Added linear transponder Doppler calculator (#232)
Co-authored-by: atsunatsu <atsunatsu@users.noreply.github.com>
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/*
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* Look4Sat. Amateur radio satellite tracker and pass predictor.
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* Copyright (C) 2019-2026 Arty Bishop and contributors.
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*
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* This program is free software: you can redistribute it and/or modify
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* it under the terms of the GNU General Public License as published by
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* the Free Software Foundation, either version 3 of the License, or
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* (at your option) any later version.
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*/
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package com.rtbishop.look4sat.core.domain.utility
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import com.rtbishop.look4sat.core.domain.model.SatRadio
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import com.rtbishop.look4sat.core.domain.predict.OrbitalPos
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import java.util.Locale
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/**
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* Computes Doppler-corrected reciprocal frequencies for linear transponders.
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*
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* For a linear (passband) transponder, uplink and downlink frequencies are
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* related by a fixed passband offset. When the satellite moves, both are
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* Doppler-shifted. Given one, this computes the other:
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*
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* downlink → uplink: mapDownlinkToUplink (passband) → getUplinkFreq (Doppler)
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* uplink → downlink: mapUplinkToDownlink (passband) → getDownlinkFreq (Doppler)
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*/
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object DopplerFrequencyCalculator {
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/**
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* Given a downlink frequency, compute the Doppler-corrected uplink frequency.
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* Returns null if the transponder is not a linear passband type.
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*/
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fun computeUplinkFromDownlink(
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downlinkHz: Long,
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transponder: SatRadio,
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orbitalPos: OrbitalPos
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): Long? {
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if (!isLinearTransponder(transponder)) return null
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val baseUplink = TransponderMapper.mapDownlinkToUplink(downlinkHz, transponder) ?: return null
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return orbitalPos.getUplinkFreq(baseUplink)
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}
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/**
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* Given a downlink frequency, compute the Doppler-corrected uplink frequency
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* with an offset applied to the downlink (in Hz).
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* Returns null if the transponder is not a linear passband type.
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*
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* The user-entered downlink frequency already includes the offset, so subtract
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* it before mapping the downlink passband position back to the uplink.
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*/
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fun computeUplinkFromDownlinkWithOffset(
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downlinkHz: Long,
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transponder: SatRadio,
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orbitalPos: OrbitalPos,
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offsetHz: Long
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): Long? {
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if (!isLinearTransponder(transponder)) return null
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val baseUplink = TransponderMapper.mapDownlinkToUplink(downlinkHz - offsetHz, transponder) ?: return null
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return orbitalPos.getUplinkFreq(baseUplink)
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}
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/**
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* Given an uplink frequency, compute the Doppler-corrected downlink frequency.
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* Returns null if the transponder is not a linear passband type.
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*/
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fun computeDownlinkFromUplink(
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uplinkHz: Long,
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transponder: SatRadio,
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orbitalPos: OrbitalPos
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): Long? {
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if (!isLinearTransponder(transponder)) return null
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val baseDownlink = TransponderMapper.mapUplinkToDownlink(uplinkHz, transponder) ?: return null
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return orbitalPos.getDownlinkFreq(baseDownlink)
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}
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/**
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* Given an uplink frequency, compute the Doppler-corrected downlink frequency
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* with an offset applied to the downlink (in Hz).
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* Returns null if the transponder is not a linear passband type.
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*/
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fun computeDownlinkFromUplinkWithOffset(
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uplinkHz: Long,
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transponder: SatRadio,
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orbitalPos: OrbitalPos,
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offsetHz: Long
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): Long? {
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if (!isLinearTransponder(transponder)) return null
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val baseDownlink = TransponderMapper.mapUplinkToDownlink(uplinkHz, transponder) ?: return null
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return orbitalPos.getDownlinkFreq(baseDownlink + offsetHz)
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}
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/** True if this transponder supports linear passband mapping. */
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fun isLinearTransponder(transponder: SatRadio): Boolean {
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val upLow = transponder.uplinkLow
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val upHigh = transponder.uplinkHigh
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val downLow = transponder.downlinkLow
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val downHigh = transponder.downlinkHigh
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return upLow != null && upHigh != null && downLow != null && downHigh != null
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&& upLow != upHigh && downLow != downHigh
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}
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/**
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* True for the radio entry that should drive the standalone Calculator page.
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*
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* A frequency range alone is not enough: some non-user-facing or drifting data entries
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* can also have low/high frequencies. The calculator is meant for named linear
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* transponders, e.g. "Linear Transponder", "Linear Transp.", "SSB Transponder".
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*/
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fun isNamedLinearTransponder(transponder: SatRadio): Boolean {
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if (!isLinearTransponder(transponder)) return false
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val info = transponder.info.lowercase(Locale.ENGLISH)
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val modes = listOfNotNull(transponder.downlinkMode, transponder.uplinkMode)
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.joinToString(separator = " ")
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.lowercase(Locale.ENGLISH)
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val hasLinearName = info.contains("linear")
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val hasTransponderName = info.contains("transponder") || info.contains("transp") ||
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info.contains("xponder") || info.contains("xpdr")
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val hasLinearMode = listOf("ssb", "usb", "lsb", "cw").any { modes.contains(it) }
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return (hasLinearName && hasTransponderName) || (hasTransponderName && hasLinearMode)
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}
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}
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+190
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package com.rtbishop.look4sat.core.domain
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import com.rtbishop.look4sat.core.domain.model.SatRadio
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import com.rtbishop.look4sat.core.domain.predict.OrbitalPos
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import com.rtbishop.look4sat.core.domain.utility.DopplerFrequencyCalculator
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import org.junit.Assert.assertEquals
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import org.junit.Assert.assertFalse
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import org.junit.Assert.assertNotNull
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import org.junit.Assert.assertNull
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import org.junit.Assert.assertTrue
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import org.junit.Test
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class DopplerFrequencyCalculatorTest {
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private fun linearTransponder(
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upLow: Long = 145_000_000L,
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upHigh: Long = 145_500_000L,
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downLow: Long = 435_000_000L,
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downHigh: Long? = 435_500_000L,
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inverted: Boolean = false,
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info: String = "Linear Transponder",
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downlinkMode: String? = "USB",
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uplinkMode: String? = "LSB"
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) = SatRadio(
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uuid = "linear", info = info, isAlive = true,
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downlinkLow = downLow, downlinkHigh = downHigh,
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downlinkMode = downlinkMode, uplinkLow = upLow, uplinkHigh = upHigh,
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uplinkMode = uplinkMode, isInverted = inverted, catnum = 12345
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)
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private fun fmTransponder() = SatRadio(
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uuid = "fm", info = "FM Repeater", isAlive = true,
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downlinkLow = 435_600_000L, downlinkHigh = null,
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downlinkMode = "FM", uplinkLow = 145_900_000L, uplinkHigh = null,
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uplinkMode = "FM", isInverted = false, catnum = 99999
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)
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private fun pos(distanceRateKmS: Double = 0.0) = OrbitalPos().apply {
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this.distanceRate = distanceRateKmS
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}
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@Test
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fun isLinearTransponder_returnsTrueForLinear() {
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assertTrue(DopplerFrequencyCalculator.isLinearTransponder(linearTransponder()))
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}
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@Test
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fun isLinearTransponder_returnsFalseForFM() {
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assertFalse(DopplerFrequencyCalculator.isLinearTransponder(fmTransponder()))
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}
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@Test
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fun isLinearTransponder_returnsFalseForNullDownlinkHigh() {
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val xpdr = linearTransponder(downHigh = null)
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assertFalse(DopplerFrequencyCalculator.isLinearTransponder(xpdr))
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}
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@Test
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fun isNamedLinearTransponder_returnsTrueForLinearTransponderName() {
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assertTrue(DopplerFrequencyCalculator.isNamedLinearTransponder(linearTransponder()))
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}
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@Test
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fun isNamedLinearTransponder_returnsTrueForSsbTransponderName() {
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val xpdr = linearTransponder(info = "Mode V/U SSB Transponder", downlinkMode = "USB", uplinkMode = "LSB")
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assertTrue(DopplerFrequencyCalculator.isNamedLinearTransponder(xpdr))
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}
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@Test
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fun isNamedLinearTransponder_returnsFalseForRangeEntryWithoutTransponderName() {
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val driftingRangeEntry = linearTransponder(info = "Upper side band (drifting)")
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assertFalse(DopplerFrequencyCalculator.isNamedLinearTransponder(driftingRangeEntry))
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}
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@Test
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fun isNamedLinearTransponder_returnsFalseForFmRepeater() {
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assertFalse(DopplerFrequencyCalculator.isNamedLinearTransponder(fmTransponder()))
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}
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@Test
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fun computeUplinkFromDownlink_linear_noDoppler() {
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val xpdr = linearTransponder()
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val orbitalPos = pos(0.0)
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val uplink = DopplerFrequencyCalculator.computeUplinkFromDownlink(435_200_000L, xpdr, orbitalPos)
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assertNotNull(uplink)
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assertEquals(145_200_000L, uplink)
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}
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@Test
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fun computeDownlinkFromUplink_linear_noDoppler() {
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val xpdr = linearTransponder()
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val orbitalPos = pos(0.0)
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val downlink = DopplerFrequencyCalculator.computeDownlinkFromUplink(145_200_000L, xpdr, orbitalPos)
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assertNotNull(downlink)
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assertEquals(435_200_000L, downlink)
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}
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@Test
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fun computeUplinkFromDownlink_withDoppler_positiveRangeRate() {
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// Satellite receding (positive range rate) → ground must transmit higher freq to compensate.
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val xpdr = linearTransponder()
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val orbitalPos = pos(7.0)
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val uplink = DopplerFrequencyCalculator.computeUplinkFromDownlink(435_200_000L, xpdr, orbitalPos)
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assertNotNull(uplink)
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assertTrue(uplink!! > 145_200_000L)
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}
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@Test
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fun computeUplinkFromDownlink_fmTransponder_returnsNull() {
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val orbitalPos = pos()
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val result = DopplerFrequencyCalculator.computeUplinkFromDownlink(435_600_000L, fmTransponder(), orbitalPos)
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assertNull(result)
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}
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@Test
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fun computeDownlinkFromUplink_fmTransponder_returnsNull() {
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val orbitalPos = pos()
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val result = DopplerFrequencyCalculator.computeDownlinkFromUplink(145_900_000L, fmTransponder(), orbitalPos)
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assertNull(result)
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}
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@Test
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fun computeDownlinkFromUplink_withPositiveOffset_addsOffsetToDownlink() {
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val xpdr = linearTransponder()
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val orbitalPos = pos(0.0)
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val downlink = DopplerFrequencyCalculator.computeDownlinkFromUplinkWithOffset(
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uplinkHz = 145_200_000L,
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transponder = xpdr,
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orbitalPos = orbitalPos,
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offsetHz = 2_500L
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)
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assertEquals(435_202_500L, downlink)
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}
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@Test
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fun computeUplinkFromDownlink_withPositiveOffset_subtractsOffsetBeforeMapping() {
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val xpdr = linearTransponder()
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val orbitalPos = pos(0.0)
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val uplink = DopplerFrequencyCalculator.computeUplinkFromDownlinkWithOffset(
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downlinkHz = 435_202_500L,
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transponder = xpdr,
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orbitalPos = orbitalPos,
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offsetHz = 2_500L
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)
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assertEquals(145_200_000L, uplink)
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}
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@Test
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fun computeOffsetRoundTrip_handlesNegativeOffset() {
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val xpdr = linearTransponder()
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val orbitalPos = pos(0.0)
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val downlink = DopplerFrequencyCalculator.computeDownlinkFromUplinkWithOffset(
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uplinkHz = 145_200_000L,
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transponder = xpdr,
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orbitalPos = orbitalPos,
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offsetHz = -2_500L
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)
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assertEquals(435_197_500L, downlink)
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val uplink = DopplerFrequencyCalculator.computeUplinkFromDownlinkWithOffset(
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downlinkHz = downlink!!,
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transponder = xpdr,
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orbitalPos = orbitalPos,
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offsetHz = -2_500L
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)
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assertEquals(145_200_000L, uplink)
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}
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@Test
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fun computeUplinkFromDownlink_invertedTransponder() {
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val xpdr = linearTransponder(inverted = true, downHigh = 435_500_000L)
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val orbitalPos = pos(0.0)
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val uplink = DopplerFrequencyCalculator.computeUplinkFromDownlink(435_200_000L, xpdr, orbitalPos)
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assertNotNull(uplink)
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assertEquals(145_300_000L, uplink)
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}
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@Test
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fun computeUplinkFromDownlink_roundTrip() {
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val xpdr = linearTransponder()
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val orbitalPos = pos(3.5)
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val originalDownlink = 435_250_000L
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val uplink = DopplerFrequencyCalculator.computeUplinkFromDownlink(originalDownlink, xpdr, orbitalPos)
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assertNotNull(uplink)
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val roundTripDownlink = DopplerFrequencyCalculator.computeDownlinkFromUplink(uplink!!, xpdr, orbitalPos)
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assertNotNull(roundTripDownlink)
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val error = kotlin.math.abs(roundTripDownlink!! - originalDownlink)
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assertTrue("Round-trip error too large: $error", error < 10000)
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}
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}
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@@ -60,6 +60,9 @@
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<string name="radar_string_no">否</string>
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<string name="radar_string_yes">是</string>
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<string name="radar_visible">日照中</string>
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<string name="radar_doppler_tx_hint">输入上行频率 (MHz)</string>
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<string name="radar_doppler_rx_hint">输入下行频率 (MHz)</string>
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<string name="radar_doppler_offset_hint">偏移 (kHz)</string>
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<!-- Map screen -->
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<string name="map_prev">上一个</string>
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@@ -84,6 +84,9 @@
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<string name="radar_string_no">No</string>
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<string name="radar_string_yes">Yes</string>
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<string name="radar_visible">Visible</string>
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<string name="radar_doppler_tx_hint">Enter TX freq (MHz)</string>
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<string name="radar_doppler_rx_hint">Enter RX freq (MHz)</string>
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<string name="radar_doppler_offset_hint">Offset (kHz)</string>
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<!-- Map screen -->
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<string name="map_prev">Prev</string>
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@@ -45,6 +45,7 @@ import androidx.compose.material3.Text
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import androidx.compose.runtime.Composable
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import androidx.compose.runtime.LaunchedEffect
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import androidx.compose.runtime.getValue
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import androidx.compose.runtime.remember
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import androidx.compose.runtime.rememberCoroutineScope
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import androidx.compose.ui.Alignment
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import androidx.compose.ui.Modifier
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@@ -59,6 +60,7 @@ import androidx.lifecycle.compose.collectAsStateWithLifecycle
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import androidx.lifecycle.viewmodel.compose.viewModel
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import com.rtbishop.look4sat.core.domain.predict.OrbitalPos
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import com.rtbishop.look4sat.core.domain.repository.IContainerProvider
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import com.rtbishop.look4sat.core.domain.utility.DopplerFrequencyCalculator
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import com.rtbishop.look4sat.core.domain.utility.toDegrees
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import com.rtbishop.look4sat.core.presentation.EmptyListCard
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import com.rtbishop.look4sat.core.presentation.IconCard
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@@ -74,6 +76,7 @@ import kotlinx.coroutines.launch
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private enum class RadarPage(val title: String) {
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Transceivers("Transceivers"),
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Calculator("Calculator"),
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Sstv("SSTV")
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}
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@@ -150,16 +153,31 @@ private fun PagerCard(
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requestMicPermission: () -> Unit,
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modifier: Modifier = Modifier
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) {
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val pages = RadarPage.entries
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val hasCalculatorPage = remember(uiState.transceivers.transmitters) {
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uiState.transceivers.transmitters.any(DopplerFrequencyCalculator::isNamedLinearTransponder)
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}
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val pages = remember(hasCalculatorPage) {
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buildList {
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add(RadarPage.Transceivers)
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if (hasCalculatorPage) add(RadarPage.Calculator)
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add(RadarPage.Sstv)
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}
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}
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val pagerState = rememberPagerState(pageCount = { pages.size })
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val coroutineScope = rememberCoroutineScope()
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LaunchedEffect(pages.size) {
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val lastPage = pages.lastIndex
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if (pagerState.currentPage > lastPage) pagerState.scrollToPage(lastPage)
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}
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ElevatedCard(modifier = modifier) {
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Column(modifier = Modifier.fillMaxSize()) {
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PrimaryTabRow(selectedTabIndex = pagerState.currentPage) {
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val selectedTabIndex = pagerState.currentPage.coerceIn(0, pages.lastIndex)
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PrimaryTabRow(selectedTabIndex = selectedTabIndex) {
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pages.forEachIndexed { index, page ->
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Tab(
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selected = pagerState.currentPage == index,
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selected = selectedTabIndex == index,
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onClick = { coroutineScope.launch { pagerState.animateScrollToPage(index) } },
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text = { Text(text = page.title, maxLines = 1, overflow = TextOverflow.Ellipsis) }
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)
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@@ -176,6 +194,12 @@ private fun PagerCard(
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radioControl = uiState.radioControl,
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onAction = onAction
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)
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RadarPage.Calculator -> CalculatorPage(
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transceivers = uiState.transceivers.transmitters,
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selectedUuid = uiState.transceivers.selectedUuid,
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orbitalPos = uiState.orbitalPos,
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onAction = onAction
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)
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RadarPage.Sstv -> SstvPage(
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sstv = uiState.sstv,
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dopplerFrequency = uiState.transceivers.selectedFrequency?.let { formatFrequency(it) },
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+180
-5
@@ -39,14 +39,19 @@ import androidx.compose.foundation.lazy.LazyColumn
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import androidx.compose.foundation.lazy.itemsIndexed
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import androidx.compose.foundation.lazy.rememberLazyListState
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import androidx.compose.foundation.shape.CircleShape
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import androidx.compose.foundation.text.KeyboardOptions
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import androidx.compose.material3.FilterChip
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import androidx.compose.material3.HorizontalDivider
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import androidx.compose.material3.Icon
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import androidx.compose.material3.MaterialTheme
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import androidx.compose.material3.OutlinedTextField
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import androidx.compose.material3.Text
|
||||
import androidx.compose.runtime.Composable
|
||||
import androidx.compose.runtime.LaunchedEffect
|
||||
import androidx.compose.runtime.getValue
|
||||
import androidx.compose.runtime.mutableStateOf
|
||||
import androidx.compose.runtime.remember
|
||||
import androidx.compose.runtime.setValue
|
||||
import androidx.compose.ui.Alignment
|
||||
import androidx.compose.ui.Modifier
|
||||
import androidx.compose.ui.draw.clip
|
||||
@@ -55,11 +60,14 @@ import androidx.compose.ui.graphics.Color
|
||||
import androidx.compose.ui.res.painterResource
|
||||
import androidx.compose.ui.res.stringResource
|
||||
import androidx.compose.ui.text.font.FontWeight
|
||||
import androidx.compose.ui.text.input.KeyboardType
|
||||
import androidx.compose.ui.text.style.TextAlign
|
||||
import androidx.compose.ui.text.style.TextOverflow
|
||||
import androidx.compose.ui.unit.dp
|
||||
import androidx.compose.ui.unit.sp
|
||||
import com.rtbishop.look4sat.core.domain.model.SatRadio
|
||||
import com.rtbishop.look4sat.core.domain.predict.OrbitalPos
|
||||
import com.rtbishop.look4sat.core.domain.utility.DopplerFrequencyCalculator
|
||||
import com.rtbishop.look4sat.core.presentation.CardButton
|
||||
import com.rtbishop.look4sat.core.presentation.R
|
||||
import com.rtbishop.look4sat.core.presentation.formatFrequency
|
||||
@@ -104,6 +112,69 @@ fun TransceiversPage(
|
||||
}
|
||||
}
|
||||
|
||||
@Composable
|
||||
fun CalculatorPage(
|
||||
transceivers: List<SatRadio>,
|
||||
selectedUuid: String?,
|
||||
orbitalPos: OrbitalPos?,
|
||||
onAction: (RadarAction) -> Unit,
|
||||
modifier: Modifier = Modifier
|
||||
) {
|
||||
val calculatorTransceivers = remember(transceivers) {
|
||||
transceivers.filter(DopplerFrequencyCalculator::isNamedLinearTransponder)
|
||||
}
|
||||
val selectedTransceiver = remember(calculatorTransceivers, selectedUuid) {
|
||||
calculatorTransceivers.firstOrNull { it.uuid == selectedUuid }
|
||||
?: calculatorTransceivers.firstOrNull()
|
||||
}
|
||||
|
||||
if (selectedTransceiver == null) {
|
||||
EmptyTransceiversContent(modifier)
|
||||
return
|
||||
}
|
||||
|
||||
LazyColumn(
|
||||
modifier = modifier
|
||||
.fillMaxSize()
|
||||
.padding(8.dp),
|
||||
verticalArrangement = Arrangement.spacedBy(10.dp)
|
||||
) {
|
||||
if (calculatorTransceivers.size > 1) {
|
||||
item {
|
||||
FlowRow(
|
||||
horizontalArrangement = Arrangement.spacedBy(6.dp),
|
||||
verticalArrangement = Arrangement.spacedBy(4.dp),
|
||||
modifier = Modifier.fillMaxWidth()
|
||||
) {
|
||||
calculatorTransceivers.forEach { radio ->
|
||||
FilterChip(
|
||||
selected = radio.uuid == selectedTransceiver.uuid,
|
||||
onClick = {
|
||||
if (radio.uuid != selectedUuid) onAction(RadarAction.SelectTransmitter(radio.uuid))
|
||||
},
|
||||
label = {
|
||||
Text(
|
||||
text = transceiverTitle(radio),
|
||||
maxLines = 1,
|
||||
overflow = TextOverflow.Ellipsis
|
||||
)
|
||||
}
|
||||
)
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
item {
|
||||
DopplerCalculatorPanel(
|
||||
transponder = selectedTransceiver,
|
||||
orbitalPos = orbitalPos,
|
||||
modifier = Modifier.fillMaxWidth()
|
||||
)
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
@Composable
|
||||
private fun EmptyTransceiversContent(modifier: Modifier = Modifier) {
|
||||
Box(contentAlignment = Alignment.Center, modifier = modifier.fillMaxSize()) {
|
||||
@@ -172,12 +243,8 @@ private fun TransceiverItem(
|
||||
.rotate(if (isExpanded) 270f else 90f)
|
||||
)
|
||||
}
|
||||
// Title with mode
|
||||
val title = if (radio.isInverted) "INV: ${radio.info}" else radio.info
|
||||
val mode = "${radio.downlinkMode ?: "--"}/${radio.uplinkMode ?: "--"}"
|
||||
val fullTitle = "$title ($mode)"
|
||||
Text(
|
||||
text = fullTitle,
|
||||
text = transceiverTitle(radio),
|
||||
textAlign = TextAlign.Center,
|
||||
color = MaterialTheme.colorScheme.onSurface,
|
||||
maxLines = 1,
|
||||
@@ -437,6 +504,108 @@ private fun ExpandedRadioControl(
|
||||
}
|
||||
}
|
||||
|
||||
@Composable
|
||||
private fun DopplerCalculatorPanel(
|
||||
transponder: SatRadio,
|
||||
orbitalPos: OrbitalPos?,
|
||||
modifier: Modifier = Modifier
|
||||
) {
|
||||
if (orbitalPos == null || !DopplerFrequencyCalculator.isLinearTransponder(transponder)) return
|
||||
|
||||
var txInputMHz by remember(transponder.uuid) { mutableStateOf("") }
|
||||
var rxInputMHz by remember(transponder.uuid) { mutableStateOf("") }
|
||||
var offsetKHz by remember(transponder.uuid) { mutableStateOf("") }
|
||||
var lastEditedBy by remember(transponder.uuid) { mutableStateOf(EditedField.TX) }
|
||||
|
||||
fun offsetHz(text: String): Long = text.toDoubleOrNull()?.let { (it * 1000).toLong() } ?: 0L
|
||||
fun formatHz(hz: Long): String = String.format(Locale.ENGLISH, "%.6f", hz / 1_000_000.0)
|
||||
fun mhzToHz(text: String): Long? = text.toDoubleOrNull()
|
||||
?.takeIf { it > 0.0 }
|
||||
?.let { (it * 1_000_000).toLong() }
|
||||
|
||||
fun calculateDownlink(txText: String, offsetText: String): String? {
|
||||
val txHz = mhzToHz(txText) ?: return null
|
||||
return DopplerFrequencyCalculator.computeDownlinkFromUplinkWithOffset(
|
||||
uplinkHz = txHz,
|
||||
transponder = transponder,
|
||||
orbitalPos = orbitalPos,
|
||||
offsetHz = offsetHz(offsetText)
|
||||
)?.let(::formatHz)
|
||||
}
|
||||
|
||||
fun calculateUplink(rxText: String, offsetText: String): String? {
|
||||
val rxHz = mhzToHz(rxText) ?: return null
|
||||
return DopplerFrequencyCalculator.computeUplinkFromDownlinkWithOffset(
|
||||
downlinkHz = rxHz,
|
||||
transponder = transponder,
|
||||
orbitalPos = orbitalPos,
|
||||
offsetHz = offsetHz(offsetText)
|
||||
)?.let(::formatHz)
|
||||
}
|
||||
|
||||
LaunchedEffect(orbitalPos, transponder.uuid) {
|
||||
if (lastEditedBy == EditedField.TX) {
|
||||
calculateDownlink(txInputMHz, offsetKHz)?.let { rxInputMHz = it }
|
||||
} else {
|
||||
calculateUplink(rxInputMHz, offsetKHz)?.let { txInputMHz = it }
|
||||
}
|
||||
}
|
||||
|
||||
Column(
|
||||
modifier = modifier,
|
||||
verticalArrangement = Arrangement.spacedBy(8.dp)
|
||||
) {
|
||||
OutlinedTextField(
|
||||
value = offsetKHz,
|
||||
onValueChange = { newValue ->
|
||||
offsetKHz = newValue
|
||||
if (lastEditedBy == EditedField.TX) {
|
||||
calculateDownlink(txInputMHz, newValue)?.let { rxInputMHz = it }
|
||||
} else {
|
||||
calculateUplink(rxInputMHz, newValue)?.let { txInputMHz = it }
|
||||
}
|
||||
},
|
||||
label = { Text(stringResource(R.string.radar_doppler_offset_hint)) },
|
||||
singleLine = true,
|
||||
keyboardOptions = KeyboardOptions(keyboardType = KeyboardType.Text),
|
||||
modifier = Modifier.fillMaxWidth()
|
||||
)
|
||||
|
||||
Row(
|
||||
horizontalArrangement = Arrangement.spacedBy(8.dp),
|
||||
modifier = Modifier.fillMaxWidth()
|
||||
) {
|
||||
OutlinedTextField(
|
||||
value = txInputMHz,
|
||||
onValueChange = { newValue ->
|
||||
txInputMHz = newValue
|
||||
lastEditedBy = EditedField.TX
|
||||
rxInputMHz = calculateDownlink(newValue, offsetKHz) ?: if (newValue.isEmpty()) "" else rxInputMHz
|
||||
},
|
||||
label = { Text(stringResource(R.string.radar_doppler_tx_hint)) },
|
||||
singleLine = true,
|
||||
keyboardOptions = KeyboardOptions(keyboardType = KeyboardType.Decimal),
|
||||
modifier = Modifier.weight(1f)
|
||||
)
|
||||
|
||||
OutlinedTextField(
|
||||
value = rxInputMHz,
|
||||
onValueChange = { newValue ->
|
||||
rxInputMHz = newValue
|
||||
lastEditedBy = EditedField.RX
|
||||
txInputMHz = calculateUplink(newValue, offsetKHz) ?: if (newValue.isEmpty()) "" else txInputMHz
|
||||
},
|
||||
label = { Text(stringResource(R.string.radar_doppler_rx_hint)) },
|
||||
singleLine = true,
|
||||
keyboardOptions = KeyboardOptions(keyboardType = KeyboardType.Decimal),
|
||||
modifier = Modifier.weight(1f)
|
||||
)
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
private enum class EditedField { TX, RX }
|
||||
|
||||
@Composable
|
||||
private fun FrequencyText(frequency: Long?, modifier: Modifier = Modifier) {
|
||||
val text = frequency?.let {
|
||||
@@ -452,5 +621,11 @@ private fun FrequencyText(frequency: Long?, modifier: Modifier = Modifier) {
|
||||
)
|
||||
}
|
||||
|
||||
private fun transceiverTitle(radio: SatRadio): String {
|
||||
val title = if (radio.isInverted) "INV: ${radio.info}" else radio.info
|
||||
val mode = "${radio.downlinkMode ?: "--"}/${radio.uplinkMode ?: "--"}"
|
||||
return "$title ($mode)"
|
||||
}
|
||||
|
||||
private val FREQ_ADJUSTMENTS =
|
||||
listOf(-10_000L to "-10k", -1_000L to "-1k", -100L to "-100", 100L to "+100", 1_000L to "+1k", 10_000L to "+10k")
|
||||
Reference in new issue
Block a user