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@@ -19,12 +19,21 @@ package com.rtbishop.look4sat
import android.content.Context
import android.content.res.Configuration
import android.graphics.ColorMatrix
import android.graphics.ColorMatrixColorFilter
import android.graphics.Paint
import android.os.Bundle
import android.view.View
import androidx.activity.ComponentActivity
import androidx.activity.compose.setContent
import androidx.activity.enableEdgeToEdge
import androidx.core.splashscreen.SplashScreen.Companion.installSplashScreen
import androidx.lifecycle.lifecycleScope
import com.rtbishop.look4sat.core.domain.repository.IContainerProvider
import com.rtbishop.look4sat.core.presentation.MainTheme
import kotlinx.coroutines.flow.distinctUntilChanged
import kotlinx.coroutines.flow.map
import kotlinx.coroutines.launch
class MainActivity : ComponentActivity() {
@@ -38,8 +47,37 @@ class MainActivity : ComponentActivity() {
installSplashScreen()
enableEdgeToEdge()
super.onCreate(savedInstanceState)
observeNightFilterState()
setContent {
MainTheme(isDarkTheme = true) { MainScreen() }
}
}
private fun observeNightFilterState() {
val mainContainer = (applicationContext as IContainerProvider).getMainContainer()
lifecycleScope.launch {
mainContainer.settingsRepo.otherSettings
.map { it.stateOfNightMode }
.distinctUntilChanged()
.collect { nightMode -> applyNightFilter(nightMode) }
}
}
private fun applyNightFilter(enabled: Boolean) {
if (enabled) {
val nightMatrix = ColorMatrix(
floatArrayOf(
1f, 0f, 0f, 0f, 0f, // R → R
0f, 0f, 0f, 0f, 0f, // G → 0
0f, 0f, 0f, 0f, 0f, // B → 0
0f, 0f, 0f, 1f, 0f // A → A
)
)
window.decorView.setLayerType(View.LAYER_TYPE_HARDWARE, Paint().apply {
colorFilter = ColorMatrixColorFilter(nightMatrix)
})
} else {
window.decorView.setLayerType(View.LAYER_TYPE_NONE, null)
}
}
}
@@ -56,8 +56,10 @@ 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.Screen
@@ -76,6 +78,8 @@ fun MainScreen() {
val currentKey = backStack.lastOrNull()
val navigateBack: () -> Unit = { backStack.removeAt(backStack.size - 1) }
val fadeTransition = fadeIn(animationSpec = tween(350)) togetherWith fadeOut(animationSpec = tween(350))
// val slideInTransition = slideInHorizontally(initialOffsetX = { it }) togetherWith scaleOut(targetScale = 0.9f)
// val slideOutTransition = scaleIn(initialScale = 0.9f) togetherWith slideOutHorizontally(targetOffsetX = { it })
val navItems = listOf(Screen.Satellites, Screen.Passes, Screen.Radar(), Screen.Map, Screen.Settings)
val context = LocalContext.current
@@ -122,6 +126,12 @@ fun MainScreen() {
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)
@@ -40,28 +40,22 @@ class DatabaseRepo(
private val settingsRepo: ISettingsRepo
) : IDatabaseRepo {
private companion object {
val tleTypes = setOf("Amsat", "R4UAB", "Other")
val zippedTleTypes = setOf("McCants", "Classified")
}
private val customSourceType = "Other"
override suspend fun updateTLEFromFile(uri: String) = withContext(dispatcher) {
remoteSource.getFileStream(uri)?.let { stream ->
val entries = dataParser.parseTLEStream(stream)
val entries = dataParser.parseTLEStream(unwrapIfZipped(uri, stream))
localSource.insertEntries(entries)
settingsRepo.setSatelliteTypeIds("Other", entries.map { it.catnum })
settingsRepo.setSatelliteTypeIds(customSourceType, entries.map { it.catnum })
}
setUpdateSuccessful(System.currentTimeMillis())
}
override suspend fun updateTransceiversFromFile(uri: String) = withContext(dispatcher) {
remoteSource.getFileStream(uri)
?.let { dataParser.parseJSONStream(it) }
?.takeIf { it.isNotEmpty() }
?.let {
localSource.deleteRadios()
localSource.insertRadios(it)
}
remoteSource.getFileStream(uri)?.let { stream ->
val transceivers = dataParser.parseJSONStream(unwrapIfZipped(uri, stream))
localSource.insertRadios(transceivers)
}
setUpdateSuccessful(System.currentTimeMillis())
}
@@ -69,28 +63,26 @@ class DatabaseRepo(
val dataSourcesSettings = settingsRepo.dataSourcesSettings.value
val tleUrls = buildMap {
putAll(Sources.satelliteDataUrls)
if (dataSourcesSettings.useCustomTLE) put("Other", dataSourcesSettings.tleUrl)
}.filterValues { it.isNotEmpty() }
val radioUrls = buildList {
add(Sources.RADIO_DATA_URL)
if (dataSourcesSettings.useCustomTransceivers) add(dataSourcesSettings.transceiversUrl)
}
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.map { (type, url) -> async { type to remoteSource.getNetworkStream(url) } }
val radioJobs = radioUrls.map { url -> async { remoteSource.getNetworkStream(url) } }
// parse satellite data
val importedEntries = tleJobs.awaitAll().flatMap { (type, stream) ->
stream?.let { parseSatelliteStream(type, it) }.orEmpty().also { satellites ->
settingsRepo.setSatelliteTypeIds(type, satellites.map { it.catnum })
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 })
}
}
// parse radio data
val importedRadios = radioJobs.awaitAll().filterNotNull().flatMap { dataParser.parseJSONStream(it) }
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())
@@ -102,10 +94,9 @@ class DatabaseRepo(
setUpdateSuccessful(0L)
}
private suspend fun parseSatelliteStream(type: String, stream: InputStream): List<OrbitalData> = when (type) {
in tleTypes -> dataParser.parseTLEStream(stream)
in zippedTleTypes -> dataParser.parseTLEStream(ZipInputStream(stream).apply { nextEntry })
else -> dataParser.parseCSVStream(stream)
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) {
@@ -113,4 +104,7 @@ class DatabaseRepo(
DatabaseState(localSource.getRadiosTotal(), localSource.getEntriesTotal(), timestamp)
)
}
private fun unwrapIfZipped(url: String, stream: InputStream): InputStream =
if (url.endsWith(".zip", ignoreCase = true)) ZipInputStream(stream).apply { nextEntry } else stream
}
@@ -72,6 +72,7 @@ class SettingsRepo(
private val keyStateOfSweep = "stateOfSweep"
private val keyStateOfUtc = "stateOfUtc"
private val keyStateOfLightTheme = "stateOfLightTheme"
private val keyStateOfNightMode = "stateOfNightMode"
private val keyStationAltitude = "stationAltitude"
private val keyStationLatitude = "stationLatitude"
private val keyStationLongitude = "stationLongitude"
@@ -329,6 +330,7 @@ class SettingsRepo(
putBoolean(keyStateOfSweep, new.stateOfSweep)
putBoolean(keyStateOfUtc, new.stateOfUtc)
putBoolean(keyStateOfLightTheme, new.stateOfLightTheme)
putBoolean(keyStateOfNightMode, new.stateOfNightMode)
putBoolean(keyShouldSeeWarning, new.shouldSeeWarning)
putBoolean(keyShouldSeeWhatsNew, new.shouldSeeWhatsNew)
}
@@ -342,6 +344,7 @@ class SettingsRepo(
stateOfSweep = preferences.getBoolean(keyStateOfSweep, true),
stateOfUtc = preferences.getBoolean(keyStateOfUtc, false),
stateOfLightTheme = preferences.getBoolean(keyStateOfLightTheme, false),
stateOfNightMode = preferences.getBoolean(keyStateOfNightMode, false),
shouldSeeWarning = preferences.getBoolean(keyShouldSeeWarning, true),
shouldSeeWhatsNew = preferences.getBoolean(keyShouldSeeWhatsNew, true)
)
@@ -54,6 +54,7 @@ data class OtherSettings(
val stateOfSweep: Boolean,
val stateOfUtc: Boolean,
val stateOfLightTheme: Boolean,
val stateOfNightMode: Boolean = false,
val shouldSeeWarning: Boolean,
val shouldSeeWhatsNew: Boolean
)
@@ -0,0 +1,667 @@
/*
* 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 com.rtbishop.look4sat.core.domain.utility.toDegrees
import com.rtbishop.look4sat.core.domain.utility.toRadians
import kotlin.math.PI
import kotlin.math.abs
import kotlin.math.acos
import kotlin.math.asin
import kotlin.math.atan
import kotlin.math.atan2
import kotlin.math.cos
import kotlin.math.floor
import kotlin.math.log10
import kotlin.math.pow
import kotlin.math.sin
import kotlin.math.sqrt
import kotlin.math.tan
/**
* Standalone celestial computations extracted from PREDICT v2.2.5.
* Provides Sun position, Moon position, satellite visibility classification,
* orbital metadata, RA/Dec conversion, and rise/set finding for Sun and Moon.
*
* All angles are in degrees unless noted. Time is Unix epoch milliseconds.
*
* Shared math utilities (thetaGJD, modulus, mod2PI, deltaET, millisToDaynum,
* solarPositionECI, eciToGeodetic) live in OrbitalMath.kt in the same package.
*/
object CelestialComputer {
// ── Result types ──
/** Sun position as seen from a ground observer. */
data class SunPosition(
val azimuth: Double, // degrees, 0=N, 90=E
val elevation: Double, // degrees, >0 above horizon
val distance: Double, // normalized: 1.0 + ((range - AU) / AU)
val rangeRate: Double, // km/s
val latitude: Double, // sub-solar point latitude, degrees
val longitude: Double, // sub-solar point longitude, degrees
val rightAscension: Double, // degrees
val declination: Double // degrees
)
/** Moon position as seen from a ground observer. */
data class MoonPosition(
val azimuth: Double, // degrees, 0=N, 90=E
val elevation: Double, // degrees
val rightAscension: Double, // degrees
val declination: Double, // degrees
val gha: Double, // Greenwich Hour Angle, degrees
val angularDiameter: Double, // apparent diameter relative to Earth's diameter
val radialVelocity: Double // m/s, Doppler radial velocity for EME
)
/**
* 3-state satellite visibility classification.
* - [VISIBLE]: satellite is sunlit, observer is in darkness (sun below -12°) — optically visible
* - [DAYLIGHT]: satellite is sunlit, observer is in daylight
* - [ECLIPSED]: satellite is in Earth's shadow
*/
enum class SatVisibility { VISIBLE, DAYLIGHT, ECLIPSED }
/** Orbital metadata not typically included in pass data. */
data class OrbitalMetadata(
val footprintDiameter: Double, // km, ground coverage circle diameter
val orbitNumber: Long, // current orbit/revolution number
val betaAngle: Double, // degrees, angle between orbital plane and Sun
val orbitalPhase: Double // 0-256 phase within current orbit
)
// ── Sun position ──
/**
* Compute the Sun's full position as seen from [observer] at [timeMillis].
* Includes az/el, RA/Dec, sub-solar lat/lon, range, and range rate.
* Based on FindSun() from PREDICT v2.2.5.
*/
fun getSunPosition(observer: GeoPos, timeMillis: Long): SunPosition {
val daynum = millisToDaynum(timeMillis)
val julUtc = daynum + 2444238.5
val sunVec = solarPositionECI(julUtc)
val zeroVel = doubleArrayOf(0.0, 0.0, 0.0)
val obsGeo = observerGeodetic(observer)
// Az, El, Range, RangeRate
val obsSet = computeObsAngles(julUtc, sunVec, zeroVel, obsGeo)
// Lat/Lon of sub-solar point
val latLon = eciToGeodetic(julUtc, sunVec)
// RA/Dec
val raDec = calculateRADec(julUtc, sunVec, zeroVel, obsGeo)
return SunPosition(
azimuth = obsSet[0].toDegrees(),
elevation = obsSet[1].toDegrees(),
distance = 1.0 + ((obsSet[2] - ASTRONOMICAL_UNIT) / ASTRONOMICAL_UNIT),
rangeRate = 1000.0 * obsSet[3],
latitude = latLon[0].toDegrees(),
longitude = latLon[1].toDegrees().let { if (it > 180.0) it - 360.0 else it },
rightAscension = raDec[0].toDegrees(),
declination = raDec[1].toDegrees()
)
}
// ── Moon position ──
/**
* Compute the Moon's position as seen from [observer] at [timeMillis].
* Full Meeus lunar ephemeris from PREDICT v2.2.5 with expanded terms
* and radial velocity approximation for EME Doppler.
*/
fun getMoonPosition(observer: GeoPos, timeMillis: Long): MoonPosition {
val daynum = millisToDaynum(timeMillis)
val jd = daynum + 2444238.5
var t = (jd - 2415020.0) / 36525.0
val t2 = t * t
val t3 = t2 * t
var l1 = 270.434164 + 481267.8831 * t - 0.001133 * t2 + 0.0000019 * t3
var mSun = 358.475833 + 35999.0498 * t - 0.00015 * t2 - 0.0000033 * t3
var m1 = 296.104608 + 477198.8491 * t + 0.009192 * t2 + 0.0000144 * t3
var d = 350.737486 + 445267.1142 * t - 0.001436 * t2 + 0.0000019 * t3
var ff = 11.250889 + 483202.0251 * t - 0.003211 * t2 - 0.0000003 * t3
val om = (259.183275 - 1934.142 * t + 0.002078 * t2 + 0.0000022 * t3) * DEG2RAD
val correction512 = sin((51.2 + 20.2 * t) * DEG2RAD)
val ss = 0.003964 * sin((346.56 + 132.87 * t - 0.0091731 * t2) * DEG2RAD)
l1 += 0.000233 * correction512 + ss + 0.001964 * sin(om)
mSun -= 0.001778 * correction512
m1 += 0.000817 * correction512 + ss + 0.002541 * sin(om)
d += 0.002011 * correction512 + ss + 0.001964 * sin(om)
ff += ss - 0.024691 * sin(om) - 0.004328 * sin(om + (275.05 - 2.3 * t) * DEG2RAD)
val ex = 1.0 - 0.002495 * t - 0.00000752 * t2
l1 = primeAngle(l1); mSun = primeAngle(mSun); m1 = primeAngle(m1)
d = primeAngle(d); ff = primeAngle(ff)
val mR = mSun * DEG2RAD
val m1R = m1 * DEG2RAD
val dR = d * DEG2RAD
val ffR = ff * DEG2RAD
// Ecliptic longitude — expanded v225 terms
var l = l1 + 6.28875 * sin(m1R) + 1.274018 * sin(2 * dR - m1R) + 0.658309 * sin(2 * dR)
l += 0.213616 * sin(2 * m1R) - ex * 0.185596 * sin(mR) - 0.114336 * sin(2 * ffR)
l += 0.058793 * sin(2 * dR - 2 * m1R) + ex * 0.057212 * sin(2 * dR - mR - m1R) + 0.05332 * sin(2 * dR + m1R)
l += ex * 0.045874 * sin(2 * dR - mR) + ex * 0.041024 * sin(m1R - mR) - 0.034718 * sin(dR)
l -= ex * 0.030465 * sin(mR + m1R) + 0.015326 * sin(2 * dR - 2 * ffR) - 0.012528 * sin(2 * ffR + m1R)
l -= 0.01098 * sin(2 * ffR - m1R) + 0.010674 * sin(4 * dR - m1R) + 0.010034 * sin(3 * m1R)
l += 0.008548 * sin(4 * dR - 2 * m1R) - ex * 0.00791 * sin(mR - m1R + 2 * dR)
l -= ex * 0.006783 * sin(2 * dR + mR)
l += 0.005162 * sin(m1R - dR) + ex * 0.005 * sin(mR + dR) + ex * 0.004049 * sin(m1R - mR + 2 * dR)
l += 0.003996 * sin(2 * m1R + 2 * dR) + 0.003862 * sin(4 * dR) + 0.003665 * sin(2 * dR - 3 * m1R)
l += ex * 0.002695 * sin(2 * m1R - mR) + 0.002602 * sin(m1R - 2 * ffR - 2 * dR)
l += ex * 0.002396 * sin(2 * dR - mR - 2 * m1R)
l -= 0.002349 * sin(m1R + dR) + ex * ex * 0.002249 * sin(2 * dR - 2 * mR)
l -= ex * 0.002125 * sin(2 * m1R + mR)
l -= ex * ex * 0.002079 * sin(2 * mR) + ex * ex * 0.002059 * sin(2 * dR - m1R - 2 * mR)
l -= 0.001773 * sin(m1R + 2 * dR - 2 * ffR)
l += ex * 0.00122 * sin(4 * dR - mR - m1R) - 0.00111 * sin(2 * m1R + 2 * ffR) + 0.000892 * sin(m1R - 3 * dR)
l -= ex * 0.000811 * sin(mR + m1R + 2 * dR) + ex * 0.000761 * sin(4 * dR - mR - 2 * m1R)
l += ex * ex * 0.000717 * sin(m1R - 2 * mR)
l += ex * ex * 0.000704 * sin(m1R - 2 * mR - 2 * dR) + ex * 0.000693 * sin(mR - 2 * m1R + 2 * dR)
l += ex * 0.000598 * sin(2 * dR - mR - 2 * ffR) + 0.00055 * sin(m1R + 4 * dR)
l += 0.000538 * sin(4 * m1R) + ex * 0.000521 * sin(4 * dR - mR) + 0.000486 * sin(2 * m1R - dR)
l -= 0.001595 * sin(2 * ffR + 2 * dR)
// Ecliptic latitude — expanded v225 terms
var b =
5.128189 * sin(ffR) + 0.280606 * sin(m1R + ffR) + 0.277693 * sin(m1R - ffR) + 0.173238 * sin(2 * dR - ffR)
b += 0.055413 * sin(2 * dR + ffR - m1R) + 0.046272 * sin(2 * dR - ffR - m1R) + 0.032573 * sin(2 * dR + ffR)
b += 0.017198 * sin(2 * m1R + ffR) + 9.266999e-03 * sin(2 * dR + m1R - ffR) + 0.008823 * sin(2 * m1R - ffR)
b += ex * 0.008247 * sin(2 * dR - mR - ffR) + 0.004323 * sin(2 * dR - ffR - 2 * m1R)
b += 0.0042 * sin(2 * dR + ffR + m1R)
b += ex * 0.003372 * sin(ffR - mR - 2 * dR) + ex * 0.002472 * sin(2 * dR + ffR - mR - m1R)
b += ex * 0.002222 * sin(2 * dR + ffR - mR)
b += 0.002072 * sin(2 * dR - ffR - mR - m1R) + ex * 0.001877 * sin(ffR - mR + m1R)
b += 0.001828 * sin(4 * dR - ffR - m1R)
b -= ex * 0.001803 * sin(ffR + mR) - 0.00175 * sin(3 * ffR)
b += ex * 0.00157 * sin(m1R - mR - ffR) - 0.001487 * sin(ffR + dR)
b -= ex * 0.001481 * sin(ffR + mR + m1R) + ex * 0.001417 * sin(ffR - mR - m1R)
b += ex * 0.00135 * sin(ffR - mR) + 0.00133 * sin(ffR - dR)
b += 0.001106 * sin(ffR + 3 * m1R) + 0.00102 * sin(4 * dR - ffR) + 0.000833 * sin(ffR + 4 * dR - m1R)
b += 0.000781 * sin(m1R - 3 * ffR) + 0.00067 * sin(ffR + 4 * dR - 2 * m1R)
b += 0.000606 * sin(2 * dR - 3 * ffR)
b += 0.000597 * sin(2 * dR + 2 * m1R - ffR) + ex * 0.000492 * sin(2 * dR + m1R - mR - ffR)
b += 0.00045 * sin(2 * m1R - ffR - 2 * dR)
b += 0.000439 * sin(3 * m1R - ffR) + 0.000423 * sin(ffR + 2 * dR + 2 * m1R)
b += 0.000422 * sin(2 * dR - ffR - 3 * m1R)
b -= ex * 0.000367 * sin(mR + ffR + 2 * dR - m1R) - ex * 0.000353 * sin(mR + ffR + 2 * dR)
b += 0.000331 * sin(ffR + 4 * dR)
b += ex * 0.000317 * sin(2 * dR + ffR - mR + m1R) + ex * ex * 0.000306 * sin(2 * dR - 2 * mR - ffR)
b -= 0.000283 * sin(m1R + 3 * ffR)
val w1 = 0.0004664 * cos(om)
val w2 = 0.0000754 * cos(om + (275.05 - 2.3 * t) * DEG2RAD)
val bt = b * (1.0 - w1 - w2)
// Parallax — expanded v225 terms
var p =
0.950724 + 0.051818 * cos(m1R) + 0.009531 * cos(2 * dR - m1R) + 0.007843 * cos(2 * dR) + 0.002824 * cos(2 * m1R)
p += 0.000857 * cos(2 * dR + m1R) + ex * 0.000533 * cos(2 * dR - mR) + ex * 0.000401 * cos(2 * dR - mR - m1R)
p += 0.000173 * cos(3 * m1R) + 0.000167 * cos(4 * dR - m1R) - ex * 0.000111 * cos(mR)
p += 0.000103 * cos(4 * dR - 2 * m1R) - 0.000084 * cos(2 * m1R - 2 * dR) - ex * 0.000083 * cos(2 * dR + mR)
p += 0.000079 * cos(2 * dR + 2 * m1R)
p += 0.000072 * cos(4 * dR) + ex * 0.000064 * cos(2 * dR - mR + m1R) - ex * 0.000063 * cos(2 * dR + mR - m1R)
p += ex * 0.000041 * cos(mR + dR) + ex * 0.000035 * cos(2 * m1R - mR) - 0.000033 * cos(3 * m1R - 2 * dR)
p -= 0.00003 * cos(m1R + dR) - 0.000029 * cos(2 * ffR - 2 * dR) - ex * 0.000029 * cos(2 * m1R + mR)
p += ex * ex * 0.000026 * cos(2 * dR - 2 * mR) - 0.000023 * cos(2 * ffR - 2 * dR + m1R)
p += ex * 0.000019 * cos(4 * dR - mR - m1R)
val bRad = bt * DEG2RAD
val lm = l * DEG2RAD
val moonDx = 3.0 / (PI * p)
// Ecliptic → equatorial
val z = (jd - 2415020.5) / 365.2422
val ob = (23.452294 - (0.46845 * z + 5.9e-07 * z * z) / 3600.0).toRadians()
val dec = asin(sin(bRad) * cos(ob) + cos(bRad) * sin(ob) * sin(lm))
var ra = acos(cos(bRad) * cos(lm) / cos(dec)); if (lm > PI) ra = TWO_PI - ra
val n = observer.latitude * DEG2RAD
t = (jd - 2451545.0) / 36525.0
var teg = 280.46061837 + 360.98564736629 * (jd - 2451545.0) + (0.000387933 * t - t * t / 38710000.0) * t
while (teg > 360.0) teg -= 360.0
// LST = GMST + east longitude (positive east convention)
val th = mod2PI((teg + observer.longitude) * DEG2RAD)
val h = th - ra
val azVal = atan2(sin(h), cos(h) * sin(n) - tan(dec) * cos(n)) + PI
val el = asin(sin(n) * sin(dec) + cos(n) * cos(dec) * cos(h))
// Moon radial velocity approximation (from "Amateur Radio Software", GM4ANB, RSGB 1985)
val mm = fixAngle(1.319238 + daynum * 0.228027135)
val radT2 = 0.10976
val radT1 = mm + radT2 * sin(mm)
var dv = 0.01255 * moonDx * moonDx * sin(radT1) * (1.0 + radT2 * cos(mm))
dv *= 4449.0
val earthR = 6378.0
val moonDist = 384401.0
val radT3 = earthR * moonDist * (cos(dec) * cos(n) * sin(h)) /
sqrt(moonDist * moonDist - moonDist * earthR * sin(el))
val moonDv = dv + radT3 * 0.0753125
val moonRa = ra / DEG2RAD
var moonGha = teg - moonRa
if (moonGha < 0.0) moonGha += 360.0
return MoonPosition(
azimuth = azVal / DEG2RAD,
elevation = el / DEG2RAD,
rightAscension = moonRa,
declination = dec / DEG2RAD,
gha = moonGha,
angularDiameter = moonDx,
radialVelocity = moonDv
)
}
// ── Satellite visibility ──
/**
* Classify satellite visibility given its eclipse state and the Sun's elevation
* at the observer's location.
*
* @param isEclipsed whether the satellite is in Earth's shadow
* @param sunElevationDeg Sun elevation at observer in degrees
* @param satElevationDeg satellite elevation at observer in degrees (must be >= 0)
*/
fun classifyVisibility(
isEclipsed: Boolean,
sunElevationDeg: Double,
satElevationDeg: Double
): SatVisibility {
if (isEclipsed) return SatVisibility.ECLIPSED
return if (sunElevationDeg <= -12.0 && satElevationDeg >= 0.0) SatVisibility.VISIBLE
else SatVisibility.DAYLIGHT
}
// ── Orbital metadata ──
/**
* Compute orbital metadata for a satellite at its current position.
*
* @param altitudeKm satellite altitude in km
* @param meanMotion revolutions per day from TLE
* @param bstar drag term from TLE
* @param meanAnomaly mean anomaly at epoch (radians)
* @param revNumAtEpoch revolution number at TLE epoch
* @param ageDays days since TLE epoch (julUTC - julEpoch)
* @param phase orbital phase in radians (from SGP4/SDP4 output)
* @param satPosECI satellite ECI position [x, y, z]
* @param satVelECI satellite ECI velocity [vx, vy, vz]
* @param sunPosECI sun ECI position [x, y, z]
*/
fun computeOrbitalMetadata(
altitudeKm: Double,
meanMotion: Double,
bstar: Double,
meanAnomaly: Double,
revNumAtEpoch: Int,
ageDays: Double,
phase: Double,
satPosECI: DoubleArray,
satVelECI: DoubleArray,
sunPosECI: DoubleArray
): OrbitalMetadata {
// Footprint diameter (km)
val footprint = 12756.33 * acos(EARTH_RADIUS / (EARTH_RADIUS + altitudeKm))
// Orbit number
val xmnpda = 1.44E3
val orbitNum = floor(
(meanMotion * xmnpda / TWO_PI + ageDays * bstar) * ageDays + meanAnomaly / TWO_PI
).toLong() + revNumAtEpoch
// Beta angle: angle between orbital plane and Sun direction
// Orbital plane normal = cross(pos, vel)
val nx = satPosECI[1] * satVelECI[2] - satPosECI[2] * satVelECI[1]
val ny = satPosECI[2] * satVelECI[0] - satPosECI[0] * satVelECI[2]
val nz = satPosECI[0] * satVelECI[1] - satPosECI[1] * satVelECI[0]
val nMag = sqrt(nx * nx + ny * ny + nz * nz)
val sMag = sqrt(sunPosECI[0] * sunPosECI[0] + sunPosECI[1] * sunPosECI[1] + sunPosECI[2] * sunPosECI[2])
val dotNS = nx * sunPosECI[0] + ny * sunPosECI[1] + nz * sunPosECI[2]
val betaAngle = if (nMag > 0 && sMag > 0) {
(PI / 2.0 - acos(dotNS / (nMag * sMag))).toDegrees()
} else 0.0
// Phase (0-256 scale, matching PREDICT convention)
val orbitalPhase = 256.0 * (phase / TWO_PI)
return OrbitalMetadata(footprint, orbitNum, betaAngle, orbitalPhase)
}
// ── Satellite status checks ──
/** Check if a satellite is geostationary (mean motion ≈ 1.0027 rev/day). */
fun isGeostationary(meanMotion: Double): Boolean = abs(meanMotion - 1.0027) < 0.0002
/**
* Check if a satellite has likely decayed based on drag and time since epoch.
*
* @param meanMotion revolutions per day
* @param drag first derivative of mean motion / 2 (from TLE line 1)
* @param epochDaynum TLE epoch as daynum (days since 31Dec79)
* @param currentDaynum current time as daynum
*/
fun hasDecayed(meanMotion: Double, drag: Double, epochDaynum: Double, currentDaynum: Double): Boolean {
return epochDaynum + ((16.666666 - meanMotion) / (10.0 * abs(drag))) < currentDaynum
}
// ── Rise/Set finding ──
/** Rise and set times for a celestial body. */
data class RiseSetTimes(
val riseTimeMillis: Long, // 0 if not found
val setTimeMillis: Long // 0 if not found
)
/**
* Find the next sunrise and sunset times from [startMillis] for [observer].
* Uses elevation threshold of -0.8333° to match the standard civil definition:
* upper limb on geometric horizon with standard atmospheric refraction (~0.57°)
* and solar semidiameter (~0.27°) corrections applied, matching USNO/timeanddate.com.
*/
fun findSunRiseSet(observer: GeoPos, startMillis: Long): RiseSetTimes {
// Standard civil threshold: center elevation when upper limb meets geometric horizon
// -0.8333° = standard refraction (~0.5667°) + solar semidiameter (~0.2667°)
val threshold = 0.8333
var daynum = millisToDaynum(startMillis)
var sunPos = getSunPosition(observer, daynumToMillis(daynum))
// Phase 1: if sun is above threshold, fast-forward to well past sunset into night
if (sunPos.elevation > -threshold) {
var guard = 0
while (sunPos.elevation > -threshold && guard++ < 500) {
daynum += 0.008 // fixed ~11.5 min steps past the setting sun
sunPos = getSunPosition(observer, daynumToMillis(daynum))
}
// Now advance until sun is clearly below minimum (deep night)
guard = 0
while (sunPos.elevation > -12.0 && guard++ < 500) {
daynum += 0.02
sunPos = getSunPosition(observer, daynumToMillis(daynum))
}
}
// Phase 2: advance until sun starts rising toward threshold (elevation increasing)
var guard = 0
while (sunPos.elevation < -threshold && guard++ < 500) {
daynum += 0.008
sunPos = getSunPosition(observer, daynumToMillis(daynum))
}
// Phase 3: converge symmetrically on elevation = -threshold (sunrise)
var sunrise = 0.0
guard = 0
while (sunrise == 0.0 && guard++ < 200) {
val delta = sunPos.elevation + threshold
if (abs(delta) < 0.01) {
sunrise = daynum
} else {
daynum -= 0.004 * delta
sunPos = getSunPosition(observer, daynumToMillis(daynum))
}
}
if (sunrise == 0.0) sunrise = daynum
// 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) {
daynum += 0.008
sunPos = getSunPosition(observer, daynumToMillis(daynum))
}
// Phase 5: converge symmetrically on elevation = -threshold (sunset)
var sunset = 0.0
guard = 0
while (sunset == 0.0 && guard++ < 200) {
val delta = sunPos.elevation + threshold
if (abs(delta) < 0.01) {
sunset = daynum
} else {
daynum += 0.004 * delta
sunPos = getSunPosition(observer, daynumToMillis(daynum))
}
}
if (sunset == 0.0) sunset = daynum
return RiseSetTimes(daynumToMillis(sunrise), daynumToMillis(sunset))
}
/**
* Find the next moonrise and moonset times from [startMillis] for [observer].
* Uses the adaptive iteration from PREDICT v2.2.5's PredictMoon().
*/
fun findMoonRiseSet(observer: GeoPos, startMillis: Long): RiseSetTimes {
var daynum = millisToDaynum(startMillis)
var moonPos = getMoonPosition(observer, daynumToMillis(daynum))
// If moon is already up, move forward until it sets
var guard = 0
if (moonPos.elevation > 0) {
while (moonPos.elevation > 0 && guard++ < 1000) {
daynum += 0.004 * sin(DEG2RAD * (moonPos.elevation + 0.5))
moonPos = getMoonPosition(observer, daynumToMillis(daynum))
}
daynum += 0.4
moonPos = getMoonPosition(observer, daynumToMillis(daynum))
}
// Find moonrise
var moonrise = 0.0
guard = 0
while (moonrise == 0.0 && guard++ < 1000) {
if (abs(moonPos.elevation) < 0.03) {
moonrise = daynum
} else {
daynum -= 0.004 * moonPos.elevation
moonPos = getMoonPosition(observer, daynumToMillis(daynum))
}
}
if (moonrise == 0.0) moonrise = daynum
// Find moonset from moonrise
daynum = moonrise
moonPos = getMoonPosition(observer, daynumToMillis(daynum))
guard = 0
while (moonPos.elevation > -1 && guard++ < 1000) {
daynum += 0.04 * cos(DEG2RAD * (moonPos.elevation + 0.5))
moonPos = getMoonPosition(observer, daynumToMillis(daynum))
}
var moonset = 0.0
guard = 0
while (moonset == 0.0 && guard++ < 1000) {
if (abs(moonPos.elevation) < 0.03) {
moonset = daynum
} else {
daynum += 0.004 * moonPos.elevation
moonPos = getMoonPosition(observer, daynumToMillis(daynum))
}
}
if (moonset == 0.0) moonset = daynum
return RiseSetTimes(daynumToMillis(moonrise), daynumToMillis(moonset))
}
// ── Visual magnitude estimation ──
/**
* Estimate the apparent visual magnitude of a satellite.
*
* Uses the standard formula from McCants/Heavens-Above:
* apparentMag = stdMag + 5 * log10(range / 1000) - 15 * log10(cos(phaseAngle / 2))
*
* @param rangeKm slant range from observer to satellite in km
* @param phaseAngleDeg Sun-satellite-observer angle in degrees
* @param stdMag intrinsic/standard magnitude (default 4.0)
* @return estimated apparent visual magnitude
*/
fun estimateVisualMagnitude(rangeKm: Double, phaseAngleDeg: Double, stdMag: Double = 4.0): Double {
if (rangeKm <= 0) return stdMag
val halfPhaseRad = phaseAngleDeg.toRadians() / 2.0
val cosHalfPhase = cos(halfPhaseRad)
val phaseTerm = if (cosHalfPhase > 1e-6) -15.0 * log10(cosHalfPhase) else 99.0
return stdMag + 5.0 * log10(rangeKm / 1000.0) + phaseTerm
}
/**
* Compute the phase angle (Sun-satellite-observer) in degrees.
*
* @param satPosECI satellite ECI position [x, y, z] in km
* @param sunPosECI sun ECI position [x, y, z] in km
* @param obsPosECI observer ECI position [x, y, z] in km
* @return phase angle in degrees (0 = fully illuminated face toward observer)
*/
fun computePhaseAngle(satPosECI: DoubleArray, sunPosECI: DoubleArray, obsPosECI: DoubleArray): Double {
val toSunX = sunPosECI[0] - satPosECI[0]
val toSunY = sunPosECI[1] - satPosECI[1]
val toSunZ = sunPosECI[2] - satPosECI[2]
val toObsX = obsPosECI[0] - satPosECI[0]
val toObsY = obsPosECI[1] - satPosECI[1]
val toObsZ = obsPosECI[2] - satPosECI[2]
val dot = toSunX * toObsX + toSunY * toObsY + toSunZ * toObsZ
val magSun = sqrt(toSunX * toSunX + toSunY * toSunY + toSunZ * toSunZ)
val magObs = sqrt(toObsX * toObsX + toObsY * toObsY + toObsZ * toObsZ)
if (magSun == 0.0 || magObs == 0.0) return 90.0
val cosAngle = (dot / (magSun * magObs)).coerceIn(-1.0, 1.0)
return acos(cosAngle).toDegrees()
}
// ── Doppler ──
/**
* Compute Doppler shift for a given base frequency and range rate.
*
* @param frequencyHz base frequency in Hz
* @param rangeRateKmS range rate in km/s (negative = approaching)
* @return shifted frequency in Hz
*/
fun dopplerShift(frequencyHz: Double, rangeRateKmS: Double): Double {
return frequencyHz * (299792.458 - rangeRateKmS) / 299792.458
}
// ── Internal helpers ──
private fun observerGeodetic(pos: GeoPos): DoubleArray {
// [lat_rad, lon_rad, alt_km] — longitude positive east, matching OrbitalObject convention.
// LST = thetaGJD(julUtc) + obsGeo[1] = GMST + lon_rad (correct).
return doubleArrayOf(pos.latitude * DEG2RAD, pos.longitude * DEG2RAD, pos.altitude / 1000.0)
}
/**
* Convert az/el observation to Right Ascension / Declination.
* Returns [ra_rad, dec_rad].
* Based on Calculate_RADec() from PREDICT v2.2.5 (Escobal method).
*/
private fun calculateRADec(
julUtc: Double,
targetPos: DoubleArray,
targetVel: DoubleArray,
obsGeo: DoubleArray
): DoubleArray {
val obsSet = computeObsAngles(julUtc, targetPos, targetVel, obsGeo)
val az = obsSet[0]
val el = obsSet[1]
val phi = obsGeo[0]
val theta = mod2PI(thetaGJD(julUtc) + obsGeo[1])
val sinTheta = sin(theta)
val cosTheta = cos(theta)
val sinPhi = sin(phi)
val cosPhi = cos(phi)
val lxh = -cos(az) * cos(el)
val lyh = sin(az) * cos(el)
val lzh = sin(el)
val sx = sinPhi * cosTheta
val ex2 = -sinTheta
val zx = cosTheta * cosPhi
val sy = sinPhi * sinTheta
val zy = sinTheta * cosPhi
val sz = -cosPhi
val lx = sx * lxh + ex2 * lyh + zx * lzh
val ly = sy * lxh + cosTheta * lyh + zy * lzh
val lz = sz * lxh + 0.0 * lyh + sinPhi * lzh
val dec = asin(lz)
val cosDelta = sqrt(1.0 - lz * lz)
val sinAlpha = ly / cosDelta
val cosAlpha = lx / cosDelta
val ra = mod2PI(atan2(sinAlpha, cosAlpha))
return doubleArrayOf(ra, dec)
}
/**
* Compute observer look-angles (az, el, range, rangeRate) to a target at ECI position.
* Returns [azimuth_rad, elevation_rad, range_km, rangeRate_km/s].
* Azimuth is north-referenced (0=N, π/2=E), matching OrbitalObject's convention.
*/
private fun computeObsAngles(
julUtc: Double,
targetPos: DoubleArray,
targetVel: DoubleArray,
obsGeo: DoubleArray // [lat_rad, lon_rad, alt_km]
): DoubleArray {
val theta = mod2PI(thetaGJD(julUtc) + obsGeo[1])
val c = 1.0 / sqrt(1 + FLAT_FACT * (FLAT_FACT - 2) * sin(obsGeo[0]).pow(2))
val sq = (1 - FLAT_FACT).pow(2) * c
val achcp = (EARTH_RADIUS * c + obsGeo[2]) * cos(obsGeo[0])
val ox = achcp * cos(theta)
val oy = achcp * sin(theta)
val oz = (EARTH_RADIUS * sq + obsGeo[2]) * sin(obsGeo[0])
val ovx = -MFACTOR * oy
val ovy = MFACTOR * ox
val rx = targetPos[0] - ox
val ry = targetPos[1] - oy
val rz = targetPos[2] - oz
val rMag = sqrt(rx * rx + ry * ry + rz * rz)
val rvx = targetVel[0] - ovx
val rvy = targetVel[1] - ovy
val rvz = targetVel[2]
val sinLat = sin(obsGeo[0])
val cosLat = cos(obsGeo[0])
val sinTheta = sin(theta)
val cosTheta = cos(theta)
val topS = sinLat * cosTheta * rx + sinLat * sinTheta * ry - cosLat * rz
val topE = -sinTheta * rx + cosTheta * ry
val topZ = cosLat * cosTheta * rx + cosLat * sinTheta * ry + sinLat * rz
// Match north-based convention (0=N, 90=E) used by OrbitalObject.calculateObs
// Must use atan(-topE / topS) not atan2(-topE, topS) — they differ in quadrant handling
var azim = atan(-topE / topS)
if (topS > 0.0) azim += PI
if (azim < 0.0) azim += TWO_PI
val el = asin(topZ / rMag)
val rangeRate = (rx * rvx + ry * rvy + rz * rvz) / rMag
return doubleArrayOf(azim, el, rMag, rangeRate)
}
private const val MFACTOR = 7.292115E-5
private fun primeAngle(x: Double) = x - 360.0 * floor(x / 360.0)
private fun fixAngle(x: Double): Double {
var a = x; while (a > TWO_PI) a -= TWO_PI; return a
}
}
@@ -21,6 +21,7 @@ const val ASTRONOMICAL_UNIT = 1.49597870691E8
const val DEG2RAD = 0.017453292519943295
const val RAD2DEG = 57.29577951308232
const val EARTH_RADIUS = 6378.137
const val EARTH_ROT_PER_SID_DAY = 1.00273790934
const val EPSILON = 1.0E-12
const val FLAT_FACT = 3.35281066474748E-3
const val J3_HARMONIC = -2.53881E-6
@@ -0,0 +1,141 @@
/*
* 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 kotlin.math.abs
import kotlin.math.atan2
import kotlin.math.cos
import kotlin.math.floor
import kotlin.math.sin
import kotlin.math.sqrt
// ── Shared orbital math utilities ──
// Used by both CelestialComputer (sun/moon/celestial) and OrbitalObject (SGP4/SDP4).
// Package-internal — not part of the public API.
/**
* Greenwich Mean Sidereal Time from Julian Date, in radians [0, 2π).
* Identical algorithm used in PREDICT v2.2.5 for both solar and satellite calculations.
*/
internal fun thetaGJD(jd: Double): Double {
val ut = fraction(jd + 0.5)
val aJD = jd - ut
val tu = (aJD - 2451545.0) / 36525.0
var gmst = 24110.54841 + tu * (8640184.812866 + tu * (0.093104 - tu * 6.2E-6))
gmst = modulus(gmst + SEC_PER_DAY * EARTH_ROT_PER_SID_DAY * ut, SEC_PER_DAY)
return TWO_PI * gmst / SEC_PER_DAY
}
/** Fractional part of [arg]. */
internal fun fraction(arg: Double): Double = arg - floor(arg)
/** Modulo: returns [arg1] mod [arg2], result always in [0, arg2). */
internal fun modulus(arg1: Double, arg2: Double): Double {
var r = arg1
val i = floor(r / arg2).toInt()
r -= i * arg2
if (r < 0.0) r += arg2
return r
}
/** Reduce [value] to [0, 2π). */
internal fun mod2PI(value: Double): Double {
var r = value
val i = (r / TWO_PI).toInt()
r -= i * TWO_PI
if (r < 0.0) r += TWO_PI
return r
}
/**
* Delta-ET: difference between Universal Time and Ephemeris Time (seconds).
* Based on least-squares fit from 1950 to 1991 (PREDICT v2.2.5).
*/
internal fun deltaET(year: Double): Double =
26.465 + 0.747622 * (year - 1950) + 1.886913 * sin(TWO_PI * (year - 1975) / 33)
/**
* Convert Unix epoch milliseconds to daynum (days since 31 Dec 1979 00:00:00 UTC).
*/
internal fun millisToDaynum(timeMillis: Long): Double =
(timeMillis - 315446400000L) / 86400000.0
/** Convert daynum back to Unix epoch milliseconds. */
internal fun daynumToMillis(daynum: Double): Long =
((daynum + 3651.0) * 86400000.0).toLong()
/**
* Compute the Sun's ECI position vector at [julUtc] (Julian UTC).
* Returns [x, y, z, magnitude] in km.
* Based on Calculate_Solar_Position() / FindSun() from PREDICT v2.2.5.
*/
internal fun solarPositionECI(julUtc: Double): DoubleArray {
val mjd = julUtc - 2415020.0
val year = 1900 + mjd / 365.25
val t = (mjd + deltaET(year) / SEC_PER_DAY) / 36525.0
val mDeg = mod360(358.47583 + mod360(35999.04975 * t) - (0.000150 + 0.0000033 * t) * t * t)
val m = mDeg * DEG2RAD
val lDeg = mod360(279.69668 + mod360(36000.76892 * t) + 0.0003025 * t * t)
val l = lDeg * DEG2RAD
val e = 0.01675104 - (0.0000418 + 0.000000126 * t) * t
val cDeg = (1.919460 - (0.004789 + 0.000014 * t) * t) * sin(m) +
(0.020094 - 0.000100 * t) * sin(2 * m) + 0.000293 * sin(3 * m)
val c = cDeg * DEG2RAD
val oDeg = mod360(259.18 - 1934.142 * t)
val o = oDeg * DEG2RAD
val lsa = mod2PI(l + c - (0.00569 - 0.00479 * sin(o)) * DEG2RAD)
val nu = mod2PI(m + c)
var r = 1.0000002 * (1.0 - e * e) / (1.0 + e * cos(nu))
val epsDeg = 23.452294 - (0.0130125 + (0.00000164 - 0.000000503 * t) * t) * t + 0.00256 * cos(o)
val eps = epsDeg * DEG2RAD
r *= ASTRONOMICAL_UNIT
return doubleArrayOf(r * cos(lsa), r * sin(lsa) * cos(eps), r * sin(lsa) * sin(eps), r)
}
/**
* Convert ECI position [eciPos] = [x, y, z] (km) to geodetic [lat_rad, lon_rad, alt_km].
* Based on Calculate_LatLonAlt() from PREDICT v2.2.5.
*/
internal fun eciToGeodetic(julUtc: Double, eciPos: DoubleArray): DoubleArray {
val thetaPos = atan2(eciPos[1], eciPos[0])
val lon = mod2PI(thetaPos - thetaGJD(julUtc))
val r = sqrt(eciPos[0] * eciPos[0] + eciPos[1] * eciPos[1])
val e2 = FLAT_FACT * (2.0 - FLAT_FACT)
var lat = atan2(eciPos[2], r)
var phi: Double
var c: Double
var i = 0
do {
phi = lat
c = 1.0 / sqrt(1.0 - e2 * sin(phi) * sin(phi))
lat = atan2(eciPos[2] + EARTH_RADIUS * c * e2 * sin(phi), r)
} while (i++ < 10 && abs(lat - phi) >= 1E-10)
val alt = r / cos(lat) - EARTH_RADIUS * c
if (lat > PI_2) lat -= TWO_PI
return doubleArrayOf(lat, lon, alt)
}
// Private helpers
private fun mod360(x: Double): Double {
var r = x
val i = (r / 360.0).toInt()
r -= i * 360.0
if (r < 0.0) r += 360.0
return r
}
@@ -314,14 +314,8 @@ abstract class OrbitalObject(val data: OrbitalData) {
return 1.0 / value
}
// Calculates the modulus of 2 * PI
internal fun mod2PI(value: Double): Double {
var retVal = value
val i = (retVal / TWO_PI).toInt()
retVal -= i * TWO_PI
if (retVal < 0.0) retVal += TWO_PI
return retVal
}
// Delegates to package-level mod2PI in OrbitalMath.kt
internal fun mod2PI(value: Double): Double = com.rtbishop.look4sat.core.domain.predict.mod2PI(value)
// Solves Keplers' Equation
internal fun converge(temp: DoubleArray, axn: Double, ayn: Double, capu: Double) {
@@ -423,19 +417,8 @@ abstract class OrbitalObject(val data: OrbitalData) {
return acos(dot(v1, v2) / (v1.w * v2.w))
}
/**
* The function Delta_ET has been added to allow calculations on the
* position of the sun. It provides the difference between UT (approximately
* the same as UTC) and ET (now referred to as TDT) This function is based
* on the least squares fit of data from 1950 to 1991 and will need to be
* updated periodically.
*
* Values determined using data from 1950-1991 in the 1990 Astronomical
* Almanac. See DELTA_ET.WQ1 for details.
*/
private fun deltaEt(year: Double): Double {
return 26.465 + 0.747622 * (year - 1950) + (1.886913 * sin(TWO_PI * (year - 1975) / 33))
}
// Delegates to package-level deltaET in OrbitalMath.kt
private fun deltaEt(year: Double): Double = deltaET(year)
private fun radians(degrees: Double): Double {
return degrees * DEG2RAD
@@ -446,23 +429,13 @@ abstract class OrbitalObject(val data: OrbitalData) {
return v1.x * v2.x + v1.y * v2.y + v1.z * v2.z
}
// Returns fractional part of double argument
private fun fraction(arg: Double): Double {
return arg - floor(arg)
}
// Calculates scalar magnitude of a vector4 argument
private fun magnitude(v: Vector4) {
v.w = sqrt(sqr(v.x) + sqr(v.y) + sqr(v.z))
}
private fun modulus(arg1: Double, arg2: Double = SEC_PER_DAY): Double {
var returnValue = arg1
val i = floor(returnValue / arg2).toInt()
returnValue -= i * arg2
if (returnValue < 0.0) returnValue += arg2
return returnValue
}
private fun modulus(arg1: Double, arg2: Double = SEC_PER_DAY): Double =
com.rtbishop.look4sat.core.domain.predict.modulus(arg1, arg2)
// Multiplies the vector v1 by the scalar k
private fun scaleVector(k: Double, v: Vector4) {
@@ -470,13 +443,6 @@ abstract class OrbitalObject(val data: OrbitalData) {
magnitude(v)
}
private fun thetaGJD(theJD: Double): Double {
val earthRotPerSidDay = 1.00273790934
val ut = fraction(theJD + 0.5)
val aJD = theJD - ut
val tu = (aJD - 2451545.0) / 36525.0
var gmst = 24110.54841 + tu * (8640184.812866 + tu * (0.093104 - tu * 6.2E-6))
gmst = modulus(gmst + SEC_PER_DAY * earthRotPerSidDay * ut)
return TWO_PI * gmst / SEC_PER_DAY
}
// Delegates to package-level thetaGJD in OrbitalMath.kt
private fun thetaGJD(theJD: Double): Double = com.rtbishop.look4sat.core.domain.predict.thetaGJD(theJD)
}
@@ -63,10 +63,8 @@ data class OrbitalPos(
val sinBeta = sin(beta)
for (azimuth in 0..720) {
val rads = azimuth * DEG2RAD
val sinRads = sin(rads)
val cosRads = cos(rads)
val lat = asin(sinLat * cosBeta + cosLat * sinBeta * cosRads)
val lon = longitude + atan2(sinRads * sinBeta * cosLat, cosBeta - sinLat * sin(lat))
val lat = asin(sinLat * cosBeta + cosLat * sinBeta * cos(rads))
val lon = longitude + atan2(sin(rads) * sinBeta * cosLat, cosBeta - sinLat * sin(lat))
rangeCirclePoints.add(GeoPos(lat * RAD2DEG, lon * RAD2DEG))
}
return rangeCirclePoints
@@ -18,7 +18,6 @@
package com.rtbishop.look4sat.core.domain.source
object Sources {
const val RADIO_DATA_URL = "https://db.satnogs.org/api/transmitters/?format=json&status=active"
val satelliteDataUrls = mapOf(
"All" to "https://celestrak.org/NORAD/elements/gp.php?GROUP=active&FORMAT=csv",
"Amateur" to "https://celestrak.org/NORAD/elements/gp.php?GROUP=amateur&FORMAT=csv",
@@ -49,4 +48,7 @@ object Sources {
"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"
)
}
@@ -58,8 +58,6 @@ class DataParser(private val dispatcher: CoroutineDispatcher) {
}.getOrDefault(emptyList())
}
fun isLeapYear(year: Int): Boolean = (year % 4 == 0 && year % 100 != 0) || year % 400 == 0
private fun parseCSV(values: List<String>): OrbitalData? = runCatching {
val name = values[0]
val timestamp = values[2]
@@ -106,7 +104,8 @@ class DataParser(private val dispatcher: CoroutineDispatcher) {
}.onFailure { println("TLE parsing exception: $it") }.getOrNull()
private fun getDayOfYear(year: Int, month: Int, dayOfMonth: Int): Int {
val daysInMonth = intArrayOf(31, if (isLeapYear(year)) 29 else 28, 31, 30, 31, 30, 31, 31, 30, 31, 30, 31)
val isLeapYear = (year % 4 == 0 && year % 100 != 0) || year % 400 == 0
val daysInMonth = intArrayOf(31, if (isLeapYear) 29 else 28, 31, 30, 31, 30, 31, 31, 30, 31, 30, 31)
return daysInMonth.take(month - 1).sum() + dayOfMonth
}
}
@@ -19,9 +19,14 @@ package com.rtbishop.look4sat.core.domain.utility
import com.rtbishop.look4sat.core.domain.predict.DEG2RAD
import com.rtbishop.look4sat.core.domain.predict.RAD2DEG
import kotlin.math.acos
import kotlin.math.atan2
import kotlin.math.cos
import kotlin.math.max
import kotlin.math.min
import kotlin.math.sin
private const val AVG_EARTH_RADIUS_KM = 6371.009
private const val MIN_LATITUDE = -85.05112877980658
private const val MAX_LATITUDE = 85.05112877980658
private const val MIN_LONGITUDE = -180.0
@@ -48,6 +53,27 @@ fun Double.toRadians(): Double = this * DEG2RAD
// return MIN_LONGITUDE + (MAX_LONGITUDE - MIN_LONGITUDE) * this
//}
// Great-circle distance between two positions in kilometers using the spherical law of cosines.
fun greatCircleDistanceKm(lat1: Double, lon1: Double, lat2: Double, lon2: Double): Double {
val lat1R = lat1.toRadians()
val lat2R = lat2.toRadians()
val lon1R = lon1.toRadians()
val lon2R = lon2.toRadians()
return acos(
sin(lat1R) * sin(lat2R) + cos(lat1R) * cos(lat2R) * cos(lon2R - lon1R)
) * AVG_EARTH_RADIUS_KM
}
// Initial bearing (azimuth) from position 1 to position 2, in degrees (0-360).
fun bearingDeg(lat1: Double, lon1: Double, lat2: Double, lon2: Double): Double {
val lat1R = lat1.toRadians()
val lat2R = lat2.toRadians()
val dLon = (lon2 - lon1).toRadians()
val y = sin(dLon) * cos(lat2R)
val x = cos(lat1R) * sin(lat2R) - sin(lat1R) * cos(lat2R) * cos(dLon)
return (atan2(y, x).toDegrees() + 360) % 360
}
fun clipLat(latitude: Double): Double {
return clip(latitude, MIN_LATITUDE, MAX_LATITUDE)
}
@@ -95,11 +95,11 @@ class DataParserTest {
assert(dataParser.parseCSVStream(validCSVStream) == dataParser.parseTLEStream(validTLEStream))
}
@Test
fun `Function isLeapYear returns correct data`() = runTest(testDispatcher) {
val years = listOf(1900, 1984, 1994, 2016, 2022, 2024, 2042, 2048)
val answers = listOf(false, true, false, true, false, true, false, true)
val results = years.map { dataParser.isLeapYear(it) }
assert(results == answers)
}
// @Test
// fun `Function isLeapYear returns correct data`() = runTest(testDispatcher) {
// val years = listOf(1900, 1984, 1994, 2016, 2022, 2024, 2042, 2048)
// val answers = listOf(false, true, false, true, false, true, false, true)
// val results = years.map { dataParser.isLeapYear(it) }
// assert(results == answers)
// }
}
@@ -0,0 +1,9 @@
<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="M12.34,2.02C6.59,1.82 2,6.42 2,12c0,5.52 4.48,10 10,10c3.71,0 6.93,-2.02 8.66,-5.02C13.15,16.73 8.57,8.55 12.34,2.02z" />
</vector>
@@ -0,0 +1,9 @@
<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="M11,4V2c0,-0.55 0.45,-1 1,-1s1,0.45 1,1v2c0,0.55 -0.45,1 -1,1S11,4.55 11,4zM18.36,7.05l1.41,-1.42c0.39,-0.39 0.39,-1.02 0,-1.41c-0.39,-0.39 -1.02,-0.39 -1.41,0l-1.41,1.42c-0.39,0.39 -0.39,1.02 0,1.41C17.34,7.44 17.97,7.44 18.36,7.05zM22,11h-2c-0.55,0 -1,0.45 -1,1s0.45,1 1,1h2c0.55,0 1,-0.45 1,-1S22.55,11 22,11zM12,19c-0.55,0 -1,0.45 -1,1v2c0,0.55 0.45,1 1,1s1,-0.45 1,-1v-2C13,19.45 12.55,19 12,19zM5.64,7.05L4.22,5.64c-0.39,-0.39 -0.39,-1.03 0,-1.41s1.03,-0.39 1.41,0l1.41,1.41c0.39,0.39 0.39,1.03 0,1.41S6.02,7.44 5.64,7.05zM16.95,16.95c-0.39,0.39 -0.39,1.03 0,1.41l1.41,1.41c0.39,0.39 1.03,0.39 1.41,0c0.39,-0.39 0.39,-1.03 0,-1.41l-1.41,-1.41C17.98,16.56 17.34,16.56 16.95,16.95zM2,13h2c0.55,0 1,-0.45 1,-1s-0.45,-1 -1,-1H2c-0.55,0 -1,0.45 -1,1S1.45,13 2,13zM5.64,19.78l1.41,-1.41c0.39,-0.39 0.39,-1.03 0,-1.41s-1.03,-0.39 -1.41,0l-1.41,1.41c-0.39,0.39 -0.39,1.03 0,1.41C4.61,20.17 5.25,20.17 5.64,19.78zM12,6c-3.31,0 -6,2.69 -6,6s2.69,6 6,6s6,-2.69 6,-6S15.31,6 12,6z" />
</vector>
@@ -31,7 +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">İlerideki saatler</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>
@@ -66,7 +66,7 @@
<string name="radar_alt_value" translatable="false">%.0f km</string>
<string name="radar_dist_text">Mesafe</string>
<string name="radar_dist_value" translatable="false">%.0f km</string>
<string name="radar_eclipsed">Tutulumda</string>
<string name="radar_eclipsed">Gölgede</string>
<string name="radar_downlink">Downlink</string>
<string name="radar_uplink">Uplink</string>
<string name="radar_link_low" translatable="false">%.4f</string>
@@ -93,7 +93,7 @@
<string name="map_longitude">Boylam: %.1f°</string>
<string name="map_qth" translatable="false">QTH: %s</string>
<string name="map_phase">Faz: %.1f°</string>
<string name="map_eclipsed">Tutulumda</string>
<string name="map_eclipsed">Gölgede</string>
<string name="map_period">Periyot: %.0f dk</string>
<string name="map_velocity">Hız: %.2f km/s</string>
<string name="map_visibility">Görünürlük: %s</string>
@@ -182,7 +182,7 @@
<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_outro_title">Teşekkür etmek istiyorum</string>
<string name="prefs_outro_title">Teşekkürler</string>
<string name="prefs_outro_thanks" translatable="false">
• Look4Sat users and contributors!
\n• David A. B. Johnson (predict4java)
@@ -130,8 +130,16 @@
<string name="prefs_other_switch_update">启用卫星数据自动更新</string>
<string name="prefs_other_switch_sweep">启用雷达扫描动画</string>
<string name="prefs_other_switch_sensors">使用传感器旋转雷达视图</string>
<string name="prefs_other_switch_night_mode">启用红色夜间模式</string>
<string name="prefs_outro_title">我要感谢:</string>
<string name="prefs_outro_thanks" translatable="false">
• Look4Sat 所有用户及贡献者!
\n• David A. B. Johnson (predict4java)
\n• Dave Moten (predict4java)
\n• Alexandru Csete (Gpredict)
\n• Dr T.S. Kelso (Celestrak)
\n• Libre Space Foundation (SatNOGS)</string>
<string name="prefs_outro_license">该应用程序不提供任何保修.</string>
</resources>
@@ -49,10 +49,10 @@
\n\nPlease update the database at least weekly to get accurate predictions.</string>
<string name="pass_whatsnew_title" translatable="false">What\'s new in Look4Sat</string>
<string name="pass_whatsnew_message" translatable="false">
* Added Turkish translation, by Emre Can Akdaş (TA3ECR)
\n* Added DeepSpace passes filter option to the dialog
\n* Fixed the radar blip disappearing while eclipsed
\n* Fixed (hopefully) the refresh indicator being stuck
* Added fixes for Chinese translation, by Mubi-Baihua (#216)
\n* Added zipped data sources handling to DatabaseRepo
\n* Tweaked Passes list to show DeepSpace ones at the top
\n* Tweaked RadarView to display sun/moon positions correctly
</string>
<!-- Radar screen -->
@@ -181,6 +181,7 @@
<string name="prefs_other_switch_update">Enable automatic data update</string>
<string name="prefs_other_switch_sweep">Enable radar sweep animation</string>
<string name="prefs_other_switch_sensors">Use sensors to rotate radar view</string>
<string name="prefs_other_switch_night_mode">Enable red night mode filter</string>
<string name="prefs_outro_title">I would like to say thanks to</string>
<string name="prefs_outro_thanks" translatable="false">
@@ -1,4 +1,4 @@
* Added Turkish translation, by Emre Can Akdaş (TA3ECR)
* Added DeepSpace passes filter option to the dialog
* Fixed the radar blip disappearing while eclipsed
* Fixed (hopefully) the refresh indicator being stuck
* Added fixes for Chinese translation, by Mubi-Baihua (#216)
* Added zipped data sources handling to DatabaseRepo
* Tweaked Passes list to show DeepSpace ones at the top
* Tweaked RadarView to display sun/moon positions correctly
@@ -1,4 +1,4 @@
* Added Turkish translation, by Emre Can Akdaş (TA3ECR)
* Added DeepSpace passes filter option to the dialog
* Fixed the radar blip disappearing while eclipsed
* Fixed (hopefully) the refresh indicator being stuck
* Added fixes for Chinese translation, by Mubi-Baihua (#216)
* Added zipped data sources handling to DatabaseRepo
* Tweaked Passes list to show DeepSpace ones at the top
* Tweaked RadarView to display sun/moon positions correctly
@@ -0,0 +1,152 @@
/*
* 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.feature.map
import android.graphics.Canvas
import android.graphics.Color
import android.graphics.Paint
import android.graphics.RectF
import org.osmdroid.views.MapView
import org.osmdroid.views.overlay.Overlay
import kotlin.math.cos
import kotlin.math.sin
/**
* Custom osmdroid overlay that shades the night side of the globe.
*
* Works entirely in screen-pixel space: for each vertical strip on screen it
* asks osmdroid for the geographic coordinate, then tests whether that point is
* in the night half-sphere relative to the sub-solar point. Because the
* computation happens during draw() the result is always correct regardless
* of zoom level or map scroll position — no polygon winding issues possible.
*
* A point (latRad, lonRad) is in night when the angle to the sub-solar point
* exceeds 90°, i.e. the dot product of the two unit vectors is negative:
* dot = sin(lat)*sin(sunLat) + cos(lat)*cos(sunLat)*cos(lon - sunLon) < 0
*
* Performance: we sample one column per [stepPx] pixels (default 4) and draw
* filled vertical rectangles. On a 1080-wide screen this means ~270 trig
* evaluations per row, which is imperceptible.
*/
class MapNightOverlay : Overlay() {
/** Sub-solar latitude in degrees. */
var sunLatDeg: Double = 0.0
/** Sub-solar longitude in degrees. */
var sunLonDeg: Double = 0.0
private val nightPaint = Paint(Paint.ANTI_ALIAS_FLAG).apply {
style = Paint.Style.FILL
color = Color.argb(75, 0, 0, 0)
}
private val rect = RectF()
override fun draw(canvas: Canvas, mapView: MapView, shadow: Boolean) {
if (shadow) return
val proj = mapView.projection
val sunLatRad = Math.toRadians(sunLatDeg)
val sunLonRad = Math.toRadians(sunLonDeg)
val sinSunLat = sin(sunLatRad)
val cosSunLat = cos(sunLatRad)
val w = mapView.width
val h = mapView.height
val stepPx = 4 // sample every N pixels — balance quality vs CPU
// We scan column by column. For each column we determine the longitude,
// then find the latitude range that is in night and shade it.
// Since longitude is constant along a vertical strip and the day/night
// boundary at a given longitude is at most two latitudes, we can do a
// scan-line fill efficiently.
var x = 0
while (x < w) {
// Get the geographic coordinate at the top and bottom of this column.
val geoTop = proj.fromPixels(x, 0) ?: run { x += stepPx; continue }
val geoBot = proj.fromPixels(x, h - 1) ?: run { x += stepPx; continue }
val lonRad = Math.toRadians(geoTop.longitude)
val cosLonDiff = cos(lonRad - sunLonRad)
// Top pixel geographic lat
val latTopRad = Math.toRadians(geoTop.latitude)
// Bottom pixel geographic lat (osmdroid: y=0 is top of screen, higher y = lower lat)
val latBotRad = Math.toRadians(geoBot.latitude)
// dot(sunVec, pointVec) < 0 → night
// dot = sin(lat)*sinSunLat + cos(lat)*cosSunLat*cosLonDiff
val dotTop = sin(latTopRad) * sinSunLat + cos(latTopRad) * cosSunLat * cosLonDiff
val dotBot = sin(latBotRad) * sinSunLat + cos(latBotRad) * cosSunLat * cosLonDiff
when {
dotTop < 0 && dotBot < 0 -> {
// Entire column is night — shade from top to bottom
rect.set(x.toFloat(), 0f, (x + stepPx).toFloat(), h.toFloat())
canvas.drawRect(rect, nightPaint)
}
dotTop >= 0 && dotBot >= 0 -> {
// Entire column is day — nothing to draw
}
else -> {
// Terminator crosses this column — find the crossing pixel by binary search
val crossY = findCrossingY(proj, x, 0, h - 1, sinSunLat, cosSunLat, cosLonDiff)
if (dotTop < 0) {
// Night at top, day at bottom
rect.set(x.toFloat(), 0f, (x + stepPx).toFloat(), crossY.toFloat())
canvas.drawRect(rect, nightPaint)
} else {
// Day at top, night at bottom
rect.set(x.toFloat(), crossY.toFloat(), (x + stepPx).toFloat(), h.toFloat())
canvas.drawRect(rect, nightPaint)
}
}
}
x += stepPx
}
}
/**
* Binary-search for the pixel row where the day/night boundary crosses column [x].
* [yTop] is in day, [yBot] is in night (or vice versa).
*/
private fun findCrossingY(
proj: org.osmdroid.views.Projection,
x: Int,
yTop: Int,
yBot: Int,
sinSunLat: Double,
cosSunLat: Double,
cosLonDiff: Double
): Int {
var lo = yTop
var hi = yBot
while (hi - lo > 1) {
val mid = (lo + hi) / 2
val geo = proj.fromPixels(x, mid) ?: return mid
val latRad = Math.toRadians(geo.latitude)
val dot = sin(latRad) * sinSunLat + cos(latRad) * cosSunLat * cosLonDiff
if (dot < 0) hi = mid else lo = mid
}
return (lo + hi) / 2
}
}
@@ -63,6 +63,7 @@ import androidx.lifecycle.viewmodel.compose.viewModel
import com.rtbishop.look4sat.core.domain.predict.GeoPos
import com.rtbishop.look4sat.core.domain.predict.OrbitalObject
import com.rtbishop.look4sat.core.domain.predict.OrbitalPos
import com.rtbishop.look4sat.core.domain.repository.IContainerProvider
import com.rtbishop.look4sat.core.presentation.IconCard
import com.rtbishop.look4sat.core.presentation.NextPassRow
import com.rtbishop.look4sat.core.presentation.R
@@ -83,7 +84,10 @@ private const val OVERLAY_STATION = 0
private const val OVERLAY_TRACK = 1
private const val OVERLAY_FOOTPRINT = 2
private const val OVERLAY_POSITIONS = 3
private const val OVERLAY_COUNT = 4
private const val OVERLAY_TERMINATOR = 4
private const val OVERLAY_SUN = 5
private const val OVERLAY_MOON = 6
private const val OVERLAY_COUNT = 7
private val minLat = MapView.getTileSystem().minLatitude
private val maxLat = MapView.getTileSystem().maxLatitude
@@ -106,12 +110,22 @@ private val textPaint = Paint(Paint.ANTI_ALIAS_FLAG).apply {
setShadowLayer(3f, 3f, 3f, Color.BLACK)
}
private val iconCache = LruCache<String, Drawable>(128)
private val sunIconPaint = Paint(Paint.ANTI_ALIAS_FLAG).apply {
colorFilter =
android.graphics.PorterDuffColorFilter("#FFE082".toColorInt(), android.graphics.PorterDuff.Mode.SRC_IN)
}
private val moonIconPaint = Paint(Paint.ANTI_ALIAS_FLAG).apply {
colorFilter =
android.graphics.PorterDuffColorFilter("#E0E0E0".toColorInt(), android.graphics.PorterDuff.Mode.SRC_IN)
}
@Composable
fun MapDestination() {
val context = LocalContext.current
val container = (context.applicationContext as IContainerProvider).getMainContainer()
val viewModel = viewModel(
modelClass = MapViewModel::class.java,
factory = MapViewModel.Factory
factory = MapViewModel.factory(container)
)
val uiState by viewModel.uiState.collectAsStateWithLifecycle()
val mapView = rememberMapViewWithLifecycle()
@@ -152,6 +166,9 @@ private fun MapScreen(uiState: MapState, onAction: (MapAction) -> Unit, mapView:
uiState.track?.let { setSatelliteTrack(it, view) }
uiState.footprint?.let { setFootprint(it, view) }
uiState.positions?.let { setPositions(it, view) { item -> onAction(MapAction.SelectItem(item)) } }
setTerminator(uiState.sunLatDeg, uiState.sunLonDeg, view)
setSubSolarPoint(uiState.sunLatDeg, uiState.sunLonDeg, view)
setMoonPosition(uiState.moonLatDeg, uiState.moonLonDeg, view)
view.invalidate()
}
uiState.mapData?.let { mapData ->
@@ -365,14 +382,12 @@ private var footprintPoints: ArrayList<GeoPoint>? = null
private fun setFootprint(orbitalPos: OrbitalPos, mapView: MapView) {
try {
val rangeCircle = orbitalPos.getRangeCircle()
// Lazily initialize the reusable point list and polyline
var pts = footprintPoints
if (pts == null || pts.size != rangeCircle.size) {
pts = ArrayList(rangeCircle.size)
for (gp in rangeCircle) pts.add(GeoPoint(gp.latitude, gp.longitude))
footprintPoints = pts
} else {
// Update coordinates in-place — zero allocations
for (i in rangeCircle.indices) {
pts[i].latitude = rangeCircle[i].latitude
pts[i].longitude = rangeCircle[i].longitude
@@ -388,6 +403,83 @@ private fun setFootprint(orbitalPos: OrbitalPos, mapView: MapView) {
println(e)
}
}
/**
* Update the NightOverlay with the current sub-solar position.
* The overlay is created once and kept in OVERLAY_TERMINATOR; only its
* sunLatDeg/sunLonDeg fields are updated each tick so osmdroid redraws it.
*/
private fun setTerminator(sunLatDeg: Double, sunLonDeg: Double, mapView: MapView) {
try {
val overlay = mapView.overlays[OVERLAY_TERMINATOR]
if (overlay is MapNightOverlay) {
overlay.sunLatDeg = sunLatDeg
overlay.sunLonDeg = sunLonDeg
} else {
mapView.overlays[OVERLAY_TERMINATOR] = MapNightOverlay().apply {
this.sunLatDeg = sunLatDeg
this.sunLonDeg = sunLonDeg
}
}
} catch (e: Exception) {
println(e)
}
}
/** Place an ic_sun icon marker at the sub-solar point. */
private fun setSubSolarPoint(sunLatDeg: Double, sunLonDeg: Double, mapView: MapView) {
try {
val overlay = mapView.overlays[OVERLAY_SUN]
val sunPos = GeoPoint(sunLatDeg, sunLonDeg)
if (overlay is Marker) {
overlay.position = sunPos
} else {
val iconSize = 48
val bmp = createBitmap(iconSize, iconSize)
ContextCompat.getDrawable(mapView.context, R.drawable.ic_sun)?.apply {
setBounds(0, 0, iconSize, iconSize)
colorFilter = sunIconPaint.colorFilter
draw(Canvas(bmp))
}
mapView.overlays[OVERLAY_SUN] = Marker(mapView).apply {
setInfoWindow(null)
setAnchor(Marker.ANCHOR_CENTER, Marker.ANCHOR_CENTER)
icon = bmp.toDrawable(mapView.context.resources)
position = sunPos
}
}
} catch (e: Exception) {
println(e)
}
}
/** Place an ic_moon icon marker at the sub-lunar point. */
private fun setMoonPosition(moonLatDeg: Double, moonLonDeg: Double, mapView: MapView) {
try {
val overlay = mapView.overlays[OVERLAY_MOON]
val moonPos = GeoPoint(moonLatDeg, moonLonDeg)
if (overlay is Marker) {
overlay.position = moonPos
} else {
val iconSize = 48
val bmp = createBitmap(iconSize, iconSize)
val c = Canvas(bmp)
ContextCompat.getDrawable(mapView.context, R.drawable.ic_moon)?.apply {
setBounds(0, 0, iconSize, iconSize)
colorFilter = moonIconPaint.colorFilter
draw(c)
}
mapView.overlays[OVERLAY_MOON] = Marker(mapView).apply {
setInfoWindow(null)
setAnchor(Marker.ANCHOR_CENTER, Marker.ANCHOR_CENTER)
icon = bmp.toDrawable(mapView.context.resources)
position = moonPos
}
}
} catch (e: Exception) {
println(e)
}
}
// endregion
// region MapView lifecycle
@@ -30,7 +30,11 @@ data class MapState(
val orbitalPass: OrbitalPass,
val track: List<List<GeoPos>>? = null,
val footprint: OrbitalPos? = null,
val positions: Map<OrbitalObject, GeoPos>? = null
val positions: Map<OrbitalObject, GeoPos>? = null,
val sunLatDeg: Double = 0.0,
val sunLonDeg: Double = 0.0,
val moonLatDeg: Double = 0.0,
val moonLonDeg: Double = 0.0
)
sealed interface MapAction {
@@ -18,15 +18,15 @@
package com.rtbishop.look4sat.feature.map
import androidx.lifecycle.ViewModel
import androidx.lifecycle.ViewModelProvider
import androidx.lifecycle.viewModelScope
import androidx.lifecycle.viewmodel.initializer
import androidx.lifecycle.viewmodel.viewModelFactory
import com.rtbishop.look4sat.core.domain.predict.CelestialComputer
import com.rtbishop.look4sat.core.domain.predict.GeoPos
import com.rtbishop.look4sat.core.domain.predict.OrbitalObject
import com.rtbishop.look4sat.core.domain.predict.OrbitalPass
import com.rtbishop.look4sat.core.domain.predict.OrbitalPos
import com.rtbishop.look4sat.core.domain.repository.IContainerProvider
import com.rtbishop.look4sat.core.domain.repository.IMainContainer
import com.rtbishop.look4sat.core.domain.repository.ISatelliteRepo
import com.rtbishop.look4sat.core.domain.repository.ISettingsRepo
import com.rtbishop.look4sat.core.domain.utility.clipLat
@@ -49,8 +49,10 @@ import kotlinx.coroutines.isActive
import kotlinx.coroutines.launch
import java.util.Date
class MapViewModel(private val satelliteRepo: ISatelliteRepo, private val settingsRepo: ISettingsRepo) :
ViewModel() {
class MapViewModel(
private val satelliteRepo: ISatelliteRepo,
private val settingsRepo: ISettingsRepo
) : ViewModel() {
private val stationPos = settingsRepo.stationPosition.value
private val defaultPass = getDefaultPass()
@@ -177,10 +179,12 @@ class MapViewModel(private val satelliteRepo: ISatelliteRepo, private val settin
}
}
// 2. Derive footprint and info data from the already-computed selected position
// 2. Derive footprint, info data, sun and moon position from already-computed state
val satPos = selectedSatPos ?: satelliteRepo.getPosition(selected, pos, date.time)
val footprint = satPos
val mapData = buildMapData(selected, satPos, date)
val sunPos = CelestialComputer.getSunPosition(stationPos, date.time)
val moonPos = CelestialComputer.getMoonPosition(stationPos, date.time)
// 3. Single atomic state update — one recomposition per cycle
_uiState.update {
@@ -188,7 +192,11 @@ class MapViewModel(private val satelliteRepo: ISatelliteRepo, private val settin
positions = positionsMap,
footprint = footprint,
mapData = mapData.first,
orbitalPass = mapData.second
orbitalPass = mapData.second,
sunLatDeg = sunPos.latitude,
sunLonDeg = sunPos.longitude,
moonLatDeg = moonPos.declination, // sub-lunar latitude = declination
moonLonDeg = if (moonPos.gha <= 180.0) -moonPos.gha else 360.0 - moonPos.gha
)
}
}
@@ -286,11 +294,12 @@ class MapViewModel(private val satelliteRepo: ISatelliteRepo, private val settin
/** Number of parallel chunks for satellite position computation */
private const val PARALLEL_CHUNKS = 4
val Factory: ViewModelProvider.Factory = viewModelFactory {
val applicationKey = ViewModelProvider.AndroidViewModelFactory.APPLICATION_KEY
fun factory(container: IMainContainer) = viewModelFactory {
initializer {
val container = (this[applicationKey] as IContainerProvider).getMainContainer()
MapViewModel(container.satelliteRepo, container.settingsRepo)
MapViewModel(
satelliteRepo = container.satelliteRepo,
settingsRepo = container.settingsRepo
)
}
}
}
@@ -29,10 +29,8 @@ import androidx.compose.foundation.layout.padding
import androidx.compose.foundation.layout.size
import androidx.compose.foundation.layout.width
import androidx.compose.foundation.lazy.grid.GridCells
import androidx.compose.foundation.lazy.grid.LazyGridState
import androidx.compose.foundation.lazy.grid.LazyVerticalGrid
import androidx.compose.foundation.lazy.grid.items
import androidx.compose.foundation.lazy.grid.rememberLazyGridState
import androidx.compose.material3.ElevatedCard
import androidx.compose.material3.ExperimentalMaterial3Api
import androidx.compose.material3.HorizontalDivider
@@ -47,6 +45,7 @@ import androidx.compose.runtime.Composable
import androidx.compose.runtime.remember
import androidx.compose.ui.Alignment
import androidx.compose.ui.Modifier
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
@@ -60,6 +59,7 @@ import com.rtbishop.look4sat.core.domain.predict.DeepSpaceObject
import com.rtbishop.look4sat.core.domain.predict.NearEarthObject
import com.rtbishop.look4sat.core.domain.predict.OrbitalData
import com.rtbishop.look4sat.core.domain.predict.OrbitalPass
import com.rtbishop.look4sat.core.domain.repository.IContainerProvider
import com.rtbishop.look4sat.core.presentation.EmptyListCard
import com.rtbishop.look4sat.core.presentation.IconCard
import com.rtbishop.look4sat.core.presentation.InfoDialog
@@ -78,9 +78,11 @@ import java.util.TimeZone
@Composable
fun PassesDestination(navigateToRadar: (Int, Long) -> Unit) {
val context = LocalContext.current
val container = (context.applicationContext as IContainerProvider).getMainContainer()
val viewModel = viewModel(
modelClass = PassesViewModel::class.java,
factory = PassesViewModel.Factory
factory = PassesViewModel.factory(container)
)
val uiState = viewModel.uiState.collectAsStateWithLifecycle().value
PassesScreen(uiState, viewModel::onAction, navigateToRadar)
@@ -118,7 +120,6 @@ private fun PassesScreen(
onAction(PassesAction.DismissWhatsNew)
}
}
val gridState = rememberLazyGridState()
ScreenColumn(
topBar = { isVerticalLayout ->
TopBar(
@@ -144,7 +145,7 @@ private fun PassesScreen(
passes = uiState.itemsList,
navigateToRadar = navigateToRadar,
refreshPasses = { onAction(PassesAction.RefreshPasses) },
gridState = gridState
sunTimes = uiState.sunTimes
)
}
}
@@ -157,10 +158,26 @@ private fun PassesList(
passes: List<OrbitalPass>,
navigateToRadar: (Int, Long) -> Unit,
refreshPasses: () -> Unit,
gridState: LazyGridState
sunTimes: Map<String, Pair<String, String>>
) {
val isVerticalLayout = isVerticalLayout()
val refreshState = rememberPullToRefreshState()
val timeZone = remember(isUtc) { if (isUtc) TimeZone.getTimeZone("UTC") else TimeZone.getDefault() }
val sdfDate = remember(isUtc) {
SimpleDateFormat("EEE, dd MMM yyyy", Locale.ENGLISH).also { it.timeZone = timeZone }
}
// Deep Space first, then date-grouped timed passes
val groupedPasses = remember(passes, isUtc) {
val ordered = LinkedHashMap<String, List<OrbitalPass>>()
val deepSpace = passes.filter { it.isDeepSpace }
if (deepSpace.isNotEmpty()) ordered["Deep Space"] = deepSpace
passes.filter { !it.isDeepSpace }
.groupByTo(LinkedHashMap()) { sdfDate.format(Date(it.aosTime)) }
.forEach { (k, v) -> ordered[k] = v }
ordered
}
ElevatedCard(modifier = Modifier.fillMaxSize()) {
PullToRefreshBox(
isRefreshing = isRefreshing,
@@ -179,19 +196,21 @@ private fun PassesList(
if (passes.isEmpty()) {
EmptyListCard(message = stringResource(R.string.pass_empty_list_message))
} else {
LazyVerticalGrid(
state = gridState,
columns = GridCells.Adaptive(320.dp),
modifier = Modifier.fillMaxSize()
) {
items(items = passes, key = { item -> item.catNum + item.aosTime }) { pass ->
PassItem(
pass = pass,
navigateToRadar = navigateToRadar,
modifier = Modifier.animateItem(),
isVerticalLayout = isVerticalLayout,
isUtc = isUtc
)
LazyVerticalGrid(columns = GridCells.Adaptive(320.dp), modifier = Modifier.fillMaxSize()) {
for ((dateLabel, dayPasses) in groupedPasses) {
stickyHeader(key = "header_$dateLabel") {
val (rise, set) = sunTimes[dateLabel] ?: ("--:--" to "--:--")
StickyDateHeader(label = dateLabel, sunriseTime = rise, sunsetTime = set)
}
items(items = dayPasses, key = { item -> item.catNum + item.aosTime }) { pass ->
PassItem(
pass = pass,
navigateToRadar = navigateToRadar,
modifier = Modifier.animateItem(),
isVerticalLayout = isVerticalLayout,
isUtc = isUtc
)
}
}
}
}
@@ -199,6 +218,45 @@ private fun PassesList(
}
}
@Composable
private fun StickyDateHeader(label: String, sunriseTime: String, sunsetTime: String) {
Row(
verticalAlignment = Alignment.CenterVertically,
horizontalArrangement = Arrangement.SpaceBetween,
modifier = Modifier
.fillMaxWidth()
.background(MaterialTheme.colorScheme.surfaceContainerHighest)
.padding(horizontal = 12.dp, vertical = 4.dp)
) {
Text(
text = label,
fontSize = 14.sp,
fontWeight = FontWeight.Normal,
color = MaterialTheme.colorScheme.primary
)
Row(horizontalArrangement = Arrangement.spacedBy(12.dp)) {
Row(verticalAlignment = Alignment.CenterVertically, horizontalArrangement = Arrangement.spacedBy(4.dp)) {
Icon(
painter = painterResource(R.drawable.ic_sun),
contentDescription = null,
tint = MaterialTheme.colorScheme.primary,
modifier = Modifier.size(16.dp)
)
Text(text = sunriseTime, fontSize = 14.sp, color = MaterialTheme.colorScheme.onSurface)
}
Row(verticalAlignment = Alignment.CenterVertically, horizontalArrangement = Arrangement.spacedBy(4.dp)) {
Icon(
painter = painterResource(R.drawable.ic_moon),
contentDescription = null,
tint = MaterialTheme.colorScheme.onSurface,
modifier = Modifier.size(16.dp)
)
Text(text = sunsetTime, fontSize = 14.sp, color = MaterialTheme.colorScheme.onSurface)
}
}
}
}
@Preview(showBackground = true)
@Composable
private fun DeepSpacePassPreview() {
@@ -230,15 +288,15 @@ private fun PassItem(
val timeZone = remember(isUtc) {
if (isUtc) TimeZone.getTimeZone("UTC") else TimeZone.getDefault()
}
val sdfDate = remember(isUtc) {
SimpleDateFormat("EEE dd MMM", Locale.ENGLISH).also { it.timeZone = timeZone }
}
val sdfTime = remember(isUtc) {
SimpleDateFormat("HH:mm:ss", Locale.ENGLISH).also { it.timeZone = timeZone }
}
val aosDateStr = remember(pass.aosTime, isUtc) { sdfDate.format(Date(pass.aosTime)) }
val aosTimeStr = remember(pass.aosTime, isUtc) { sdfTime.format(Date(pass.aosTime)) }
val losTimeStr = remember(pass.losTime, isUtc) { sdfTime.format(Date(pass.losTime)) }
val durationStr = remember(pass.aosTime, pass.losTime) {
val seconds = (pass.losTime - pass.aosTime) / 1000
"${seconds / 60}m ${seconds % 60}s"
}
Column(
modifier = modifier.clickable { navigateToRadar(pass.catNum, pass.aosTime) }
@@ -295,7 +353,7 @@ private fun PassItem(
color = MaterialTheme.colorScheme.onSurface
)
} else {
Text(text = aosDateStr, fontSize = 15.sp, color = MaterialTheme.colorScheme.onSurface)
Text(text = durationStr, fontSize = 15.sp, color = MaterialTheme.colorScheme.onSurface)
}
}
Row(
@@ -32,7 +32,9 @@ data class PassesState(
val showDeepSpace: Boolean = true,
val modes: List<String> = emptyList(),
val itemsList: List<OrbitalPass> = emptyList(),
val shouldSeeWhatsNew: Boolean = false
val shouldSeeWhatsNew: Boolean = false,
// Map of dateLabel -> Pair(sunriseTime, sunsetTime) for each day group
val sunTimes: Map<String, Pair<String, String>> = emptyMap()
)
sealed interface PassesAction {
@@ -18,13 +18,13 @@
package com.rtbishop.look4sat.feature.passes
import androidx.lifecycle.ViewModel
import androidx.lifecycle.ViewModelProvider
import androidx.lifecycle.viewModelScope
import androidx.lifecycle.viewmodel.initializer
import androidx.lifecycle.viewmodel.viewModelFactory
import com.rtbishop.look4sat.core.domain.model.PassesSettings
import com.rtbishop.look4sat.core.domain.predict.CelestialComputer
import com.rtbishop.look4sat.core.domain.predict.OrbitalPass
import com.rtbishop.look4sat.core.domain.repository.IContainerProvider
import com.rtbishop.look4sat.core.domain.repository.IMainContainer
import com.rtbishop.look4sat.core.domain.repository.ISatelliteRepo
import com.rtbishop.look4sat.core.domain.repository.ISettingsRepo
import com.rtbishop.look4sat.core.domain.utility.round
@@ -37,6 +37,10 @@ import kotlinx.coroutines.flow.collectLatest
import kotlinx.coroutines.flow.update
import kotlinx.coroutines.isActive
import kotlinx.coroutines.launch
import java.text.SimpleDateFormat
import java.util.Date
import java.util.Locale
import java.util.TimeZone
class PassesViewModel(
private val satelliteRepo: ISatelliteRepo,
@@ -64,36 +68,45 @@ class PassesViewModel(
_uiState.update { it.copy(isRefreshing = calculating) }
}
}
// Local tick loop — computes pass progress and countdown timer every second
// React to settings changes: update UTC flag and whatsNew
viewModelScope.launch {
settingsRepo.otherSettings.collectLatest { settings ->
_uiState.update { it.copy(isUtc = settings.stateOfUtc, shouldSeeWhatsNew = settings.shouldSeeWhatsNew) }
}
}
// Local tick loop — computes pass progress, countdown timer, and per-day sun times every second
viewModelScope.launch {
var lastSunTimesKey = "" // track when we need to recompute sun times
while (isActive) {
val timeNow = System.currentTimeMillis()
val isUtc = _uiState.value.isUtc
val showDeepSpace = _uiState.value.showDeepSpace
val allPasses = satelliteRepo.passes.value
val filtered = if (showDeepSpace) allPasses else allPasses.filter { !it.isDeepSpace }
val processed = computePassProgress(filtered, timeNow)
val (nextPass, nextTime, isAos) = resolveNextPass(processed, timeNow)
// Recompute per-day sun times only when passes list or UTC setting changes
val sunTimesKey = "${processed.firstOrNull()?.aosTime}-${processed.lastOrNull()?.aosTime}-$isUtc"
val sunTimes = if (sunTimesKey != lastSunTimesKey) {
lastSunTimesKey = sunTimesKey
computeSunTimes(processed, isUtc)
} else {
_uiState.value.sunTimes
}
_uiState.update {
it.copy(
itemsList = processed,
nextPass = nextPass,
nextTime = nextTime,
isNextTimeAos = isAos
isNextTimeAos = isAos,
sunTimes = sunTimes
)
}
delay(1000)
}
}
viewModelScope.launch {
settingsRepo.otherSettings.collectLatest { settings ->
_uiState.update {
it.copy(
isUtc = settings.stateOfUtc,
shouldSeeWhatsNew = settings.shouldSeeWhatsNew
)
}
}
}
}
fun onAction(action: PassesAction) {
@@ -101,18 +114,42 @@ class PassesViewModel(
PassesAction.DismissWhatsNew -> settingsRepo.setWhatsNewDismissed()
is PassesAction.FilterPasses ->
applyFilter(action.hoursAhead, action.minElevation, action.showDeepSpace, _uiState.value.modes)
is PassesAction.FilterRadios ->
applyFilter(_uiState.value.hours, _uiState.value.elevation, _uiState.value.showDeepSpace, action.modes)
PassesAction.RefreshPasses -> refreshPasses()
PassesAction.TogglePassesDialog ->
_uiState.update { it.copy(isPassesDialogShown = !it.isPassesDialogShown) }
PassesAction.ToggleRadiosDialog ->
_uiState.update { it.copy(isRadiosDialogShown = !it.isRadiosDialogShown) }
}
}
// Computes sunrise/sunset strings for each unique calendar day in the pass list, plus today for Deep Space
private fun computeSunTimes(passes: List<OrbitalPass>, isUtc: Boolean): Map<String, Pair<String, String>> {
val stationPos = settingsRepo.stationPosition.value
val tz = if (isUtc) TimeZone.getTimeZone("UTC") else TimeZone.getDefault()
val sdfDate = SimpleDateFormat("EEE, dd MMM yyyy", Locale.ENGLISH).also { it.timeZone = tz }
val sdfTime = SimpleDateFormat("HH:mm", Locale.ENGLISH).also { it.timeZone = tz }
val result = LinkedHashMap<String, Pair<String, String>>()
// Deep Space group always shows today's sun times
if (passes.any { it.isDeepSpace }) {
val riseSet = CelestialComputer.findSunRiseSet(stationPos, System.currentTimeMillis())
val rise = if (riseSet.riseTimeMillis > 0) sdfTime.format(Date(riseSet.riseTimeMillis)) else "--:--"
val set = if (riseSet.setTimeMillis > 0) sdfTime.format(Date(riseSet.setTimeMillis)) else "--:--"
result["Deep Space"] = rise to set
}
for (pass in passes) {
if (pass.isDeepSpace) continue
val label = sdfDate.format(Date(pass.aosTime))
if (label in result) continue
val riseSet = CelestialComputer.findSunRiseSet(stationPos, pass.aosTime)
val rise = if (riseSet.riseTimeMillis > 0) sdfTime.format(Date(riseSet.riseTimeMillis)) else "--:--"
val set = if (riseSet.setTimeMillis > 0) sdfTime.format(Date(riseSet.setTimeMillis)) else "--:--"
result[label] = rise to set
}
return result
}
/** Computes live progress for each pass, filtering out expired ones. */
private fun computePassProgress(passList: List<OrbitalPass>, time: Long): List<OrbitalPass> {
val result = ArrayList<OrbitalPass>(passList.size)
@@ -169,11 +206,12 @@ class PassesViewModel(
}
companion object {
val Factory: ViewModelProvider.Factory = viewModelFactory {
val applicationKey = ViewModelProvider.AndroidViewModelFactory.APPLICATION_KEY
fun factory(container: IMainContainer) = viewModelFactory {
initializer {
val container = (this[applicationKey] as IContainerProvider).getMainContainer()
PassesViewModel(container.satelliteRepo, container.settingsRepo)
PassesViewModel(
satelliteRepo = container.satelliteRepo,
settingsRepo = container.settingsRepo
)
}
}
}
@@ -48,6 +48,7 @@ import androidx.compose.ui.Alignment
import androidx.compose.ui.Modifier
import androidx.compose.ui.draw.rotate
import androidx.compose.ui.keepScreenOn
import androidx.compose.ui.platform.LocalContext
import androidx.compose.ui.res.painterResource
import androidx.compose.ui.res.stringResource
import androidx.compose.ui.semantics.contentDescription
@@ -61,6 +62,7 @@ import androidx.lifecycle.compose.collectAsStateWithLifecycle
import androidx.lifecycle.viewmodel.compose.viewModel
import com.rtbishop.look4sat.core.domain.model.SatRadio
import com.rtbishop.look4sat.core.domain.predict.OrbitalPos
import com.rtbishop.look4sat.core.domain.repository.IContainerProvider
import com.rtbishop.look4sat.core.domain.utility.toDegrees
import com.rtbishop.look4sat.core.presentation.EmptyListCard
import com.rtbishop.look4sat.core.presentation.IconCard
@@ -81,10 +83,12 @@ fun RadarDestination(
navigateUp: () -> Unit,
navigateToRadioControl: (Int, Long) -> Unit = { _, _ -> }
) {
val context = LocalContext.current
val container = (context.applicationContext as IContainerProvider).getMainContainer()
val viewModel = viewModel(
modelClass = RadarViewModel::class.java,
key = "$catNum-$aosTime",
factory = RadarViewModel.factory(catNum, aosTime)
factory = RadarViewModel.factory(catNum, aosTime, container)
)
val uiState by viewModel.uiState.collectAsStateWithLifecycle()
RadarScreen(uiState, viewModel::onAction, navigateUp, navigateToRadioControl)
@@ -180,7 +184,9 @@ private fun RadarCard(uiState: RadarState, modifier: Modifier = Modifier) {
azimElev = uiState.orientationValues,
shouldShowSweep = uiState.shouldShowSweep,
shouldUseCompass = uiState.shouldUseCompass,
modifier = Modifier.align(Alignment.Center)
modifier = Modifier.align(Alignment.Center),
sunPosition = uiState.sunPosition,
moonPosition = uiState.moonPosition,
)
PositionOverlay(position)
}
@@ -18,6 +18,7 @@
package com.rtbishop.look4sat.feature.radar
import com.rtbishop.look4sat.core.domain.model.SatRadio
import com.rtbishop.look4sat.core.domain.predict.CelestialComputer
import com.rtbishop.look4sat.core.domain.predict.OrbitalPass
import com.rtbishop.look4sat.core.domain.predict.OrbitalPos
@@ -32,6 +33,8 @@ data class RadarState(
val satTrack: List<OrbitalPos> = emptyList(),
val shouldShowSweep: Boolean = false,
val shouldUseCompass: Boolean = false,
val sunPosition: CelestialComputer.SunPosition? = null,
val moonPosition: CelestialComputer.MoonPosition? = null,
val transmitters: List<SatRadio> = emptyList(),
val selectedTransmitterUuid: String? = null,
val selectedFrequency: Long? = null
@@ -32,6 +32,7 @@ import androidx.compose.runtime.remember
import androidx.compose.runtime.setValue
import androidx.compose.ui.Modifier
import androidx.compose.ui.geometry.Offset
import androidx.compose.ui.geometry.Size
import androidx.compose.ui.graphics.Color
import androidx.compose.ui.graphics.Path
import androidx.compose.ui.graphics.PathEffect
@@ -44,14 +45,19 @@ import androidx.compose.ui.graphics.drawscope.Fill
import androidx.compose.ui.graphics.drawscope.Stroke
import androidx.compose.ui.graphics.drawscope.rotate
import androidx.compose.ui.graphics.drawscope.translate
import androidx.compose.ui.graphics.drawscope.withTransform
import androidx.compose.ui.graphics.painter.Painter
import androidx.compose.ui.res.painterResource
import androidx.compose.ui.text.TextMeasurer
import androidx.compose.ui.text.TextStyle
import androidx.compose.ui.text.drawText
import androidx.compose.ui.text.rememberTextMeasurer
import androidx.compose.ui.unit.sp
import com.rtbishop.look4sat.core.domain.predict.CelestialComputer
import com.rtbishop.look4sat.core.domain.predict.OrbitalPos
import com.rtbishop.look4sat.core.domain.predict.PI_2
import com.rtbishop.look4sat.core.domain.utility.toRadians
import com.rtbishop.look4sat.core.presentation.R
import kotlin.math.cos
import kotlin.math.sin
@@ -66,11 +72,14 @@ fun RadarViewCompose(
azimElev: Pair<Float, Float>,
shouldShowSweep: Boolean,
shouldUseCompass: Boolean,
modifier: Modifier = Modifier
modifier: Modifier = Modifier,
sunPosition: CelestialComputer.SunPosition? = null,
moonPosition: CelestialComputer.MoonPosition? = null,
) {
val radarColor = MaterialTheme.colorScheme.secondary
val trackColor = MaterialTheme.colorScheme.primary
val aimColor = MaterialTheme.colorScheme.error
val primaryColor = MaterialTheme.colorScheme.primary
val radarColor = MaterialTheme.colorScheme.secondary
val sunColor = MaterialTheme.colorScheme.primary
val animTransition = rememberInfiniteTransition(label = "animScale")
val animScale by animTransition.animateFloat(
initialValue = 16f,
@@ -79,6 +88,8 @@ fun RadarViewCompose(
label = "animScale"
)
val measurer = rememberTextMeasurer()
val sunPainter = painterResource(R.drawable.ic_sun)
val moonPainter = painterResource(R.drawable.ic_moon)
var sweepDegrees by remember { mutableFloatStateOf(0f) }
var cachedRadius by remember { mutableFloatStateOf(0f) }
var trackPath by remember { mutableStateOf(Path()) }
@@ -92,13 +103,26 @@ fun RadarViewCompose(
cachedRadius = radius
}
rotate(if (shouldUseCompass) -azimElev.first else 0f) {
if (shouldShowSweep) drawSweep(center, sweepDegrees, radius, trackColor)
if (shouldShowSweep) drawSweep(center, sweepDegrees, radius, primaryColor)
drawRadar(radius, radarColor)
drawElevationLabels(radius, trackColor, measurer)
drawElevationLabels(radius, primaryColor, measurer)
translate(center.x, center.y) {
drawTrack(trackPath, trackEffect, aimColor, trackColor)
drawTrack(trackPath, trackEffect, aimColor, primaryColor)
if (item.elevation > 0) {
drawPosition(item, radius, animScale, trackColor)
drawPosition(item, radius, animScale, primaryColor)
}
sunPosition?.let { sun ->
if (sun.elevation > 0) drawBodyIcon(sun.azimuth, sun.elevation, radius, sunColor, sunPainter, 52f)
}
moonPosition?.let { moon ->
if (moon.elevation > 0) drawBodyIcon(
moon.azimuth,
moon.elevation,
radius,
radarColor,
moonPainter,
52f
)
}
if (shouldUseCompass) drawAim(azimElev.first, azimElev.second, radius, aimColor)
}
@@ -180,6 +204,27 @@ private fun createTrackEffect(trackPath: Path): PathEffect {
return PathEffect.stampedPathEffect(shape, trackLength / 2f, trackLength / 4f, StampedPathEffectStyle.Rotate)
}
private fun DrawScope.drawBodyIcon(
azimDeg: Double,
elevDeg: Double,
radius: Float,
color: Color,
painter: Painter,
iconSize: Float
) {
val azimRad = azimDeg.toRadians()
val elevRad = elevDeg.toRadians()
val pos = sph2Cart(azimRad, elevRad, radius.toDouble())
val half = iconSize / 2f
withTransform({
translate(pos.x - half, pos.y - half)
}) {
with(painter) {
draw(Size(iconSize, iconSize), colorFilter = androidx.compose.ui.graphics.ColorFilter.tint(color))
}
}
}
private fun sph2Cart(azim: Double, elev: Double, r: Double): Offset {
val radius = r * (PI_2 - elev) / PI_2
return Offset(
@@ -18,14 +18,14 @@
package com.rtbishop.look4sat.feature.radar
import androidx.lifecycle.ViewModel
import androidx.lifecycle.ViewModelProvider
import androidx.lifecycle.viewModelScope
import androidx.lifecycle.viewmodel.initializer
import androidx.lifecycle.viewmodel.viewModelFactory
import com.rtbishop.look4sat.core.domain.model.SatRadio
import com.rtbishop.look4sat.core.domain.predict.CelestialComputer
import com.rtbishop.look4sat.core.domain.predict.OrbitalObject
import com.rtbishop.look4sat.core.domain.predict.OrbitalPos
import com.rtbishop.look4sat.core.domain.repository.IContainerProvider
import com.rtbishop.look4sat.core.domain.repository.IMainContainer
import com.rtbishop.look4sat.core.domain.repository.IReporter
import com.rtbishop.look4sat.core.domain.repository.ISatelliteRepo
import com.rtbishop.look4sat.core.domain.repository.ISensorsRepo
@@ -101,9 +101,20 @@ class RadarViewModel(
while (isActive) {
val timeNow = System.currentTimeMillis()
val pos = satelliteRepo.getPosition(satPass.orbitalObject, stationPos, timeNow)
val sunPos = CelestialComputer.getSunPosition(stationPos, timeNow)
val moonPos = CelestialComputer.getMoonPosition(stationPos, timeNow)
val (time, isAos) = computeTimer(satPass.isDeepSpace, satPass.aosTime, satPass.losTime, timeNow)
val isLos = !satPass.isDeepSpace && timeNow > satPass.losTime
_uiState.update { it.copy(currentTime = time, isTimeAos = isAos, isLos = isLos, orbitalPos = pos) }
_uiState.update {
it.copy(
currentTime = time,
isTimeAos = isAos,
isLos = isLos,
orbitalPos = pos,
sunPosition = sunPos,
moonPosition = moonPos
)
}
processRadios(transmitters, satPass.orbitalObject, timeNow)
sendPassData(pos)
delay(1000)
@@ -202,10 +213,8 @@ class RadarViewModel(
}
companion object {
fun factory(catNum: Int, aosTime: Long): ViewModelProvider.Factory = viewModelFactory {
val applicationKey = ViewModelProvider.AndroidViewModelFactory.APPLICATION_KEY
fun factory(catNum: Int, aosTime: Long, container: IMainContainer) = viewModelFactory {
initializer {
val container = (this[applicationKey] as IContainerProvider).getMainContainer()
RadarViewModel(
catNum = catNum,
aosTime = aosTime,
@@ -45,6 +45,7 @@ import androidx.compose.ui.Modifier
import androidx.compose.ui.draw.clip
import androidx.compose.ui.graphics.Color
import androidx.compose.ui.keepScreenOn
import androidx.compose.ui.platform.LocalContext
import androidx.compose.ui.text.font.FontWeight
import androidx.compose.ui.text.style.TextAlign
import androidx.compose.ui.unit.dp
@@ -52,6 +53,7 @@ import androidx.compose.ui.unit.sp
import androidx.lifecycle.compose.collectAsStateWithLifecycle
import androidx.lifecycle.viewmodel.compose.viewModel
import com.rtbishop.look4sat.core.domain.model.SatRadio
import com.rtbishop.look4sat.core.domain.repository.IContainerProvider
import com.rtbishop.look4sat.core.presentation.CardButton
import com.rtbishop.look4sat.core.presentation.IconCard
import com.rtbishop.look4sat.core.presentation.NextPassRow
@@ -65,10 +67,12 @@ import java.util.Locale
@Composable
fun RadioControlDestination(catNum: Int = 0, aosTime: Long = 0L, navigateUp: () -> Unit) {
val context = LocalContext.current
val container = (context.applicationContext as IContainerProvider).getMainContainer()
val viewModel = viewModel(
modelClass = RadioControlViewModel::class.java,
key = "$catNum-$aosTime",
factory = RadioControlViewModel.factory(catNum, aosTime)
factory = RadioControlViewModel.factory(catNum, aosTime, container)
)
val uiState by viewModel.uiState.collectAsStateWithLifecycle()
RadioControlScreen(uiState, viewModel::onAction, navigateUp)
@@ -18,13 +18,12 @@
package com.rtbishop.look4sat.feature.radiocontrol
import androidx.lifecycle.ViewModel
import androidx.lifecycle.ViewModelProvider
import androidx.lifecycle.viewModelScope
import androidx.lifecycle.viewmodel.initializer
import androidx.lifecycle.viewmodel.viewModelFactory
import com.rtbishop.look4sat.core.domain.model.SatRadio
import com.rtbishop.look4sat.core.domain.predict.OrbitalPass
import com.rtbishop.look4sat.core.domain.repository.IContainerProvider
import com.rtbishop.look4sat.core.domain.repository.IMainContainer
import com.rtbishop.look4sat.core.domain.repository.IRadioTrackingService
import com.rtbishop.look4sat.core.domain.repository.ISatelliteRepo
import com.rtbishop.look4sat.core.domain.repository.ISettingsRepo
@@ -173,10 +172,12 @@ class RadioControlViewModel(
companion object {
val CTCSS_TONES = listOf(67.0, 69.3, 71.9, 74.4, 77.0, 79.7, 82.5, 85.4, 88.5, 91.5,
val CTCSS_TONES = listOf(
67.0, 69.3, 71.9, 74.4, 77.0, 79.7, 82.5, 85.4, 88.5, 91.5,
94.8, 97.4, 100.0, 103.5, 107.2, 110.9, 114.8, 118.8, 123.0, 127.3, 131.8, 136.5,
141.3, 146.2, 151.4, 156.7, 162.2, 167.9, 173.8, 179.9, 186.2, 192.8, 203.5, 210.7,
218.1, 225.7, 233.6, 241.8, 250.3)
218.1, 225.7, 233.6, 241.8, 250.3
)
fun formatFrequency(frequencyHz: Long): String {
if (frequencyHz <= 0) return "---"
@@ -186,10 +187,8 @@ class RadioControlViewModel(
return String.format(Locale.ENGLISH, "%d.%03d.%03d", mhz, khz, hz)
}
fun factory(catNum: Int, aosTime: Long): ViewModelProvider.Factory = viewModelFactory {
val applicationKey = ViewModelProvider.AndroidViewModelFactory.APPLICATION_KEY
fun factory(catNum: Int, aosTime: Long, container: IMainContainer) = viewModelFactory {
initializer {
val container = (this[applicationKey] as IContainerProvider).getMainContainer()
RadioControlViewModel(
catNum = catNum,
aosTime = aosTime,
@@ -44,6 +44,7 @@ import androidx.compose.runtime.saveable.rememberSaveable
import androidx.compose.ui.Alignment
import androidx.compose.ui.Modifier
import androidx.compose.ui.graphics.SolidColor
import androidx.compose.ui.platform.LocalContext
import androidx.compose.ui.res.painterResource
import androidx.compose.ui.res.stringResource
import androidx.compose.ui.semantics.contentDescription
@@ -57,6 +58,7 @@ import androidx.compose.ui.unit.sp
import androidx.lifecycle.compose.collectAsStateWithLifecycle
import androidx.lifecycle.viewmodel.compose.viewModel
import com.rtbishop.look4sat.core.domain.model.SatItem
import com.rtbishop.look4sat.core.domain.repository.IContainerProvider
import com.rtbishop.look4sat.core.presentation.CardLoadingIndicator
import com.rtbishop.look4sat.core.presentation.EmptyListCard
import com.rtbishop.look4sat.core.presentation.IconCard
@@ -71,9 +73,11 @@ import com.rtbishop.look4sat.core.presentation.layoutPadding
@Composable
fun SatellitesDestination(navigateUp: () -> Unit) {
val context = LocalContext.current
val container = (context.applicationContext as IContainerProvider).getMainContainer()
val viewModel = viewModel(
modelClass = SatellitesViewModel::class.java,
factory = SatellitesViewModel.Factory
factory = SatellitesViewModel.factory(container)
)
val uiState = viewModel.uiState.collectAsStateWithLifecycle().value
SatellitesScreen(uiState, viewModel::onAction, navigateUp)
@@ -18,11 +18,10 @@
package com.rtbishop.look4sat.feature.satellites
import androidx.lifecycle.ViewModel
import androidx.lifecycle.ViewModelProvider
import androidx.lifecycle.viewModelScope
import androidx.lifecycle.viewmodel.initializer
import androidx.lifecycle.viewmodel.viewModelFactory
import com.rtbishop.look4sat.core.domain.repository.IContainerProvider
import com.rtbishop.look4sat.core.domain.repository.IMainContainer
import com.rtbishop.look4sat.core.domain.repository.ISelectionRepo
import com.rtbishop.look4sat.core.domain.repository.ISettingsRepo
import kotlinx.coroutines.flow.MutableStateFlow
@@ -97,11 +96,12 @@ class SatellitesViewModel(
}
companion object {
val Factory: ViewModelProvider.Factory = viewModelFactory {
val applicationKey = ViewModelProvider.AndroidViewModelFactory.APPLICATION_KEY
fun factory(container: IMainContainer) = viewModelFactory {
initializer {
val container = (this[applicationKey] as IContainerProvider).getMainContainer()
SatellitesViewModel(container.selectionRepo, container.settingsRepo)
SatellitesViewModel(
selectionRepo = container.selectionRepo,
settingsRepo = container.settingsRepo
)
}
}
}
@@ -51,6 +51,7 @@ 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.platform.LocalContext
import androidx.compose.ui.platform.LocalUriHandler
import androidx.compose.ui.res.painterResource
import androidx.compose.ui.res.stringResource
@@ -62,6 +63,7 @@ import androidx.lifecycle.compose.collectAsStateWithLifecycle
import androidx.lifecycle.viewmodel.compose.viewModel
import com.rtbishop.look4sat.core.domain.model.OtherSettings
import com.rtbishop.look4sat.core.domain.predict.GeoPos
import com.rtbishop.look4sat.core.domain.repository.IContainerProvider
import com.rtbishop.look4sat.core.presentation.CardButton
import com.rtbishop.look4sat.core.presentation.IconCard
import com.rtbishop.look4sat.core.presentation.MainTheme
@@ -77,9 +79,11 @@ import java.util.Locale
@Composable
fun SettingsDestination() {
val context = LocalContext.current
val container = (context.applicationContext as IContainerProvider).getMainContainer()
val viewModel = viewModel(
modelClass = SettingsViewModel::class.java,
factory = SettingsViewModel.Factory
factory = SettingsViewModel.factory(container)
)
val uiState by viewModel.uiState.collectAsStateWithLifecycle()
SettingsScreen(uiState, viewModel::onAction)
@@ -422,6 +426,7 @@ private fun OtherCardPreview() = MainTheme {
stateOfSweep = true,
stateOfUtc = false,
stateOfLightTheme = false,
stateOfNightMode = false,
shouldSeeWarning = false,
shouldSeeWhatsNew = false
)
@@ -433,7 +438,7 @@ private fun OtherCard(settings: OtherSettings, onAction: (SettingsAction) -> Uni
ElevatedCard(
modifier = Modifier
.fillMaxWidth()
.height(220.dp)
.height(268.dp)
) {
Column(modifier = Modifier.padding(horizontal = 8.dp, vertical = 4.dp)) {
Text(
@@ -452,6 +457,9 @@ private fun OtherCard(settings: OtherSettings, onAction: (SettingsAction) -> Uni
SwitchRow(R.string.prefs_other_switch_sensors, settings.stateOfSensors) {
onAction(SettingsAction.ToggleSensor(it))
}
SwitchRow(R.string.prefs_other_switch_night_mode, settings.stateOfNightMode) {
onAction(SettingsAction.ToggleNightMode(it))
}
}
}
}
@@ -502,7 +510,7 @@ private fun CardCredits(modifier: Modifier = Modifier) {
ElevatedCard(
modifier = modifier
.fillMaxWidth()
.height(220.dp)
.height(268.dp)
) {
Column(
verticalArrangement = Arrangement.SpaceBetween,
@@ -60,6 +60,7 @@ sealed interface SettingsAction {
data class ToggleSweep(val value: Boolean) : SettingsAction
data class ToggleSensor(val value: Boolean) : SettingsAction
data class ToggleLightTheme(val value: Boolean) : SettingsAction
data class ToggleNightMode(val value: Boolean) : SettingsAction
// Remote control
data class UpdateRC(val settings: RCSettings) : SettingsAction
@@ -18,12 +18,11 @@
package com.rtbishop.look4sat.feature.settings
import androidx.lifecycle.ViewModel
import androidx.lifecycle.ViewModelProvider
import androidx.lifecycle.viewModelScope
import androidx.lifecycle.viewmodel.initializer
import androidx.lifecycle.viewmodel.viewModelFactory
import com.rtbishop.look4sat.core.domain.repository.IContainerProvider
import com.rtbishop.look4sat.core.domain.repository.IDatabaseRepo
import com.rtbishop.look4sat.core.domain.repository.IMainContainer
import com.rtbishop.look4sat.core.domain.repository.ISettingsRepo
import com.rtbishop.look4sat.core.domain.usecase.IShowToast
import com.rtbishop.look4sat.core.presentation.R
@@ -121,6 +120,7 @@ class SettingsViewModel(
is SettingsAction.ToggleSweep -> settingsRepo.updateOtherSettings { it.copy(stateOfSweep = action.value) }
is SettingsAction.ToggleSensor -> settingsRepo.updateOtherSettings { it.copy(stateOfSensors = action.value) }
is SettingsAction.ToggleLightTheme -> settingsRepo.updateOtherSettings { it.copy(stateOfLightTheme = action.value) }
is SettingsAction.ToggleNightMode -> settingsRepo.updateOtherSettings { it.copy(stateOfNightMode = action.value) }
// Remote control & data sources
is SettingsAction.UpdateRC -> settingsRepo.updateRCSettings(action.settings)
is SettingsAction.UpdateRadioControl -> settingsRepo.updateRadioControlSettings(action.settings)
@@ -187,14 +187,12 @@ class SettingsViewModel(
// endregion
companion object {
val Factory: ViewModelProvider.Factory = viewModelFactory {
val applicationKey = ViewModelProvider.AndroidViewModelFactory.APPLICATION_KEY
fun factory(container: IMainContainer) = viewModelFactory {
initializer {
val container = (this[applicationKey] as IContainerProvider).getMainContainer()
SettingsViewModel(
container.databaseRepo,
container.settingsRepo,
container.provideShowToast()
databaseRepo = container.databaseRepo,
settingsRepo = container.settingsRepo,
showToast = container.provideShowToast()
)
}
}
+3 -3
View File
@@ -1,8 +1,8 @@
[versions]
#noinspection UnusedVersionCatalogEntry
appVersionCode = "422"
appVersionCode = "431"
#noinspection UnusedVersionCatalogEntry
appVersionName = "4.2.2"
appVersionName = "4.3.1"
#noinspection GradleDependency,UnusedVersionCatalogEntry
compileSdk = "36"
#noinspection UnusedVersionCatalogEntry
@@ -25,7 +25,7 @@ compose-navigation3 = "1.1.1"
google-ksp = "2.3.6"
kotlin = "2.3.20"
kotlin = "2.3.21"
kotlin-coroutines = "1.10.2"
kotlin-serialization = "1.11.0"
+2 -2
View File
@@ -1,7 +1,7 @@
#Sun Mar 22 10:09:53 GMT 2026
#Tue Apr 28 15:46:23 BST 2026
distributionBase=GRADLE_USER_HOME
distributionPath=wrapper/dists
distributionUrl=https\://services.gradle.org/distributions/gradle-9.4.1-bin.zip
distributionUrl=https\://services.gradle.org/distributions/gradle-9.5.0-bin.zip
networkTimeout=10000
validateDistributionUrl=true
zipStoreBase=GRADLE_USER_HOME