhenStatusNeverChanges() = runTest {
val nowSec = System.currentTimeMillis() / 1000
val remoteSource = FakeAmSatRemoteSource(
reportsJson = amSatReportsJson(
report("r1", "AO-7", "Heard", nowSec - 1800),
report("r2", "AO-7", "Heard", nowSec - 3600),
report("r3", "AO-7", "Heard", nowSec - 5400),
report("r4", "AO-7", "Heard", nowSec - 30000)
)
)
val repository = AmSatRepository(remoteSource)
val page = repository.fetchStatus()
assertEquals(4, page?.statuses?.single()?.days?.get(0)?.streakCount)
}
}
private fun AmSatRepository.seedStatusCache(page: SatStatusPage) {
val cacheField = AmSatRepository::class.java.getDeclaredField("statusCache")
cacheField.isAccessible = true
cacheField.set(this, page)
}
private class FakeAmSatRemoteSource(
private val responseDelayMillis: Long = 0L,
private val reportsJson: String = """{"data":[]}"""
) : IRemoteSource {
var catalogRequests = 0
var reportRequests = 0
override suspend fun getFileStream(uri: String): InputStream? = null
override suspend fun getNetworkStream(url: String): NetworkResult = NetworkResult(404, null)
override suspend fun getAmSatCatalog(): String? {
if (responseDelayMillis > 0L) delay(responseDelayMillis)
catalogRequests += 1
return """{"data":[{"name":"AO-7"}]}"""
}
override suspend fun getAmSatReports(hours: Int, limit: Int): String? {
if (responseDelayMillis > 0L) delay(responseDelayMillis)
reportRequests += 1
return reportsJson
}
override suspend fun submitAmSatReport(payloadJson: String): Pair<Int, String>? = null
}
private fun amSatReportsJson(vararg reports: String): String =
"""{"data":[${reports.joinToString(",")}]}"""
private fun report(id: String, name: String, status: String, epochSec: Long): String =
"""{"id":"$id","name":"$name","callsign":"BA7OPF","report":"$status","grid_square":"OL62","reported_time":"${isoUtc(epochSec)}"}"""
private fun isoUtc(epochSec: Long): String =
SimpleDateFormat("yyyy-MM-dd'T'HH:mm:ss'Z'", Locale.US).apply {
timeZone = TimeZone.getTimeZone("UTC")
}.format(Date(epochSec * 1000))
@@ -1,326 +0,0 @@
/*
* Look4Sat. Amateur radio satellite tracker and pass predictor.
* Copyright (C) 2019-2026 Arty Bishop and contributors.
*
* This program is free software: you can redistribute it and/or modify
* it under the terms of the GNU General Public License as published by
* the Free Software Foundation, either version 3 of the License, or
* (at your option) any later version.
*
* This program is distributed in the hope that it will be useful,
* but WITHOUT ANY WARRANTY; without even the implied warranty of
* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
* GNU General Public License for more details.
*
* You should have received a copy of the GNU General Public License
* along with this program. If not, see <https://www.gnu.org/licenses/>.
*/
package com.rtbishop.look4sat.core.data.repository
import com.rtbishop.look4sat.core.domain.model.DataSourcesSettings
import com.rtbishop.look4sat.core.domain.model.DatabaseState
import com.rtbishop.look4sat.core.domain.model.GridQso
import com.rtbishop.look4sat.core.domain.model.OtherSettings
import com.rtbishop.look4sat.core.domain.model.PassesSettings
import com.rtbishop.look4sat.core.domain.model.RCSettings
import com.rtbishop.look4sat.core.domain.model.RadioControlSettings
import com.rtbishop.look4sat.core.domain.model.SatItem
import com.rtbishop.look4sat.core.domain.model.SatRadio
import com.rtbishop.look4sat.core.domain.predict.GeoPos
import com.rtbishop.look4sat.core.domain.predict.OrbitalData
import com.rtbishop.look4sat.core.domain.predict.OrbitalObject
import com.rtbishop.look4sat.core.domain.repository.ISettingsRepo
import com.rtbishop.look4sat.core.domain.source.ILocalSource
import com.rtbishop.look4sat.core.domain.source.IRemoteSource
import com.rtbishop.look4sat.core.domain.source.NetworkResult
import com.rtbishop.look4sat.core.domain.source.Sources
import com.rtbishop.look4sat.core.domain.utility.DataParser
import kotlinx.coroutines.ExperimentalCoroutinesApi
import kotlinx.coroutines.flow.MutableStateFlow
import kotlinx.coroutines.flow.StateFlow
import kotlinx.coroutines.test.StandardTestDispatcher
import kotlinx.coroutines.test.runTest
import org.junit.Assert.assertEquals
import org.junit.Assert.assertTrue
import org.junit.Test
import java.io.InputStream
@OptIn(ExperimentalCoroutinesApi::class)
class DatabaseRepoTest {
private val dispatcher = StandardTestDispatcher()
private val dataParser = DataParser(dispatcher)
@Test
fun `manual satellite import parses csv stream from content uri`() = runTest(dispatcher) {
val uri = "content://look4sat/import/satellites"
val localSource = FakeLocalSource()
val remoteSource = FakeRemoteSource().apply {
fileStreams[uri] = { validCsvStream() }
}
val settingsRepo = FakeSettingsRepo()
val repository = DatabaseRepo(dispatcher, dataParser, localSource, remoteSource, settingsRepo)
repository.updateTLEFromFile(uri)
assertEquals(1, localSource.insertedEntries.size)
assertEquals(25544, localSource.insertedEntries.first().catnum)
assertEquals(listOf(25544), settingsRepo.satelliteTypeIdsByType["Other"])
assertTrue(settingsRepo.databaseState.value.numberOfSatellites > 0)
}
@Test
fun `manual satellite import keeps tle support`() = runTest(dispatcher) {
val uri = "content://look4sat/import/legacy"
val localSource = FakeLocalSource()
val remoteSource = FakeRemoteSource().apply {
fileStreams[uri] = { validTleStream() }
}
val settingsRepo = FakeSettingsRepo()
val repository = DatabaseRepo(dispatcher, dataParser, localSource, remoteSource, settingsRepo)
repository.updateTLEFromFile(uri)
assertEquals(1, localSource.insertedEntries.size)
assertEquals(25544, localSource.insertedEntries.first().catnum)
}
@Test
fun `custom data source imports omm csv from web`() = runTest(dispatcher) {
val customCsvUrl = "https://example.com/custom-omm.csv"
val localSource = FakeLocalSource()
val remoteSource = FakeRemoteSource().apply {
networkStreams[customCsvUrl] = { validCsvStream() }
}
val settingsRepo = FakeSettingsRepo(
dataSources = DataSourcesSettings(
satelliteUrls = listOf(customCsvUrl),
transceiversUrls = emptyList()
)
)
val repository = DatabaseRepo(dispatcher, dataParser, localSource, remoteSource, settingsRepo)
repository.updateFromRemote()
assertTrue(localSource.insertedEntries.any { it.catnum == 25544 })
assertEquals(listOf(25544), settingsRepo.satelliteTypeIdsByType["Other"])
}
@Test
fun `remote update imports satellites from real SatNOGS TLE source`() = runTest(dispatcher) {
val satnogsUrl = Sources.satelliteDataUrls.getValue("SatNOGS")
val localSource = FakeLocalSource()
val remoteSource = FakeRemoteSource().apply {
networkStreams[satnogsUrl] = { jamxTleStream() }
}
val settingsRepo = FakeSettingsRepo(
dataSources = DataSourcesSettings(
satelliteUrls = listOf(satnogsUrl),
transceiversUrls = emptyList()
)
)
val repository = DatabaseRepo(dispatcher, dataParser, localSource, remoteSource, settingsRepo)
repository.updateFromRemote()
assertTrue(localSource.insertedEntries.any { it.name == "JAMX-0825b" && it.catnum == 98248 })
assertEquals(listOf(98248), settingsRepo.satelliteTypeIdsByType["SatNOGS"])
}
private fun validCsvStream(): InputStream = """
OBJECT_NAME,OBJECT_ID,EPOCH,MEAN_MOTION,ECCENTRICITY,INCLINATION,RA_OF_ASC_NODE,ARG_OF_PERICENTER,MEAN_ANOMALY,EPHEMERIS_TYPE,CLASSIFICATION_TYPE,NORAD_CAT_ID,ELEMENT_SET_NO,REV_AT_EPOCH,BSTAR,MEAN_MOTION_DOT,MEAN_MOTION_DDOT
ISS (ZARYA),1998-067A,2021-11-16T12:28:09.322176,15.48582035,.0004694,51.6447,309.4881,203.6966,299.8876,0,U,25544,999,31220,.31985E-4,.1288E-4,0
""".trimIndent().byteInputStream()
private fun validTleStream(): InputStream = """
ISS (ZARYA)
1 25544U 98067A 21320.51955234 .00001288 00000+0 31985-4 0 9990
2 25544 51.6447 309.4881 0004694 203.6966 299.8876 15.48582035312205
""".trimIndent().byteInputStream()
private fun jamxTleStream(): InputStream = """
JAMX-0825b
1 98248U 26237.16675926 .00015724 00000-0 97477-3 0 00013
2 98248 097.5373 310.9694 0011309 278.1232 340.7230 15.09766181000012
""".trimIndent().byteInputStream()
}
private class FakeRemoteSource : IRemoteSource {
val fileStreams: MutableMap<String, () -> InputStream> = mutableMapOf()
val networkStreams: MutableMap<String, () -> InputStream> = mutableMapOf()
override suspend fun getFileStream(uri: String): InputStream? = fileStreams[uri]?.invoke()
override suspend fun getNetworkStream(url: String): NetworkResult =
networkStreams[url]?.let { NetworkResult(200, it()) } ?: NetworkResult(404, null)
override suspend fun getAmSatCatalog(): String? = null
override suspend fun getAmSatReports(hours: Int, limit: Int): String? = null
override suspend fun submitAmSatReport(payloadJson: String): Pair<Int, String>? = null
}
private class FakeLocalSource : ILocalSource {
val insertedEntries = mutableListOf<OrbitalData>()
private val insertedRadios = mutableListOf<SatRadio>()
override suspend fun getEntriesTotal(): Int = insertedEntries.size
override suspend fun getEntriesList(): List<SatItem> = emptyList()
override suspend fun getEntriesWithIds(ids: List<Int>): List<OrbitalObject> = emptyList()
override suspend fun insertEntries(entries: List<OrbitalData>) {
insertedEntries += entries
}
override suspend fun deleteEntries() {
insertedEntries.clear()
}
override suspend fun getIdsWithModes(modes: List<String>): List<Int> = emptyList()
override suspend fun getRadiosTotal(): Int = insertedRadios.size
override suspend fun getRadiosWithId(id: Int): List<SatRadio> = emptyList()
override suspend fun insertRadios(radios: List<SatRadio>, isCustom: Boolean) {
insertedRadios += radios.map { it.copy(isCustom = isCustom) }
}
override suspend fun deleteManagedRadios() {
insertedRadios.removeAll { !it.isCustom }
}
override suspend fun deleteRadios() {
insertedRadios.clear()
}
}
private class FakeSettingsRepo(dataSources: DataSourcesSettings = defaultDataSourcesSettings()) : ISettingsRepo {
override val appVersionName: String = "test"
override val selectedIds: StateFlow<List<Int>> = MutableStateFlow(emptyList())
override val selectedTypes: StateFlow<List<String>> = MutableStateFlow(emptyList())
override val passesSettings: StateFlow<PassesSettings> = MutableStateFlow(
PassesSettings(hoursAhead = 24, minElevation = 0.0, selectedModes = emptyList())
)
override val stationPosition: StateFlow<GeoPos> = MutableStateFlow(GeoPos(0.0, 0.0))
override val databaseState: MutableStateFlow<DatabaseState> = MutableStateFlow(DatabaseState(0, 0, 0L))
override val rcSettings: StateFlow<RCSettings> = MutableStateFlow(
RCSettings(false, "", "", "", false, "", "", "", 0L, false, "", "", "", false, "", "")
)
override val otherSettings: StateFlow<OtherSettings> = MutableStateFlow(
OtherSettings(
false, false, false, false, false, false, false,
shouldSeeWarning = false, shouldSeeWhatsNew = false
)
)
override val dataSourcesSettings: MutableStateFlow<DataSourcesSettings> = MutableStateFlow(dataSources)
override val radioControlSettings: StateFlow<RadioControlSettings> = MutableStateFlow(
RadioControlSettings(false, RadioControlSettings.MODEL_YAESU_FT817, "", "", "", "", 9600)
)
val satelliteTypeIdsByType = mutableMapOf<String, List<Int>>()
override fun setSelectedIds(ids: List<Int>) = Unit
override fun setSelectedTypes(types: List<String>) = Unit
override fun setPassesSettings(settings: PassesSettings) = Unit
override fun setStationPosition(latitude: Double, longitude: Double, altitude: Double): Boolean = true
override fun setStationPosition(): Boolean = true
override fun setStationPosition(locator: String): Boolean = true
override fun getSatelliteTypesIds(types: List<String>): List<Int> = emptyList()
override fun setSatelliteTypeIds(type: String, ids: List<Int>) {
satelliteTypeIdsByType[type] = ids
}
override fun updateDatabaseState(state: DatabaseState) {
databaseState.value = state
}
override fun updateRCSettings(settings: RCSettings) = Unit
override fun updateOtherSettings(transform: (OtherSettings) -> OtherSettings) = Unit
override fun updateDataSourcesSettings(settings: DataSourcesSettings) {
dataSourcesSettings.value = settings
}
override val dataSourcesStatus: StateFlow<Map<String, Int>> = MutableStateFlow(emptyMap())
override fun updateDataSourcesStatus(status: Map<String, Int>) {
(dataSourcesStatus as? MutableStateFlow)?.value = status
}
override fun updateRadioControlSettings(settings: RadioControlSettings) = Unit
override fun getSatelliteOffset(catnum: Int): String = ""
override fun setSatelliteOffset(catnum: Int, offset: String) = Unit
override fun getAmSatCallsign(): String = ""
override fun setAmSatCallsign(callsign: String) = Unit
override val wavelogSettings: StateFlow<com.rtbishop.look4sat.core.domain.model.WavelogSettings> =
MutableStateFlow(com.rtbishop.look4sat.core.domain.model.WavelogSettings())
override fun updateWavelogSettings(settings: com.rtbishop.look4sat.core.domain.model.WavelogSettings) = Unit
override fun getWorkedGrids(): Set<String> = emptySet()
private val workedGrids = MutableStateFlow(emptySet<String>())
override fun setWorkedGrids(grids: Set<String>) {
workedGrids.value = grids
}
override val lotwSettings: StateFlow<com.rtbishop.look4sat.core.domain.model.LoTWSettings> =
MutableStateFlow(com.rtbishop.look4sat.core.domain.model.LoTWSettings())
override fun updateLoTWSettings(settings: com.rtbishop.look4sat.core.domain.model.LoTWSettings) = Unit
override fun getLastLotwSyncDate(): String = ""
override fun setLastLotwSyncDate(date: String) = Unit
override fun getLastLotwSyncCallsign(): String = ""
override fun setLastLotwSyncCallsign(callsign: String) = Unit
override fun getWorkedGridQsos(): Map<String, List<com.rtbishop.look4sat.core.domain.model.GridQso>> = emptyMap()
override fun setWorkedGridQsos(qsos: Map<String, List<com.rtbishop.look4sat.core.domain.model.GridQso>>) = Unit
override fun getRoamedGrids(): Set<String> = emptySet()
private val roamedGrids = MutableStateFlow(emptySet<String>())
override fun setRoamedGrids(grids: Set<String>) {
roamedGrids.value = grids
}
override fun getMarkedGridStations(): Map<String, com.rtbishop.look4sat.core.domain.model.MarkedStation> = emptyMap()
override fun setMarkedGridStations(stations: Map<String, com.rtbishop.look4sat.core.domain.model.MarkedStation>) = Unit
}
private fun defaultDataSourcesSettings(): DataSourcesSettings {
return DataSourcesSettings(
satelliteUrls = emptyList(),
transceiversUrls = emptyList()
)
}
@@ -1,312 +0,0 @@
package com.rtbishop.look4sat.core.data.repository
import com.rtbishop.look4sat.core.domain.repository.LoTWResult
import org.junit.Assert.assertEquals
import org.junit.Assert.assertNull
import org.junit.Assert.assertTrue
import org.junit.Test
class LoTWRepositoryTest {
private val repo = LoTWRepository()
private fun report(vararg records: String): String =
buildString {
append("<ADIF_VERS:5>3.1.4\n")
append("<PROGRAMID:8>look4sat\n")
append("<eoh>\n")
records.forEach { append(it).append("\n") }
}
@Test
fun parseRejectsBodyWithoutEoh() {
assertNull(repo.parseConfirmedGrids("<HTML>Username/password incorrect</HTML>"))
}
@Test
fun parseCollectsOnlySatelliteGrids() {
// Satellite QSO: PROP_MODE SAT, confirmed, opponent grid.
val satQso = "<CALL:6>BA7OPF\n" +
"<QSO_DATE:8>20260820\n" +
"<PROP_MODE:3>SAT\n" +
"<SAT_NAME:5>FO-29\n" +
"<GRIDSQUARE:4>NL47\n" +
"<EOR>\n"
// Ground QSO: same grid but no PROP_MODE -> must be excluded.
val groundQso = "<CALL:6>BA7OPF\n" +
"<QSO_DATE:8>20260821\n" +
"<GRIDSQUARE:4>NL47\n" +
"<EOR>\n"
val result = repo.parseConfirmedGrids(report(satQso, groundQso))
assertEquals(setOf("NL47"), result)
}
@Test
fun parseSupportsVuccGridPairsAndSixCharGrids() {
val satQso = "<PROP_MODE:3>SAT\n" +
"<SAT_NAME:5>SO-50\n" +
"<GRIDSQUARE:6>OM60IL\n" +
"<VUCC_GRIDS:11>EN52en,EN53fa\n" +
"<EOR>\n"
val result = repo.parseConfirmedGrids(report(satQso))
assertEquals(setOf("OM60", "EN52", "EN53"), result)
}
@Test
fun parsePropModeDoesNotLeakAcrossRecords() {
// PROP_MODE SAT record first, then a ground QSO with a grid — the second
// record must not inherit the satellite flag after its own <EOR>.
val satQso = "<PROP_MODE:3>SAT\n<GRIDSQUARE:4>OL62\n<EOR>\n"
val groundQso = "<GRIDSQUARE:4>PM00\n<EOR>\n"
val result = repo.parseConfirmedGrids(report(satQso, groundQso))
assertEquals(setOf("OL62"), result)
}
@Test
fun parseHandlesAlphabeticalFieldOrder() {
// Real lotwreport.adi emits fields in ALPHABETICAL order: GRIDSQUARE (G)
// and VUCC_GRIDS come BEFORE PROP_MODE (P) inside each record. The old
// sequential gate (add only while propMode == SAT) dropped every grid on
// real reports — the buffered parser must collect them regardless of
// field order and filter at <EOR>.
val satQso = "<CALL:6>BA7OPF\n" +
"<GRIDSQUARE:4>NL47\n" +
"<MODE:3>FM\n" +
"<PROP_MODE:3>SAT\n" +
"<SAT_NAME:5>FO-29\n" +
"<VUCC_GRIDS:11>EN52en,EN53fa\n" +
"<EOR>\n"
val groundQso = "<CALL:6>BA7OPF\n" +
"<GRIDSQUARE:4>PM95\n" +
"<QSO_DATE:8>20260821\n" +
"<EOR>\n"
val result = repo.parseConfirmedGrids(report(satQso, groundQso))
assertEquals(setOf("NL47", "EN52", "EN53"), result)
}
@Test
fun parseReturnsEmptySetForReportWithoutGrids() {
val satQso = "<PROP_MODE:3>SAT\n<SAT_NAME:5>AO-07\n<EOR>\n"
assertEquals(emptySet<String>(), repo.parseConfirmedGrids(report(satQso)))
}
// region parseConfirmedGridQsos
private val satQsoFull = "<CALL:5>A50QO\n" +
"<QSO_DATE:8>20260820\n" +
"<TIME_ON:6>113045\n" +
"<PROP_MODE:3>SAT\n" +
"<SAT_NAME:5>FO-29\n" +
"<MODE:2>CW\n" +
"<BAND:3>70CM\n" +
"<BAND_RX:3>2M\n" +
"<GRIDSQUARE:4>NL47\n" +
"<EOR>\n"
@Test
fun parseQsosExtractsSatelliteDetail() {
val result = repo.parseConfirmedGridQsos(report(satQsoFull))!!
val qsos = result["NL47"]!!
assertEquals(1, qsos.size)
val qso = qsos[0]
assertEquals("A50QO", qso.call)
assertEquals("FO-29", qso.satName)
assertEquals("CW", qso.mode)
assertEquals("2M", qso.bandUp)
assertEquals("70CM", qso.bandDown)
assertEquals("V/U", qso.bandLabel)
assertEquals(2026, java.time.Instant.ofEpochMilli(qso.epochMs).atZone(java.time.ZoneOffset.UTC).year)
}
@Test
fun parseQsosExcludesGroundQsos() {
val groundQso = "<CALL:6>BA7OPF\n<QSO_DATE:8>20260821\n<GRIDSQUARE:4>NL47\n<EOR>\n"
val result = repo.parseConfirmedGridQsos(report(satQsoFull, groundQso))!!
assertEquals(1, result["NL47"]!!.size)
}
@Test
fun parseQsosVuccPairFeedsBothGrids() {
val qso = "<PROP_MODE:3>SAT\n<SAT_NAME:5>SO-50\n" +
"<QSO_DATE:8>20260819\n<TIME_ON:4>1231\n" +
"<VUCC_GRIDS:11>EN52en,EN53fa\n<EOR>\n"
val result = repo.parseConfirmedGridQsos(report(qso))!!
assertEquals(setOf("EN52", "EN53"), result.keys)
assertEquals(result["EN52"]!!.first(), result["EN53"]!!.first())
}
@Test
fun parseQsosVuccQuadrupleFeedsAllFourGrids() {
// VUCC allows up to four grids in one contact.
val qso = "<PROP_MODE:3>SAT\n<SAT_NAME:5>SO-50\n" +
"<QSO_DATE:8>20260819\n<TIME_ON:4>1231\n" +
"<VUCC_GRIDS:23>EN52en,EN53fa,EN42gj,EN43kh\n<EOR>\n"
val result = repo.parseConfirmedGridQsos(report(qso))!!
assertEquals(setOf("EN52", "EN53", "EN42", "EN43"), result.keys)
result.values.forEach { assertEquals(1, it.size) }
}
@Test
fun parseQsosRejectsBodyWithoutEoh() {
assertNull(repo.parseConfirmedGridQsos("<HTML>Username/password incorrect</HTML>"))
}
@Test
fun parseQsosCapturesOwnGridPerQso() {
// MY_GRIDSQUARE arrives BEFORE PROP_MODE (ADIF fields are emitted
// alphabetically); the per-record buffer must still attach it to the QSO.
val qso1 = "<CALL:5>A50QO\n<QSO_DATE:8>20260820\n<MY_GRIDSQUARE:4>OL62\n" +
"<PROP_MODE:3>SAT\n<SAT_NAME:5>FO-29\n<MODE:2>CW\n" +
"<BAND:3>70CM\n<BAND_RX:3>2M\n<GRIDSQUARE:4>NL47\n<EOR>\n"
val qso2 = "<CALL:6>BG7ZFK\n<QSO_DATE:8>20260819\n<MY_GRIDSQUARE:4>OL72\n" +
"<PROP_MODE:3>SAT\n<SAT_NAME:5>SO-50\n<MODE:3>FM\n" +
"<BAND:3>70CM\n<BAND_RX:3>2M\n<GRIDSQUARE:4>OK48\n<EOR>\n"
val result = repo.parseConfirmedGridQsos(report(qso1, qso2))!!
assertEquals("OL62", result["NL47"]!!.first().myGrid)
assertEquals("OL72", result["OK48"]!!.first().myGrid)
// Ground QSO (no PROP_MODE=SAT) must not leak its MY_GRIDSQUARE.
val ground = "<CALL:6>BA7OPF\n<QSO_DATE:8>20260821\n<MY_GRIDSQUARE:4>OL62\n<GRIDSQUARE:4>NL47\n<EOR>\n"
assertTrue(repo.parseConfirmedGridQsos(report(qso1, ground))!!.values.all { it.all { q -> q.myGrid == "OL62" } })
}
// endregion
// region parseRoamedGrids (MY_GRIDSQUARE = grids the account operated from)
@Test
fun parseRoamedGridsCollectsOwnStationGrids() {
// Satellite QSOs carry MY_GRIDSQUARE = the grid the account itself
// operated from (the "roamed/activated" set shown as blue stripes).
val qso1 = "<CALL:6>BA7OPF\n<QSO_DATE:8>20260820\n<PROP_MODE:3>SAT\n<SAT_NAME:5>IO-86\n" +
"<MY_GRIDSQUARE:4>OL62\n<GRIDSQUARE:4>PM95\n<EOR>\n"
val qso2 = "<CALL:6>BA7OPF\n<QSO_DATE:8>20260901\n<PROP_MODE:3>SAT\n<SAT_NAME:5>IO-86\n" +
"<MY_GRIDSQUARE:4>OL72\n<GRIDSQUARE:4>NL47\n<EOR>\n"
assertEquals(setOf("OL62", "OL72"), repo.parseRoamedGrids(report(qso1, qso2)))
}
@Test
fun parseRoamedGridsIgnoresGroundQsos() {
val ground = "<CALL:6>BA7OPF\n<QSO_DATE:8>20260821\n<MY_GRIDSQUARE:4>OL72\n<EOR>\n"
assertEquals(emptySet<String>(), repo.parseRoamedGrids(report(ground)))
}
@Test
fun parseRoamedGridsDoesNotConfuseGridsquareWithMyGridsquare() {
// GRIDSQUARE (opposite station's grid) must never leak into the roamed set.
val qso = "<PROP_MODE:3>SAT\n<SAT_NAME:5>SO-50\n<MY_GRIDSQUARE:4>OL62\n" +
"<GRIDSQUARE:6>OM60IL\n<EOR>\n"
assertEquals(setOf("OL62"), repo.parseRoamedGrids(report(qso)))
}
@Test
fun parseRoamedGridsTruncatesSixCharToFour() {
val qso = "<PROP_MODE:3>SAT\n<SAT_NAME:5>IO-86\n<MY_GRIDSQUARE:6>OL62AA\n<EOR>\n"
assertEquals(setOf("OL62"), repo.parseRoamedGrids(report(qso)))
}
@Test
fun parseRoamedGridsHandlesAlphabeticalFieldOrder() {
// Real lotwreport.adi emits fields alphabetically, so <MY_GRIDSQUARE>
// (M) arrives BEFORE <PROP_MODE> (P). The old sequential gate (add only
// while propMode == SAT) silently returned an EMPTY set on real reports —
// this is the exact bug that made the blue roamed stripes never appear.
val qso = "<CALL:6>BA7OPF\n" +
"<GRIDSQUARE:4>PM95\n" +
"<MY_GRIDSQUARE:6>OL72XX\n" +
"<PROP_MODE:3>SAT\n" +
"<SAT_NAME:5>IO-86\n" +
"<EOR>\n"
assertEquals(setOf("OL72"), repo.parseRoamedGrids(report(qso)))
}
@Test
fun parseRoamedGridsRejectsBodyWithoutEoh() {
assertNull(repo.parseRoamedGrids("<HTML>Username/password incorrect</HTML>"))
}
// endregion
// region failure classification (fetchReportBody -> LoTWResult mapping)
@Test
fun failureClassificationMapsEachException() {
// LoTWRepository.toResult() must keep each failure cause distinct so
// the UI can show a specific message per cause.
assertEquals(
LoTWResult.BadCredentials,
repo.toResult(LoTWRepository.CredentialsException())
)
assertEquals(
LoTWResult.RateLimited,
repo.toResult(LoTWRepository.RateLimitException())
)
assertEquals(
LoTWResult.Timeout,
repo.toResult(LoTWRepository.TimeoutException("read timed out"))
)
val net = repo.toResult(java.io.IOException("HTTP 500"))
assertEquals(LoTWResult.NetworkError("HTTP 500"), net)
}
@Test
fun parseQsosExtractsAwardFields() {
// Award statistics rely on the DXCC/CQZ/STATE fields coming straight
// from LoTW's qso_qsldetail report (STATE depends on DXCC). LoTW
// writes STATE as "CODE // NAME" (verified with a real report 2026-09);
// the parser must strip the name suffix and keep the bare code.
val qso = "<CALL:5>BG7XYZ\n" +
"<QSO_DATE:8>20260820\n<TIME_ON:4>1130\n" +
"<PROP_MODE:3>SAT\n<SAT_NAME:5>FO-29\n<MODE:2>CW\n" +
"<DXCC:3>318\n<COUNTRY:5>CHINA\n<CQZ:2>24\n<STATE:13>GD // Guangdong\n" +
"<GRIDSQUARE:4>OL62\n<EOR>\n"
val result = repo.parseConfirmedGridQsos(report(qso))!!
val parsed = result["OL62"]!!.first()
assertEquals(318, parsed.dxcc)
assertEquals("CHINA", parsed.country)
assertEquals(24, parsed.cqz)
assertEquals("GD", parsed.state)
}
@Test
fun parseQsosStripsStateNameSuffixForAllEntities() {
// Japan prefecture: "34 // Tottori-ken" -> "34" (WAJA matching needs
// the 2-digit code). US states also arrive as "CODE // Name".
val jp = "<CALL:5>JH0ABC\n<QSO_DATE:8>20260820\n<TIME_ON:4>1130\n" +
"<PROP_MODE:3>SAT\n<SAT_NAME:5>RS-44\n<DXCC:3>339\n<COUNTRY:7>JAPAN\n" +
"<STATE:18>34 // Tottori-ken\n<GRIDSQUARE:4>PM95\n<EOR>\n"
val us = "<CALL:5>K1ABC\n<QSO_DATE:8>20260820\n<TIME_ON:4>1130\n" +
"<PROP_MODE:3>SAT\n<SAT_NAME:5>AO-07\n<DXCC:3>291\n<COUNTRY:12>UNITED STATES\n" +
"<STATE:22>CA // California\n<GRIDSQUARE:4>EM40\n<EOR>\n"
val result = repo.parseConfirmedGridQsos(report(jp, us))!!
assertEquals("34", result["PM95"]!!.first().state)
assertEquals("CA", result["EM40"]!!.first().state)
}
@Test
fun parseQsosLeavesAwardFieldsNullWhenAbsent() {
val qso = "<CALL:5>JH0ABC\n<QSO_DATE:8>20260820\n<TIME_ON:4>1130\n" +
"<PROP_MODE:3>SAT\n<SAT_NAME:5>RS-44\n<GRIDSQUARE:4>PM95\n<EOR>\n"
val result = repo.parseConfirmedGridQsos(report(qso))!!
val parsed = result["PM95"]!!.first()
assertNull(parsed.dxcc)
assertNull(parsed.country)
assertNull(parsed.cqz)
assertNull(parsed.state)
}
@Test
fun parseQsosAwardFieldsDoNotLeakAcrossRecords() {
val withFields = "<CALL:5>BG7AAA\n<QSO_DATE:8>20260820\n<TIME_ON:4>1130\n" +
"<PROP_MODE:3>SAT\n<SAT_NAME:5>FO-29\n<DXCC:3>318\n<CQZ:2>24\n<STATE:2>GD\n" +
"<GRIDSQUARE:4>OL62\n<EOR>\n"
val withoutFields = "<CALL:5>JH0BBB\n<QSO_DATE:8>20260821\n<TIME_ON:4>1130\n" +
"<PROP_MODE:3>SAT\n<SAT_NAME:5>RS-44\n<GRIDSQUARE:4>PM95\n<EOR>\n"
val result = repo.parseConfirmedGridQsos(report(withFields, withoutFields))!!
assertNull(result["PM95"]!!.first().dxcc)
assertNull(result["PM95"]!!.first().cqz)
assertNull(result["PM95"]!!.first().state)
}
// endregion
}
@@ -1,199 +0,0 @@
/*
* Look4Sat. Amateur radio satellite tracker and pass predictor.
* Copyright (C) 2019-2026 Arty Bishop and contributors.
*
* This program is free software: you can redistribute it and/or modify
* it under the terms of the GNU General Public License as published by
* the Free Software Foundation, either version 3 of the License, or
* (at your option) any later version.
*/
package com.rtbishop.look4sat.core.data.repository
import com.rtbishop.look4sat.core.domain.model.DataSourcesSettings
import com.rtbishop.look4sat.core.domain.model.DatabaseState
import com.rtbishop.look4sat.core.domain.model.OtherSettings
import com.rtbishop.look4sat.core.domain.model.PassesSettings
import com.rtbishop.look4sat.core.domain.model.RCSettings
import com.rtbishop.look4sat.core.domain.model.RadioControlSettings
import com.rtbishop.look4sat.core.domain.model.SatItem
import com.rtbishop.look4sat.core.domain.model.SatRadio
import com.rtbishop.look4sat.core.domain.predict.GeoPos
import com.rtbishop.look4sat.core.domain.predict.OrbitalData
import com.rtbishop.look4sat.core.domain.predict.OrbitalObject
import com.rtbishop.look4sat.core.domain.repository.ISelectionRepo
import com.rtbishop.look4sat.core.domain.repository.ISettingsRepo
import com.rtbishop.look4sat.core.domain.source.ILocalSource
import kotlinx.coroutines.Dispatchers
import kotlinx.coroutines.ExperimentalCoroutinesApi
import kotlinx.coroutines.flow.MutableStateFlow
import kotlinx.coroutines.flow.StateFlow
import kotlinx.coroutines.flow.first
import kotlinx.coroutines.test.runTest
import org.junit.Assert.assertEquals
import org.junit.Assert.assertTrue
import org.junit.Test
@OptIn(ExperimentalCoroutinesApi::class)
class SelectionRepoSearchTest {
private val sampleItems = listOf(
SatItem(catnum = 25544, name = "ISS (ZARYA)"),
SatItem(catnum = 7530, name = "AO-7 (AMSAT-OSCAR 7)"),
SatItem(catnum = 39444, name = "AO-73 (FUNcube-1)"),
SatItem(catnum = 43803, name = "JO-97 (BIRDS-3)"),
SatItem(catnum = 99999, name = "FO-29"),
)
@Test
fun `query without separators matches name with dashes spaces brackets`() = runTest {
val repo = createRepo(sampleItems)
repo.setQuery("ao7")
val results = repo.getEntriesFlow().first()
// "ao7" is a substring of the normalized "AO-73 (FUNcube-1)" too, so a
// fuzzy search legitimately returns both AO-7 (first) and AO-73. The
// key guarantee is that AO-7 — which was unreachable before because of
// the dashes/brackets — is now found.
assertTrue(results.map { it.catnum }.contains(7530))
assertEquals(7530, results.first().catnum)
}
@Test
fun `query without separators matches name with only dashes`() = runTest {
val repo = createRepo(sampleItems)
repo.setQuery("fo29")
val results = repo.getEntriesFlow().first()
assertEquals(listOf(99999), results.map { it.catnum })
}
@Test
fun `space-separated tokens all must match in any order`() = runTest {
val repo = createRepo(sampleItems)
repo.setQuery("zarya iss")
val results = repo.getEntriesFlow().first()
assertEquals(listOf(25544), results.map { it.catnum })
}
@Test
fun `exact name query still matches`() = runTest {
val repo = createRepo(sampleItems)
repo.setQuery("AO-7 (AMSAT-OSCAR 7)")
val results = repo.getEntriesFlow().first()
assertEquals(listOf(7530), results.map { it.catnum })
}
@Test
fun `partial token query matches substring`() = runTest {
val repo = createRepo(sampleItems)
repo.setQuery("funcube")
val results = repo.getEntriesFlow().first()
assertEquals(listOf(39444), results.map { it.catnum })
}
@Test
fun `numeric query matches catnum exactly`() = runTest {
val repo = createRepo(sampleItems)
repo.setQuery("25544")
val results = repo.getEntriesFlow().first()
assertEquals(listOf(25544), results.map { it.catnum })
}
@Test
fun `no query returns all items`() = runTest {
val repo = createRepo(sampleItems)
repo.setQuery("")
val results = repo.getEntriesFlow().first()
assertEquals(sampleItems.size, results.size)
}
@Test
fun `unmatched query returns nothing`() = runTest {
val repo = createRepo(sampleItems)
repo.setQuery("zzzznomatch")
assertTrue(repo.getEntriesFlow().first().isEmpty())
}
private fun createRepo(items: List<SatItem>): ISelectionRepo {
return SelectionRepo(
dispatcher = Dispatchers.Unconfined,
localSource = FakeLocalSourceForSearch(items),
settingsRepo = FakeSettingsRepoForSearch()
)
}
}
private class FakeLocalSourceForSearch(private val items: List<SatItem>) : ILocalSource {
override suspend fun getEntriesTotal(): Int = items.size
override suspend fun getEntriesList(): List<SatItem> = items
override suspend fun getEntriesWithIds(ids: List<Int>): List<OrbitalObject> = emptyList()
override suspend fun insertEntries(entries: List<OrbitalData>) = Unit
override suspend fun deleteEntries() = Unit
override suspend fun getIdsWithModes(modes: List<String>): List<Int> = emptyList()
override suspend fun getRadiosTotal(): Int = 0
override suspend fun getRadiosWithId(id: Int): List<SatRadio> = emptyList()
override suspend fun insertRadios(radios: List<SatRadio>, isCustom: Boolean) = Unit
override suspend fun deleteManagedRadios() = Unit
override suspend fun deleteRadios() = Unit
}
private class FakeSettingsRepoForSearch : ISettingsRepo {
override val appVersionName: String = "test"
override val selectedIds: StateFlow<List<Int>> = MutableStateFlow(emptyList())
override val selectedTypes: StateFlow<List<String>> = MutableStateFlow(emptyList())
override val passesSettings: StateFlow<PassesSettings> = MutableStateFlow(
PassesSettings(hoursAhead = 24, minElevation = 0.0, selectedModes = emptyList())
)
override val stationPosition: StateFlow<GeoPos> = MutableStateFlow(GeoPos(0.0, 0.0))
override val databaseState: MutableStateFlow<DatabaseState> = MutableStateFlow(DatabaseState(0, 0, 0L))
override val rcSettings: StateFlow<RCSettings> = MutableStateFlow(
RCSettings(false, "", "", "", false, "", "", "", 0L, false, "", "", "", false, "", "")
)
override val otherSettings: StateFlow<OtherSettings> = MutableStateFlow(
OtherSettings(
false, false, false, false, false, false, false,
shouldSeeWarning = false, shouldSeeWhatsNew = false
)
)
override val dataSourcesSettings: MutableStateFlow<DataSourcesSettings> =
MutableStateFlow(DataSourcesSettings(satelliteUrls = emptyList(), transceiversUrls = emptyList()))
override val dataSourcesStatus: StateFlow<Map<String, Int>> = MutableStateFlow(emptyMap())
override val radioControlSettings: StateFlow<RadioControlSettings> = MutableStateFlow(
RadioControlSettings(false, RadioControlSettings.MODEL_YAESU_FT817, "", "", "", "", 9600)
)
override val wavelogSettings: StateFlow<com.rtbishop.look4sat.core.domain.model.WavelogSettings> =
MutableStateFlow(com.rtbishop.look4sat.core.domain.model.WavelogSettings())
override val lotwSettings: StateFlow<com.rtbishop.look4sat.core.domain.model.LoTWSettings> =
MutableStateFlow(com.rtbishop.look4sat.core.domain.model.LoTWSettings())
override fun setSelectedIds(ids: List<Int>) = Unit
override fun setSelectedTypes(types: List<String>) = Unit
override fun setPassesSettings(settings: PassesSettings) = Unit
override fun setStationPosition(latitude: Double, longitude: Double, altitude: Double): Boolean = true
override fun setStationPosition(): Boolean = true
override fun setStationPosition(locator: String): Boolean = true
override fun getSatelliteTypesIds(types: List<String>): List<Int> = emptyList()
override fun setSatelliteTypeIds(type: String, ids: List<Int>) = Unit
override fun updateDatabaseState(state: DatabaseState) = Unit
override fun updateRCSettings(settings: RCSettings) = Unit
override fun updateOtherSettings(transform: (OtherSettings) -> OtherSettings) = Unit
override fun updateDataSourcesSettings(settings: DataSourcesSettings) = Unit
override fun updateDataSourcesStatus(status: Map<String, Int>) = Unit
override fun updateRadioControlSettings(settings: RadioControlSettings) = Unit
override fun getSatelliteOffset(catnum: Int): String = ""
override fun setSatelliteOffset(catnum: Int, offset: String) = Unit
override fun getAmSatCallsign(): String = ""
override fun setAmSatCallsign(callsign: String) = Unit
override fun updateWavelogSettings(settings: com.rtbishop.look4sat.core.domain.model.WavelogSettings) = Unit
override fun getWorkedGrids(): Set<String> = emptySet()
override fun setWorkedGrids(grids: Set<String>) = Unit
override fun getWorkedGridQsos(): Map<String, List<com.rtbishop.look4sat.core.domain.model.GridQso>> = emptyMap()
override fun setWorkedGridQsos(qsos: Map<String, List<com.rtbishop.look4sat.core.domain.model.GridQso>>) = Unit
override fun getRoamedGrids(): Set<String> = emptySet()
override fun setRoamedGrids(grids: Set<String>) = Unit
override fun getMarkedGridStations(): Map<String, com.rtbishop.look4sat.core.domain.model.MarkedStation> = emptyMap()
override fun setMarkedGridStations(stations: Map<String, com.rtbishop.look4sat.core.domain.model.MarkedStation>) = Unit
override fun updateLoTWSettings(settings: com.rtbishop.look4sat.core.domain.model.LoTWSettings) = Unit
override fun getLastLotwSyncDate(): String = ""
override fun setLastLotwSyncDate(date: String) = Unit
override fun getLastLotwSyncCallsign(): String = ""
override fun setLastLotwSyncCallsign(callsign: String) = Unit
}
@@ -1,154 +0,0 @@
/*
* Look4Sat. Amateur radio satellite tracker and pass predictor.
* Copyright (C) 2019-2026 Arty Bishop and contributors.
*
* This program is free software: you can redistribute it and/or modify
* it under the terms of the GNU General Public License as published by
* the Free Software Foundation, either version 3 of the License, or
* (at your option) any later version.
*
* This program is distributed in the hope that it will be useful,
* but WITHOUT ANY WARRANTY; without even the implied warranty of
* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
* GNU General Public License for more details.
*
* You should have received a copy of the GNU General Public License
* along with this program. If not, see <https://www.gnu.org/licenses/>.
*/
package com.rtbishop.look4sat.core.domain.cw
/**
* Bayesian Morse timing decoder.
* Replaces hard thresholds with probability-based decision making.
*
* Inspired by VE3NEA's CW Skimmer approach:
* "Instead of making a hard decision at every input sample whether the signal
* is present or not, compute the probability that the signal is present."
*
* Uses Gaussian probability density centered on expected durations:
* P(dit | duration) = exp(-(duration - dotMs)^2 / (2 * variance^2))
* P(dash | duration) = exp(-(duration - 3*dotMs)^2 / (2 * variance^2))
*/
internal class CwBayesianDecoder {
// Morse timing parameters
private var dotDurationMs = 60f // initial 20 WPM
private var speedWpm = 20f
// Current symbol being accumulated
private var currentSymbol = StringBuilder()
private var textBuffer = StringBuilder()
// Recent dit lengths for speed estimation
private val recentDits = mutableListOf<Float>()
// Output
private var _decodedText = ""
val decodedText: String get() = _decodedText
/** Gaussian probability. */
private fun gaussianProb(durationMs: Float, expectedMs: Float, varianceMs: Float): Float {
if (varianceMs <= 0f) return 0f
val diff = durationMs - expectedMs
return kotlin.math.exp(-(diff * diff) / (2 * varianceMs * varianceMs))
}
/** Process a tone duration. Returns the symbol type with highest probability. */
fun processTone(durationMs: Float): ToneResult {
val ditProb = gaussianProb(durationMs, dotDurationMs, dotDurationMs * 0.4f)
val dashProb = gaussianProb(durationMs, dotDurationMs * 3f, dotDurationMs * 0.6f)
return if (ditProb > dashProb && ditProb > 0.05f) {
currentSymbol.append('0')
recentDits.add(durationMs)
updateSpeed()
ToneResult('0', ditProb)
} else if (dashProb > 0.05f) {
currentSymbol.append('1')
ToneResult('1', dashProb)
} else {
ToneResult(null, 0f)
}
}
/** Process a gap duration. Returns decoded character or null. */
fun processGap(durationMs: Float): Char? {
if (currentSymbol.isEmpty()) {
val wordProb = gaussianProb(durationMs, dotDurationMs * 7f, dotDurationMs * 1.2f)
if (wordProb > 0.2f) {
textBuffer.append(' ')
_decodedText = textBuffer.toString()
return ' '
}
return null
}
val interCharProb = gaussianProb(durationMs, dotDurationMs * 3f, dotDurationMs * 0.6f)
val wordProb = gaussianProb(durationMs, dotDurationMs * 7f, dotDurationMs * 1.2f)
if (wordProb > interCharProb && wordProb > 0.2f) {
val char = flushSymbol()
textBuffer.append(' ')
_decodedText = textBuffer.toString()
return char
}
if (interCharProb > 0.15f) {
val char = flushSymbol()
_decodedText = textBuffer.toString()
return char
}
return null
}
private fun flushSymbol(): Char? {
if (currentSymbol.isEmpty()) return null
val morse = currentSymbol.toString()
currentSymbol.clear()
val char = morseToChar(morse)
if (char != null) textBuffer.append(char)
return char
}
private fun updateSpeed() {
if (recentDits.size < 3) return
val sorted = recentDits.sorted()
val median = sorted[sorted.size / 2]
if (median > 0f) {
dotDurationMs = dotDurationMs * 0.7f + median * 0.3f
val wpm = 60.0f / (50.0f * dotDurationMs / 1000.0f)
if (wpm in 5f..55f) speedWpm = wpm
}
}
fun getSpeed(): Float = speedWpm
fun reset() {
dotDurationMs = 60f
speedWpm = 20f
recentDits.clear()
currentSymbol.clear()
textBuffer.clear()
_decodedText = ""
}
companion object {
private val MORSE_TABLE = mapOf(
"01" to 'A', "1000" to 'B', "1010" to 'C', "100" to 'D', "0" to 'E',
"0010" to 'F', "110" to 'G', "0000" to 'H', "00" to 'I', "0111" to 'J',
"101" to 'K', "0100" to 'L', "11" to 'M', "10" to 'N', "111" to 'O',
"0110" to 'P', "1101" to 'Q', "010" to 'R', "000" to 'S', "1" to 'T',
"001" to 'U', "0001" to 'V', "011" to 'W', "1001" to 'X', "1011" to 'Y',
"1100" to 'Z', "01111" to '1', "00111" to '2', "00011" to '3',
"00001" to '4', "00000" to '5', "10000" to '6', "11000" to '7',
"11100" to '8', "11110" to '9', "11111" to '0',
"010101" to '.', "110011" to ',', "001100" to '?', "011110" to '\'',
"101011" to '!', "10010" to '/', "10110" to '(', "101101" to ')',
"01000" to '&', "111000" to ':', "101010" to ';', "10001" to '=',
"01010" to '+', "100001" to '-', "001101" to '_', "010010" to '"',
"0001001" to '$', "011010" to '@'
)
fun morseToChar(morse: String): Char? = MORSE_TABLE[morse]
}
}
data class ToneResult(val symbol: Char?, val probability: Float)
@@ -1,114 +0,0 @@
/*
* Look4Sat. Amateur radio satellite tracker and pass predictor.
* Copyright (C) 2019-2026 Arty Bishop and contributors.
*
* This program is free software: you can redistribute it and/or modify
* it under the terms of the GNU General Public License as published by
* the Free Software Foundation, either version 3 of the License, or
* (at your option) any later version.
*
* This program is distributed in the hope that it will be useful,
* but WITHOUT ANY WARRANTY; without even the implied warranty of
* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
* GNU General Public License for more details.
*
* You should have received a copy of the GNU General Public License
* along with this program. If not, see <https://www.gnu.org/licenses/>.
*/
package com.rtbishop.look4sat.core.domain.cw
/**
* Multi-channel CW signal tracker.
* Monitors the spectrogram for active frequency bins and extracts
* energy envelopes for each detected signal.
*
* Inspired by CW Skimmer's multi-channel approach:
* tracks all active signals in the passband simultaneously,
* selects the best one for decoded output.
*/
internal class CwChannelTracker(
private val spectrogram: CwSpectrogram,
private val maxChannels: Int = 3
) {
data class Channel(
val bin: Int,
val frequency: Float,
var active: Boolean = false,
var energy: Float = 0f,
val history: MutableList<Float> = mutableListOf(),
var confidence: Float = 0f
)
private val channels = Array(maxChannels) { Channel(0, 0f) }
/** Scan the current spectrogram column and update channel tracking. */
fun update(): List<Channel> {
val col = spectrogram.getCurrentColumn()
val peaks = findPeaks(col, threshold = 0.3f, minDistance = 2)
// Update existing channels
for (ch in channels) {
if (ch.active) {
if (peaks.contains(ch.bin)) {
ch.energy = col[ch.bin]
ch.history.add(ch.energy)
if (ch.history.size > 40) ch.history.removeAt(0)
ch.confidence = computeConfidence(ch.history)
} else {
// Signal lost — decay confidence
ch.history.add(0f)
if (ch.history.size > 40) ch.history.removeAt(0)
ch.confidence *= 0.9f
if (ch.confidence < 0.1f) ch.active = false
}
}
}
// Assign new peaks to inactive channels
var peakIdx = 0
for (ch in channels) {
if (!ch.active && peakIdx < peaks.size) {
val bin = peaks[peakIdx]
val freq = spectrogram.binToFreq(bin)
// Re-initialize channel
channels[peakIdx] = Channel(bin, freq, true, col[bin], mutableListOf(), 0.5f)
peakIdx++
}
}
return channels.filter { it.active }
}
/** Find peak bins in the spectrum. */
private fun findPeaks(spectrum: FloatArray, threshold: Float, minDistance: Int): List<Int> {
val peaks = mutableListOf<Int>()
for (i in 1 until spectrum.size - 1) {
if (spectrum[i] > spectrum[i - 1] && spectrum[i] > spectrum[i + 1] && spectrum[i] > threshold) {
if (peaks.isEmpty() || i - peaks.last() >= minDistance) {
peaks.add(i)
}
}
}
return peaks.sortedByDescending { spectrum[it] }
}
/** Compute confidence from energy history. Lower variance = higher confidence. */
private fun computeConfidence(history: List<Float>): Float {
if (history.size < 10) return 0.3f
val recent = history.takeLast(10)
val mean = recent.average().toFloat()
val variance = recent.map { (it - mean) * (it - mean) }.average().toFloat()
return if (mean > 0f) (mean / (mean + variance + 0.1f)).coerceIn(0f, 1f) else 0f
}
/** Get the channel with highest confidence. */
fun getBestChannel(): Channel? {
return channels.filter { it.active }.maxByOrNull { it.confidence }
}
fun reset() {
for (i in channels.indices) {
channels[i] = Channel(0, 0f)
}
}
}
@@ -1,165 +0,0 @@
/*
* Look4Sat. Amateur radio satellite tracker and pass predictor.
* Copyright (C) 2019-2026 Arty Bishop and contributors.
*
* This program is free software: you can redistribute it and/or modify
* it under the terms of the GNU General Public License as published by
* the Free Software Foundation, either version 3 of the License, or
* (at your option) any later version.
*
* This program is distributed in the hope that it will be useful,
* but WITHOUT ANY WARRANTY; without even the implied warranty of
* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
* GNU General Public License for more details.
*
* You should have received a copy of the GNU General Public License
* along with this program. If not, see <https://www.gnu.org/licenses/>.
*/
package com.rtbishop.look4sat.core.domain.cw
import kotlinx.coroutines.flow.MutableStateFlow
import kotlinx.coroutines.flow.StateFlow
/**
* CW (Morse code) decoder v3 — Spectrogram-based multi-channel Bayesian decoder.
*
* Architecture inspired by Morse Expert / CW Skimmer (VE3NEA):
* 1. FFT spectrogram creates a frequency×time matrix
* 2. Multi-channel peak detector finds all active signals
* 3. Per-channel energy envelope extraction
* 4. Bayesian probability for symbol timing (Gaussian likelihood)
* 5. Best channel selected for output
*
* Timing analysis is performed per spectrogram column (hop).
* Each column represents hopSize/sampleRate seconds of audio.
*/
class CwDecoder(
val sampleRate: Int = 8000,
cwToneFreq: Float = -1f // ignored in v3 (auto-detect via spectrogram)
) {
companion object {
private const val FFT_SIZE = 256
private const val HOP_SIZE = 64
}
private val spectrogram = CwSpectrogram(
fftSize = FFT_SIZE,
hopSize = HOP_SIZE,
sampleRate = sampleRate,
minBin = 6,
maxBin = 38,
historyCols = 40
)
private val channelTracker = CwChannelTracker(spectrogram, maxChannels = 3)
private val bayesianDecoder = CwBayesianDecoder()
// Timing state per channel
private data class ChannelTiming(
var isSignal: Boolean = false,
var toneTicks: Int = 0,
var gapTicks: Int = 0
)
private val timingStates = Array(3) { ChannelTiming() }
// Time per spectrogram column in milliseconds
private val tickMs = 1000f * HOP_SIZE / sampleRate
// Output flows
private val _decodedTextFlow = MutableStateFlow("")
val decodedTextFlow: StateFlow<String> = _decodedTextFlow
private val _signalStrength = MutableStateFlow(0f)
val signalStrength: StateFlow<Float> = _signalStrength
private val _estimatedPitch = MutableStateFlow<Float?>(null)
val estimatedPitch: StateFlow<Float?> = _estimatedPitch
private val _estimatedSpeed = MutableStateFlow<Float?>(null)
val estimatedSpeed: StateFlow<Float?> = _estimatedSpeed
private var frameCount = 0
init {
if (cwToneFreq > 0f) {
_estimatedPitch.value = cwToneFreq
}
}
fun processBuffer(buffer: FloatArray) {
// 1. Feed samples to spectrogram
spectrogram.addSamples(buffer)
// 2. Get number of new columns generated
val newCols = spectrogram.getNewColumns()
if (newCols == 0) return
// 3. Update channel tracker (uses latest column for peak detection)
val activeChannels = channelTracker.update()
// 4. Process each new column for timing analysis
// Columns are indexed 0..historyCols-1, where historyCols-1 is the newest
val baseIdx = (spectrogram.historyCols - newCols).coerceAtLeast(0)
for (colOffset in 0 until newCols) {
val col = spectrogram.getColumn(baseIdx + colOffset)
for ((idx, channel) in activeChannels.withIndex()) {
if (idx >= timingStates.size) break
val state = timingStates[idx]
val energy = if (channel.bin in col.indices) col[channel.bin] else 0f
// Adaptive threshold
val threshold = 0.3f + (energy - 0.3f) * 0.3f
if (energy > threshold) {
if (!state.isSignal) {
if (state.gapTicks > 0) {
val gapMs = state.gapTicks * tickMs
bayesianDecoder.processGap(gapMs)
}
state.gapTicks = 0
state.isSignal = true
}
state.toneTicks++
} else {
if (state.isSignal) {
if (state.toneTicks > 0) {
val toneMs = state.toneTicks * tickMs
bayesianDecoder.processTone(toneMs)
}
state.toneTicks = 0
state.isSignal = false
}
state.gapTicks++
}
}
}
// 5. Update outputs
frameCount++
if (frameCount % 5 == 0) {
val bestChannel = channelTracker.getBestChannel()
if (bestChannel != null) {
_estimatedPitch.value = bestChannel.frequency
_signalStrength.value = bestChannel.confidence
_estimatedSpeed.value = bayesianDecoder.getSpeed()
}
_decodedTextFlow.value = bayesianDecoder.decodedText
}
}
fun resetDecoder() {
spectrogram.reset()
channelTracker.reset()
bayesianDecoder.reset()
for (state in timingStates) {
state.isSignal = false
state.toneTicks = 0
state.gapTicks = 0
}
frameCount = 0
_decodedTextFlow.value = ""
_signalStrength.value = 0f
_estimatedPitch.value = null
_estimatedSpeed.value = null
}
}
@@ -1,102 +0,0 @@
/*
* Look4Sat. Amateur radio satellite tracker and pass predictor.
* Copyright (C) 2019-2026 Arty Bishop and contributors.
*
* This program is free software: you can redistribute it and/or modify
* it under the terms of the GNU General Public License as published by
* the Free Software Foundation, either version 3 of the License, or
* (at your option) any later version.
*
* This program is distributed in the hope that it will be useful,
* but WITHOUT ANY WARRANTY; without even the implied warranty of
* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
* GNU General Public License for more details.
*
* You should have received a copy of the GNU General Public License
* along with this program. If not, see <https://www.gnu.org/licenses/>.
*/
package com.rtbishop.look4sat.core.domain.cw
import kotlin.math.PI
import kotlin.math.cos
import kotlin.math.sin
import kotlin.math.sqrt
/**
* DSP utilities for CW (Morse code) decoding.
* Pure Kotlin, no NDK required.
*/
internal object CwDsp {
/**
* Design a simple bandpass FIR filter coefficients using windowed sinc method.
* @param lowCutoff lower cutoff frequency (Hz) as fraction of sampleRate
* @param highCutoff upper cutoff frequency (Hz) as fraction of sampleRate
* @param taps filter length (must be odd)
*/
fun bandpassFir(lowCutoff: Double, highCutoff: Double, taps: Int): FloatArray {
val n = if (taps % 2 == 0) taps + 1 else taps
val half = n / 2
val coeffs = FloatArray(n)
for (i in 0 until n) {
val idx = i - half
if (idx == 0) {
coeffs[i] = (2.0 * (highCutoff - lowCutoff)).toFloat()
} else {
val x = PI * idx
coeffs[i] = ((sin(2 * highCutoff * x) - sin(2 * lowCutoff * x)) / x).toFloat()
}
// Hamming window
coeffs[i] = (coeffs[i] * (0.54 - 0.46 * cos(2 * PI * i / (n - 1)))).toFloat()
}
// Normalize
val sum = coeffs.sum()
if (sum != 0f) for (i in 0 until n) coeffs[i] /= sum
return coeffs
}
/** Apply FIR filter to a buffer. */
fun applyFir(buffer: FloatArray, coeffs: FloatArray): FloatArray {
val out = FloatArray(buffer.size)
for (i in buffer.indices) {
var sum = 0f
for (j in coeffs.indices) {
val idx = i - j
if (idx >= 0) sum += buffer[idx] * coeffs[j]
}
out[i] = sum
}
return out
}
/** Simple envelope detector: abs + low-pass smoothing. */
fun envelope(signal: FloatArray, alpha: Float = 0.1f): FloatArray {
val env = FloatArray(signal.size)
var s = 0f
for (i in signal.indices) {
s = alpha * kotlin.math.abs(signal[i]) + (1 - alpha) * s
env[i] = s
}
return env
}
/** Estimate noise floor from envelope for adaptive thresholding. */
fun noiseFloor(env: FloatArray, fraction: Float = 0.3f): Float {
val sorted = env.sortedArray()
val median = sorted[sorted.size / 2]
return median + (sorted[sorted.size * 9 / 10] - median) * fraction
}
/** Simple Goertzel to detect a specific tone frequency. */
fun goertzel(buffer: FloatArray, targetFreq: Float, sampleRate: Int): Float {
val omega = 2.0 * PI * targetFreq / sampleRate
val coeff = 2.0 * cos(omega)
var s0 = 0.0; var s1 = 0.0; var s2 = 0.0
for (sample in buffer) {
s0 = sample.toDouble() + coeff * s1 - s2
s2 = s1; s1 = s0
}
val power = s2 * s2 + s1 * s1 - coeff * s1 * s2
return sqrt(kotlin.math.abs(power)).toFloat()
}
}
@@ -1,87 +0,0 @@
/*
* Look4Sat. Amateur radio satellite tracker and pass predictor.
* Copyright (C) 2019-2026 Arty Bishop and contributors.
*
* This program is free software: you can redistribute it and/or modify
* it under the terms of the GNU General Public License as published by
* the Free Software Foundation, either version 3 of the License, or
* (at your option) any later version.
*
* This program is distributed in the hope that it will be useful,
* but WITHOUT ANY WARRANTY; without even the implied warranty of
* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
* GNU General Public License for more details.
*
* You should have received a copy of the GNU General Public License
* along with this program. If not, see <https://www.gnu.org/licenses/>.
*/
package com.rtbishop.look4sat.core.domain.cw
import kotlin.math.cos
import kotlin.math.sqrt
/**
* Radix-2 FFT for real-valued input.
* Produces magnitude spectrum for the first N/2+1 bins.
* Used by CwSpectrogram for time-frequency analysis.
*/
internal class CwFFT(private val n: Int) {
init {
require(n > 0 && n and (n - 1) == 0) { "FFT size must be power of 2, got $n" }
}
private val cosTable = FloatArray(n / 2)
private val sinTable = FloatArray(n / 2)
init {
for (i in 0 until n / 2) {
val angle = -2.0 * kotlin.math.PI * i / n
cosTable[i] = cos(angle).toFloat()
sinTable[i] = kotlin.math.sin(angle).toFloat()
}
}
/** Compute magnitude spectrum for real input. Returns array of size n/2+1. */
fun magnitudeSpectrum(input: FloatArray): FloatArray {
require(input.size == n) { "Input size must be $n, got ${input.size}" }
val real = input.copyOf()
val imag = FloatArray(n)
// Bit-reversal permutation
var j = 0
for (i in 1 until n) {
var bit = n shr 1
while (j and bit != 0) { j = j xor bit; bit = bit shr 1 }
j = j xor bit
if (i < j) {
var tmp = real[i]; real[i] = real[j]; real[j] = tmp
}
}
// Radix-2 Cooley-Tukey FFT
var len = 2
while (len <= n) {
val half = len / 2
val step = n / len
for (i in 0 until n step len) {
for (k in 0 until half) {
val tReal = real[i + k + half] * cosTable[k * step] - imag[i + k + half] * sinTable[k * step]
val tImag = real[i + k + half] * sinTable[k * step] + imag[i + k + half] * cosTable[k * step]
real[i + k + half] = real[i + k] - tReal
imag[i + k + half] = imag[i + k] - tImag
real[i + k] += tReal
imag[i + k] += tImag
}
}
len = len shl 1
}
// Magnitude spectrum (first N/2+1 bins)
val mag = FloatArray(n / 2 + 1)
for (i in 0..n / 2) {
mag[i] = sqrt(real[i] * real[i] + imag[i] * imag[i]) / n
}
return mag
}
}
@@ -1,48 +0,0 @@
/*
* Look4Sat. Amateur radio satellite tracker and pass predictor.
* Copyright (C) 2019-2026 Arty Bishop and contributors.
*
* This program is free software: you can redistribute it and/or modify
* it under the terms of the GNU General Public License as published by
* the Free Software Foundation, either version 3 of the License, or
* (at your option) any later version.
*
* This program is distributed in the hope that it will be useful,
* but WITHOUT ANY WARRANTY; without even the implied warranty of
* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
* GNU General Public License for more details.
*
* You should have received a copy of the GNU General Public License
* along with this program. If not, see <https://www.gnu.org/licenses/>.
*/
package com.rtbishop.look4sat.core.domain.cw
/**
* First-order IIR filters.
* Ported from ggmorse/src/filter.h
*/
internal class CwFilter {
private var z1 = 0f
companion object {
private const val PI_F = 3.141592653589793f
}
fun highPass(sample: Float, cutoffHz: Float, sampleRate: Float): Float {
val rc = 1.0f / (2f * PI_F * cutoffHz)
val dt = 1.0f / sampleRate
val alpha = dt / (rc + dt)
z1 = alpha * (z1 + sample - z1)
return sample - z1
}
fun lowPass(sample: Float, cutoffHz: Float, sampleRate: Float): Float {
val rc = 1.0f / (2f * PI_F * cutoffHz)
val dt = 1.0f / sampleRate
val alpha = dt / (rc + dt)
z1 += alpha * (sample - z1)
return z1
}
fun reset() { z1 = 0f }
}
@@ -1,54 +0,0 @@
/*
* Look4Sat. Amateur radio satellite tracker and pass predictor.
* Copyright (C) 2019-2026 Arty Bishop and contributors.
*
* This program is free software: you can redistribute it and/or modify
* it under the terms of the GNU General Public License as published by
* the Free Software Foundation, either version 3 of the License, or
* (at your option) any later version.
*
* This program is distributed in the hope that it will be useful,
* but WITHOUT ANY WARRANTY; without even the implied warranty of
* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
* GNU General Public License for more details.
*
* You should have received a copy of the GNU General Public License
* along with this program. If not, see <https://www.gnu.org/licenses/>.
*/
package com.rtbishop.look4sat.core.domain.cw
import kotlin.math.cos
import kotlin.math.sqrt
/**
* Running Goertzel filter for CW tone detection.
* Tracks a specific frequency over time with a sliding window.
* Ported from ggmorse/src/goertzel.h
*/
internal class CwGoertzel {
private var s1 = 0.0
private var s2 = 0.0
private var coeff = 0.0
fun init(sampleRate: Float, targetFreq: Float) {
val omega = 2.0 * kotlin.math.PI * targetFreq / sampleRate
coeff = 2.0 * cos(omega)
s1 = 0.0
s2 = 0.0
}
fun process(sample: Float) {
val s0 = sample.toDouble() + coeff * s1 - s2
s2 = s1
s1 = s0
}
fun getPower(): Float {
return sqrt(s2 * s2 + s1 * s1 - coeff * s1 * s2).toFloat()
}
fun reset() {
s1 = 0.0
s2 = 0.0
}
}
@@ -1,53 +0,0 @@
/*
* Look4Sat. Amateur radio satellite tracker and pass predictor.
* Copyright (C) 2019-2026 Arty Bishop and contributors.
*
* This program is free software: you can redistribute it and/or modify
* it under the terms of the GNU General Public License as published by
* the Free Software Foundation, either version 3 of the License, or
* (at your option) any later version.
*
* This program is distributed in the hope that it will be useful,
* but WITHOUT ANY WARRANTY; without even the implied warranty of
* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
* GNU General Public License for more details.
*
* You should have received a copy of the GNU General Public License
* along with this program. If not, see <https://www.gnu.org/licenses/>.
*/
package com.rtbishop.look4sat.core.domain.cw
/**
* Simple linear resampler.
* Downsamples from input sample rate to output sample rate.
* Ported from ggmorse/src/resampler.h
*/
internal class CwResampler(private val inputRate: Float, private val outputRate: Float) {
private val ratio = inputRate / outputRate
private var lastSample = 0f
fun process(input: FloatArray): FloatArray {
if (ratio <= 0f || input.isEmpty()) return input
val outputLen = (input.size / ratio).toInt() + 1
val output = FloatArray(outputLen)
var idx = 0f
for (i in output.indices) {
val intIdx = idx.toInt()
val frac = idx - intIdx
if (intIdx + 1 < input.size) {
output[i] = input[intIdx] * (1 - frac) + input[intIdx + 1] * frac
} else if (intIdx < input.size) {
output[i] = input[intIdx] * (1 - frac) + lastSample * frac
} else {
output[i] = lastSample
}
idx += ratio
}
lastSample = input.lastOrNull() ?: lastSample
return output
}
fun reset() {
lastSample = 0f
}
}
@@ -1,61 +0,0 @@
/*
* Look4Sat. Amateur radio satellite tracker and pass predictor.
* Copyright (C) 2019-2026 Arty Bishop and contributors.
*
* This program is free software: you can redistribute it and/or modify
* it under the terms of the GNU General Public License as published by
* the Free Software Foundation, either version 3 of the License, or
* (at your option) any later version.
*
* This program is distributed in the hope that it will be useful,
* but WITHOUT ANY WARRANTY; without even the implied warranty of
* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
* GNU General Public License for more details.
*
* You should have received a copy of the GNU General Public License
* along with this program. If not, see <https://www.gnu.org/licenses/>.
*/
package com.rtbishop.look4sat.core.domain.cw
import kotlin.math.cos
import kotlin.math.sin
import kotlin.math.sqrt
/**
* Lightweight pitch detector using DFT at specific frequency bins.
* Only scans [200, 1200] Hz in configurable steps — much faster than full FFT.
* Ported from ggmorse/src/stfft.h (simplified for CW use case).
*/
internal class CwPitchDetector(
private val sampleRate: Float,
private val minFreq: Float = 200f,
private val maxFreq: Float = 1200f,
private val stepHz: Float = 10f
) {
/**
* Find the dominant pitch frequency in the buffer.
* Returns null if no significant pitch found.
*/
fun findPitch(buffer: FloatArray): Float? {
if (buffer.isEmpty()) return null
var bestFreq = 0f
var bestPower = 0f
var freq = minFreq
while (freq <= maxFreq) {
var real = 0.0
var imag = 0.0
val omega = 2.0 * kotlin.math.PI * freq / sampleRate
for (i in buffer.indices) {
real += buffer[i] * cos(omega * i)
imag += buffer[i] * -sin(omega * i)
}
val power = (real * real + imag * imag).toFloat()
if (power > bestPower) {
bestPower = power
bestFreq = freq
}
freq += stepHz
}
return if (bestPower > 0.001f) bestFreq else null
}
}
@@ -1,170 +0,0 @@
/*
* Look4Sat. Amateur radio satellite tracker and pass predictor.
* Copyright (C) 2019-2026 Arty Bishop and contributors.
*
* This program is free software: you can redistribute it and/or modify
* it under the terms of the GNU General Public License as published by
* the Free Software Foundation, either version 3 of the License, or
* (at your option) any later version.
*
* This program is distributed in the hope that it will be useful,
* but WITHOUT ANY WARRANTY; without even the implied warranty of
* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
* GNU General Public License for more details.
*
* You should have received a copy of the GNU General Public License
* along with this program. If not, see <https://www.gnu.org/licenses/>.
*/
package com.rtbishop.look4sat.core.domain.cw
/**
* Sliding-window spectrogram for CW decoding.
* Maintains a time-frequency matrix updated with each audio frame.
*
* FFT size: 256, hop size: 64, sample rate: 4000 (or native)
* Frequency bins: 6..38 (187-1187 Hz, covers typical CW range)
* History: 40 columns (320 ms window)
* Time resolution: 64/4000 = 16 ms, Frequency resolution: 4000/256 = 15.625 Hz
*/
internal class CwSpectrogram(
private val fftSize: Int = 256,
private val hopSize: Int = 64,
private val sampleRate: Int = 4000,
private val minBin: Int = 6,
private val maxBin: Int = 38,
val historyCols: Int = 40
) {
private val fft = CwFFT(fftSize)
val numBins: Int get() = maxBin - minBin + 1
// Hanning window
private val hanning = FloatArray(fftSize) {
(0.5 - 0.5 * kotlin.math.cos(2.0 * kotlin.math.PI * it / (fftSize - 1))).toFloat()
}
// Spectrogram data: [timeCol][freqBin]
private val spectrogram = Array(historyCols) { FloatArray(numBins) }
private var currentCol = 0
private var samplesBuffered = 0
private val buffer = FloatArray(fftSize)
// Per-bin running energy for normalization
private val binEnergy = FloatArray(numBins) { 1f }
private val alpha = 0.95f
// Counter for new columns generated since last check
private var newColumnCount = 0
/** Add audio samples, compute FFTs for each complete hop. */
fun addSamples(samples: FloatArray) {
var offset = 0
while (offset < samples.size) {
val needed = fftSize - samplesBuffered
val copyLen = minOf(needed, samples.size - offset)
System.arraycopy(samples, offset, buffer, samplesBuffered, copyLen)
samplesBuffered += copyLen
offset += copyLen
if (samplesBuffered >= fftSize) {
processFrame()
newColumnCount++
// Shift buffer: keep last (fftSize - hopSize) samples
System.arraycopy(buffer, hopSize, buffer, 0, fftSize - hopSize)
samplesBuffered = fftSize - hopSize
}
}
}
/** Get number of new columns generated since the last call to this method. */
fun getNewColumns(): Int {
val count = newColumnCount
newColumnCount = 0
return count
}
private fun processFrame() {
// Apply Hanning window
val windowed = FloatArray(fftSize) { buffer[it] * hanning[it] }
// Compute FFT magnitude spectrum
val mag = fft.magnitudeSpectrum(windowed)
// Update spectrogram column
val col = spectrogram[currentCol]
for (b in 0 until numBins) {
val binIdx = minBin + b
val rawMag = mag[binIdx]
// Running energy normalization
binEnergy[b] = alpha * binEnergy[b] + (1 - alpha) * rawMag
col[b] = if (binEnergy[b] > 1e-6f) rawMag / binEnergy[b] else 0f
}
currentCol = (currentCol + 1) % historyCols
}
/** Get the current spectrogram as a 2D array in chronological order. */
fun getSpectrogram(): Array<FloatArray> {
val result = Array(historyCols) { i ->
val srcIdx = (currentCol + i) % historyCols
spectrogram[srcIdx].copyOf()
}
return result
}
/** Get the most recent column (current energy across all frequencies). */
fun getCurrentColumn(): FloatArray {
val prevCol = (currentCol - 1 + historyCols) % historyCols
return spectrogram[prevCol].copyOf()
}
/** Get a column by index from the history (0 = oldest, historyCols-1 = newest). */
fun getColumn(index: Int): FloatArray {
val clamped = index.coerceIn(0, historyCols - 1)
val srcIdx = (currentCol - historyCols + clamped + historyCols) % historyCols
return spectrogram[srcIdx].copyOf()
}
/** Find the frequency bin with peak energy. Returns -1 if no significant signal. */
fun findPeakBin(): Int {
val col = getCurrentColumn()
var maxBin = -1
var maxVal = 0f
for (i in col.indices) {
if (col[i] > maxVal) {
maxVal = col[i]
maxBin = i
}
}
return if (maxVal > 0.3f) maxBin else -1
}
/** Get energy at a specific bin over the last N columns in chronological order. */
fun getBinEnergy(bin: Int, numCols: Int): FloatArray {
val clamped = minOf(numCols, historyCols)
val result = FloatArray(clamped)
for (i in 0 until clamped) {
val colIdx = (currentCol - clamped + i + historyCols) % historyCols
result[i] = spectrogram[colIdx][bin]
}
return result
}
/** Get the bin index for a frequency in Hz. */
fun freqToBin(freqHz: Float): Int {
val bin = (freqHz * fftSize / sampleRate).toInt()
return (bin - minBin).coerceIn(0, numBins - 1)
}
/** Get the center frequency for a bin. */
fun binToFreq(bin: Int): Float {
return (minBin + bin).toFloat() * sampleRate / fftSize
}
fun reset() {
for (col in spectrogram) col.fill(0f)
currentCol = 0
samplesBuffered = 0
buffer.fill(0f)
binEnergy.fill(1f)
}
}
@@ -1,17 +0,0 @@
package com.rtbishop.look4sat.core.domain.model
/** One public AMSAT satellite status report submission. */
data class AmSatReportSubmission(
val name: String,
val report: String,
val callsign: String,
val gridSquare: String,
val reportedAtUtcMillis: Long
)
/** Result of submitting an AMSAT satellite status report. */
data class AmSatReportSubmitResult(
val success: Boolean,
val message: String = "",
val reportId: String? = null
)
@@ -1,194 +0,0 @@
/*
* Look4Sat. Amateur radio satellite tracker and pass predictor.
* Copyright (C) 2019-2026 Arty Bishop and contributors.
*
* This program is free software: you can redistribute it and/or modify
* it under the terms of the GNU General Public License as published by
* the Free Software Foundation, either version 3 of the License, or
* (at your option) any later version.
*
* This program is distributed in the hope that it will be useful,
* but WITHOUT ANY WARRANTY; without even the implied warranty of
* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
* GNU General Public License for more details.
*
* You should have received a copy of the GNU General Public License
* along with this program. If not, see <https://www.gnu.org/licenses/>.
*/
package com.rtbishop.look4sat.core.domain.model
/**
* Award progress computed from the confirmed-QSO store.
*
* @param type which award
* @param workedKeys matching keys for the boundary assets: each is compared
* against the region "code" field of the award's GeoJSON
* (e.g. WAPC -> "GD", WAJA -> "34", WAZ -> "24",
* WAS -> "CA", DXCC -> "318", VUCC -> "OL62").
* @param count distinct worked units (grids / entities / provinces / ...)
* @param target units required for the award
*/
data class AwardProgress(
val type: AwardType,
val workedKeys: Set<String>,
val count: Int,
val target: Int
)
enum class AwardType { DXCC, VUCC, WAPC, WAJA, WAZ, WAS }
object AwardTargets {
const val DXCC = 100
const val VUCC = 100
const val WAPC = 34
const val WAJA = 47
const val WAZ = 40
const val WAS = 50
}
/**
* Derives six-award progress from the confirmed QSO store.
*
* Award rules (ADIF / award-program semantics):
* - VUCC: distinct 4-char gridsquares.
* - DXCC: distinct ARRL DXCC entities (from the QSO's dxcc field; falls back
* to a callsign-prefix guess when LoTW omitted it).
* - WAPC: distinct Chinese provinces (31 mainland STATE codes) plus the
* Hong Kong / Macao / Taiwan entities (counted as their own provinces).
* - WAJA: distinct Japanese prefectures (STATE code "01".."47").
* - WAZ: distinct CQ zones.
* - WAS: distinct US states (STATE abbreviations).
*
* The ADIF STATE field's meaning depends on the DXCC entity
* ("STATE depends on DXCC"), so every QSO is first classified by entity.
*/
object AwardCalculator {
fun calculate(qsosByGrid: Map<String, List<GridQso>>): List<AwardProgress> {
val all = qsosByGrid.values.flatten()
return listOf(
AwardProgress(
AwardType.VUCC,
workedKeys = qsosByGrid.keys,
count = qsosByGrid.size,
target = AwardTargets.VUCC
),
calculateDxcc(all),
calculateWapc(all),
calculateWaja(all),
calculateWaz(all),
calculateWas(all)
)
}
private fun calculateDxcc(all: List<GridQso>): AwardProgress {
val keys = mutableSetOf<String>()
for (q in all) {
val code = q.dxcc ?: prefixEntityCode(q.call)
if (code != null) keys.add(code.toString())
}
return AwardProgress(AwardType.DXCC, keys, keys.size, AwardTargets.DXCC)
}
private fun calculateWapc(all: List<GridQso>): AwardProgress {
val keys = mutableSetOf<String>()
for (q in all) {
when (entityOf(q)) {
Entity.CHINA -> q.state?.trim()?.uppercase()?.takeIf { it in CN_STATES }?.let { keys.add(it) }
Entity.HONG_KONG -> keys.add(HK_CODE)
Entity.MACAO -> keys.add(MO_CODE)
Entity.TAIWAN -> keys.add(TW_CODE)
else -> {}
}
}
return AwardProgress(AwardType.WAPC, keys, keys.size, AwardTargets.WAPC)
}
private fun calculateWaja(all: List<GridQso>): AwardProgress {
val keys = mutableSetOf<String>()
for (q in all) {
if (entityOf(q) != Entity.JAPAN) continue
q.state?.trim()?.takeIf { it.length == 2 && it.all(Char::isDigit) }?.let { keys.add(it) }
}
return AwardProgress(AwardType.WAJA, keys, keys.size, AwardTargets.WAJA)
}
private fun calculateWaz(all: List<GridQso>): AwardProgress {
val keys = mutableSetOf<String>()
for (q in all) {
q.cqz?.takeIf { it in 1..40 }?.let { keys.add(it.toString()) }
}
return AwardProgress(AwardType.WAZ, keys, keys.size, AwardTargets.WAZ)
}
private fun calculateWas(all: List<GridQso>): AwardProgress {
val keys = mutableSetOf<String>()
for (q in all) {
if (entityOf(q) != Entity.USA) continue
q.state?.trim()?.uppercase()?.takeIf { it in US_STATES }?.let { keys.add(it) }
}
return AwardProgress(AwardType.WAS, keys, keys.size, AwardTargets.WAS)
}
private enum class Entity { CHINA, HONG_KONG, MACAO, TAIWAN, JAPAN, USA, OTHER }
private fun entityOf(q: GridQso): Entity = when (q.dxcc) {
318 -> Entity.CHINA
321 -> Entity.HONG_KONG
152 -> Entity.MACAO
386 -> Entity.TAIWAN
339 -> Entity.JAPAN
291 -> Entity.USA
else -> prefixEntity(q.call)
}
/** Coarse entity from callsign prefix, used when LoTW omitted the DXCC field. */
private fun prefixEntity(call: String): Entity {
val c = call.uppercase().substringBefore('/')
return when {
CN_PREFIXES.any { c.startsWith(it) } -> Entity.CHINA
c.startsWith("VR") -> Entity.HONG_KONG
c.startsWith("XX9") -> Entity.MACAO
TW_PREFIXES.any { c.startsWith(it) } -> Entity.TAIWAN
JP_PREFIXES.any { c.startsWith(it) } -> Entity.JAPAN
US_PREFIXES.any { c.startsWith(it) } -> Entity.USA
else -> Entity.OTHER
}
}
/** ARRL DXCC entity code guessed from callsign prefix (very coarse). */
private fun prefixEntityCode(call: String): Int? {
return when (prefixEntity(call)) {
Entity.CHINA -> 318
Entity.HONG_KONG -> 321
Entity.MACAO -> 152
Entity.TAIWAN -> 386
Entity.JAPAN -> 339
Entity.USA -> 291
else -> null
}
}
private val CN_PREFIXES = listOf("BA", "BD", "BG", "BH", "BI", "BY", "BJ", "BK", "BL", "BQ", "BR", "BS")
private val TW_PREFIXES = listOf("BM", "BV", "BU", "BW", "BX", "BN", "BO", "BT", "BZ")
private val JP_PREFIXES =
listOf("7J", "7K", "7L", "7M", "7N") + ('A'..'Z').map { "J$it" }
private val US_PREFIXES =
listOf("AA", "AB", "AC", "AD", "AE", "AF", "AG", "AH", "AI", "AJ", "AK", "AL", "K", "N", "W")
private val CN_STATES = setOf(
"AH", "BJ", "CQ", "FJ", "GD", "GS", "GX", "GZ", "HA", "HB", "HE", "HI", "HL", "HN", "JL",
"JS", "JX", "LN", "NM", "NX", "QH", "SC", "SD", "SH", "SN", "SX", "TJ", "XJ", "XZ", "YN", "ZJ"
)
private val US_STATES = setOf(
"AL", "AK", "AZ", "AR", "CA", "CO", "CT", "DE", "FL", "GA", "HI", "ID", "IL", "IN", "IA",
"KS", "KY", "LA", "ME", "MD", "MA", "MI", "MN", "MS", "MO", "MT", "NE", "NV", "NH", "NJ",
"NM", "NY", "NC", "ND", "OH", "OK", "OR", "PA", "RI", "SC", "SD", "TN", "TX", "UT", "VT",
"VA", "WA", "WV", "WI", "WY"
)
private const val HK_CODE = "HK"
private const val MO_CODE = "MO"
private const val TW_CODE = "TW"
}
@@ -1,23 +0,0 @@
/*
* Look4Sat. Amateur radio satellite tracker and pass predictor.
* Copyright (C) 2019-2026 Arty Bishop and contributors.
*
* This program is free software: you can redistribute it and/or modify
* it under the terms of the GNU General Public License as published by
* the Free Software Foundation, either version 3 of the License, or
* (at your option) any later version.
*
* This program is distributed in the hope that it will be useful,
* but WITHOUT ANY WARRANTY; without even the implied warranty of
* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
* GNU General Public License for more details.
*
* You should have received a copy of the GNU General Public License
* along with this program. If not, see <https://www.gnu.org/licenses/>.
*/
package com.rtbishop.look4sat.core.domain.model
object Constants {
const val FREQ_OFFSET_MIN_HZ = -50_000L
const val FREQ_OFFSET_MAX_HZ = 50_000L
}
@@ -1,78 +0,0 @@
/*
* Look4Sat. Amateur radio satellite tracker and pass predictor.
* Copyright (C) 2019-2026 Arty Bishop and contributors.
*
* This program is free software: you can redistribute it and/or modify
* it under the terms of the GNU General Public License as published by
* the Free Software Foundation, either version 3 of the License, or
* (at your option) any later version.
*
* This program is distributed in the hope that it will be useful,
* but WITHOUT ANY WARRANTY; without even the implied warranty of
* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
* GNU General Public License for more details.
*
* You should have received a copy of the GNU General Public License
* along with this program. If not, see <https://www.gnu.org/licenses/>.
*/
package com.rtbishop.look4sat.core.domain.model
/**
* One confirmed satellite QSO as reported by LoTW, kept per worked gridsquare
* so the map can show, for any worked grid, which callsigns were worked there
* and when.
*
* @param call opposite station callsign (as logged by the opposite op)
* @param epochMs QSO date+time in UTC milliseconds
* @param satName satellite name (e.g. "FO-29")
* @param mode ADIF mode (FM / CW / SSB ...)
* @param bandUp uplink band as reported by LoTW (BAND_RX: "70CM", "2M", "10M"...)
* @param bandDown downlink band (BAND: "2M", "70CM"...) — may be empty when
* LoTW did not include it
* @param dxcc ARRL DXCC entity code of the opposite station (from ADIF
* <DXCC>), or null when LoTW omitted it
* @param country DXCC entity name (ADIF <COUNTRY>), or null
* @param cqz CQ zone of the opposite station (ADIF <CQZ>), or null
* @param state Primary administrative subdivision of the opposite station
* (ADIF <STATE>). Interpretation depends on the DXCC entity:
* China -> province code ("GD"), Japan -> prefecture number
* ("34"), USA -> state abbreviation ("CA"). Null when absent.
*/
data class GridQso(
val call: String,
val epochMs: Long,
val satName: String,
val mode: String,
val bandUp: String,
val bandDown: String,
val dxcc: Int? = null,
val country: String? = null,
val cqz: Int? = null,
val state: String? = null,
/** 4-char grid the station itself operated from (ADIF MY_GRIDSQUARE). */
val myGrid: String? = null
) {
/** Short uplink/downlink band label ("U/V", "V/A"), or "" when unknown. */
val bandLabel: String
get() {
val up = bandAbbrev(bandUp)
val down = bandAbbrev(bandDown)
return when {
up.isNotEmpty() && down.isNotEmpty() -> "$up/$down"
up.isNotEmpty() -> up
else -> ""
}
}
private fun bandAbbrev(band: String): String = when (band.trim().uppercase()) {
"70CM" -> "U"
"2M" -> "V"
"10M" -> "A"
"6M" -> "V"
"1.2G" -> "L"
"2.4G" -> "S"
"23CM" -> "L"
"13CM" -> "S"
else -> band.trim().uppercase()
}
}
@@ -1,9 +0,0 @@
package com.rtbishop.look4sat.core.domain.model
/** Latest release info fetched from the fork's GitHub releases API. */
data class LatestRelease(
val versionTag: String, // e.g. "v4.4.6-ba7opf.6"
val title: String, // release name, may be empty
val body: String, // release notes / update description
val apkUrl: String? // first .apk asset download URL, null if absent
)
@@ -1,31 +0,0 @@
/*
* Look4Sat. Amateur radio satellite tracker and pass predictor.
* Copyright (C) 2019-2026 Arty Bishop and contributors.
*
* This program is free software: you can redistribute it and/or modify
* it under the terms of the GNU General Public License as published by
* the Free Software Foundation, either version 3 of the License, or
* (at your option) any later version.
*
* This program is distributed in the hope that it will be useful,
* but WITHOUT ANY WARRANTY; without even the implied warranty of
* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
* GNU General Public License for more details.
*
* You should have received a copy of the GNU General Public License
* along with this program. If not, see <https://www.gnu.org/licenses/>.
*/
package com.rtbishop.look4sat.core.domain.model
/**
* A station the user marked in a gridsquare they have NOT yet worked — a
* reminder to try to contact that callsign. Stored per 4-char grid (one mark
* per grid).
*
* @param call the callsign the user wants to work (uppercase)
* @param epochMs the moment the mark was created, UTC milliseconds
*/
data class MarkedStation(
val call: String,
val epochMs: Long
)
@@ -32,7 +32,5 @@ data class SatRadio(
@SerialName("uplink_high") val uplinkHigh: Long?,
@SerialName("uplink_mode") val uplinkMode: String?,
@SerialName("invert") val isInverted: Boolean,
@SerialName("norad_cat_id") val catnum: Int?,
/** Set for manually imported transceivers, which remote updates must not replace. */
val isCustom: Boolean = false
@SerialName("norad_cat_id") val catnum: Int?
)
@@ -1,38 +0,0 @@
package com.rtbishop.look4sat.core.domain.model
/** One satellite status report (AMSAT site tooltip data) */
data class SatReport(
val id: String, // 报告 ID(a885153)
val statusText: String, // Heard / Telemetry Only / Not Heard ...
val call: String, // 呼号
val grid: String, // 网格坐标(可为空)
val dateUtc: String, // 2026-08-04
val timeUtc: String // 2:46-:59 UTC
)
/** State of one 2-hour slot */
data class SatSlot(
val statusColor: Long, // ARGB 状态色(-1 = 无报告)
val count: Int, // 报告数量(0 = 无)
val reportIds: List<String> = emptyList() // 该槽报告 ID 列表
)
/** One satellite day (12 two-hour slots) */
data class SatDay(
val dateLabel: String, // "Aug 4"
val slots: List<SatSlot>, // 12 槽(00-02 ... 22-24)
val streakCount: Int = 0 // 当天最近连续相同状态报告数(0 = 当天无报告)
)
/** One satellite, 3 days of state */
data class SatStatus(
val name: String, // "AO-123_[FM]"
val days: List<SatDay> // 3 days (newest first)
)
/** Overall page parse result */
data class SatStatusPage(
val fetchedAtUtcMs: Long,
val statuses: List<SatStatus>,
val reports: Map<String, SatReport> // id → 报告
)
@@ -27,12 +27,7 @@ data class PassesSettings(
val showDeepSpace: Boolean = true,
val hoursAhead: Int,
val minElevation: Double,
val aosStartMinute: Int = 0,
val aosEndMinute: Int = 23 * 60 + 59,
val invertAosTimeWindow: Boolean = false,
val selectedModes: List<String>,
/** 历史过境回看窗口(小时): 过境列表从 now-hoursBefore 开始计算. */
val hoursBefore: Int = 0
val selectedModes: List<String>
)
data class RCSettings(
@@ -44,7 +39,6 @@ data class RCSettings(
val frequencyAddress: String,
val frequencyPort: String,
val frequencyFormat: String,
val frequencyOffsetHz: Long = 0L,
val bluetoothRotatorState: Boolean,
val bluetoothRotatorFormat: String,
val bluetoothRotatorName: String,
@@ -61,46 +55,32 @@ data class OtherSettings(
val stateOfUtc: Boolean,
val stateOfLightTheme: Boolean,
val stateOfNightMode: Boolean = false,
val stateOfMapGrid: Boolean = false,
/** Grid mode: label worked (green) cells with the FIRST callsign worked
* in that grid instead of the Maidenhead code; non-worked cells get no
* label at all. */
val stateOfMapFirstCall: Boolean = false,
val shouldSeeWarning: Boolean,
val shouldSeeWhatsNew: Boolean,
val sstvMode: String = "Auto",
val lowElevation: Double = 15.0,
val highElevation: Double = 45.0,
/** Independent auto-sync toggle for LoTW confirmed grids (separate from the
* ephemeris auto-update; only effective after at least one manual sync). */
val stateOfAutoLotwSync: Boolean = true,
/** 指南针手动航向偏置(度, -180..180): 雷达方位 = 传感器方位 + 磁偏角 + 该偏置. */
val compassOffsetDegrees: Float = 0f
val mapSource: String = MapSource.TIANDITU_VECTOR,
val tiandituKey: String = ""
)
object MapSource {
const val OSM = "osm"
const val TIANDITU = "tianditu"
const val TIANDITU_VECTOR = "tianditu_vector"
const val TIANDITU_IMAGE = "tianditu_image"
fun normalize(source: String): String = when (source) {
TIANDITU -> TIANDITU_VECTOR
OSM, TIANDITU_VECTOR, TIANDITU_IMAGE -> source
else -> TIANDITU_VECTOR
}
}
data class DataSourcesSettings(
val satelliteUrls: List<String>,
val transceiversUrls: List<String>,
val satelliteEnabled: List<Boolean> = emptyList(),
val transceiversEnabled: List<Boolean> = emptyList()
) {
fun isSatelliteEnabled(index: Int): Boolean = satelliteEnabled.getOrElse(index) { true }
fun isTransceiverEnabled(index: Int): Boolean = transceiversEnabled.getOrElse(index) { true }
}
data class WavelogSettings(
val url: String = "",
val token: String = ""
) {
val isConfigured: Boolean get() = url.isNotBlank() && token.isNotBlank()
}
data class LoTWSettings(
val callsign: String = "",
val password: String = ""
) {
val isConfigured: Boolean get() = callsign.isNotBlank() && password.isNotBlank()
}
val useCustomTLE: Boolean,
val useCustomTransceivers: Boolean,
val tleUrl: String,
val transceiversUrl: String
)
data class RadioControlSettings(
val enabled: Boolean,
@@ -109,20 +89,12 @@ data class RadioControlSettings(
val rxRadioAddress: String,
val txRadioName: String,
val rxRadioName: String,
val baudRate: Int,
/** IC-705 only: use single-radio split-VFO mode instead of two radios. */
val splitMode: Boolean = false
val baudRate: Int
) {
companion object {
const val MODEL_YAESU_FT817 = "Yaesu FT-817/818"
const val MODEL_YAESU_FT857 = "Yaesu FT-857/897"
const val MODEL_ICOM_IC705 = "Icom IC-705"
val SUPPORTED_RADIOS = listOf(MODEL_YAESU_FT817, MODEL_YAESU_FT857, MODEL_ICOM_IC705)
/** Baud rates available for Yaesu radios. */
val BAUD_RATES_YAESU = listOf(4800, 9600, 38400)
/** Baud rates available for Icom IC-705 (higher speeds supported via CI-V USB/BT). */
val BAUD_RATES_ICOM = listOf(4800, 9600, 19200, 38400, 57600, 115200)
val SUPPORTED_RADIOS = listOf(
"Yaesu FT-817/818",
"Yaesu FT-857/897"
)
}
}
@@ -424,15 +424,11 @@ object CelestialComputer {
}
if (sunrise == 0.0) sunrise = daynum
// Phase 4: fast-forward through the day until sun drops back below threshold.
// Start from just after sunrise (small offset) so the sun is clearly above
// the threshold. This prevents a bug where Phase 3 converges to a point
// slightly below -threshold, causing Phase 4 to skip and Phase 5 to converge
// to the same time as sunrise, producing identical sunrise/sunset times.
daynum = sunrise + 0.001
// Phase 4: fast-forward through the day until sun drops back below threshold
daynum = sunrise
sunPos = getSunPosition(observer, daynumToMillis(daynum))
guard = 0
while (sunPos.elevation >= -threshold && guard++ < 500) {
while (sunPos.elevation > -threshold && guard++ < 500) {
daynum += 0.008
sunPos = getSunPosition(observer, daynumToMillis(daynum))
}
@@ -1,23 +0,0 @@
package com.rtbishop.look4sat.core.domain.repository
import com.rtbishop.look4sat.core.domain.model.AmSatReportSubmission
import com.rtbishop.look4sat.core.domain.model.AmSatReportSubmitResult
import com.rtbishop.look4sat.core.domain.model.SatStatusPage
/** AMSAT satellite status data source */
interface IAmSatRepository {
/** Cached AMSAT status page for the current foreground session, if any. */
fun getCachedStatus(): SatStatusPage?
/** Fetch and parse the AMSAT status page; null on failure. */
suspend fun fetchStatus(forceRefresh: Boolean = false): SatStatusPage?
/** Warm the foreground-session cache without forcing a network reload. */
suspend fun prefetchStatus()
/** Clear the foreground-session status cache. */
fun clearStatusCache()
/** Submit a public AMSAT satellite status report. */
suspend fun submitReport(submission: AmSatReportSubmission): AmSatReportSubmitResult
}
@@ -18,8 +18,8 @@
package com.rtbishop.look4sat.core.domain.repository
interface IDatabaseRepo {
suspend fun updateTLEFromFile(uri: String): Int
suspend fun updateTransceiversFromFile(uri: String): Int
suspend fun updateTLEFromFile(uri: String)
suspend fun updateTransceiversFromFile(uri: String)
suspend fun updateFromRemote()
suspend fun clearAllData()
}
@@ -1,72 +0,0 @@
/*
* Look4Sat. Amateur radio satellite tracker and pass predictor.
* Copyright (C) 2019-2026 Arty Bishop and contributors.
*
* This program is free software: you can redistribute it and/or modify
* it under the terms of the GNU General Public License as published by
* the Free Software Foundation, either version 3 of the License, or
* (at your option) any later version.
*
* This program is distributed in the hope that it will be useful,
* but WITHOUT ANY WARRANTY; without even the implied warranty of
* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
* GNU General Public License for more details.
*
* You should have received a copy of the GNU General Public License
* along with this program. If not, see <https://www.gnu.org/licenses/>.
*/
package com.rtbishop.look4sat.core.domain.repository
/** Fetches confirmed gridsquares directly from ARRL LoTW. */
interface ILoTWRepository {
/**
* Fetch all confirmed (QSL_RCVD=Y) gridsquares for the given LoTW account.
* Returns the 4-char grid set with an explicit failure cause on error.
*/
suspend fun fetchConfirmedGrids(callsign: String, password: String): LoTWResult
/**
* Same report, but keeps the per-QSO detail of every confirmed satellite
* QSO (call / time / satellite / mode / bands), grouped by worked 4-char
* gridsquare. Failure cause is kept explicit.
*
* @param since QSL-since date ("yyyyMMdd" or "yyyy-MM-dd"); use an early
* date for a full report, or the last sync date for an
* incremental pull. Empty falls back to a full report.
* @param onProgress streamed download progress (phase + bytes + estimate),
* invoked from the IO dispatcher; may be called on every
* read chunk.
*/
suspend fun fetchConfirmedGridQsos(
callsign: String,
password: String,
since: String = "",
onProgress: (LoTWProgress) -> Unit = {}
): LoTWResult
}
/** Streamed progress of a LoTW report download. */
data class LoTWProgress(
val phase: LoTWPhase,
/** Bytes read so far (uncompressed body). */
val bytesRead: Long = 0,
/** Estimated total body bytes, derived from <APP_LoTW_NUMREC>; 0 before known. */
val expectedBytes: Long = 0,
/** Smoothed download speed in bytes/second; 0 while unknown. */
val speedBps: Long = 0,
/** Total QSL records reported in the header (<APP_LoTW_NUMREC>); 0 before known. */
val qsoCount: Long = 0
) {
/** Fraction 0..1 of the estimated body already read; 0 while unknown. */
val fraction: Float
get() = if (expectedBytes > 0 && bytesRead > 0)
(bytesRead.toFloat() / expectedBytes).coerceIn(0f, 1f) else 0f
/** Estimated seconds remaining; 0 while size or speed is unknown. */
val remainingSeconds: Long
get() = if (expectedBytes > 0 && speedBps > 0)
((expectedBytes - bytesRead) / speedBps).coerceAtLeast(0) else 0L
}
enum class LoTWPhase { Connecting, Downloading }
@@ -16,13 +16,12 @@
* along with this program. If not, see <https://www.gnu.org/licenses/>.
*/
package com.rtbishop.look4sat.core.domain.repository
import com.rtbishop.look4sat.core.domain.model.SatRadio
import com.rtbishop.look4sat.core.domain.usecase.IAddToCalendar
import com.rtbishop.look4sat.core.domain.usecase.IAudioCapture
import com.rtbishop.look4sat.core.domain.usecase.ISaveImage
import com.rtbishop.look4sat.core.domain.usecase.IShowToast
import kotlinx.coroutines.CoroutineScope
import kotlinx.coroutines.flow.StateFlow
interface IMainContainer {
val appScope: CoroutineScope
@@ -30,13 +29,7 @@ interface IMainContainer {
val selectionRepo: ISelectionRepo
val satelliteRepo: ISatelliteRepo
val databaseRepo: IDatabaseRepo
val amSatRepo: IAmSatRepository
val updateRepo: IUpdateRepository
val wavelogRepo: IWavelogRepository
val lotwRepo: com.rtbishop.look4sat.core.domain.repository.ILoTWRepository
val radioTrackingService: IRadioTrackingService
val mutualPassData: StateFlow<MutualPassData>
fun setMutualPassData(data: MutualPassData)
fun provideAddToCalendar(): IAddToCalendar
fun provideShowToast(): IShowToast
fun provideBluetoothReporter(): IReporter
@@ -48,25 +41,6 @@ interface IMainContainer {
fun provideSaveImage(): ISaveImage
}
data class MutualPassData(
val samples: List<Pair<Long, Pair<Double, Double>>> = emptyList(),
val trackSamples: List<TrackSampleData> = emptyList(),
val startTime: Long = 0L,
val endTime: Long = 0L,
val maxElev: Double = 10.0,
val labelA: String = "你",
val labelB: String = "友台"
)
/** Minimal track sample for cross-module sharing (angles in degrees). */
data class TrackSampleData(
val time: Long = 0L,
val azimuthA: Double,
val elevationA: Double,
val azimuthB: Double,
val elevationB: Double
)
interface IContainerProvider {
fun getMainContainer(): IMainContainer
}
@@ -38,51 +38,4 @@ interface IRadioController {
suspend fun pttOn(): Boolean
suspend fun pttOff(): Boolean
// ── Extended operations (IC-705 / CI-V) ──────────────────────────────
/**
* Select the band matching [frequencyHz] via the band stacking register.
* Must be called before [setFrequency] and [setMode] when first tracking.
* Default: no-op (Yaesu radios auto-switch band via frequency).
*/
suspend fun setBand(frequencyHz: Long): Boolean = false
/**
* Select the active VFO.
* @param vfoA true → VFO-A (main/RX), false → VFO-B (sub/TX in split).
*/
suspend fun setVfo(vfoA: Boolean): Boolean = false
/**
* Enable or disable SPLIT mode (TX on sub-VFO, RX on main VFO).
* Default: not supported.
*/
suspend fun setSplitMode(enabled: Boolean): Boolean = false
/**
* Set the frequency of the currently active VFO (IC-705: CMD 0x25 sub 0x00).
* Default: delegates to [setFrequency].
*/
suspend fun setWorkingFrequency(frequencyHz: Long): Boolean = setFrequency(frequencyHz)
/**
* Set the frequency of the inactive/TX VFO (IC-705: CMD 0x25 sub 0x01).
* Sent every tracking cycle alongside [setWorkingFrequency] in split mode.
* Default: delegates to [setWorkingFrequency].
*/
suspend fun setTxVfoFrequency(frequencyHz: Long): Boolean = setWorkingFrequency(frequencyHz)
/**
* Read the frequency of the currently active VFO (IC-705: CMD 0x25 sub 0x00).
* Default: delegates to [readFrequencyAndMode].
*/
suspend fun readWorkingFrequency(): Long? = readFrequencyAndMode()?.first
/**
* Read the frequency of the inactive/TX VFO (IC-705: CMD 0x25 sub 0x01).
* Used for tuning detection in split mode.
* Default: delegates to [readWorkingFrequency].
*/
suspend fun readTxVfoFrequency(): Long? = readWorkingFrequency()
}
@@ -44,15 +44,7 @@ interface ISatelliteRepo {
suspend fun initRepository()
/** Recalculate passes with the given filter parameters. */
suspend fun calculatePasses(
time: Long,
hoursAhead: Int,
minElevation: Double,
aosStartMinute: Int,
aosEndMinute: Int,
invertAosTimeWindow: Boolean,
modes: List<String>
)
suspend fun calculatePasses(time: Long, hoursAhead: Int, minElevation: Double, modes: List<String>)
/** Get the current position of a single satellite. */
suspend fun getPosition(sat: OrbitalObject, pos: GeoPos, time: Long): OrbitalPos
@@ -20,19 +20,8 @@ package com.rtbishop.look4sat.core.domain.repository
import com.rtbishop.look4sat.core.domain.predict.GeoPos
import kotlinx.coroutines.flow.StateFlow
/** 指南针校准精度等级, 由磁场传感器 accuracy 事件映射而来. */
enum class CompassAccuracy {
UNAVAILABLE,
UNRELIABLE,
LOW,
MEDIUM,
HIGH
}
interface ISensorsRepo {
val sensorData: StateFlow<Pair<Float, Float>>
/** 指南针当前校准精度 (磁场传感器 accuracy), 用于校准对话框进度. */
val compassAccuracy: StateFlow<CompassAccuracy>
fun getMagDeclination(geoPos: GeoPos, time: Long = System.currentTimeMillis()): Float
fun enableSensor()
fun disableSensor()
@@ -23,7 +23,6 @@ import com.rtbishop.look4sat.core.domain.model.OtherSettings
import com.rtbishop.look4sat.core.domain.model.PassesSettings
import com.rtbishop.look4sat.core.domain.model.RCSettings
import com.rtbishop.look4sat.core.domain.model.RadioControlSettings
import com.rtbishop.look4sat.core.domain.model.WavelogSettings
import com.rtbishop.look4sat.core.domain.predict.GeoPos
import kotlinx.coroutines.flow.StateFlow
@@ -74,52 +73,8 @@ interface ISettingsRepo {
fun updateDataSourcesSettings(settings: DataSourcesSettings)
//endregion
//region # Data sources status
val dataSourcesStatus: StateFlow<Map<String, Int>>
fun updateDataSourcesStatus(status: Map<String, Int>)
//endregion
//region # Radio control settings
val radioControlSettings: StateFlow<RadioControlSettings>
fun updateRadioControlSettings(settings: RadioControlSettings)
//endregion
//region # Per-satellite calculator offset settings
fun getSatelliteOffset(catnum: Int): String
fun setSatelliteOffset(catnum: Int, offset: String)
//endregion
//region # AMSAT status report settings
fun getAmSatCallsign(): String
fun setAmSatCallsign(callsign: String)
//endregion
//region # Wavelog worked-grids settings
val wavelogSettings: StateFlow<WavelogSettings>
fun updateWavelogSettings(settings: WavelogSettings)
fun getWorkedGrids(): Set<String>
fun setWorkedGrids(grids: Set<String>)
/** Confirmed satellite QSOs grouped by worked 4-char gridsquare (map tap detail). */
fun getWorkedGridQsos(): Map<String, List<com.rtbishop.look4sat.core.domain.model.GridQso>>
fun setWorkedGridQsos(qsos: Map<String, List<com.rtbishop.look4sat.core.domain.model.GridQso>>)
/** Distinct 4-char gridsquares the account operated from (LoTW <MY_GRIDSQUARE>). */
fun getRoamedGrids(): Set<String>
fun setRoamedGrids(grids: Set<String>)
/** Stations the user marked as "want to contact" in unworked gridsquares
* (grid -> mark). One mark per grid; cleared automatically when the grid
* becomes worked. */
fun getMarkedGridStations(): Map<String, com.rtbishop.look4sat.core.domain.model.MarkedStation>
fun setMarkedGridStations(stations: Map<String, com.rtbishop.look4sat.core.domain.model.MarkedStation>)
//endregion
//region # LoTW confirmed-grids settings
val lotwSettings: StateFlow<com.rtbishop.look4sat.core.domain.model.LoTWSettings>
fun updateLoTWSettings(settings: com.rtbishop.look4sat.core.domain.model.LoTWSettings)
/** Last successful LoTW sync date ("yyyyMMdd", empty when never synced). */
fun getLastLotwSyncDate(): String
fun setLastLotwSyncDate(date: String)
/** Callsign of the last successful LoTW sync (empty when never synced). */
fun getLastLotwSyncCallsign(): String
fun setLastLotwSyncCallsign(callsign: String)
//endregion
}
@@ -1,12 +0,0 @@
package com.rtbishop.look4sat.core.domain.repository
import com.rtbishop.look4sat.core.domain.model.LatestRelease
import java.io.File
interface IUpdateRepository {
/** Fetch the latest release of the fork repo from GitHub; null on failure. */
suspend fun getLatestRelease(): LatestRelease?
/** Download the release APK from [url] into [dest]; true on success. */
suspend fun downloadApk(url: String, dest: File): Boolean
}
@@ -1,28 +0,0 @@
/*
* Look4Sat. Amateur radio satellite tracker and pass predictor.
* Copyright (C) 2019-2026 Arty Bishop and contributors.
*
* This program is free software: you can redistribute it and/or modify
* it under the terms of the GNU General Public License as published by
* the Free Software Foundation, either version 3 of the License, or
* (at your option) any later version.
*
* This program is distributed in the hope that it will be useful,
* but WITHOUT ANY WARRANTY; without even the implied warranty of
* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
* GNU General Public License for more details.
*
* You should have received a copy of the GNU General Public License
* along with this program. If not, see <https://www.gnu.org/licenses/>.
*/
package com.rtbishop.look4sat.core.domain.repository
/** Fetches worked gridsquares from a self-hosted Wavelog instance (API v2). */
interface IWavelogRepository {
/**
* Fetch worked grids for the configured Wavelog URL/token.
* Returns the grid set, or null on any failure.
*/
suspend fun fetchWorkedGrids(url: String, token: String): Set<String>?
}
@@ -1,169 +0,0 @@
/*
* Look4Sat. Amateur radio satellite tracker and pass predictor.
* Copyright (C) 2019-2026 Arty Bishop and contributors.
*
* This program is free software: you can redistribute it and/or modify
* it under the terms of the GNU General Public License as published by
* the Free Software Foundation, either version 3 of the License, or
* (at your option) any later version.
*
* This program is distributed in the hope that it will be useful,
* but WITHOUT ANY WARRANTY; without even the implied warranty of
* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
* GNU General Public License for more details.
*
* You should have received a copy of the GNU General Public License
* along with this program. If not, see <https://www.gnu.org/licenses/>.
*/
package com.rtbishop.look4sat.core.domain.repository
import com.rtbishop.look4sat.core.domain.model.GridQso
import kotlinx.coroutines.Dispatchers
import kotlinx.coroutines.withContext
import java.text.SimpleDateFormat
import java.util.Date
import java.util.Locale
import java.util.TimeZone
/**
* Shared LoTW sync orchestration used by BOTH the manual sync (settings screen)
* and the automatic sync on app start (MainApplication), so the two paths can
* never drift apart:
*
* - [LoTWSyncMode.Incremental] pulls only the confirmations since the last sync
* and MERGES them into the stored grids/QSOs (grids only grow; QSO detail is
* deduped by call + QSO time).
* - [LoTWSyncMode.Full] pulls everything and REPLACES the stored data.
*/
/**
* UTC date ("yyyyMMdd") of the given instant — the "already synced today"
* gate granularity.
*/
fun lotwSyncToday(now: Long = System.currentTimeMillis()): String =
SimpleDateFormat("yyyyMMdd", Locale.US)
.apply { timeZone = TimeZone.getTimeZone("UTC") }
.format(Date(now))
/**
* Full UTC timestamp cursor ("yyyy-MM-dd HH:mm:ss") written after a
* successful sync. This is exactly the format LoTW's qso_qslsince accepts
* (measured live 2026-09-17: the legacy "yyyyMMdd" cursor is silently
* ignored by LoTW, which falls back to its own system-supplied default),
* and it keeps enough precision to display the last-sync time like the
* ephemeris update time.
*/
fun lotwSyncCursor(now: Long = System.currentTimeMillis()): String =
SimpleDateFormat("yyyy-MM-dd HH:mm:ss", Locale.US)
.apply { timeZone = TimeZone.getTimeZone("UTC") }
.format(Date(now))
/** Date part of a stored cursor as "yyyyMMdd", tolerating the legacy
* "yyyyMMdd" format and the current "yyyy-MM-dd HH:mm:ss" format. */
fun lotwCursorDate(cursor: String): String = when {
cursor.length >= 10 && cursor[4] == '-' -> cursor.substring(0, 10).replace("-", "")
else -> cursor.take(8)
}
/** qso_qslsince value for the API: passes the full timestamp through and
* normalizes a legacy "yyyyMMdd" cursor to the documented "yyyy-MM-dd". */
fun lotwCursorApi(cursor: String): String = when {
cursor.isBlank() -> ""
cursor.length >= 10 && cursor[4] == '-' -> cursor
else -> "${cursor.take(4)}-${cursor.substring(4, 6)}-${cursor.substring(6, 8)}"
}
/** Stored cursor parsed to UTC epoch ms for display; 0 when unparseable. */
fun lotwCursorEpochMs(cursor: String): Long = try {
val pattern = if (cursor.length >= 10 && cursor[4] == '-') "yyyy-MM-dd HH:mm:ss" else "yyyyMMdd"
SimpleDateFormat(pattern, Locale.US)
.apply { timeZone = TimeZone.getTimeZone("UTC") }
.parse(cursor)?.time ?: 0L
} catch (_: Exception) {
0L
}
/**
* Resolves the effective sync mode for a given request:
* - an explicit [LoTWSyncMode.Full] request is always honored;
* - an [LoTWSyncMode.Incremental] request is honored only when the callsign
* matches the last sync — a first sync, an unknown/empty record or a
* callsign change falls back to [LoTWSyncMode.Full] so no stale grids from
* another account linger.
* With [requested] == null (automatic sync) it picks incremental whenever
* possible and full otherwise.
*/
fun resolveLoTWSyncMode(
lastSyncCallsign: String,
callsign: String,
requested: LoTWSyncMode?
): LoTWSyncMode {
if (requested == LoTWSyncMode.Full) return LoTWSyncMode.Full
val sameCall = lastSyncCallsign.isNotBlank() && lastSyncCallsign == callsign
return if (sameCall) LoTWSyncMode.Incremental else LoTWSyncMode.Full
}
/**
* Whether the automatic LoTW sync should run now — mirrors the ephemeris
* auto-update check: credentials configured, the LoTW auto-sync toggle on, at
* least one prior manual sync (the first sync stays manual/full), and not
* already synced today (ARRL limits report pulls, ~once a day per account).
*/
fun shouldAutoSyncLoTW(
isConfigured: Boolean,
autoLotwSyncEnabled: Boolean,
lastSyncDate: String,
today: String
): Boolean {
val lastDate = lotwCursorDate(lastSyncDate)
return isConfigured && autoLotwSyncEnabled && lastDate.isNotBlank() && lastDate != today
}
/**
* Applies a successful LoTW report to the stored grid data and advances the
* sync cursor so the next incremental pull asks LoTW for only the
* confirmations since today. Persistence runs on the IO dispatcher — building
* the per-grid QSO JSON and writing SharedPreferences blocks the calling
* thread, and for large accounts (multi-MB JSON) that froze the main thread
* after a manual sync ('bar done but app stuck').
*
* @return the resulting number of worked grids.
*/
suspend fun applyLoTWGridResult(
settingsRepo: ISettingsRepo,
result: LoTWResult.Success,
mode: LoTWSyncMode,
callsign: String,
now: Long = System.currentTimeMillis()
): Int {
val existingGrids = settingsRepo.getWorkedGrids()
val existingQsos = settingsRepo.getWorkedGridQsos()
val existingRoamed = settingsRepo.getRoamedGrids()
val mergedGrids = if (mode == LoTWSyncMode.Incremental) existingGrids + result.grids else result.grids
val mergedQsos = if (mode == LoTWSyncMode.Incremental) mergeGridQsos(existingQsos, result.qsos) else result.qsos
val mergedRoamed = if (mode == LoTWSyncMode.Incremental) existingRoamed + result.roamedGrids else result.roamedGrids
settingsRepo.setLastLotwSyncDate(lotwSyncCursor(now))
settingsRepo.setLastLotwSyncCallsign(callsign)
withContext(Dispatchers.IO) {
settingsRepo.setWorkedGrids(mergedGrids)
settingsRepo.setWorkedGridQsos(mergedQsos)
settingsRepo.setRoamedGrids(mergedRoamed)
}
return mergedGrids.size
}
/** Merge fresh QSO detail into existing per-grid lists, dedup by call + QSO time. */
fun mergeGridQsos(
existing: Map<String, List<GridQso>>,
fresh: Map<String, List<GridQso>>
): Map<String, List<GridQso>> {
val merged = existing.mapValues { (_, list) -> list.toMutableList() }.toMutableMap()
fresh.forEach { (grid, list) ->
val target = merged.getOrPut(grid) { mutableListOf() }
val known = target.mapTo(mutableSetOf()) { it.call to it.epochMs }
list.forEach { qso ->
if (known.add(qso.call to qso.epochMs)) target.add(qso)
}
}
return merged
}
@@ -1,51 +0,0 @@
/*
* Look4Sat. Amateur radio satellite tracker and pass predictor.
* Copyright (C) 2019-2026 Arty Bishop and contributors.
*
* This program is free software: you can redistribute it and/or modify
* it under the terms of the GNU General Public License as published by
* the Free Software Foundation, either version 3 of the License, or
* (at your option) any later version.
*
* This program is distributed in the hope that it will be useful,
* but WITHOUT ANY WARRANTY; without even the implied warranty of
* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
* GNU General Public License for more details.
*
* You should have received a copy of the GNU General Public License
* along with this program. If not, see <https://www.gnu.org/licenses/>.
*/
package com.rtbishop.look4sat.core.domain.repository
/** Result of a LoTW report fetch, with the failure cause kept explicit. */
sealed class LoTWResult {
/** Report downloaded and parsed successfully. */
data class Success(
val grids: Set<String>,
val qsos: Map<String, List<com.rtbishop.look4sat.core.domain.model.GridQso>>,
/** Distinct 4-char gridsquares the account itself operated from
* (ADIF <MY_GRIDSQUARE>, satellite QSOs only) — "roamed/activated" grids. */
val roamedGrids: Set<String> = emptySet()
) : LoTWResult()
/** HTTP 200 but LoTW replied with its login-error page (bad callsign/password). */
data object BadCredentials : LoTWResult()
/**
* Report endpoint refused the request without a usable error page. LoTW
* limits downloads to one in progress per user id and flags accounts that
* pull the full report too often; the server answers those with a bare
* non-ADIF body (no <eoh>).
*/
data object RateLimited : LoTWResult()
/** Connect/read timed out — typically a slow route to the ARRL servers. */
data object Timeout : LoTWResult()
/** Any other network-level failure (DNS, TLS, connection reset, HTTP 5xx). */
data class NetworkError(val detail: String) : LoTWResult()
}
/** What a LoTW sync does: pull everything, or only new QSLs since the last sync. */
enum class LoTWSyncMode { Full, Incremental }
@@ -31,9 +31,6 @@ interface ILocalSource {
suspend fun getIdsWithModes(modes: List<String>): List<Int>
suspend fun getRadiosTotal(): Int
suspend fun getRadiosWithId(id: Int): List<SatRadio>
suspend fun insertRadios(radios: List<SatRadio>, isCustom: Boolean = false)
/** Delete all non-custom transceivers, keeping manually imported ones. */
suspend fun deleteManagedRadios()
suspend fun insertRadios(radios: List<SatRadio>)
suspend fun deleteRadios()
}
@@ -19,18 +19,7 @@ package com.rtbishop.look4sat.core.domain.source
import java.io.InputStream
/** Result of a network download: the HTTP status code and the response body stream. */
data class NetworkResult(val code: Int, val stream: InputStream?) {
companion object {
/** Code used when a request fails before any HTTP response is received. */
const val CONNECTION_ERROR = -1
}
}
interface IRemoteSource {
suspend fun getFileStream(uri: String): InputStream?
suspend fun getNetworkStream(url: String): NetworkResult
suspend fun getAmSatCatalog(): String?
suspend fun getAmSatReports(hours: Int, limit: Int): String?
suspend fun submitAmSatReport(payloadJson: String): Pair<Int, String>?
suspend fun getNetworkStream(url: String): InputStream?
}
@@ -19,10 +19,7 @@ package com.rtbishop.look4sat.core.domain.source
object Sources {
val satelliteDataUrls = mapOf(
"LAPAN-A2" to "https://www.kaggle.com/api/v1/datasets/download/muazamnugroho/lapan-a2-satellite-two-line-element-tle-dataset/LAPAN-A2_TLE_latest.txt",
"R4UAB" to "https://r4uab.ru/satonline.txt",
"All" to "https://celestrak.org/NORAD/elements/gp.php?GROUP=active&FORMAT=csv",
"SatNOGS" to "https://db.satnogs.org/api/tle/?format=3le",
"Amateur" to "https://celestrak.org/NORAD/elements/gp.php?GROUP=amateur&FORMAT=csv",
"Brightest" to "https://celestrak.org/NORAD/elements/gp.php?GROUP=visual&FORMAT=csv",
"Cubesat" to "https://celestrak.org/NORAD/elements/gp.php?GROUP=cubesat&FORMAT=csv",
@@ -38,7 +35,7 @@ object Sources {
"OneWeb" to "https://celestrak.org/NORAD/elements/gp.php?GROUP=oneweb&FORMAT=csv",
"Orbcomm" to "https://celestrak.org/NORAD/elements/gp.php?GROUP=orbcomm&FORMAT=csv",
"Resource" to "https://celestrak.org/NORAD/elements/gp.php?GROUP=resource&FORMAT=csv",
"CelesTrak SatNOGS" to "https://celestrak.org/NORAD/elements/gp.php?GROUP=satnogs&FORMAT=csv",
"SatNOGS" to "https://celestrak.org/NORAD/elements/gp.php?GROUP=satnogs&FORMAT=csv",
"Science" to "https://celestrak.org/NORAD/elements/gp.php?GROUP=science&FORMAT=csv",
"Spire" to "https://celestrak.org/NORAD/elements/gp.php?GROUP=spire&FORMAT=csv",
"Starlink" to "https://celestrak.org/NORAD/elements/gp.php?GROUP=starlink&FORMAT=csv",
@@ -48,11 +45,10 @@ object Sources {
"Amsat" to "https://amsat.org/tle/current/nasabare.txt",
"Classified" to "https://www.mmccants.org/tles/classfd.zip",
"McCants" to "https://www.mmccants.org/tles/inttles.zip",
"ARISS" to "https://live.ariss.org/iss.txt",
"R4UAB" to "https://r4uab.ru/satonline.txt",
"Other" to "" // key for sats filter
)
val transceiversDataUrls = mapOf(
"SatNOGS" to "https://db.satnogs.org/api/transmitters/?format=json&status=active",
"R4UAB" to "https://r4uab.ru/transmitters.json"
"SatNOGS" to "https://db.satnogs.org/api/transmitters/?format=json&status=active"
)
}
@@ -20,94 +20,39 @@ package com.rtbishop.look4sat.core.domain.sstv
import kotlinx.coroutines.Dispatchers
import kotlinx.coroutines.channels.BufferOverflow
import kotlinx.coroutines.flow.MutableSharedFlow
import kotlinx.coroutines.flow.MutableStateFlow
import kotlinx.coroutines.flow.SharedFlow
import kotlinx.coroutines.flow.StateFlow
import kotlinx.coroutines.withContext
import kotlin.math.PI
import kotlin.math.abs
import kotlin.math.round
import kotlin.math.sqrt
class SstvFrame(
val scopePixels: IntArray?,
val scopeWidth: Int,
val scopeHeight: Int,
val imagePixels: IntArray?,
val imageWidth: Int,
val imageHeight: Int,
val modeName: String,
val imageComplete: Boolean,
val inputRms: Float,
val appliedGain: Float,
val syncHitRate: Float,
val predictedLineBursts: Int,
val maxPredictedStreak: Int,
val timingErrorSamples: Int
)
/**
* Decoder quality metrics for diagnostics and logging. Useful for profiling decode
* performance on noisy recordings.
*/
data class SstvQualityMetrics(
val syncHitRate: Float,
val predictedLineBursts: Int,
val maxPredictedStreak: Int,
val timingErrorSamples: Int
)
enum class LineRecoveryStrategy {
Look4SatLimited,
Robot36Compatible
}
class SstvDiagnosticsHandle internal constructor(
val enabled: Boolean,
val metrics: StateFlow<SstvQualityMetrics?>
val modeName: String
)
class SstvDecoder(
sampleRate: Int = 44100,
scopeWidth: Int = 320,
scopeHeight: Int = 256,
private val channelSelect: Int = 0,
targetRmsLevel: Float = 0.25f,
private val includeScopeData: Boolean = false,
private val enableRmsNormalization: Boolean = true,
preFilterCutoffHz: Double = 500.0,
enablePreFilter: Boolean = true,
private val enableDiagnosticsHandle: Boolean = false,
lineRecoveryStrategy: LineRecoveryStrategy = LineRecoveryStrategy.Look4SatLimited
private val channelSelect: Int = 0
) {
private val scopeBuffer = PixelBuffer(scopeWidth, scopeHeight * 2)
private val imageBuffer = PixelBuffer(scopeWidth, scopeHeight)
private val decoder = DecoderEngine(scopeBuffer, imageBuffer, "Raw", sampleRate, lineRecoveryStrategy)
private val decoder = DecoderEngine(scopeBuffer, imageBuffer, "Raw", sampleRate)
private val _frames = MutableSharedFlow<SstvFrame>(
replay = 1,
onBufferOverflow = BufferOverflow.DROP_OLDEST
)
private var lastInputRms = 0f
private var lastAppliedGain = 1f
private val _qualityMetrics = MutableStateFlow<SstvQualityMetrics?>(null)
private val preFilter = if (enablePreFilter) HighPassFilter(preFilterCutoffHz, sampleRate.toDouble()) else null
private val diagnosticsHandle = SstvDiagnosticsHandle(enableDiagnosticsHandle, _qualityMetrics)
val frames: SharedFlow<SstvFrame> = _frames
val supportedModes: List<String> = decoder.allModes.map { it.name }
suspend fun feedSamples(samples: FloatArray) = withContext(Dispatchers.Default) {
// Optional pre-filtering: remove DC offset and subsonic noise that can mask
// weak signals and corrupt the RMS normalization baseline.
preFilter?.apply(samples)
// Optional RMS normalization: bring input to a consistent level so the
// FM demodulator operates in a predictable region. However, this amplifies
// noise proportionally. Aggressive RMS targets (e.g., 0.25) can hurt weak
// signals by boosting noise floor. Safer defaults: 0.35-0.50 for noisy inputs.
// Disable entirely for direct line-level inputs (e.g., receiver discriminator).
val gain = if (enableRmsNormalization) normalise(samples) else GainInfo(0f, 1f)
lastInputRms = gain.inputRms
lastAppliedGain = gain.appliedGain
// Normalize to a fixed RMS before processing so that both direct audio
// coupling and air-coupled microphone input decode with equal reliability.
normalise(samples)
val hasNewLines = decoder.process(samples, channelSelect)
if (hasNewLines) emitFrame()
}
@@ -117,134 +62,36 @@ class SstvDecoder(
fun clearPixels() {
imageBuffer.line = -1
imageBuffer.pixels.fill(0)
decoder.resetQuality()
if (enableDiagnosticsHandle) _qualityMetrics.value = null
}
fun getDiagnosticsHandle(): SstvDiagnosticsHandle? = diagnosticsHandle.takeIf { it.enabled }
/**
* Export quality metrics for logging/diagnostics. Useful for profiling decode
* performance on noisy recordings. Returns null before first frame is emitted.
*/
@Suppress("unused")
fun getQualityMetrics(): SstvQualityMetrics? {
if (enableDiagnosticsHandle) return _qualityMetrics.value
val q = decoder.quality()
return SstvQualityMetrics(
syncHitRate = q.syncHitRate,
predictedLineBursts = q.predictedLineBursts,
maxPredictedStreak = q.maxPredictedStreak,
timingErrorSamples = q.timingErrorSamples
)
}
private fun emitFrame() {
val imageWidth = imageBuffer.width
val imageHeight = imageBuffer.height
val quality = decoder.quality()
if (enableDiagnosticsHandle) {
_qualityMetrics.value = SstvQualityMetrics(
syncHitRate = quality.syncHitRate,
predictedLineBursts = quality.predictedLineBursts,
maxPredictedStreak = quality.maxPredictedStreak,
timingErrorSamples = quality.timingErrorSamples
)
}
val imageComplete = imageBuffer.line >= imageHeight && imageBuffer.line > 0
// Copy only the active image region — imageBuffer.pixels is pre-allocated
// at the maximum possible size (PD-290: 800×616), so we must not copyOf()
// the entire array and send padding pixels to the observer.
val imagePixels = if (imageBuffer.line > 0) imageBuffer.pixels.copyOf(imageWidth * imageHeight) else null
val modeName = decoder.currentMode.name
val scopePixels = if (includeScopeData) scopeBuffer.pixels.copyOf() else null
val scopeWidth = if (includeScopeData) scopeBuffer.width else 0
val scopeHeight = if (includeScopeData) scopeBuffer.height else 0
_frames.tryEmit(
SstvFrame(
scopePixels = scopePixels,
scopeWidth = scopeWidth,
scopeHeight = scopeHeight,
imagePixels = imagePixels,
imageWidth = imageWidth,
imageHeight = imageHeight,
modeName = modeName,
imageComplete = imageComplete,
inputRms = lastInputRms,
appliedGain = lastAppliedGain,
syncHitRate = quality.syncHitRate,
predictedLineBursts = quality.predictedLineBursts,
maxPredictedStreak = quality.maxPredictedStreak,
timingErrorSamples = quality.timingErrorSamples
)
)
_frames.tryEmit(SstvFrame(imagePixels, imageWidth, imageHeight, modeName))
}
// Target RMS level for the normalizer. 0.25 leaves headroom while keeping the
// FM demodulator well above its noise floor regardless of input gain.
// TUNING GUIDE:
// - 0.20-0.25: Aggressive, best for clean direct-coupled inputs, worst for mic noise
// - 0.35-0.40: Moderate, good balance for typical phone/mic inputs (RECOMMENDED)
// - 0.50-0.60: Conservative, best for noisy environments, reduces amplitude resolution
// Disable RMS normalization entirely if using a professional receiver discriminator output.
private val targetRms = targetRmsLevel.coerceIn(0.05f, 0.8f)
private class GainInfo(
val inputRms: Float,
val appliedGain: Float
)
private val targetRms = 0.25f
// Bring the buffer to a fixed RMS so that microphone and direct-coupled inputs
// both decode reliably. The guard prevents amplifying pure silence into noise.
private fun normalise(buffer: FloatArray): GainInfo {
private fun normalise(buffer: FloatArray) {
var sumSq = 0f
for (s in buffer) sumSq += s * s
val rms = sqrt(sumSq / buffer.size)
if (rms > 1e-6f) {
val gain = targetRms / rms
for (i in buffer.indices) buffer[i] *= gain
return GainInfo(rms, gain)
}
return GainInfo(rms, 1f)
}
}
/**
* Simple high-pass filter to remove DC offset and subsonic interference before RMS
* normalization. Improves noise floor estimation and prevents low-freq noise from
* corrupting the gain calculation.
*
* Design: First-order butterworth (pole at cutoff frequency). Fast, minimal latency,
* suitable for real-time preprocessing.
*/
internal class HighPassFilter(cutoffHz: Double, sampleRateHz: Double) {
private val alpha: Float
private var prevInput = 0f
private var prevOutput = 0f
init {
// First-order pole placement: alpha = wc / (wc + ws) where wc = 2*pi*fc, ws = 2*pi*fs
val omega = 2f * PI.toFloat() * (cutoffHz / sampleRateHz).toFloat()
alpha = omega / (omega + 1f)
}
fun apply(buffer: FloatArray) {
for (i in buffer.indices) {
val input = buffer[i]
prevOutput = alpha * (prevOutput + input - prevInput)
buffer[i] = prevOutput
prevInput = input
}
}
}
internal class DecoderQuality(
val syncHitRate: Float,
val predictedLineBursts: Int,
val maxPredictedStreak: Int,
val timingErrorSamples: Int
)
internal enum class SyncPulseWidth { FiveMs, NineMs, TwentyMs }
internal class SyncPulseDetector(sampleRate: Int) {
@@ -350,8 +197,7 @@ internal class DecoderEngine(
private val scopeBuffer: PixelBuffer,
private val imageBuffer: PixelBuffer,
rawName: String,
sampleRate: Int,
lineRecoveryStrategy: LineRecoveryStrategy
sampleRate: Int
) {
private val pixelBuffer = PixelBuffer(800, 2)
private val detector = SyncPulseDetector(sampleRate)
@@ -391,19 +237,6 @@ internal class DecoderEngine(
private var lastSync = 0
private var curLineSamples: Int
private var lastOffset = 0f
private var syncChecks = 0
private var syncHits = 0
private var predictedLineBursts = 0
private var predictedStreak = 0
private var maxPredictedStreak = 0
private var timingErrorSamples = 0
// Look4Sat strategy limits synthetic lines to avoid visible vertical collapse.
// Robot36 strategy preserves legacy behavior by allowing unlimited synthesis.
private val maxConsecutivePredictedLines = when (lineRecoveryStrategy) {
LineRecoveryStrategy.Look4SatLimited -> 2
LineRecoveryStrategy.Robot36Compatible -> Int.MAX_VALUE
}
init {
imageBuffer.line = -1
@@ -453,11 +286,6 @@ internal class DecoderEngine(
fun process(recordBuffer: FloatArray, channelSelect: Int): Boolean {
var newLines = false
val detected = detector.process(recordBuffer, channelSelect)
syncChecks++
if (detected) {
syncHits++
predictedStreak = 0
}
var syncIdx = sample + detector.pulseOffset
val channels = if (channelSelect > 0) 2 else 1
for (j in 0 until recordBuffer.size / channels) {
@@ -480,10 +308,20 @@ internal class DecoderEngine(
}
}
} else if (handleHeader()) {
predictedStreak = 0
newLines = true
} else if (sample > lastSync + (curLineSamples * 5) / 4) {
newLines = decodePredictedLine()
copyLines(
currentMode.decodeScanLine(
pixelBuffer,
scratch,
scanLineBuffer,
scopeBuffer.width,
lastSync,
curLineSamples,
lastOffset
)
)
lastSync += curLineSamples; newLines = true
}
return newLines
}
@@ -499,25 +337,6 @@ internal class DecoderEngine(
lockMode = false
}
fun quality(): DecoderQuality {
val hitRate = if (syncChecks > 0) syncHits.toFloat() / syncChecks else 0f
return DecoderQuality(
syncHitRate = hitRate,
predictedLineBursts = predictedLineBursts,
maxPredictedStreak = maxPredictedStreak,
timingErrorSamples = timingErrorSamples
)
}
fun resetQuality() {
syncChecks = 0
syncHits = 0
predictedLineBursts = 0
predictedStreak = 0
maxPredictedStreak = 0
timingErrorSamples = 0
}
private fun mean(a: IntArray): Double = a.sumOf { it.toDouble() } / a.size
private fun stdDev(a: IntArray, m: Double): Double {
var s = 0.0; for (v in a) s += (v - m) * (v - m); return sqrt(s / a.size)
@@ -607,29 +426,6 @@ internal class DecoderEngine(
if (finish) drawLines(0xff000000.toInt(), 10)
}
private fun decodePredictedLine(): Boolean {
// Avoid long streaks of synthetic lines; once we exceed the cap we wait for
// real sync to reduce visible vertical compression on weak/noisy signals.
if (predictedStreak >= maxConsecutivePredictedLines) return false
val expectedSync = lastSync + curLineSamples
timingErrorSamples = sample - expectedSync
val decoded = currentMode.decodeScanLine(
pixelBuffer,
scratch,
scanLineBuffer,
scopeBuffer.width,
lastSync,
curLineSamples,
lastOffset
)
copyLines(decoded)
lastSync = expectedSync
predictedLineBursts++
predictedStreak++
if (predictedStreak > maxPredictedStreak) maxPredictedStreak = predictedStreak
return decoded
}
private fun drawLines(color: Int, count: Int) {
repeat(count) {
scopeBuffer.pixels.fill(
@@ -746,7 +542,6 @@ internal class DecoderEngine(
lineLen: IntArray,
latest: Int
): Boolean {
predictedStreak = 0
for (i in 1 until syncPulses.size) syncPulses[i - 1] = syncPulses[i]
syncPulses[syncPulses.size - 1] = latest
for (i in 1 until lineLen.size) lineLen[i - 1] = lineLen[i]
@@ -1,173 +0,0 @@
/*
* Look4Sat. Amateur radio satellite tracker and pass predictor.
* Copyright (C) 2019-2026 Arty Bishop and contributors.
*
* This program is free software: you can redistribute it and/or modify
* it under the terms of the GNU General Public License as published by
* the Free Software Foundation, either version 3 of the License, or
* (at your option) any later version.
*/
package com.rtbishop.look4sat.core.domain.utility
import com.rtbishop.look4sat.core.domain.model.SatRadio
import com.rtbishop.look4sat.core.domain.predict.OrbitalPos
import java.util.Locale
/**
* Computes Doppler-corrected reciprocal frequencies for linear transponders.
*
* The full physical path:
*
* TX→RX (uplink → downlink):
* ① 地面发射 f_tx
* ② 卫星收到 f_tx × (c - v) / c (上行多普勒)
* ③ 卫星转发 = passband映射(②) (在卫星上做映射)
* ④ 地面听到 ③ × (c - v) / c (下行多普勒)
*
* RX→TX (downlink → uplink):
* ④ 地面听到 f_rx
* ③ 卫星转发 = f_rx × (c + v) / c (逆下行多普勒)
* ② 卫星收到 = 逆passband映射(③)
* ① 地面应发射 = ② × (c + v) / c (逆上行多普勒)
*
* Addresses GitHub issue #91 (Custom frequency Doppler correction).
*/
object DopplerFrequencyCalculator {
/**
* Given a downlink frequency (what the user hears), compute the
* uplink frequency the user should transmit.
* Full path: ④→③→②→①
*/
fun computeUplinkFromDownlink(
downlinkHz: Long,
transponder: SatRadio,
orbitalPos: OrbitalPos
): Long? {
if (!isLinearTransponder(transponder)) return null
// ④→③ 逆下行多普勒:卫星转发的频率
val satTx = orbitalPos.getUplinkFreq(downlinkHz)
// ③→② 逆 passband 映射
val satRx = TransponderMapper.mapDownlinkToUplink(satTx, transponder) ?: return null
// ②→① 逆上行多普勒:地面应发射的频率
return orbitalPos.getUplinkFreq(satRx)
}
/**
* Given a downlink frequency (what the user hears), compute the
* uplink frequency the user should transmit, with an offset applied
* to the downlink (in Hz).
* Full path: ④→③→②→①
*
* The user-entered downlink frequency already includes the offset, so subtract
* it before the inverse downlink Doppler.
*/
fun computeUplinkFromDownlinkWithOffset(
downlinkHz: Long,
transponder: SatRadio,
orbitalPos: OrbitalPos,
offsetHz: Long
): Long? {
if (!isLinearTransponder(transponder)) return null
// ④→③ 逆下行多普勒:卫星转发的频率(含 offset)
val satTxWithOffset = orbitalPos.getUplinkFreq(downlinkHz)
// ③ 去掉 offset(offset 在卫星本地频率域)
val satTx = satTxWithOffset - offsetHz
// ③→② 逆 passband 映射
val satRx = TransponderMapper.mapDownlinkToUplink(satTx, transponder) ?: return null
// ②→① 逆上行多普勒:地面应发射的频率
return orbitalPos.getUplinkFreq(satRx)
}
/**
* Given an uplink frequency (what the user transmits), compute the
* downlink frequency the user will hear.
* Full path: ①→②→③→④
*/
fun computeDownlinkFromUplink(
uplinkHz: Long,
transponder: SatRadio,
orbitalPos: OrbitalPos
): Long? {
if (!isLinearTransponder(transponder)) return null
// ①→② 上行多普勒:卫星收到的频率
val satRx = orbitalPos.getDownlinkFreq(uplinkHz)
// ②→③ passband 映射
val satTx = TransponderMapper.mapUplinkToDownlink(satRx, transponder) ?: return null
// ③→④ 下行多普勒:地面听到的
return orbitalPos.getDownlinkFreq(satTx)
}
/**
* Given an uplink frequency (what the user transmits), compute the
* downlink frequency the user will hear, with an offset applied
* to the downlink (in Hz).
* Full path: ①→②→③→④
*/
fun computeDownlinkFromUplinkWithOffset(
uplinkHz: Long,
transponder: SatRadio,
orbitalPos: OrbitalPos,
offsetHz: Long
): Long? {
if (!isLinearTransponder(transponder)) return null
// ①→② 上行多普勒:卫星收到的频率
val satRx = orbitalPos.getDownlinkFreq(uplinkHz)
// ②→③ passband 映射
val satTx = TransponderMapper.mapUplinkToDownlink(satRx, transponder) ?: return null
// ③ 加上 offset(offset 在卫星本地频率域)
// ③→④ 下行多普勒:地面听到的
return orbitalPos.getDownlinkFreq(satTx + offsetHz)
}
/** True if this transponder supports linear passband mapping. */
fun isLinearTransponder(transponder: SatRadio): Boolean {
val upLow = transponder.uplinkLow
val upHigh = transponder.uplinkHigh
val downLow = transponder.downlinkLow
val downHigh = transponder.downlinkHigh
return upLow != null && upHigh != null && downLow != null && downHigh != null
&& upLow != upHigh && downLow != downHigh
}
/**
* True for the radio entry that should drive the standalone Calculator page.
*
* A frequency range alone is not enough: some non-user-facing or drifting data entries
* can also have low/high frequencies. The calculator is meant for the named linear
* transponder entry, e.g. "Linear Transponder", "Linear Transp.", "SSB Transponder".
*/
fun isNamedLinearTransponder(transponder: SatRadio): Boolean {
if (!isLinearTransponder(transponder)) return false
val info = transponder.info.lowercase(Locale.ENGLISH)
val modes = listOfNotNull(transponder.downlinkMode, transponder.uplinkMode)
.joinToString(separator = " ")
.lowercase(Locale.ENGLISH)
val hasLinearName = info.contains("linear") || info.contains(" lin") || info.startsWith("lin")
val hasTransponderName = info.contains("transponder") || info.contains("transp") ||
info.contains("xponder") || info.contains("xpdr")
val hasLinearMode = listOf("ssb", "usb", "lsb", "cw").any { modes.contains(it) }
return (hasLinearName && hasTransponderName) || (hasTransponderName && hasLinearMode) ||
(hasLinearName && hasLinearMode)
}
/**
* Removes duplicate transponder entries that describe the same physical
* transponder with different mode labels (e.g. SatNOGS lists AO-7's Mode A
* as both "Lin SSB" and "Lin CW", and JO-97's U/V transponder as both
* "CW Transponder" and "SSB Transponder").
*
* Entries sharing the same uplink/downlink frequency range are considered
* the same transponder. The non-CW entry is preferred because its invert
* flag is more reliable (e.g. JO-97's CW entry wrongly has invert=false).
*/
fun deduplicateTransponders(radios: List<SatRadio>): List<SatRadio> {
return radios.groupBy { radio ->
listOf(radio.uplinkLow, radio.uplinkHigh, radio.downlinkLow, radio.downlinkHigh)
}.values.map { group ->
group.firstOrNull { it.downlinkMode?.equals("CW", ignoreCase = true) != true } ?: group.first()
}
}
}
@@ -19,43 +19,20 @@ package com.rtbishop.look4sat.core.domain.utility
import com.rtbishop.look4sat.core.domain.predict.GeoPos
/**
* Convert a Maidenhead locator (4, 6 or 8 chars) to the position of its
* square / subsquare / extended-square centre. Longer input is truncated to
* 8 chars (the Maidenhead maximum); malformed or out-of-range input yields
* null.
*/
fun qthToPosition(locator: String): GeoPos? {
val trimmedQth = locator.trim().uppercase().take(8)
if (trimmedQth.length !in listOf(4, 6, 8) || !isValidLocator(trimmedQth)) return null
val lonFirst = (trimmedQth[0].code - 65) * 20
val latFirst = (trimmedQth[1].code - 65) * 10
val trimmedQth = locator.take(6)
if (!isValidLocator(trimmedQth)) return null
val lonFirst = (trimmedQth[0].uppercaseChar().code - 65) * 20
val latFirst = (trimmedQth[1].uppercaseChar().code - 65) * 10
val lonSecond = trimmedQth[2].toString().toInt() * 2
val latSecond = trimmedQth[3].toString().toInt()
// Start from the 4-char square centre, refine for 6/8-char subsquares.
var longitude = lonFirst + lonSecond + 1.0
var latitude = latFirst + latSecond + 0.5
if (trimmedQth.length >= 6) {
val lonSub = (trimmedQth[4].code - 65) * 5.0 / 60.0
val latSub = (trimmedQth[5].code - 65) * 2.5 / 60.0
if (lonSub < 0.0 || lonSub > 115.0 / 60.0 || latSub < 0.0 || latSub > 57.5 / 60.0) return null
longitude = lonFirst + lonSecond + lonSub + 2.5 / 60.0
latitude = latFirst + latSecond + latSub + 1.25 / 60.0
if (trimmedQth.length >= 8) {
val lonExt = (trimmedQth[6].code - 48) * 30.0 / 3600.0
val latExt = (trimmedQth[7].code - 48) * 15.0 / 3600.0
if (lonExt < 0.0 || lonExt > 270.0 / 3600.0 || latExt < 0.0 || latExt > 135.0 / 3600.0) return null
longitude += lonExt + 15.0 / 3600.0
latitude += latExt + 7.5 / 3600.0
}
}
return GeoPos((latitude - 90.0).round(4), (longitude - 180.0).round(4))
val lonThird = (((trimmedQth[4].lowercaseChar().code - 97) / 12.0) + (1.0 / 24.0)) - 180
val latThird = (((trimmedQth[5].lowercaseChar().code - 97) / 24.0) + (1.0 / 48.0)) - 90
val longitude = (lonFirst + lonSecond + lonThird).round(4)
val latitude = (latFirst + latSecond + latThird).round(4)
return GeoPos(latitude, longitude)
}
/**
* Convert a position to its 6-char Maidenhead locator, upper-cased (field,
* square and subsquare letters). Returns null for out-of-range positions.
*/
fun positionToQth(latitude: Double, longitude: Double): String? {
if (!isValidPosition(latitude, longitude)) return null
val newLongitude = if (longitude > 180.0) longitude else longitude + 180
@@ -64,8 +41,8 @@ fun positionToQth(latitude: Double, longitude: Double): String? {
val latFirst = (65 + (newLatitude / 10)).toInt().toChar()
val lonSecond = ((newLongitude / 2) % 10).toInt()
val latSecond = (newLatitude % 10).toInt()
val lonThird = (65 + (newLongitude % 2) * 12).toInt().toChar().uppercaseChar()
val latThird = (65 + (newLatitude % 1) * 24).toInt().toChar().uppercaseChar()
val lonThird = (65 + (newLongitude % 2) * 12).toInt().toChar().lowercaseChar()
val latThird = (65 + (newLatitude % 1) * 24).toInt().toChar().lowercaseChar()
return "$lonFirst$latFirst$lonSecond$latSecond$lonThird$latThird"
}
@@ -74,11 +51,5 @@ private fun isValidPosition(lat: Double, lon: Double): Boolean {
}
private fun isValidLocator(locator: String): Boolean {
// 4 chars: [A-X][A-X]\d\d ; 6 chars: + [A-X][A-X] ; 8 chars: + \d\d
return when (locator.length) {
4 -> Regex("[A-X]{2}\\d{2}").matches(locator)
6 -> Regex("[A-X]{2}\\d{2}[A-X]{2}").matches(locator)
8 -> Regex("[A-X]{2}\\d{2}[A-X]{2}\\d{2}").matches(locator)
else -> false
}
return locator.matches("[a-xA-X][a-xA-X]\\d\\d[a-xA-X][a-xA-X]".toRegex())
}
@@ -1,48 +0,0 @@
package com.rtbishop.look4sat.core.domain.utility
/**
* Compares two version strings of the form "<major>.<minor>.<patch>[-<build>]" used by the
* BA7OPF fork releases (e.g. "4.4.6-ba7opf.6" or "v4.4.6-ba7opf.9.1").
*
* The comparison is done on the numeric version segments first; when the base versions are
* equal, the trailing build numbers of the suffix decide. All numeric segments of the suffix
* are compared as a sequence, so multi-level suffixes work correctly:
* "4.4.6-ba7opf.9.1" > "4.4.6-ba7opf.9" > "4.4.6-ba7opf.8".
*/
object VersionComparator {
/** True when [candidate] is a newer version than [current]. */
fun isNewer(candidate: String, current: String): Boolean {
val cand = parse(candidate)
val curr = parse(current)
val maxLen = maxOf(cand.first.size, curr.first.size)
for (i in 0 until maxLen) {
val c = cand.first.getOrElse(i) { 0 }
val k = curr.first.getOrElse(i) { 0 }
if (c != k) return c > k
}
val maxBuild = maxOf(cand.second.size, curr.second.size)
for (i in 0 until maxBuild) {
val c = cand.second.getOrElse(i) { 0 }
val k = curr.second.getOrElse(i) { 0 }
if (c != k) return c > k
}
return false
}
/**
* Parses a version string into (numeric base segments, numeric suffix segments).
* "v4.4.6-ba7opf.9.1" -> ([4,4,6], [9,1]); "4.4.6-ba7opf.8" -> ([4,4,6], [8]);
* "4.4.6" -> ([4,4,6], []); "4.4.6-ba7opf" -> ([4,4,6], []).
*/
fun parse(version: String): Pair<List<Int>, List<Int>> {
val cleaned = version.trim().removePrefix("v")
val dashIndex = cleaned.indexOf('-')
val basePart = if (dashIndex >= 0) cleaned.substring(0, dashIndex) else cleaned
val suffixPart = if (dashIndex >= 0) cleaned.substring(dashIndex + 1) else ""
val base = basePart.split('.').mapNotNull { it.toIntOrNull() }
// All numeric segments of the suffix, in order (e.g. "ba7opf.9.1" -> [9, 1]).
val build = suffixPart.split('.').mapNotNull { it.toIntOrNull() }
return base to build
}
}
@@ -1,275 +0,0 @@
package com.rtbishop.look4sat.core.domain
import com.rtbishop.look4sat.core.domain.model.SatRadio
import com.rtbishop.look4sat.core.domain.predict.OrbitalPos
import com.rtbishop.look4sat.core.domain.utility.DopplerFrequencyCalculator
import org.junit.Assert.*
import org.junit.Test
class DopplerFrequencyCalculatorTest {
private fun linearTransponder(
uuid: String = "linear",
upLow: Long = 145_000_000L,
upHigh: Long = 145_500_000L,
downLow: Long = 435_000_000L,
downHigh: Long? = 435_500_000L,
inverted: Boolean = false,
info: String = "Linear Transponder",
downlinkMode: String? = "USB",
uplinkMode: String? = "LSB"
) = SatRadio(
uuid = uuid, info = info, isAlive = true,
downlinkLow = downLow, downlinkHigh = downHigh,
downlinkMode = downlinkMode, uplinkLow = upLow, uplinkHigh = upHigh,
uplinkMode = uplinkMode, isInverted = inverted, catnum = 12345
)
private fun fmTransponder() = SatRadio(
uuid = "fm", info = "FM Repeater", isAlive = true,
downlinkLow = 435_600_000L, downlinkHigh = null,
downlinkMode = "FM", uplinkLow = 145_900_000L, uplinkHigh = null,
uplinkMode = "FM", isInverted = false, catnum = 99999
)
private fun pos(distanceRateKmS: Double = 0.0) = OrbitalPos().apply {
this.distanceRate = distanceRateKmS
}
@Test
fun isLinearTransponder_returnsTrueForLinear() {
assertTrue(DopplerFrequencyCalculator.isLinearTransponder(linearTransponder()))
}
@Test
fun isLinearTransponder_returnsFalseForFM() {
assertFalse(DopplerFrequencyCalculator.isLinearTransponder(fmTransponder()))
}
@Test
fun isLinearTransponder_returnsFalseForNullDownlinkHigh() {
val xpdr = linearTransponder(downHigh = null)
assertFalse(DopplerFrequencyCalculator.isLinearTransponder(xpdr))
}
@Test
fun isNamedLinearTransponder_returnsTrueForLinearTransponderName() {
assertTrue(DopplerFrequencyCalculator.isNamedLinearTransponder(linearTransponder()))
}
@Test
fun isNamedLinearTransponder_returnsTrueForSsbTransponderName() {
val xpdr = linearTransponder(info = "Mode V/U SSB Transponder", downlinkMode = "USB", uplinkMode = "LSB")
assertTrue(DopplerFrequencyCalculator.isNamedLinearTransponder(xpdr))
}
@Test
fun isNamedLinearTransponder_returnsFalseForRangeEntryWithoutTransponderName() {
val driftingRangeEntry = linearTransponder(info = "Upper side band (drifting)")
assertFalse(DopplerFrequencyCalculator.isNamedLinearTransponder(driftingRangeEntry))
}
@Test
fun isNamedLinearTransponder_returnsTrueForAbbreviatedLinName() {
// AO-7 style: "Mode V/A (A) Lin SSB" — "Lin" abbreviation, no "transponder" word
val ao7Entry = linearTransponder(info = "Mode V/A (A) Lin SSB", downlinkMode = "USB", uplinkMode = "USB")
assertTrue(DopplerFrequencyCalculator.isNamedLinearTransponder(ao7Entry))
val ao7CwEntry = linearTransponder(info = "Mode V/A (A) Lin CW", downlinkMode = "CW", uplinkMode = "CW")
assertTrue(DopplerFrequencyCalculator.isNamedLinearTransponder(ao7CwEntry))
val ao7ModeBEntry = linearTransponder(info = "Mode U/V (B) Lin", downlinkMode = "USB", uplinkMode = "LSB")
assertTrue(DopplerFrequencyCalculator.isNamedLinearTransponder(ao7ModeBEntry))
}
@Test
fun isNamedLinearTransponder_returnsTrueForLinearWithoutTransponderWord() {
// AO-73 style: "Mode U/V Linear" — has "Linear" but no "transponder"
val ao73Entry = linearTransponder(info = "Mode U/V Linear", downlinkMode = "USB", uplinkMode = "LSB")
assertTrue(DopplerFrequencyCalculator.isNamedLinearTransponder(ao73Entry))
}
@Test
fun isNamedLinearTransponder_returnsFalseForDownlinkContainingLinInsideWord() {
// "Downlink" contains "lin" but is not a linear-transponder name
val downlinkEntry = linearTransponder(info = "Mode U Downlink", downlinkMode = "FM", uplinkMode = "FM")
assertFalse(DopplerFrequencyCalculator.isNamedLinearTransponder(downlinkEntry))
}
@Test
fun isNamedLinearTransponder_returnsFalseForFmRepeater() {
assertFalse(DopplerFrequencyCalculator.isNamedLinearTransponder(fmTransponder()))
}
@Test
fun deduplicateTransponders_mergesSameFrequencyRange() {
// AO-7's Mode A: same range, SSB and CW entries
val ssb = linearTransponder(
uuid = "ssb-uuid", info = "Mode V/A (A) Lin SSB",
downlinkMode = "USB", uplinkMode = "USB"
)
val cw = linearTransponder(
uuid = "cw-uuid", info = "Mode V/A (A) Lin CW",
downlinkMode = "CW", uplinkMode = "CW"
)
val modeB = linearTransponder(
uuid = "modeb-uuid", info = "Mode U/V (B) Lin",
upLow = 432_125_000L, upHigh = 432_175_000L,
downLow = 145_925_000L, downHigh = 145_975_000L,
downlinkMode = "USB", uplinkMode = "LSB"
)
val result = DopplerFrequencyCalculator.deduplicateTransponders(listOf(ssb, cw, modeB))
assertEquals(2, result.size)
// SSB entry should be preferred over CW (same range)
assertEquals("ssb-uuid", result[0].uuid)
assertEquals("modeb-uuid", result[1].uuid)
}
@Test
fun deduplicateTransponders_prefersNonCwEntry() {
// JO-97: CW entry has invert=false (wrong), SSB has invert=true (correct)
val cw = linearTransponder(
uuid = "cw-uuid", info = "U/V CW Transponder",
downlinkMode = "CW", uplinkMode = "CW",
upLow = 435_100_000L, upHigh = 435_120_000L,
downLow = 145_855_000L, downHigh = 145_875_000L
)
val ssb = linearTransponder(
uuid = "ssb-uuid", info = "U/V SSB Transponder",
downlinkMode = "USB", uplinkMode = "LSB",
upLow = 435_100_000L, upHigh = 435_120_000L,
downLow = 145_855_000L, downHigh = 145_875_000L,
inverted = true
)
val result = DopplerFrequencyCalculator.deduplicateTransponders(listOf(cw, ssb))
assertEquals(1, result.size)
assertEquals("ssb-uuid", result[0].uuid)
// Verify the correct invert flag is preserved
assertTrue(result[0].isInverted)
}
@Test
fun deduplicateTransponders_preservesUniqueEntries() {
val t1 = linearTransponder(uuid = "t1", upLow = 145_000_000L, upHigh = 145_500_000L,
downLow = 435_000_000L, downHigh = 435_500_000L)
val t2 = linearTransponder(uuid = "t2", upLow = 435_000_000L, upHigh = 435_500_000L,
downLow = 145_000_000L, downHigh = 145_500_000L)
val result = DopplerFrequencyCalculator.deduplicateTransponders(listOf(t1, t2))
assertEquals(2, result.size)
}
@Test
fun computeUplinkFromDownlink_linear_noDoppler() {
val xpdr = linearTransponder()
val orbitalPos = pos(0.0)
val uplink = DopplerFrequencyCalculator.computeUplinkFromDownlink(435_200_000L, xpdr, orbitalPos)
assertNotNull(uplink)
assertTrue(uplink!! > 0)
// With zero Doppler, result equals mapDownlinkToUplink output
assertEquals(145_200_000L, uplink)
}
@Test
fun computeDownlinkFromUplink_linear_noDoppler() {
val xpdr = linearTransponder()
val orbitalPos = pos(0.0)
val downlink = DopplerFrequencyCalculator.computeDownlinkFromUplink(145_200_000L, xpdr, orbitalPos)
assertNotNull(downlink)
assertEquals(435_200_000L, downlink)
}
@Test
fun computeUplinkFromDownlink_withDoppler_positiveRangeRate() {
// Satellite receding (positive range rate) → ground must transmit higher freq to compensate
val xpdr = linearTransponder()
val orbitalPos = pos(7.0) // ~7 km/s receding
val uplink = DopplerFrequencyCalculator.computeUplinkFromDownlink(435_200_000L, xpdr, orbitalPos)
assertNotNull(uplink)
// Uplink freq should be Doppler shifted UP (compensating for receding)
assertTrue(uplink!! > 145_200_000L)
}
@Test
fun computeUplinkFromDownlink_fm_transponder_returnsNull() {
val orbitalPos = pos()
val result = DopplerFrequencyCalculator.computeUplinkFromDownlink(435_600_000L, fmTransponder(), orbitalPos)
assertNull(result)
}
@Test
fun computeDownlinkFromUplink_fm_transponder_returnsNull() {
val orbitalPos = pos()
val result = DopplerFrequencyCalculator.computeDownlinkFromUplink(145_900_000L, fmTransponder(), orbitalPos)
assertNull(result)
}
@Test
fun computeDownlinkFromUplink_withPositiveOffset_addsOffsetToDownlink() {
val xpdr = linearTransponder()
val orbitalPos = pos(0.0)
val downlink = DopplerFrequencyCalculator.computeDownlinkFromUplinkWithOffset(
uplinkHz = 145_200_000L,
transponder = xpdr,
orbitalPos = orbitalPos,
offsetHz = 2_500L
)
assertEquals(435_202_500L, downlink)
}
@Test
fun computeUplinkFromDownlink_withPositiveOffset_subtractsOffsetBeforeMapping() {
val xpdr = linearTransponder()
val orbitalPos = pos(0.0)
val uplink = DopplerFrequencyCalculator.computeUplinkFromDownlinkWithOffset(
downlinkHz = 435_202_500L,
transponder = xpdr,
orbitalPos = orbitalPos,
offsetHz = 2_500L
)
assertEquals(145_200_000L, uplink)
}
@Test
fun computeOffsetRoundTrip_handlesNegativeOffset() {
val xpdr = linearTransponder()
val orbitalPos = pos(0.0)
val downlink = DopplerFrequencyCalculator.computeDownlinkFromUplinkWithOffset(
uplinkHz = 145_200_000L,
transponder = xpdr,
orbitalPos = orbitalPos,
offsetHz = -2_500L
)
assertEquals(435_197_500L, downlink)
val uplink = DopplerFrequencyCalculator.computeUplinkFromDownlinkWithOffset(
downlinkHz = downlink!!,
transponder = xpdr,
orbitalPos = orbitalPos,
offsetHz = -2_500L
)
assertEquals(145_200_000L, uplink)
}
@Test
fun computeUplinkFromDownlink_invertedTransponder() {
val xpdr = linearTransponder(inverted = true, downHigh = 435_500_000L)
val orbitalPos = pos(0.0)
val uplink = DopplerFrequencyCalculator.computeUplinkFromDownlink(435_200_000L, xpdr, orbitalPos)
assertNotNull(uplink)
// Inverted: offset from high end → maps to high end of uplink
assertEquals(145_300_000L, uplink)
}
@Test
fun computeUplinkFromDownlink_roundTrip() {
// downlink → uplink → downlink should round-trip
val xpdr = linearTransponder()
val orbitalPos = pos(3.5)
val originalDownlink = 435_250_000L
val uplink = DopplerFrequencyCalculator.computeUplinkFromDownlink(originalDownlink, xpdr, orbitalPos)
assertNotNull(uplink)
val roundTripDownlink = DopplerFrequencyCalculator.computeDownlinkFromUplink(uplink!!, xpdr, orbitalPos)
assertNotNull(roundTripDownlink)
// Doppler round-trip: small residual due to freq-dependent Doppler
val error = kotlin.math.abs(roundTripDownlink!! - originalDownlink)
assertTrue("Round-trip error too large: $error", error < 10000)
}
}
@@ -1,3 +1,20 @@
/*
* Look4Sat. Amateur radio satellite tracker and pass predictor.
* Copyright (C) 2019-2026 Arty Bishop and contributors.
*
* This program is free software: you can redistribute it and/or modify
* it under the terms of the GNU General Public License as published by
* the Free Software Foundation, either version 3 of the License, or
* (at your option) any later version.
*
* This program is distributed in the hope that it will be useful,
* but WITHOUT ANY WARRANTY; without even the implied warranty of
* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
* GNU General Public License for more details.
*
* You should have received a copy of the GNU General Public License
* along with this program. If not, see <https://www.gnu.org/licenses/>.
*/
package com.rtbishop.look4sat.core.domain
import com.rtbishop.look4sat.core.domain.utility.positionToQth
@@ -5,34 +22,25 @@ import com.rtbishop.look4sat.core.domain.utility.qthToPosition
import org.junit.Test
class QthConverterTest {
@Test
fun `Given valid QTH returns correct POS`() {
// 8-char locator -> centre of the extended square (higher precision)
var result = qthToPosition("io91VL39FX")
assert(result?.latitude == 51.5188 && result.longitude == -0.1792)
assert(result?.latitude == 51.4792 && result.longitude == -0.2083)
result = qthToPosition("gf15vc")
assert(result?.latitude == -34.8958 && result.longitude == -56.2083)
// 4-char locator -> centre of the 2deg x 1deg square
result = qthToPosition("JN58")
assert(result?.latitude == 48.5 && result.longitude == 11.0)
// lowercase input is accepted and normalised
result = qthToPosition("ol63pd")
assert(result?.latitude == 23.1458 && result.longitude == 113.2917)
}
@Test
fun `Given invalid QTH returns null`() {
assert(qthToPosition("ZZ00zz") == null)
assert(qthToPosition("JN5") == null) // odd length
assert(qthToPosition("JN58Z") == null) // 5 chars
assert(qthToPosition("JN58ZA") == null) // Z out of A-X range
assert(qthToPosition("JN58") == null)
}
@Test
fun `Given valid POS returns correct QTH`() {
assert(positionToQth(51.4878, -0.2146) == "IO91VL")
assert(positionToQth(48.1466, 11.6083) == "JN58TD")
assert(positionToQth(23.13, 113.26) == "OL63PD")
assert(positionToQth(51.4878, -0.2146) == "IO91vl")
assert(positionToQth(48.1466, 11.6083) == "JN58td")
}
@Test
@@ -1,58 +0,0 @@
package com.rtbishop.look4sat.core.domain
import com.rtbishop.look4sat.core.domain.utility.VersionComparator
import org.junit.Assert.assertEquals
import org.junit.Assert.assertFalse
import org.junit.Assert.assertTrue
import org.junit.Test
class VersionComparatorTest {
@Test
fun `newer build number wins when base version equal`() {
assertTrue(VersionComparator.isNewer("4.4.6-ba7opf.7", "4.4.6-ba7opf.6"))
assertTrue(VersionComparator.isNewer("v4.4.6-ba7opf.6", "4.4.6-ba7opf.5"))
}
@Test
fun `newer base version wins regardless of build number`() {
assertTrue(VersionComparator.isNewer("4.5.0", "4.4.6-ba7opf.99"))
assertTrue(VersionComparator.isNewer("4.4.7-ba7opf.1", "4.4.6-ba7opf.99"))
}
@Test
fun `older versions are not newer`() {
assertFalse(VersionComparator.isNewer("4.4.6-ba7opf.5", "4.4.6-ba7opf.6"))
assertFalse(VersionComparator.isNewer("4.4.5", "4.4.6-ba7opf.1"))
assertFalse(VersionComparator.isNewer("4.4.6-ba7opf.6", "4.4.6-ba7opf.6"))
}
@Test
fun `v prefix is ignored`() {
assertTrue(VersionComparator.isNewer("v4.4.7", "4.4.6"))
assertFalse(VersionComparator.isNewer("v4.4.6", "4.4.6-ba7opf.1"))
}
@Test
fun `non numeric suffix without number treated as zero build`() {
assertTrue(VersionComparator.isNewer("4.4.6-ba7opf.1", "4.4.6-ba7opf"))
assertFalse(VersionComparator.isNewer("4.4.6-ba7opf", "4.4.6-ba7opf.1"))
}
@Test
fun `multi level suffixes compare correctly`() {
// The .9.1 hotfix case that exposed the old single-build-number logic.
assertTrue(VersionComparator.isNewer("4.4.6-ba7opf.9.1", "4.4.6-ba7opf.9"))
assertTrue(VersionComparator.isNewer("v4.4.6-ba7opf.9.1", "4.4.6-ba7opf.8"))
assertFalse(VersionComparator.isNewer("4.4.6-ba7opf.9", "4.4.6-ba7opf.9.1"))
assertTrue(VersionComparator.isNewer("4.4.6-ba7opf.10", "4.4.6-ba7opf.9.1"))
}
@Test
fun `parse extracts base and suffix segments`() {
assertEquals(listOf(4, 4, 6) to listOf(7), VersionComparator.parse("v4.4.6-ba7opf.7"))
assertEquals(listOf(4, 4, 6) to listOf(9, 1), VersionComparator.parse("v4.4.6-ba7opf.9.1"))
assertEquals(listOf(4, 4, 6) to emptyList<Int>(), VersionComparator.parse("4.4.6"))
assertEquals(listOf(4, 4, 6) to emptyList<Int>(), VersionComparator.parse("4.4.6-ba7opf"))
}
}
@@ -1,301 +0,0 @@
/*
* Look4Sat. Amateur radio satellite tracker and pass predictor.
* Copyright (C) 2019-2026 Arty Bishop and contributors.
*
* This program is free software: you can redistribute it and/or modify
* it under the terms of the GNU General Public License as published by
* the Free Software Foundation, either version 3 of the License, or
* (at your option) any later version.
*
* This program is distributed in the hope that it will be useful,
* but WITHOUT ANY WARRANTY; without even the implied warranty of
* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
* GNU General Public License for more details.
*
* You should have received a copy of the GNU General Public License
* along with this program. If not, see <https://www.gnu.org/licenses/>.
*/
package com.rtbishop.look4sat.core.domain.cw
import org.junit.Assert.*
import org.junit.Test
import kotlin.math.PI
import kotlin.math.sin
class CwDecoderTest {
// --- Morse table ---
@Test
fun morseToChar_basicLetters() {
assertEquals('A', CwBayesianDecoder.morseToChar("01"))
assertEquals('S', CwBayesianDecoder.morseToChar("000"))
assertEquals('O', CwBayesianDecoder.morseToChar("111"))
}
@Test
fun morseToChar_numbers() {
assertEquals('1', CwBayesianDecoder.morseToChar("01111"))
assertEquals('0', CwBayesianDecoder.morseToChar("11111"))
}
@Test
fun morseToChar_unknown_returnsNull() {
assertNull(CwBayesianDecoder.morseToChar("......."))
assertNull(CwBayesianDecoder.morseToChar(""))
}
// --- FFT ---
@Test
fun fft_magnitudeSpectrum_detectsTone() {
val fft = CwFFT(256)
val sampleRate = 8000f
val freq = 700f
val buffer = FloatArray(256) { (sin(2.0 * PI * freq * it / sampleRate)).toFloat() }
val mag = fft.magnitudeSpectrum(buffer)
// Peak should be at bin around 700 * 256 / 8000 ≈ 22.4
var maxBin = 0
var maxVal = 0f
for (i in mag.indices) {
if (mag[i] > maxVal) { maxVal = mag[i]; maxBin = i }
}
assertTrue("Peak bin $maxBin should be near 22", maxBin in 18..26)
assertTrue("Peak value $maxVal should be positive", maxVal > 0.01f)
}
@Test
fun fft_magnitudeSpectrum_silence_isFlat() {
val fft = CwFFT(256)
val buffer = FloatArray(256) { 0f }
val mag = fft.magnitudeSpectrum(buffer)
for (v in mag) assertEquals("Silence spectrum should be 0, got $v", 0f, v, 1e-6f)
}
@Test
fun fft_rejectsWrongSize() {
assertThrows(IllegalArgumentException::class.java) { CwFFT(100) }
}
// --- Spectrogram ---
@Test
fun spectrogram_addSamples_updatesEnergy() {
val spec = CwSpectrogram(sampleRate = 8000)
val freq = 700f
// Feed multiple frames to stabilize energy normalization
for (i in 0..5) {
val buffer = FloatArray(256) { (sin(2.0 * PI * freq * it / 8000.0)).toFloat() }
spec.addSamples(buffer)
}
val col = spec.getCurrentColumn()
val peakBin = spec.findPeakBin()
assertTrue("Peak bin $peakBin should be >= 0", peakBin >= 0)
}
@Test
fun spectrogram_findPeakBin_returnsValidBin() {
val spec = CwSpectrogram(sampleRate = 8000)
// Add multiple frames of 700 Hz tone
for (i in 0..5) {
val buffer = FloatArray(256) { (sin(2.0 * PI * 700.0 * it / 8000.0)).toFloat() }
spec.addSamples(buffer)
}
val peakBin = spec.findPeakBin()
assertTrue("Peak bin should be >= 0, got $peakBin", peakBin >= 0)
}
@Test
fun spectrogram_freqToBin_roundtrip() {
val spec = CwSpectrogram(sampleRate = 8000)
val freq = 700f
val bin = spec.freqToBin(freq)
val backFreq = spec.binToFreq(bin)
assertTrue("Freq $freq → bin $bin → freq $backFreq", backFreq > 600f && backFreq < 800f)
}
@Test
fun spectrogram_getBinEnergy_returnsCorrectLength() {
val spec = CwSpectrogram(sampleRate = 8000)
val energy = spec.getBinEnergy(0, 10)
assertEquals(10, energy.size)
}
@Test
fun spectrogram_reset() {
val spec = CwSpectrogram(sampleRate = 8000)
spec.addSamples(FloatArray(256) { 1f })
spec.reset()
assertEquals(-1, spec.findPeakBin())
}
// --- Bayesian decoder ---
@Test
fun bayesian_processTone_dit() {
val decoder = CwBayesianDecoder()
// At 20 WPM, dot = 60 ms
val result = decoder.processTone(60f)
assertEquals('0', result.symbol)
assertTrue("Dit probability should be positive", result.probability > 0.1f)
}
@Test
fun bayesian_processTone_dash() {
val decoder = CwBayesianDecoder()
// Dash = 3 * dot = 180 ms
val result = decoder.processTone(180f)
assertEquals('1', result.symbol)
assertTrue("Dash probability should be positive", result.probability > 0.1f)
}
@Test
fun bayesian_processTone_unknown_returnsNull() {
val decoder = CwBayesianDecoder()
// Very long tone — low probability for both dit and dash
val result = decoder.processTone(5000f)
assertNull(result.symbol)
}
@Test
fun bayesian_processGap_interChar_returnsChar() {
val decoder = CwBayesianDecoder()
decoder.processTone(60f) // dit
decoder.processTone(60f) // dit
decoder.processTone(60f) // dit
// 3 dots = "000" = 'S'
val char = decoder.processGap(180f) // 3 * dot = inter-char gap
assertEquals('S', char)
}
@Test
fun bayesian_processGap_wordGap_addsSpace() {
val decoder = CwBayesianDecoder()
decoder.processTone(60f) // dit = 'E'
decoder.processGap(180f) // inter-char gap
// Now word gap
val space = decoder.processGap(420f) // 7 * dot
assertEquals(' ', space)
}
@Test
fun bayesian_decodedText_accumulates() {
val decoder = CwBayesianDecoder()
decoder.processTone(60f) // dit = 'E'
decoder.processGap(180f) // inter-char
assertTrue(decoder.decodedText.isNotEmpty())
}
@Test
fun bayesian_reset() {
val decoder = CwBayesianDecoder()
decoder.processTone(60f)
decoder.reset()
assertEquals("", decoder.decodedText)
}
@Test
fun bayesian_getSpeed() {
val decoder = CwBayesianDecoder()
// Send 3 dits at 20 WPM (60 ms each)
decoder.processTone(60f)
decoder.processTone(60f)
decoder.processTone(60f)
val speed = decoder.getSpeed()
assertTrue("Speed should be ~20 WPM, got $speed", speed > 15f && speed < 30f)
}
// --- Channel tracker ---
@Test
fun channelTracker_initialState() {
val spec = CwSpectrogram(sampleRate = 8000)
val tracker = CwChannelTracker(spec)
val channels = tracker.update()
assertTrue("No channels should be active initially", channels.isEmpty())
}
@Test
fun channelTracker_detectsTone() {
val spec = CwSpectrogram(sampleRate = 8000)
// Feed a tone
for (i in 0..5) {
spec.addSamples(FloatArray(256) { (sin(2.0 * PI * 700.0 * it / 8000.0)).toFloat() })
}
val tracker = CwChannelTracker(spec)
val channels = tracker.update()
assertTrue("Should detect at least 1 channel", channels.isNotEmpty())
}
@Test
fun channelTracker_bestChannel() {
val spec = CwSpectrogram(sampleRate = 8000)
for (i in 0..5) {
spec.addSamples(FloatArray(256) { (sin(2.0 * PI * 700.0 * it / 8000.0)).toFloat() })
}
val tracker = CwChannelTracker(spec)
tracker.update()
val best = tracker.getBestChannel()
assertNotNull("Best channel should exist", best)
if (best != null) assertTrue(best.frequency in 600f..800f)
}
@Test
fun channelTracker_reset() {
val spec = CwSpectrogram(sampleRate = 8000)
for (i in 0..5) {
spec.addSamples(FloatArray(256) { (sin(2.0 * PI * 700.0 * it / 8000.0)).toFloat() })
}
val tracker = CwChannelTracker(spec)
tracker.update()
tracker.reset()
assertNull(tracker.getBestChannel())
}
// --- Full decoder ---
@Test
fun decoder_initialState() {
val decoder = CwDecoder()
assertEquals("", decoder.decodedTextFlow.value)
assertEquals(0f, decoder.signalStrength.value, 0.001f)
}
@Test
fun decoder_processSilence_doesNotCrash() {
val decoder = CwDecoder()
decoder.processBuffer(FloatArray(256) { 0f })
assertEquals("", decoder.decodedTextFlow.value)
}
@Test
fun decoder_processNoise_doesNotCrash() {
val decoder = CwDecoder()
decoder.processBuffer(FloatArray(256) { (Math.random() * 2 - 1).toFloat() * 0.1f })
assertNotNull(decoder.decodedTextFlow.value)
}
@Test
fun decoder_processTone_doesNotCrash() {
val decoder = CwDecoder()
for (i in 0..20) {
decoder.processBuffer(FloatArray(256) { (sin(2.0 * PI * 700.0 * it / 8000.0)).toFloat() })
}
assertNotNull(decoder.decodedTextFlow.value)
}
@Test
fun decoder_reset() {
val decoder = CwDecoder()
decoder.processBuffer(FloatArray(256) { 1f })
decoder.resetDecoder()
assertEquals("", decoder.decodedTextFlow.value)
assertEquals(0f, decoder.signalStrength.value, 0.001f)
}
@Test
fun decoder_withFixedPitch() {
val decoder = CwDecoder(sampleRate = 8000, cwToneFreq = 700f)
assertEquals(700f, decoder.estimatedPitch.value)
}
}
@@ -1,155 +0,0 @@
/*
* Look4Sat. Amateur radio satellite tracker and pass predictor.
* Copyright (C) 2019-2026 Arty Bishop and contributors.
*
* This program is free software: you can redistribute it and/or modify
* it under the terms of the GNU General Public License as published by
* the Free Software Foundation, either version 3 of the License, or
* (at your option) any later version.
*
* This program is distributed in the hope that it will be useful,
* but WITHOUT ANY WARRANTY; without even the implied warranty of
* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
* GNU General Public License for more details.
*
* You should have received a copy of the GNU General Public License
* along with this program. If not, see <https://www.gnu.org/licenses/>.
*/
package com.rtbishop.look4sat.core.domain.model
import org.junit.Assert.assertEquals
import org.junit.Assert.assertTrue
import org.junit.Test
class AwardCalculatorTest {
private fun qso(
call: String,
dxcc: Int? = null,
cqz: Int? = null,
state: String? = null,
grid: String = "OL62"
) = GridQso(
call = call, epochMs = 0L, satName = "SO-50", mode = "FM",
bandUp = "70CM", bandDown = "2M", dxcc = dxcc, cqz = cqz, state = state
)
private fun byGrid(vararg qsos: GridQso) =
qsos.groupBy { "OL62" } // all share one grid for award-math tests
@Test
fun `vucc counts distinct grid keys`() {
val qsos = mapOf(
"OL62" to listOf(qso("BG7XYZ")),
"PM95" to listOf(qso("JH0ABC")),
"OL62" to listOf(qso("BA7AAA"))
)
// map literal dedupes keys: OL62/PM95 -> 2 grids
val progress = AwardCalculator.calculate(qsos).first { it.type == AwardType.VUCC }
assertEquals(2, progress.count)
assertTrue(progress.workedKeys.containsAll(setOf("OL62", "PM95")))
}
@Test
fun `dxcc counts distinct entities from dxcc field`() {
val all = listOf(
qso("BG7XYZ", dxcc = 318),
qso("JH0ABC", dxcc = 339),
qso("YD1XYZ", dxcc = 327),
qso("BG7ABC", dxcc = 318)
)
val progress = AwardCalculator.calculate(byGrid(*all.toTypedArray())).first { it.type == AwardType.DXCC }
assertEquals(3, progress.count)
assertTrue(progress.workedKeys.containsAll(setOf("318", "339", "327")))
}
@Test
fun `dxcc falls back to prefix when dxcc missing`() {
val all = listOf(qso("JH0ABC"), qso("BG7XYZ"), qso("VR2XYZ"), qso("XX9A"))
val progress = AwardCalculator.calculate(byGrid(*all.toTypedArray())).first { it.type == AwardType.DXCC }
assertEquals(4, progress.count)
assertTrue(progress.workedKeys.containsAll(setOf("339", "318", "321", "152")))
}
@Test
fun `wapc counts mainland provinces plus hk mo tw`() {
val all = listOf(
qso("BG7XYZ", dxcc = 318, state = "GD"), // Guangdong
qso("BD5ABC", dxcc = 318, state = "ZJ"), // Zhejiang
qso("BD5ABC", dxcc = 318, state = "ZJ"), // dup
qso("VR2X", dxcc = 321), // Hong Kong
qso("XX9A", dxcc = 152), // Macao
qso("BM4X", dxcc = 386) // Taiwan
)
val progress = AwardCalculator.calculate(byGrid(*all.toTypedArray())).first { it.type == AwardType.WAPC }
assertEquals(5, progress.count)
assertTrue(progress.workedKeys.containsAll(setOf("GD", "ZJ", "HK", "MO", "TW")))
}
@Test
fun `wapc ignores non-china states and missing states`() {
val all = listOf(
qso("JH0ABC", dxcc = 339, state = "34"), // Japan state ignored
qso("BG7XYZ", dxcc = 318, state = null), // missing province
qso("K1ABC", dxcc = 291, state = "HI") // Hawaii != Hainan
)
val progress = AwardCalculator.calculate(byGrid(*all.toTypedArray())).first { it.type == AwardType.WAPC }
assertEquals(0, progress.count)
assertTrue(progress.workedKeys.isEmpty())
}
@Test
fun `waja counts japanese prefectures only`() {
val all = listOf(
qso("JH0ABC", dxcc = 339, state = "10"), // Tokyo
qso("JH0ABC", dxcc = 339, state = "47"), // Okinawa
qso("JH0ABC", dxcc = 339, state = "10"), // dup
qso("BG7XYZ", dxcc = 318, state = "10"), // Chinese call, state=10 must NOT count
qso("JE2XYZ", dxcc = 339, state = null) // missing
)
val progress = AwardCalculator.calculate(byGrid(*all.toTypedArray())).first { it.type == AwardType.WAJA }
assertEquals(2, progress.count)
assertTrue(progress.workedKeys.containsAll(setOf("10", "47")))
}
@Test
fun `waz counts distinct cq zones in range`() {
val all = listOf(
qso("BG7XYZ", cqz = 24),
qso("JH0ABC", cqz = 25),
qso("YD1XYZ", cqz = 28),
qso("BG7AAA", cqz = 24),
qso("BG7BBB", cqz = null),
qso("BG7CCC", cqz = 0)
)
val progress = AwardCalculator.calculate(byGrid(*all.toTypedArray())).first { it.type == AwardType.WAZ }
assertEquals(3, progress.count)
assertTrue(progress.workedKeys.containsAll(setOf("24", "25", "28")))
}
@Test
fun `was counts us states only`() {
val all = listOf(
qso("K1ABC", dxcc = 291, state = "CA"),
qso("W2XYZ", dxcc = 291, state = "NY"),
qso("N3QRS", dxcc = 291, state = "ca"), // lowercase normalized
qso("BG7XYZ", dxcc = 318, state = "CA"), // not US
qso("K1AAA", dxcc = 291, state = "XX") // invalid state
)
val progress = AwardCalculator.calculate(byGrid(*all.toTypedArray())).first { it.type == AwardType.WAS }
assertEquals(2, progress.count)
assertTrue(progress.workedKeys.containsAll(setOf("CA", "NY")))
}
@Test
fun `all six awards present with correct targets`() {
val progress = AwardCalculator.calculate(emptyMap())
assertEquals(6, progress.size)
assertEquals(100, progress.first { it.type == AwardType.DXCC }.target)
assertEquals(100, progress.first { it.type == AwardType.VUCC }.target)
assertEquals(34, progress.first { it.type == AwardType.WAPC }.target)
assertEquals(47, progress.first { it.type == AwardType.WAJA }.target)
assertEquals(40, progress.first { it.type == AwardType.WAZ }.target)
assertEquals(50, progress.first { it.type == AwardType.WAS }.target)
}
}
@@ -1,79 +0,0 @@
/*
* Look4Sat. Amateur radio satellite tracker and pass predictor.
* Copyright (C) 2019-2026 Arty Bishop and contributors.
*
* This program is free software: you can redistribute it and/or modify
* it under the terms of the GNU General Public License as published by
* the Free Software Foundation, either version 3 of the License, or
* (at your option) any later version.
*
* This program is distributed in the hope that it will be useful,
* but WITHOUT ANY WARRANTY; without even the implied warranty of
* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
* GNU General Public License for more details.
*
* You should have received a copy of the GNU General Public License
* along with this program. If not, see <https://www.gnu.org/licenses/>.
*/
package com.rtbishop.look4sat.core.domain.predict
import org.junit.Assert.assertEquals
import org.junit.Assert.assertTrue
import org.junit.Test
import java.time.Instant
import kotlin.math.abs
class CelestialComputerTest {
private data class RiseSetCase(
val name: String,
val observer: GeoPos,
val startIso: String
)
@Test
fun `findSunRiseSet returns distinct sunrise and sunset for representative locations`() {
val cases = listOf(
RiseSetCase("Equator at March equinox", GeoPos(0.0, 0.0), "2026-03-20T00:00:00Z"),
RiseSetCase("Equator at September equinox", GeoPos(0.0, 0.0), "2026-09-23T00:00:00Z"),
RiseSetCase("Sydney winter", GeoPos(-33.8688, 151.2093), "2026-06-21T00:00:00Z"),
RiseSetCase("Buenos Aires winter", GeoPos(-34.6037, -58.3816), "2026-06-21T00:00:00Z"),
RiseSetCase("Cape Town winter", GeoPos(-33.9249, 18.4241), "2026-06-21T00:00:00Z"),
RiseSetCase("London summer", GeoPos(51.5074, -0.1278), "2026-06-21T00:00:00Z")
)
cases.forEach { testCase ->
val result = CelestialComputer.findSunRiseSet(testCase.observer, testCase.startIso.toMillis())
val daylightDuration = result.setTimeMillis - result.riseTimeMillis
assertTrue("${testCase.name}: sunrise should be non-zero", result.riseTimeMillis > 0L)
assertTrue("${testCase.name}: sunset should be non-zero", result.setTimeMillis > 0L)
assertTrue("${testCase.name}: sunset should be after sunrise", result.setTimeMillis > result.riseTimeMillis)
assertTrue("${testCase.name}: daylight duration should be longer than 1 hour", daylightDuration > HOUR_MILLIS)
assertTrue("${testCase.name}: daylight duration should be shorter than 24 hours", daylightDuration < DAY_MILLIS)
val riseElevation = CelestialComputer.getSunPosition(testCase.observer, result.riseTimeMillis).elevation
val setElevation = CelestialComputer.getSunPosition(testCase.observer, result.setTimeMillis).elevation
assertEquals("${testCase.name}: sunrise should converge near the standard threshold", SUNRISE_SET_THRESHOLD, riseElevation, 0.02)
assertEquals("${testCase.name}: sunset should converge near the standard threshold", SUNRISE_SET_THRESHOLD, setElevation, 0.02)
}
}
@Test
fun `findSunRiseSet does not return the same instant for equinox regression cases`() {
listOf("2026-03-20T00:00:00Z", "2026-09-23T00:00:00Z").forEach { startIso ->
val result = CelestialComputer.findSunRiseSet(GeoPos(0.0, 0.0), startIso.toMillis())
val separationMillis = abs(result.setTimeMillis - result.riseTimeMillis)
assertTrue("$startIso: sunrise and sunset should be separated", separationMillis > HOUR_MILLIS)
}
}
private fun String.toMillis(): Long = Instant.parse(this).toEpochMilli()
private companion object {
private const val SUNRISE_SET_THRESHOLD = -0.8333
private const val HOUR_MILLIS = 60L * 60L * 1000L
private const val DAY_MILLIS = 24L * HOUR_MILLIS
}
}
@@ -1,294 +0,0 @@
/*
* Look4Sat. Amateur radio satellite tracker and pass predictor.
* Copyright (C) 2019-2026 Arty Bishop and contributors.
*
* This program is free software: you can redistribute it and/or modify
* it under the terms of the GNU General Public License as published by
* the Free Software Foundation, either version 3 of the License, or
* (at your option) any later version.
*
* This program is distributed in the hope that it will be useful,
* but WITHOUT ANY WARRANTY; without even the implied warranty of
* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
* GNU General Public License for more details.
*
* You should have received a copy of the GNU General Public License
* along with this program. If not, see <https://www.gnu.org/licenses/>.
*/
package com.rtbishop.look4sat.core.domain.repository
import com.rtbishop.look4sat.core.domain.model.DatabaseState
import com.rtbishop.look4sat.core.domain.model.DataSourcesSettings
import com.rtbishop.look4sat.core.domain.model.GridQso
import com.rtbishop.look4sat.core.domain.model.LoTWSettings
import com.rtbishop.look4sat.core.domain.model.MarkedStation
import com.rtbishop.look4sat.core.domain.model.OtherSettings
import com.rtbishop.look4sat.core.domain.model.PassesSettings
import com.rtbishop.look4sat.core.domain.model.RCSettings
import com.rtbishop.look4sat.core.domain.model.RadioControlSettings
import com.rtbishop.look4sat.core.domain.model.WavelogSettings
import com.rtbishop.look4sat.core.domain.predict.GeoPos
import kotlinx.coroutines.flow.MutableStateFlow
import kotlinx.coroutines.flow.StateFlow
import kotlinx.coroutines.runBlocking
import org.junit.Assert.assertEquals
import org.junit.Assert.assertFalse
import org.junit.Assert.assertTrue
import org.junit.Test
class LoTWGridSyncTest {
// 2026-09-16T00:00:00Z — fixed "now" for the cursor assertions.
private val now = 1_789_516_800_000L
// region resolveLoTWSyncMode
@Test
fun resolveModeHonorsExplicitFull() {
assertEquals(LoTWSyncMode.Full, resolveLoTWSyncMode("BA7OPF", "BA7OPF", LoTWSyncMode.Full))
assertEquals(LoTWSyncMode.Full, resolveLoTWSyncMode("", "BA7OPF", LoTWSyncMode.Full))
}
@Test
fun resolveModeAllowsIncrementalOnlyForSameCallsign() {
assertEquals(
LoTWSyncMode.Incremental,
resolveLoTWSyncMode("BA7OPF", "BA7OPF", LoTWSyncMode.Incremental)
)
assertEquals(
LoTWSyncMode.Full,
resolveLoTWSyncMode("BG7ABC", "BA7OPF", LoTWSyncMode.Incremental)
)
assertEquals(
LoTWSyncMode.Full,
resolveLoTWSyncMode("", "BA7OPF", LoTWSyncMode.Incremental)
)
}
@Test
fun resolveModeForAutoSyncPicksIncrementalWhenPossible() {
assertEquals(LoTWSyncMode.Incremental, resolveLoTWSyncMode("BA7OPF", "BA7OPF", null))
assertEquals(LoTWSyncMode.Full, resolveLoTWSyncMode("BG7ABC", "BA7OPF", null))
assertEquals(LoTWSyncMode.Full, resolveLoTWSyncMode("", "BA7OPF", null))
}
// endregion
// region shouldAutoSyncLoTW
@Test
fun autoSyncGateRequiresEverything() {
val today = "20260916"
// Not configured.
assertFalse(shouldAutoSyncLoTW(false, true, "2026-09-15 10:00:00", today))
// LoTW auto-sync toggle off.
assertFalse(shouldAutoSyncLoTW(true, false, "2026-09-15 10:00:00", today))
// Never synced manually — first sync stays manual/full.
assertFalse(shouldAutoSyncLoTW(true, true, "", today))
// Already synced today (both legacy and current cursor formats) — ARRL rate-limit guard.
assertFalse(shouldAutoSyncLoTW(true, true, "20260916", today))
assertFalse(shouldAutoSyncLoTW(true, true, "2026-09-16 08:00:00", today))
// All gates open — yesterday in either format.
assertTrue(shouldAutoSyncLoTW(true, true, "20260915", today))
assertTrue(shouldAutoSyncLoTW(true, true, "2026-09-15 10:00:00", today))
}
// endregion
// region cursor helpers
@Test
fun cursorApiNormalizesLegacyAndPassesFullThrough() {
assertEquals("2026-09-16", lotwCursorApi("20260916"))
assertEquals("2026-09-16 08:16:02", lotwCursorApi("2026-09-16 08:16:02"))
assertEquals("", lotwCursorApi(""))
}
@Test
fun cursorDateToleratesBothFormats() {
assertEquals("20260916", lotwCursorDate("20260916"))
assertEquals("20260916", lotwCursorDate("2026-09-16 08:16:02"))
assertEquals("", lotwCursorDate(""))
}
@Test
fun cursorEpochMsParsesBothFormatsUtc() {
// 2026-09-16T00:00:00Z in both spellings.
assertEquals(now, lotwCursorEpochMs("20260916"))
assertEquals(now, lotwCursorEpochMs("2026-09-16 00:00:00"))
assertEquals(0L, lotwCursorEpochMs(""))
assertEquals(0L, lotwCursorEpochMs("garbage"))
}
// endregion
// region mergeGridQsos
@Test
fun mergeGridQsosDedupsByCallAndTime() {
val existing = mapOf(
"OL62" to listOf(qso("BA7ABC", 1000L)),
"OL63" to listOf(qso("BA7DEF", 2000L))
)
val fresh = mapOf(
// Same grid, same QSO re-delivered by an overlapping since-date.
"OL62" to listOf(qso("BA7ABC", 1000L)),
// Same grid, brand-new QSO.
"OL62" to listOf(qso("BA7GHI", 3000L)),
// New grid entirely.
"PM95" to listOf(qso("BA7JKL", 4000L))
)
val merged = mergeGridQsos(existing, fresh)
assertEquals(setOf("OL62", "OL63", "PM95"), merged.keys)
assertEquals(2, merged["OL62"]?.size) // BA7ABC once, BA7GHI added
assertEquals(1, merged["OL63"]?.size)
assertEquals(1, merged["PM95"]?.size)
}
@Test
fun mergeGridQsosHandlesEmptySides() {
val fresh = mapOf("OL62" to listOf(qso("BA7ABC", 1000L)))
assertEquals(fresh, mergeGridQsos(emptyMap(), fresh))
// An empty incremental pull must leave the stored side untouched.
assertEquals(fresh, mergeGridQsos(fresh, emptyMap()))
assertEquals(emptyMap<String, List<GridQso>>(), mergeGridQsos(emptyMap(), emptyMap()))
}
// endregion
// region applyLoTWGridResult
@Test
fun applyIncrementalMergesAndAdvancesCursor() = runBlocking {
val repo = FakeSettingsRepo().apply {
setWorkedGrids(setOf("OL62"))
setWorkedGridQsos(mapOf("OL62" to listOf(qso("BA7ABC", 1000L))))
setRoamedGrids(setOf("OL62"))
setLastLotwSyncDate("20260915")
setLastLotwSyncCallsign("BA7OPF")
}
val result = LoTWResult.Success(
grids = setOf("OL62", "PM95"),
qsos = mapOf("OL62" to listOf(qso("BA7ABC", 1000L)), "PM95" to listOf(qso("BA7GHI", 2000L))),
roamedGrids = setOf("PM95")
)
val count = applyLoTWGridResult(repo, result, LoTWSyncMode.Incremental, "BA7OPF", now)
assertEquals(2, count)
assertEquals(setOf("OL62", "PM95"), repo.getWorkedGrids())
assertEquals(1, repo.getWorkedGridQsos()["OL62"]?.size) // deduped
assertEquals(setOf("OL62", "PM95"), repo.getRoamedGrids())
assertEquals("2026-09-16 00:00:00", repo.getLastLotwSyncDate())
assertEquals("BA7OPF", repo.getLastLotwSyncCallsign())
}
@Test
fun applyFullReplacesEverythingAndAdvancesCursor() = runBlocking {
val repo = FakeSettingsRepo().apply {
setWorkedGrids(setOf("OL62", "STALE"))
setWorkedGridQsos(mapOf("STALE" to listOf(qso("BG7OLD", 1L))))
setRoamedGrids(setOf("STALE"))
setLastLotwSyncDate("20260910")
setLastLotwSyncCallsign("BG7OLD")
}
val result = LoTWResult.Success(
grids = setOf("PM95"),
qsos = mapOf("PM95" to listOf(qso("BA7GHI", 2000L))),
roamedGrids = setOf("PM95")
)
val count = applyLoTWGridResult(repo, result, LoTWSyncMode.Full, "BA7OPF", now)
assertEquals(1, count)
assertEquals(setOf("PM95"), repo.getWorkedGrids())
assertEquals(setOf("PM95"), repo.getWorkedGridQsos().keys)
assertEquals(setOf("PM95"), repo.getRoamedGrids())
assertEquals("2026-09-16 00:00:00", repo.getLastLotwSyncDate())
assertEquals("BA7OPF", repo.getLastLotwSyncCallsign())
}
// endregion
private fun qso(call: String, epochMs: Long): GridQso =
GridQso(call, epochMs, "FO-29", "FM", "70CM", "2M")
/**
* Minimal ISettingsRepo fake backing only the LoTW sync surface; the rest
* throws (mirrors the FakeSettingsRepo pattern used in feature tests).
*/
private class FakeSettingsRepo : ISettingsRepo {
override val stationPosition: StateFlow<GeoPos> = MutableStateFlow(GeoPos(23.13, 113.26))
override val appVersionName: String = "test"
override val selectedIds: StateFlow<List<Int>> = MutableStateFlow(emptyList())
override val selectedTypes: StateFlow<List<String>> = MutableStateFlow(emptyList())
override val passesSettings: StateFlow<PassesSettings> = MutableStateFlow(
PassesSettings(hoursAhead = 24, minElevation = 10.0, selectedModes = emptyList())
)
override val databaseState: StateFlow<DatabaseState> = MutableStateFlow(DatabaseState(0, 0, 0L))
override val rcSettings: StateFlow<RCSettings> = MutableStateFlow(
RCSettings(false, "", "", "", false, "", "", "", 0L, false, "", "", "", false, "", "")
)
override val otherSettings: StateFlow<OtherSettings> = MutableStateFlow(
OtherSettings(
stateOfAutoUpdate = true,
stateOfSensors = false,
stateOfSweep = false,
stateOfUtc = false,
stateOfLightTheme = false,
stateOfNightMode = false,
stateOfMapGrid = false,
shouldSeeWarning = false,
shouldSeeWhatsNew = false
)
)
override val dataSourcesSettings: StateFlow<DataSourcesSettings> = MutableStateFlow(
DataSourcesSettings(satelliteUrls = emptyList(), transceiversUrls = emptyList())
)
override val dataSourcesStatus: StateFlow<Map<String, Int>> = MutableStateFlow(emptyMap())
override val radioControlSettings: StateFlow<RadioControlSettings> = MutableStateFlow(
RadioControlSettings(false, RadioControlSettings.MODEL_YAESU_FT817, "", "", "", "", 9600)
)
override val wavelogSettings: StateFlow<WavelogSettings> = MutableStateFlow(WavelogSettings())
override val lotwSettings: StateFlow<LoTWSettings> = MutableStateFlow(LoTWSettings())
private var workedGrids: Set<String> = emptySet()
private var workedGridQsos: Map<String, List<GridQso>> = emptyMap()
private var roamedGrids: Set<String> = emptySet()
private var lastSyncDate: String = ""
private var lastSyncCallsign: String = ""
override fun getWorkedGrids(): Set<String> = workedGrids
override fun setWorkedGrids(grids: Set<String>) { workedGrids = grids }
override fun getWorkedGridQsos(): Map<String, List<GridQso>> = workedGridQsos
override fun setWorkedGridQsos(qsos: Map<String, List<GridQso>>) { workedGridQsos = qsos }
override fun getRoamedGrids(): Set<String> = roamedGrids
override fun setRoamedGrids(grids: Set<String>) { roamedGrids = grids }
private var markedGridStations: Map<String, MarkedStation> = emptyMap()
override fun getMarkedGridStations(): Map<String, MarkedStation> = markedGridStations
override fun setMarkedGridStations(stations: Map<String, MarkedStation>) { markedGridStations = stations }
override fun getLastLotwSyncDate(): String = lastSyncDate
override fun setLastLotwSyncDate(date: String) { lastSyncDate = date }
override fun getLastLotwSyncCallsign(): String = lastSyncCallsign
override fun setLastLotwSyncCallsign(callsign: String) { lastSyncCallsign = callsign }
override fun setSelectedIds(ids: List<Int>) = TODO()
override fun setSelectedTypes(types: List<String>) = TODO()
override fun setPassesSettings(settings: PassesSettings) = TODO()
override fun setStationPosition(latitude: Double, longitude: Double, altitude: Double): Boolean = TODO()
override fun setStationPosition(): Boolean = TODO()
override fun setStationPosition(locator: String): Boolean = TODO()
override fun getSatelliteTypesIds(types: List<String>): List<Int> = TODO()
override fun setSatelliteTypeIds(type: String, ids: List<Int>) = TODO()
override fun updateDatabaseState(state: DatabaseState) = TODO()
override fun updateRCSettings(settings: RCSettings) = TODO()
override fun updateOtherSettings(transform: (OtherSettings) -> OtherSettings) = TODO()
override fun updateDataSourcesSettings(settings: DataSourcesSettings) = TODO()
override fun updateDataSourcesStatus(status: Map<String, Int>) = TODO()
override fun updateRadioControlSettings(settings: RadioControlSettings) = TODO()
override fun getSatelliteOffset(catnum: Int): String = ""
override fun setSatelliteOffset(catnum: Int, offset: String) = TODO()
override fun getAmSatCallsign(): String = ""
override fun setAmSatCallsign(callsign: String) = TODO()
override fun updateWavelogSettings(settings: WavelogSettings) = TODO()
override fun updateLoTWSettings(settings: LoTWSettings) = TODO()
}
}
@@ -39,26 +39,18 @@ import androidx.compose.material3.CardDefaults
import androidx.compose.material3.CircularProgressIndicator
import androidx.compose.material3.ElevatedButton
import androidx.compose.material3.ElevatedCard
import androidx.compose.material3.ExperimentalMaterial3Api
import androidx.compose.material3.Icon
import androidx.compose.material3.LocalTextStyle
import androidx.compose.material3.MaterialTheme
import androidx.compose.material3.ModalBottomSheet
import androidx.compose.material3.Surface
import androidx.compose.material3.Text
import androidx.compose.material3.rememberModalBottomSheetState
import androidx.compose.material3.adaptive.currentWindowAdaptiveInfo
import androidx.compose.runtime.Composable
import androidx.compose.runtime.compositionLocalOf
import androidx.compose.runtime.remember
import androidx.compose.ui.Alignment
import androidx.compose.ui.Modifier
import androidx.compose.ui.geometry.Offset
import androidx.compose.ui.graphics.Color
import androidx.compose.ui.graphics.drawscope.Stroke
import androidx.compose.ui.input.nestedscroll.NestedScrollConnection
import androidx.compose.ui.input.nestedscroll.NestedScrollSource
import androidx.compose.ui.input.nestedscroll.nestedScroll
import androidx.compose.ui.res.painterResource
import androidx.compose.ui.res.stringResource
import androidx.compose.ui.semantics.hideFromAccessibility
@@ -72,11 +64,10 @@ import androidx.compose.ui.text.style.TextAlign
import androidx.compose.ui.text.style.TextDecoration
import androidx.compose.ui.text.style.TextOverflow
import androidx.compose.ui.tooling.preview.Preview
import androidx.compose.ui.unit.Dp
import androidx.compose.ui.unit.TextUnit
import androidx.compose.ui.unit.Velocity
import androidx.compose.ui.unit.dp
import androidx.compose.ui.unit.sp
import androidx.compose.ui.window.Dialog
import com.rtbishop.look4sat.core.domain.predict.NearEarthObject
import com.rtbishop.look4sat.core.domain.predict.OrbitalData
import com.rtbishop.look4sat.core.domain.predict.OrbitalPass
@@ -157,13 +148,16 @@ fun RowScope.NextPassRow(pass: OrbitalPass, modifier: Modifier = Modifier, isUtc
.padding(start = 6.dp, top = 1.dp, end = 6.dp, bottom = 0.dp)
) {
Row(verticalAlignment = Alignment.CenterVertically) {
Text(
text = "${stringResource(R.string.pass_satId, pass.catNum)} - ",
color = MaterialTheme.colorScheme.primary
)
Text(
text = pass.name,
modifier = Modifier
.weight(1f)
.padding(end = 6.dp)
.infiniteMarquee(),
color = MaterialTheme.colorScheme.primary,
fontWeight = FontWeight.Medium,
maxLines = 1,
overflow = TextOverflow.Ellipsis
@@ -210,20 +204,12 @@ fun RowScope.NextPassRow(pass: OrbitalPass, modifier: Modifier = Modifier, isUtc
}
@Composable
fun CardButton(
onClick: () -> Unit,
text: String,
modifier: Modifier = Modifier,
isEnabled: Boolean = true
) {
fun CardButton(onClick: () -> Unit, text: String, modifier: Modifier = Modifier) {
ElevatedButton(
onClick = onClick,
enabled = isEnabled,
colors = ButtonDefaults.buttonColors(
containerColor = MaterialTheme.colorScheme.surfaceVariant,
contentColor = MaterialTheme.colorScheme.onSurfaceVariant,
disabledContainerColor = MaterialTheme.colorScheme.surfaceVariant,
disabledContentColor = MaterialTheme.colorScheme.onSurfaceVariant.copy(alpha = 0.4f)
contentColor = MaterialTheme.colorScheme.onSurfaceVariant
),
shape = MaterialTheme.shapes.small,
modifier = modifier,
@@ -289,145 +275,58 @@ fun getDefaultPass(): OrbitalPass = OrbitalPass(
)
@Composable
fun InfoDialog(
title: String,
onDismiss: () -> Unit,
onAccept: () -> Unit,
extraAction: (@Composable () -> Unit)? = null,
content: @Composable () -> Unit
fun SharedDialog(
title: String, onCancel: () -> Unit, onAccept: () -> Unit, content: @Composable () -> Unit
) {
DialogShell(onDismissRequest = onDismiss) { padding ->
Row(
verticalAlignment = Alignment.CenterVertically,
modifier = Modifier
.fillMaxWidth()
.padding(start = padding, top = padding, end = padding)
) {
Text(
text = title,
fontSize = 16.sp,
fontWeight = FontWeight.Medium,
color = MaterialTheme.colorScheme.primary,
maxLines = 1,
overflow = TextOverflow.Ellipsis,
modifier = Modifier.weight(1f)
)
extraAction?.let {
it()
Spacer(modifier = Modifier.width(8.dp))
}
DialogShell(title = title, titleFontSize = 16, onDismissRequest = onCancel) {
content()
Row(modifier = Modifier.padding(start = it, bottom = it, end = it)) {
CardButton(onClick = onCancel, text = stringResource(R.string.btn_cancel))
Spacer(modifier = Modifier.weight(1f))
CardButton(onClick = onAccept, text = stringResource(R.string.btn_accept))
}
content()
}
}
@Composable
fun SharedDialog(
title: String,
onCancel: () -> Unit,
onAccept: () -> Unit,
acceptText: String? = null,
acceptEnabled: Boolean = true,
content: @Composable () -> Unit
) {
SharedDialog(
title = title,
onDismissRequest = onCancel,
onCancel = onCancel,
onAccept = onAccept,
acceptText = acceptText,
acceptEnabled = acceptEnabled
) { _ ->
content()
}
}
@Composable
fun SharedDialog(
title: String,
onDismissRequest: () -> Unit,
onCancel: (() -> Unit)? = null,
onAccept: (() -> Unit)? = null,
acceptText: String? = null,
acceptEnabled: Boolean = true,
titleFontSize: Int = 16,
titleTextAlign: TextAlign = if (onCancel != null && onAccept != null) TextAlign.Center else TextAlign.Start,
content: @Composable (padding: Dp) -> Unit
) {
DialogShell(onDismissRequest = onDismissRequest) { padding ->
Row(
verticalAlignment = Alignment.CenterVertically,
modifier = Modifier
.fillMaxWidth()
.padding(start = padding, top = padding, end = padding)
) {
if (onCancel != null) {
CardButton(onClick = onCancel, text = stringResource(R.string.btn_cancel))
}
Text(
text = title,
fontSize = titleFontSize.sp,
fontWeight = FontWeight.Medium,
color = MaterialTheme.colorScheme.primary,
textAlign = titleTextAlign,
maxLines = 1,
overflow = TextOverflow.Ellipsis,
modifier = Modifier
.weight(1f)
.padding(
start = if (onCancel != null) padding else 0.dp,
end = if (onAccept != null) padding else 0.dp
)
)
if (onAccept != null) {
CardButton(
onClick = onAccept,
text = acceptText ?: stringResource(R.string.btn_accept),
isEnabled = acceptEnabled
)
}
fun InfoDialog(title: String, text: String, onDismiss: () -> Unit) {
DialogShell(title = title, titleFontSize = 18, onDismissRequest = {}) {
Text(
text = text,
fontSize = 16.sp,
color = MaterialTheme.colorScheme.onSurface,
modifier = Modifier.padding(horizontal = it)
)
Row(modifier = Modifier.padding(start = it, bottom = it, end = it)) {
Spacer(modifier = Modifier.weight(1f))
CardButton(onClick = onDismiss, text = stringResource(R.string.btn_accept))
}
content(padding)
}
}
@OptIn(ExperimentalMaterial3Api::class)
@Composable
private fun DialogShell(
title: String,
titleFontSize: Int,
onDismissRequest: () -> Unit,
content: @Composable (padding: Dp) -> Unit
content: @Composable (padding: androidx.compose.ui.unit.Dp) -> Unit
) {
val padding = LocalSpacing.current.large
val sheetState = rememberModalBottomSheetState(skipPartiallyExpanded = true)
val stopSheetFling = remember {
object : NestedScrollConnection {
override suspend fun onPostFling(consumed: Velocity, available: Velocity): Velocity {
return available
Dialog(onDismissRequest = onDismissRequest) {
ElevatedCard {
Column(
horizontalAlignment = Alignment.CenterHorizontally,
verticalArrangement = Arrangement.spacedBy(padding)
) {
Text(
text = title,
fontSize = titleFontSize.sp,
fontWeight = FontWeight.Medium,
color = MaterialTheme.colorScheme.primary,
modifier = Modifier.padding(start = padding, top = padding, end = padding)
)
content(padding)
}
override fun onPostScroll(
consumed: Offset,
available: Offset,
source: NestedScrollSource
): Offset = Offset.Zero
}
}
ModalBottomSheet(
onDismissRequest = onDismissRequest,
sheetState = sheetState,
dragHandle = null,
shape = MaterialTheme.shapes.medium,
scrimColor = Color.Black.copy(alpha = 0.64f)
) {
Column(
horizontalAlignment = Alignment.CenterHorizontally,
verticalArrangement = Arrangement.spacedBy(padding),
modifier = Modifier
.fillMaxWidth()
.nestedScroll(stopSheetFling)
) {
content(padding)
}
}
}
@@ -492,26 +391,13 @@ fun TopBar(
@Composable
fun elevationColor(elevation: Double): Color {
val thresholds = LocalElevationThresholds.current
return when {
elevation < thresholds.low -> ElevationLowColor // soft red for low elevation
elevation < thresholds.high -> MaterialTheme.colorScheme.primary // accent yellow for normal
else -> ElevationHighColor // soft green for high elevation
elevation < 15.0 -> Color(0xFFEF5350) // soft red for low elevation
elevation < 45.0 -> MaterialTheme.colorScheme.primary // accent yellow for normal
else -> Color(0xFF66BB6A) // soft green for high elevation
}
}
/** User-configurable elevation highlight thresholds (in degrees). */
data class ElevationThresholds(val low: Double = 15.0, val high: Double = 45.0)
/** Provided at the app root from settings; defaults keep the original 15°/45° behavior. */
val LocalElevationThresholds = compositionLocalOf { ElevationThresholds() }
/** Soft red used for elevations below the low threshold. */
val ElevationLowColor = Color(0xFFEF5350)
/** Soft green used for elevations above the high threshold. */
val ElevationHighColor = Color(0xFF66BB6A)
@Composable
fun OutlinedText(
text: String,
@@ -1,142 +0,0 @@
package com.rtbishop.look4sat.core.presentation
import androidx.compose.foundation.Canvas
import androidx.compose.foundation.background
import androidx.compose.foundation.layout.Arrangement
import androidx.compose.foundation.layout.Row
import androidx.compose.foundation.layout.height
import androidx.compose.foundation.layout.padding
import androidx.compose.foundation.layout.size
import androidx.compose.foundation.shape.RoundedCornerShape
import androidx.compose.material3.MaterialTheme
import androidx.compose.material3.Text
import androidx.compose.runtime.Composable
import androidx.compose.ui.Alignment
import androidx.compose.ui.Modifier
import androidx.compose.ui.geometry.Offset
import androidx.compose.ui.graphics.Color
import androidx.compose.ui.graphics.Path
import androidx.compose.ui.graphics.drawscope.Stroke
import androidx.compose.ui.graphics.drawscope.rotate
import androidx.compose.ui.text.font.FontFamily
import androidx.compose.ui.text.font.FontWeight
import androidx.compose.ui.unit.dp
import androidx.compose.ui.unit.sp
import kotlin.math.atan2
import kotlin.math.cos
import kotlin.math.sin
import kotlin.math.sqrt
/**
* Format a Maidenhead locator for display. Per IARU convention and the user's
* preference: field letters (1-2) and square digits (3-4) uppercase, sub-square
* letters (5-6 of a 6/8-char locator) lowercase, e.g. "OL62" / "OL62kl".
*/
fun formatGridDisplay(grid: String): String? {
val g = grid.trim().uppercase()
if (g.length !in listOf(4, 6, 8) || g.any { !it.isLetterOrDigit() }) return null
if (g.length == 4) return g
if (g.length == 6) return g.take(4) + g.drop(4).lowercase()
return g.take(4) + g.drop(4).take(2).lowercase() + g.drop(6)
}
/**
* Top-bar chip for the mutual-match screen: navigation needle (rotated by the
* great-circle bearing to the target grid, 0 deg = north), grid locator and
* distance. Shows a dimmed placeholder when no target grid is entered.
*/
@Composable
fun GridTargetChip(
grid: String?,
distanceKm: Double?,
bearingDeg: Double?,
modifier: Modifier = Modifier
) {
val configured = grid != null && distanceKm != null && bearingDeg != null
// The app's signature accent yellow (MaterialTheme primary in both themes).
val accent = MaterialTheme.colorScheme.primary
val placeholder = MaterialTheme.colorScheme.onSurfaceVariant
Row(
verticalAlignment = Alignment.CenterVertically,
horizontalArrangement = Arrangement.spacedBy(8.dp),
modifier = modifier
.height(36.dp)
.background(
color = MaterialTheme.colorScheme.surface.copy(alpha = if (configured) 0.9f else 0.45f),
shape = RoundedCornerShape(12.dp)
)
.padding(horizontal = 12.dp)
) {
NavigationNeedle(
bearingDeg = bearingDeg ?: 0.0,
color = if (configured) accent else placeholder,
dimmed = !configured,
modifier = Modifier.size(22.dp)
)
Text(
text = grid?.let { formatGridDisplay(it) } ?: "----",
fontSize = 15.sp,
fontWeight = FontWeight.Bold,
fontFamily = FontFamily.Monospace,
color = if (configured) accent else placeholder,
letterSpacing = 1.sp
)
Text(
text = distanceKm?.let { "${"%,.0f".format(it)} km" } ?: "-- km",
fontSize = 14.sp,
color = MaterialTheme.colorScheme.onSurface,
modifier = Modifier.padding(horizontal = 8.dp, vertical = 2.dp)
)
}
}
/**
* Map-style navigation needle: slim triangular pointer whose tip points at
* [bearingDeg] (0 = north/up, clockwise positive).
*/
@Composable
private fun NavigationNeedle(
bearingDeg: Double,
color: Color,
dimmed: Boolean,
modifier: Modifier = Modifier
) {
Canvas(modifier = modifier) {
val cx = size.width / 2f
val cy = size.height / 2f
val r = size.minDimension / 2f
if (dimmed) {
drawCircle(color = color, radius = r * 0.92f, style = Stroke(width = 1.5f))
}
rotate(degrees = bearingDeg.toFloat(), pivot = Offset(cx, cy)) {
val path = Path().apply {
moveTo(cx, cy - r * 0.9f) // tip (north before rotation)
lineTo(cx - r * 0.42f, cy + r * 0.55f)
lineTo(cx, cy + r * 0.28f)
lineTo(cx + r * 0.42f, cy + r * 0.55f)
close()
}
drawPath(path, color = color)
}
}
}
/** Great-circle distance in km between two positions. */
fun greatCircleDistanceKm(lat1: Double, lon1: Double, lat2: Double, lon2: Double): Double {
val rad = Math.PI / 180.0
val dLat = (lat2 - lat1) * rad
val dLon = (lon2 - lon1) * rad
val a = sin(dLat / 2) * sin(dLat / 2) +
cos(lat1 * rad) * cos(lat2 * rad) * sin(dLon / 2) * sin(dLon / 2)
return 6371.0 * 2 * kotlin.math.atan2(kotlin.math.sqrt(a), kotlin.math.sqrt(1 - a))
}
/** Initial great-circle bearing in degrees (0 = north, clockwise). */
fun greatCircleBearingDeg(lat1: Double, lon1: Double, lat2: Double, lon2: Double): Double {
val rad = Math.PI / 180.0
val dLon = (lon2 - lon1) * rad
val y = sin(dLon) * cos(lat2 * rad)
val x = cos(lat1 * rad) * sin(lat2 * rad) -
sin(lat1 * rad) * cos(lat2 * rad) * cos(dLon)
return (Math.atan2(y, x) / rad + 360.0) % 360.0
}
@@ -79,10 +79,6 @@ private val lightScheme = lightColorScheme(
onSecondary = Color(0xFFFFFFFF),
secondaryContainer = Color(0xFFF1E1BB),
onSecondaryContainer = Color(0xFF221B04),
tertiary = Color(0xFF3C6FE0), // AMSAT Active (darker for light theme)
onTertiary = Color(0xFFFFFFFF),
tertiaryContainer = Color(0xFFE09800), // AMSAT Telemetry (darker)
onTertiaryContainer = Color(0xFF000000),
background = Color(0xFFFFF8F0),
onBackground = Color(0xFF1E1B13),
surface = Color(0xFFFFF8F0),
@@ -105,10 +101,10 @@ private val darkScheme = darkColorScheme(
onSecondary = Color(0xFF000000),
secondaryContainer = Color(0xFF404040), // navBar indicator,
onSecondaryContainer = Color(0xFFE0E0E0), // navBar active icon
tertiary = Color(0xFF648FFF), // AMSAT Active (from amsat.org/status)
onTertiary = Color(0xFF000000),
tertiaryContainer = Color(0xFFFFB000), // AMSAT Telemetry
onTertiaryContainer = Color(0xFF000000),
// tertiary = Color(0xFF121212),
// onTertiary = Color(0xFF121212),
// tertiaryContainer = Color(0xFF121212),
// onTertiaryContainer = Color(0xFF121212),
background = Color(0xFF121212),
onBackground = Color(0xFFE0E0E0),
surface = Color(0xFF202020), // card background
@@ -29,15 +29,12 @@ sealed class Screen(val iconResId: Int, val titleResId: Int) : NavKey {
@Serializable
data object Passes : Screen(R.drawable.ic_passes, R.string.nav_pass)
@Serializable
data object Radar : Screen(R.drawable.ic_radar, R.string.nav_radar)
@Serializable
data object Map : Screen(R.drawable.ic_map, R.string.nav_map)
@Serializable
data object Mutual : Screen(R.drawable.ic_radio_tower, R.string.nav_mutual)
@Serializable
data object AMSAT : Screen(R.drawable.ic_satellite_alt, R.string.nav_amsat)
@Serializable
data object Settings : Screen(R.drawable.ic_settings, R.string.nav_prefs)
}
@@ -1,3 +0,0 @@
<vector xmlns:android="http://schemas.android.com/apk/res/android" android:width="24dp" android:height="24dp" android:viewportWidth="24" android:viewportHeight="24">
<path android:fillColor="@android:color/white" android:pathData="M19,13H13V19H11V13H5V11H11V5H13V11H19V13Z" />
</vector>
@@ -1,10 +0,0 @@
<?xml version="1.0" encoding="utf-8"?>
<vector xmlns:android="http://schemas.android.com/apk/res/android"
android:width="24dp"
android:height="24dp"
android:viewportWidth="960"
android:viewportHeight="960">
<path
android:fillColor="@android:color/white"
android:pathData="M240,320q-33,0 -56.5,-23.5T160,240q0,-33 23.5,-56.5T240,160q33,0 56.5,23.5T320,240q0,33 -23.5,56.5T240,320zM240,560q-33,0 -56.5,-23.5T160,480q0,-33 23.5,-56.5T240,400q33,0 56.5,23.5T320,480q0,33 -23.5,56.5T240,560zM240,800q-33,0 -56.5,-23.5T160,720q0,-33 23.5,-56.5T240,640q33,0 56.5,23.5T320,720q0,33 -23.5,56.5T240,800zM720,320q-33,0 -56.5,-23.5T640,240q0,-33 23.5,-56.5T720,160q33,0 56.5,23.5T800,240q0,33 -23.5,56.5T720,320zM720,560q-33,0 -56.5,-23.5T640,480q0,-33 23.5,-56.5T720,400q33,0 56.5,23.5T800,480q0,33 -23.5,56.5T720,560zM720,800q-33,0 -56.5,-23.5T640,720q0,-33 23.5,-56.5T720,640q33,0 56.5,23.5T800,720q0,33 -23.5,56.5T720,800z" />
</vector>
@@ -1,22 +0,0 @@
<vector xmlns:android="http://schemas.android.com/apk/res/android"
android:width="24dp"
android:height="24dp"
android:viewportWidth="96"
android:viewportHeight="96">
<path
android:fillColor="@android:color/transparent"
android:strokeColor="@android:color/white"
android:strokeWidth="6"
android:strokeLineCap="round"
android:strokeLineJoin="round"
android:pathData="M 8 76 C 8 44, 21 24, 39 24 C 57 24, 70 44, 70 76" />
<path
android:fillColor="@android:color/transparent"
android:strokeColor="@android:color/white"
android:strokeWidth="6"
android:strokeLineCap="round"
android:strokeLineJoin="round"
android:pathData="M 30 76 C 30 54, 44 42, 62 42 C 80 42, 94 54, 94 76" />
</vector>
@@ -1,8 +0,0 @@
<?xml version="1.0" encoding="utf-8"?>
<vector xmlns:android="http://schemas.android.com/apk/res/android"
android:width="24dp"
android:height="24dp"
android:viewportWidth="24"
android:viewportHeight="24">
<path android:fillColor="#FF000000" android:pathData="M12,10A2,2 0 0,1 14,12C14,12.5 13.82,12.94 13.53,13.29L16.7,22H14.57L12,14.93L9.43,22H7.3L10.47,13.29C10.18,12.94 10,12.5 10,12A2,2 0 0,1 12,10M12,8A4,4 0 0,0 8,12C8,12.5 8.1,13 8.28,13.46L7.4,15.86C6.53,14.81 6,13.47 6,12A6,6 0 0,1 12,6A6,6 0 0,1 18,12C18,13.47 17.47,14.81 16.6,15.86L15.72,13.46C15.9,13 16,12.5 16,12A4,4 0 0,0 12,8M12,4A8,8 0 0,0 4,12C4,14.36 5,16.5 6.64,17.94L5.92,19.94C3.54,18.11 2,15.23 2,12A10,10 0 0,1 12,2A10,10 0 0,1 22,12C22,15.23 20.46,18.11 18.08,19.94L17.36,17.94C19,16.5 20,14.36 20,12A8,8 0 0,0 12,4Z" />
</vector>
@@ -1,12 +0,0 @@
<?xml version="1.0" encoding="utf-8"?>
<!-- Standard Material refresh icon (24dp viewport), centered geometry -->
<vector xmlns:android="http://schemas.android.com/apk/res/android"
android:width="24dp"
android:height="24dp"
android:viewportWidth="24"
android:viewportHeight="24"
>
<path
android:fillColor="#FF000000"
android:pathData="M17.65,6.35C16.2,4.9 14.21,4 12,4c-4.42,0 -7.99,3.58 -7.99,8s3.57,8 7.99,8c3.73,0 6.84,-2.55 7.73,-6h-2.08c-0.82,2.33 -3.04,4 -5.65,4 -3.31,0 -6,-2.69 -6,-6s2.69,-6 6,-6c1.66,0 3.14,0.69 4.22,1.78L13,11h7V4l-2.35,2.35z" />
</vector>
@@ -1,19 +0,0 @@
<?xml version="1.0" encoding="utf-8"?>
<!-- AMSAT tab icon provided by rt-bishop (upstream author), original SVG asset -->
<vector xmlns:android="http://schemas.android.com/apk/res/android"
android:width="24dp"
android:height="24dp"
android:viewportWidth="24"
android:viewportHeight="24">
<group
android:scaleX="0.242"
android:scaleY="0.242"
android:translateX="0.3"
android:translateY="-230.5">
<path android:fillColor="#FF000000" android:pathData="m 21.275553,967.35933 a 2.0000048,2.0000048 0 0 0 -1.1875,0.59375 l -13.5000003,13.5 a 2.0000048,2.0000048 0 0 0 0,2.8125 l 18.5625003,18.59382 a 2.0000048,2.0000048 0 0 0 1.2813,0.5625 l 5.5312,0.4375 -4.0312,4.0312 a 2.0000048,2.0000048 0 0 0 0,2.8126 l 13.6874,13.7187 a 2.0000048,2.0000048 0 0 0 2.8438,0 l 4.0312,-4.0312 0.4376,5.5312 a 2.0000048,2.0000048 0 0 0 0.5624,1.2813 l 18.5938,18.5625 a 2.0000048,2.0000048 0 0 0 2.8438,0 l 13.468705,-13.4688 a 2.0000048,2.0000048 0 0 0 0,-2.8437 l -18.562505,-18.5938 a 2.0000048,2.0000048 0 0 0 -1.2812,-0.5625 l -5.5313,-0.4375 4.0313,-4.0313 a 2.0000048,2.0000048 0 0 0 0,-2.8437 l -13.6876,-13.68757 a 2.0000048,2.0000048 0 0 0 -2.8437,0 l -4.0313,4.03125 -0.4374,-5.53125 a 2.0000048,2.0000048 0 0 0 -0.5626,-1.28125 l -18.5937,-18.5625 a 2.0000048,2.0000048 0 0 0 -1.4375,-0.59375 2.0000048,2.0000048 0 0 0 -0.1875,0 z m 0.2187,4.8125 16.6563,16.65625 0.5625,7.46875 -3.7812,3.78127 -7.4688,-0.59377 -16.6562,-16.625 z m 34.5626,41.46887 7.4687,0.5937 16.656305,16.625 -10.687605,10.6875 -16.625,-16.6562 -0.5937,-7.4688 z" />
<path android:fillColor="#FF000000" android:pathData="m 50.940553,966.18283 a 2.000005,2.000005 0 1 0 0,3.99969 c 7.9999,0 15.9734,3.03851 22.0884,9.15344 6.103605,6.10359 9.143805,14.08909 9.143805,22.07844 a 2.000005,2.000005 0 1 0 3.9994,0 c 0,-9.00692 -3.4462,-18.03775 -10.315,-24.90657 -6.877605,-6.8775 -15.900305,-10.325 -24.916605,-10.325 z" />
<path android:fillColor="#FF000000" android:pathData="m 50.940553,958.36533 a 2.000005,2.000005 0 1 0 0,3.99969 c 10.0021,0 19.9781,3.79987 27.613705,11.43562 7.6352,7.63517 11.4357,17.62207 11.4357,27.61376 a 2.000005,2.000005 0 1 0 3.9997,0 c 0,-11.00842 -4.207,-22.04171 -12.6072,-30.44188 -8.399505,-8.3996 -19.424005,-12.60719 -30.441905,-12.60719 z" />
<path android:fillColor="#FF000000" android:pathData="m 50.940553,973.94033 a 2.000005,2.000005 0 1 0 0,3.99938 c 6.0191,0 12.0105,2.279 16.6031,6.87156 4.5926,4.59255 6.881605,10.59683 6.881605,16.60313 a 2.000005,2.000005 0 1 0 3.9997,0 c 0,-7.02618 -2.6961,-14.07429 -8.053105,-19.43126 -5.3571,-5.35696 -12.398,-8.04281 -19.4313,-8.04281 z" />
<path android:fillColor="#FF000000" android:pathData="m 50.940553,981.77783 a 2.000005,2.000005 0 1 0 0,3.99938 c 4.0058,0 7.9968,1.51836 11.0578,4.57937 3.061,3.06099 4.5794,7.05193 4.5794,11.05782 a 2.000005,2.000005 0 1 0 3.9994,0 c 0,-5.02276 -1.9251,-10.06035 -5.7507,-13.88594 -3.8256,-3.82559 -8.8631,-5.75063 -13.8859,-5.75063 z" />
</group>
</vector>
@@ -31,18 +31,14 @@
<!-- Passes screen -->
<string name="pass_filter_title">Filtrar pases</string>
<string name="pass_filter_elev">Elevación mínima</string>
<string name="pass_filter_hours">Tiempo por delante</string>
<string name="pass_filter_history_hours">Tiempo anterior</string>
<string name="pass_filter_aos_time">Ventana AOS</string>
<string name="pass_filter_invert_time">Invertir ventana AOS</string>
<string name="pass_filter_deep_space">DeepSpace (período &gt;225min)</string>
<string name="pass_filter_hours">Horas por delante</string>
<string name="pass_modes_title">Tipo de modulación</string>
<string name="pass_elevation">Elevación: %.1f°</string>
<string name="pass_altitude">Altitud: %.0f km</string>
<string name="pass_empty_list_message">
Asegúrate de que tus filtros sean correctos y hayas seleccionado satélites</string>
<string name="pass_error_message">No hay pases de satélite próximos para mostrar</string>
<string name="pass_welcome_title">Bienvenido a Look4Sat\!</string>
<string name="pass_welcome_title">Bienvenido a Look4Sat-CNMap\!</string>
<string name="pass_welcome_message">
Asegúrate de configurar tu posición mediante GPS, Latitud/Longitud o QTH en Configuración.
\n\nActualiza la base de datos al menos una vez por semana para obtener predicciones precisas.</string>
@@ -113,13 +109,6 @@
<string name="prefs_data_update_success">Actualización completada con éxito</string>
<string name="prefs_data_sources_title">Custom data sources</string>
<string name="prefs_data_import_satellites_error">No satellites imported. Select a valid TLE/3LE (.txt) or OMM (.csv) file.</string>
<string name="prefs_data_import_transceivers_error">No transceivers imported. Select a valid SatNOGS (.json) file.</string>
<string name="prefs_data_sources_url_title" translatable="false">URL</string>
<string name="prefs_data_sources_satellites_label" translatable="false">Satellites data</string>
<string name="prefs_data_sources_transceivers_label" translatable="false">Transceivers data</string>
<string name="prefs_net_frequency_offset_hint" translatable="false">Frequency offset (Hz)</string>
<string name="prefs_net_frequency_offset_help" translatable="false">Range: -50000 to 50000 Hz. Positive values increase reported frequency; negative values decrease it.</string>
<string name="prefs_data_sources_tle_switch">Custom TLE URL</string>
<string name="prefs_data_sources_transceivers_switch">Custom transceivers URL</string>
@@ -148,16 +137,8 @@
<string name="prefs_other_title">Otros ajustes</string>
<string name="prefs_other_switch_utc">Mostrar tiempos de pase en UTC</string>
<string name="prefs_other_switch_update">Habilitar auto actualización de datos</string>
<string name="prefs_other_switch_lotw_sync">Sincronizar automáticamente las cuadrículas LoTW confirmadas</string>
<string name="prefs_other_switch_sweep">Habilitar animaciones radar</string>
<string name="prefs_other_switch_sensors">Usar sensores para rotar vista de radar</string>
<string name="prefs_other_switch_night_mode">Activar filtro nocturno rojo</string>
<string name="prefs_other_switch_map_grid">Mostrar cuadrícula Maidenhead en el mapa</string>
<string name="prefs_highlight_title">Resaltado de elevación</string>
<string name="prefs_highlight_low">Baja &lt; %1$d°</string>
<string name="prefs_highlight_mid">Media %1$d-%2$d°</string>
<string name="prefs_highlight_high">Alta &gt; %1$d°</string>
<string name="prefs_outro_title">Me gustaría dar las gracias a:</string>
<string name="prefs_outro_license">La app viene sin garantías de ningún tipo.</string>
@@ -30,18 +30,14 @@
<!-- Passes screen -->
<string name="pass_filter_title">Фильтровать пролеты</string>
<string name="pass_filter_elev">Минимальная элевация</string>
<string name="pass_filter_hours">Период расчёта</string>
<string name="pass_filter_history_hours">Прошедший период</string>
<string name="pass_filter_aos_time">Окно AOS</string>
<string name="pass_filter_invert_time">Инвертировать окно AOS</string>
<string name="pass_filter_deep_space">DeepSpace (период &gt;225мин)</string>
<string name="pass_filter_hours">Количество часов</string>
<string name="pass_modes_title">Выберите тип модуляции</string>
<string name="pass_elevation">Элевация: %.1f°</string>
<string name="pass_altitude">Высота: %d км</string>
<string name="pass_empty_list_message">
Убедитесь, что ваши фильтры настроены правильно и вы выбрали спутники</string>
<string name="pass_error_message">Нет предстоящих пролётов спутников</string>
<string name="pass_welcome_title">Добро пожаловать в Look4Sat\!</string>
<string name="pass_welcome_title">Добро пожаловать в Look4Sat-CNMap\!</string>
<string name="pass_welcome_message">
Обязательно укажите свое местоположение по GPS, широте/долготе или QTH в настройках.
\n\nПожалуйста, обновляйте базу данных как минимум раз в неделю, чтобы получать точные прогнозы.</string>
@@ -112,13 +108,6 @@
<string name="prefs_data_update_success">Обновление прошло успешно</string>
<string name="prefs_data_sources_title">Свои источники данных</string>
<string name="prefs_data_import_satellites_error">No satellites imported. Select a valid TLE/3LE (.txt) or OMM (.csv) file.</string>
<string name="prefs_data_import_transceivers_error">No transceivers imported. Select a valid SatNOGS (.json) file.</string>
<string name="prefs_data_sources_url_title" translatable="false">URL</string>
<string name="prefs_data_sources_satellites_label" translatable="false">Satellites data</string>
<string name="prefs_data_sources_transceivers_label" translatable="false">Transceivers data</string>
<string name="prefs_net_frequency_offset_hint" translatable="false">Frequency offset (Hz)</string>
<string name="prefs_net_frequency_offset_help" translatable="false">Range: -50000 to 50000 Hz. Positive values increase reported frequency; negative values decrease it.</string>
<string name="prefs_data_sources_tle_switch">Custom TLE URL</string>
<string name="prefs_data_sources_transceivers_switch">Custom Transceivers URL</string>
@@ -147,16 +136,8 @@
<string name="prefs_other_title">Другие настройки</string>
<string name="prefs_other_switch_utc">Показывать время по UTC</string>
<string name="prefs_other_switch_update">Обновлять данные автоматически</string>
<string name="prefs_other_switch_lotw_sync">Автосинхронизация подтверждённых сеток LoTW</string>
<string name="prefs_other_switch_sweep">Показывать анимацию радара</string>
<string name="prefs_other_switch_sensors">Использовать сенсоры устройства</string>
<string name="prefs_other_switch_night_mode">Включить красный ночной фильтр</string>
<string name="prefs_other_switch_map_grid">Показывать сетку Maidenhead на карте</string>
<string name="prefs_highlight_title">Подсветка высоты</string>
<string name="prefs_highlight_low">Низко &lt; %1$d°</string>
<string name="prefs_highlight_mid">Средне %1$d-%2$d°</string>
<string name="prefs_highlight_high">Высоко &gt; %1$d°</string>
<string name="prefs_outro_title">Я хотел бы сказать спасибо:</string>
<string name="prefs_outro_license">Это ПО поставляется без гарантий.</string>
@@ -31,18 +31,14 @@
<!-- Passes screen -->
<string name="pass_filter_title">පසුකිරිම් පිරිපහදුව</string>
<string name="pass_filter_elev">අවම උත්තෝලනය</string>
<string name="pass_filter_hours">ඉදිරි කාලය</string>
<string name="pass_filter_history_hours">පෙර කාලය</string>
<string name="pass_filter_aos_time">AOS කවුළුව</string>
<string name="pass_filter_invert_time">AOS කවුළුව ප්‍රතිවිරුද්ධ කරන්න</string>
<string name="pass_filter_deep_space">DeepSpace (කාලය &gt;225min)</string>
<string name="pass_filter_hours">ඉදිරි පැය</string>
<string name="pass_modes_title">මූර්ජන ආකාරය තෝරන්න</string>
<string name="pass_elevation">උත්තෝලනය: %.1f°</string>
<string name="pass_altitude">උන්නතාශය: %d km</string>
<string name="pass_empty_list_message">
ඔබගේ පෙරහන් නිවැරදි බවත් ඔබ චන්ද්‍රිකා තෝරාගෙන ඇති බවත් සහතික කර ගන්න</string>
<string name="pass_error_message">ප්‍රදර්ශනය කිරීමට ඉදිරියට එන චන්ද්‍රිකා පසුකර යෑම් නැත.</string>
<string name="pass_welcome_title">Look4Sat වෙත සාදරයෙන් පිළිගනිමු\!</string>
<string name="pass_welcome_title">Look4Sat-CNMap වෙත සාදරයෙන් පිළිගනිමු\!</string>
<string name="pass_welcome_message">
සැකසුම් තුළ GPS, Lat/Lon හෝ QTH හරහා ඔබේ ස්ථානය සැකසීමට වග බලා ගන්න.
\n\nනිවැරදි අනාවැකි ලබා ගැනීම සඳහා අවම වශයෙන් සතිපතා දත්ත සමුදාය යාවත්කාලීන කරන්න.</string>
@@ -71,7 +67,7 @@
<string name="map_next">ඊළග</string>
<string name="map_azimuth">දිගංශය: %.1f°</string>
<string name="map_elevation">උත්තෝලනය: %.1f°</string>
<string name="map_altitude">උන්නතාශය: %.0f km</string>
<string name="map_altitude">උන්නතාශය: %.0f km</string>,
<string name="map_distance">පරතරය: %.0f km</string>
<string name="map_latitude">අක්‍ෂාංශ: %.1f°</string>
<string name="map_longitude">දේශාංශ: %.1f°</string>
@@ -113,13 +109,6 @@
<string name="prefs_data_update_success">යාවත්කාලීනය සම්පූර්ණ කිරීම සාර්ථකයි</string>
<string name="prefs_data_sources_title">Custom data sources</string>
<string name="prefs_data_import_satellites_error">No satellites imported. Select a valid TLE/3LE (.txt) or OMM (.csv) file.</string>
<string name="prefs_data_import_transceivers_error">No transceivers imported. Select a valid SatNOGS (.json) file.</string>
<string name="prefs_data_sources_url_title" translatable="false">URL</string>
<string name="prefs_data_sources_satellites_label" translatable="false">Satellites data</string>
<string name="prefs_data_sources_transceivers_label" translatable="false">Transceivers data</string>
<string name="prefs_net_frequency_offset_hint" translatable="false">Frequency offset (Hz)</string>
<string name="prefs_net_frequency_offset_help" translatable="false">Range: -50000 to 50000 Hz. Positive values increase reported frequency; negative values decrease it.</string>
<string name="prefs_data_sources_tle_switch">Custom TLE URL</string>
<string name="prefs_data_sources_transceivers_switch">Custom transceivers URL</string>
@@ -148,16 +137,8 @@
<string name="prefs_other_title">වෙනත් සැකසුම්</string>
<string name="prefs_other_switch_utc">පසුකර වේලාවන් UTC මගින්</string>
<string name="prefs_other_switch_update">ස්වයං දත්ත යාවත්කාලීනය</string>
<string name="prefs_other_switch_lotw_sync">LoTW තහවුරු කළ ජාල ස්වයං සමමුහුර්තකරණය</string>
<string name="prefs_other_switch_sweep">radar sweep සජීවිකරණය සබල කරන්න</string>
<string name="prefs_other_switch_sensors">Radar දර්ශනය කරකැවීමට සංවේදක භාවිතා කරන්න </string>
<string name="prefs_other_switch_night_mode">රතු රාත්‍රී පෙරහන සබල කරන්න</string>
<string name="prefs_other_switch_map_grid">සිතියමේ Maidenhead ජාලකය පෙන්වන්න</string>
<string name="prefs_highlight_title">උස් උද්දීපනය</string>
<string name="prefs_highlight_low">අඩු &lt; %1$d°</string>
<string name="prefs_highlight_mid">මධ්‍ය %1$d-%2$d°</string>
<string name="prefs_highlight_high">ඉහළ &gt; %1$d°</string>
<string name="prefs_outro_title">මම ස්තුති කිරීමට කැමති:</string>
<string name="prefs_outro_license">මෘදුකාංගය වගකීමක් සමග නොලැබේ</string>
@@ -1,7 +1,7 @@
<?xml version="1.0" encoding="utf-8"?>
<resources>
<!-- Commmon -->
<string name="app_name" translatable="false">Look4Sat</string>
<string name="app_name" translatable="false">Look4Sat-CNMap</string>
<string name="btn_accept">Kabul et</string>
<string name="btn_cancel">İptal</string>
<string name="empty_list_message">Gösterilecek veri bulunamadı</string>
@@ -31,11 +31,7 @@
<!-- Passes screen -->
<string name="pass_filter_title">Geçişleri filtrele</string>
<string name="pass_filter_elev">Minimum yükseklik açısı</string>
<string name="pass_filter_hours">Gösterilecek zaman</string>
<string name="pass_filter_history_hours">Geçmiş süre</string>
<string name="pass_filter_aos_time">AOS aralığı</string>
<string name="pass_filter_invert_time">AOS aralığını tersine çevir</string>
<string name="pass_filter_deep_space">DeepSpace (periyot &gt;225dk)</string>
<string name="pass_filter_hours">Gösterilecek saat aralığı</string>
<string name="pass_time_placeholder" translatable="false"> -- : -- : -- </string>
<string name="pass_modes_title">Modulasyon türü seçin</string>
<string name="pass_satId" translatable="false">%05d</string>
@@ -46,11 +42,11 @@
<string name="pass_empty_list_message">
Filtrelerinizin doğru olduğundan ve uydu seçtiğinizden emin olun</string>
<string name="pass_error_message">Gösterilecek yaklaşan uydu geçişi bulunmuyor</string>
<string name="pass_welcome_title">Look4Sat\'a hoş geldiniz\!</string>
<string name="pass_welcome_title">Look4Sat-CNMap\'a hoş geldiniz\!</string>
<string name="pass_welcome_message">
Ayarlar\'dan GPS, Enlem/Boylam veya QTH kullanarak konumunuzu belirlediğinizden emin olun.
\n\nDoğru tahminler alabilmek için veritabanını en az haftada bir güncelleyin.</string>
<string name="pass_whatsnew_title" translatable="false">What\'s new in Look4Sat</string>
<string name="pass_whatsnew_title" translatable="false">What\'s new in Look4Sat-CNMap</string>
<string name="pass_whatsnew_message" translatable="false">
* Switched to short-form commands in NetworkReporter, by theojalba
\n* Added CAT radio control for full-duplex SAT operation, by jcmerg
@@ -88,7 +84,8 @@
<!-- Map screen -->
<string name="map_prev">Önceki</string>
<string name="map_next">Sonraki</string>
<string name="map_copyright" translatable="false">© OpenStreetMap contributors</string>
<string name="map_copyright_osm" translatable="false">© OpenStreetMap contributors</string>
<string name="map_copyright_tianditu" translatable="false">© Tianditu</string>
<string name="map_azimuth">Azimut: %.1f°</string>
<string name="map_elevation">Yükseklik açısı: %.1f°</string>
<string name="map_altitude">İrtifa: %.0f km</string>
@@ -104,12 +101,12 @@
<string name="map_visible">Görünür</string>
<!-- Settings screen -->
<string name="prefs_app_title" translatable="false">Look4Sat v%s</string>
<string name="prefs_app_url" translatable="false">https://play.google.com/store/apps/details?id=com.rtbishop.look4sat</string>
<string name="prefs_app_title" translatable="false">Look4Sat-CNMap v%s</string>
<string name="prefs_app_url" translatable="false">https://play.google.com/store/apps/details?id=cn.bh2vsq.look4sat</string>
<string name="prefs_donate_title">Bağış yap</string>
<string name="prefs_donate_url" translatable="false">https://ko-fi.com/rt_bishop</string>
<string name="prefs_fdroid_title" translatable="false">F-Droid</string>
<string name="prefs_fdroid_url" translatable="false">https://f-droid.org/en/packages/com.rtbishop.look4sat/</string>
<string name="prefs_fdroid_url" translatable="false">https://f-droid.org/en/packages/cn.bh2vsq.look4sat/</string>
<string name="prefs_github_title" translatable="false">GitHub</string>
<string name="prefs_github_url" translatable="false">https://github.com/rt-bishop/Look4Sat/</string>
<string name="prefs_license_title" translatable="false">GPLv3</string>
@@ -144,12 +141,6 @@
<string name="prefs_data_update_success">Güncelleme başarıyla tamamlandı</string>
<string name="prefs_data_sources_title">Özel veri kaynakları</string>
<string name="prefs_data_import_satellites_error">No satellites imported. Select a valid TLE/3LE (.txt) or OMM (.csv) file.</string>
<string name="prefs_data_import_transceivers_error">No transceivers imported. Select a valid SatNOGS (.json) file.</string>
<string name="prefs_data_sources_satellites_label" translatable="false">Satellites data</string>
<string name="prefs_data_sources_transceivers_label" translatable="false">Transceivers data</string>
<string name="prefs_net_frequency_offset_hint" translatable="false">Frequency offset (Hz)</string>
<string name="prefs_net_frequency_offset_help" translatable="false">Range: -50000 to 50000 Hz. Positive values increase reported frequency; negative values decrease it.</string>
<string name="prefs_data_sources_tle_switch">Özel TLE URL</string>
<string name="prefs_data_sources_transceivers_switch">Özel transceiver URL</string>
<string name="prefs_data_sources_url_title" translatable="false">URL (HTTPS)</string>
@@ -190,16 +181,8 @@
<string name="prefs_other_title">Diğer ayarlar</string>
<string name="prefs_other_switch_utc">Geçiş saatini UTC olarak göster</string>
<string name="prefs_other_switch_update">Otomatik veri güncellemeyi etkinleştir</string>
<string name="prefs_other_switch_lotw_sync">LoTW onaylı kareleri otomatik senkronize et</string>
<string name="prefs_other_switch_sweep">Radar taramasını etkinleştir</string>
<string name="prefs_other_switch_sensors">Radar görünümünü döndürmek için sensörleri kullan</string>
<string name="prefs_other_switch_night_mode">Kırmızı gece filtresini etkinleştir</string>
<string name="prefs_other_switch_map_grid">Haritada Maidenhead ızgarasını göster</string>
<string name="prefs_highlight_title">Elevasyon vurgusu</string>
<string name="prefs_highlight_low">Düşük &lt; %1$d°</string>
<string name="prefs_highlight_mid">Orta %1$d-%2$d°</string>
<string name="prefs_highlight_high">Yüksek &gt; %1$d°</string>
<string name="prefs_outro_title">Teşekkürler</string>
<string name="prefs_outro_thanks" translatable="false">
@@ -208,8 +191,7 @@
\n• Dave Moten (predict4java)
\n• Alexandru Csete (Gpredict)
\n• Dr T.S. Kelso (Celestrak)
\n• Libre Space Foundation (SatNOGS)
\n• BG7NTA BG5JSU (CW decoding feature)</string>
\n• Libre Space Foundation (SatNOGS)</string>
<string name="prefs_outro_license">Bu uygulama herhangi bir garanti sunmaz</string>
</resources>
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