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https://codeberg.org/OpenTracksApp/OpenTracks.git
synced 2026-10-02 09:33:06 +02:00
Merging batteryLevel branch.
This commit is contained in:
+92
-14
@@ -1,5 +1,6 @@
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/*
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* Copyright 2010 Google Inc.
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* Copyright 2011 Dominik Ršttsches <d.roettsches@gmail.com>
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*
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* Licensed under the Apache License, Version 2.0 (the "License"); you may not
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* use this file except in compliance with the License. You may obtain a copy of
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@@ -15,11 +16,13 @@
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*/
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package com.google.android.apps.mytracks.services.sensors;
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import android.util.Log;
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import com.google.android.apps.mytracks.Constants;
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import com.google.android.apps.mytracks.content.Sensor;
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import android.util.Log;
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import java.util.LinkedList;
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/**
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* An implementation of a Sensor MessageParser for Zephyr.
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*
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@@ -30,7 +33,55 @@ public class ZephyrMessageParser implements MessageParser {
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public static final int ZEPHYR_HXM_BYTE_STX = 0;
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public static final int ZEPHYR_HXM_BYTE_CRC = 58;
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public static final int ZEPHYR_HXM_BYTE_ETX = 59;
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private StrideReadings strideReadings;
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public class StrideReadings {
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class StrideReading {
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public int timeMs;
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public int numStrides;
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StrideReading(int newTimeMs, int newNumStrides) {
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timeMs = newTimeMs;
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numStrides = newNumStrides;
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}
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}
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private LinkedList<StrideReading> strideReadingsHistory;
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private static final int NUM_READINGS_FOR_AVERAGE = 10;
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private static final int MIN_READINGS_FOR_AVERAGE = 5;
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public static final int CADENCE_NOT_AVAILABLE = -1;
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public StrideReadings() {
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strideReadingsHistory = new LinkedList<StrideReading>();
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}
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public void updateStrideReading(int timeInMs, int numStrides) {
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// HRM/HxM docs say, transmission frequency is 1 Hz,
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// let's keep last NUM_READINGS_FOR_AVERAGE readings.
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// TODO: Calibrate this using a reliable footpod / cadence sensor,
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// otherwise perhaps use heartbeat timestamp for calculation.
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strideReadingsHistory.addFirst(new StrideReading(timeInMs, numStrides));
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while(strideReadingsHistory.size() > NUM_READINGS_FOR_AVERAGE) {
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strideReadingsHistory.removeLast();
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}
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}
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public int getCadence() {
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if(strideReadingsHistory.size() < MIN_READINGS_FOR_AVERAGE) {
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// Bail out if we cannot really get a meaningful average yet.
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return CADENCE_NOT_AVAILABLE;
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}
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// compute assuming 1 stride reading/second
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int timeSinceOldestReadingSecs = strideReadingsHistory.size() - 1;
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int stridesThen = strideReadingsHistory.getLast().numStrides;
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int stridesNow = strideReadingsHistory.getFirst().numStrides;
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// Contrary to documentation stride value seems to roll over every 127 strides.
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return Math.round( (float)((stridesNow - stridesThen) % 127) /
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timeSinceOldestReadingSecs * 60);
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}
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}
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@Override
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public Sensor.SensorDataSet parseBuffer(byte[] buffer) {
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StringBuilder sb = new StringBuilder();
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@@ -38,22 +89,49 @@ public class ZephyrMessageParser implements MessageParser {
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sb.append(String.format("%02X", buffer[i]));
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}
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Log.w(Constants.TAG, "Got zephyr data: " + sb);
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// Heart Rate
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// Device Firmware ID, Firmware Version, Hardware ID, Hardware Version
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// 0x1A00316550003162 produces erroneous values for Cadence and needs
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// a workaround based on the stride counter.
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String hardwareFirmwareId = sb.substring(6, 22);
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boolean needsWorkaround = hardwareFirmwareId.equals("1A00316550003162");
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Log.w(Constants.TAG, "FW & HW Ids & Version " + hardwareFirmwareId + " needs workaround: " + needsWorkaround);
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Sensor.SensorData.Builder heartrate = Sensor.SensorData.newBuilder()
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.setValue(buffer[12] & 0xFF)
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.setState(Sensor.SensorState.SENDING);
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// Changes Nico Laum (Power and Cadence)
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Sensor.SensorData.Builder power = Sensor.SensorData.newBuilder()
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.setValue(buffer[11])
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.setState(Sensor.SensorState.SENDING);
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Sensor.SensorData.Builder cadence = Sensor.SensorData.newBuilder()
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.setValue(SensorUtils.unsignedShortToIntLittleEndian(buffer, 56) / 16)
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.setState(Sensor.SensorState.SENDING);
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.setValue(buffer[12] & 0xFF)
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.setState(Sensor.SensorState.SENDING);
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Sensor.SensorData.Builder batteryLevel = Sensor.SensorData.newBuilder()
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.setValue(buffer[11])
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.setState(Sensor.SensorState.SENDING);
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Sensor.SensorData.Builder cadence = Sensor.SensorData.newBuilder();
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if(!needsWorkaround) {
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cadence = cadence
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.setValue(SensorUtils.unsignedShortToIntLittleEndian(buffer, 56) / 16)
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.setState(Sensor.SensorState.SENDING);
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} else {
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if(strideReadings == null) {
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strideReadings = new StrideReadings();
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}
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strideReadings.updateStrideReading(
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SensorUtils.unsignedShortToIntLittleEndian(buffer, 14),
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buffer[54] & 0xFF);
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if(strideReadings.getCadence() != StrideReadings.CADENCE_NOT_AVAILABLE) {
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cadence = cadence.setValue(strideReadings.getCadence())
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.setState(Sensor.SensorState.SENDING);
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} else {
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cadence = cadence.setValue(0).setState(Sensor.SensorState.NONE);
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}
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}
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Sensor.SensorDataSet sds =
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Sensor.SensorDataSet.newBuilder()
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.setCreationTime(System.currentTimeMillis())
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.setPower(power)
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.setBatteryLevel(batteryLevel)
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.setHeartRate(heartrate)
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.setCadence(cadence)
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.build();
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@@ -50,4 +50,5 @@ message SensorDataSet {
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optional SensorData heart_rate = 2;
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optional SensorData cadence = 3;
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optional SensorData power = 4;
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optional SensorData battery_level = 5;
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}
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@@ -398,10 +398,18 @@ public final class Sensor {
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public boolean hasPower() { return hasPower; }
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public com.google.android.apps.mytracks.content.Sensor.SensorData getPower() { return power_; }
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// optional .com.google.android.apps.mytracks.content.SensorData battery_level = 5;
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public static final int BATTERY_LEVEL_FIELD_NUMBER = 5;
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private boolean hasBatteryLevel;
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private com.google.android.apps.mytracks.content.Sensor.SensorData batteryLevel_;
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public boolean hasBatteryLevel() { return hasBatteryLevel; }
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public com.google.android.apps.mytracks.content.Sensor.SensorData getBatteryLevel() { return batteryLevel_; }
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private void initFields() {
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heartRate_ = com.google.android.apps.mytracks.content.Sensor.SensorData.getDefaultInstance();
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cadence_ = com.google.android.apps.mytracks.content.Sensor.SensorData.getDefaultInstance();
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power_ = com.google.android.apps.mytracks.content.Sensor.SensorData.getDefaultInstance();
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batteryLevel_ = com.google.android.apps.mytracks.content.Sensor.SensorData.getDefaultInstance();
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}
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public final boolean isInitialized() {
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if (hasHeartRate()) {
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@@ -413,6 +421,9 @@ public final class Sensor {
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if (hasPower()) {
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if (!getPower().isInitialized()) return false;
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}
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if (hasBatteryLevel()) {
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if (!getBatteryLevel().isInitialized()) return false;
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}
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return true;
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}
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@@ -431,6 +442,9 @@ public final class Sensor {
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if (hasPower()) {
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output.writeMessage(4, getPower());
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}
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if (hasBatteryLevel()) {
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output.writeMessage(5, getBatteryLevel());
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}
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}
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private int memoizedSerializedSize = -1;
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@@ -455,6 +469,10 @@ public final class Sensor {
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size += com.google.protobuf.CodedOutputStream
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.computeMessageSize(4, getPower());
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}
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if (hasBatteryLevel()) {
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size += com.google.protobuf.CodedOutputStream
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.computeMessageSize(5, getBatteryLevel());
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}
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memoizedSerializedSize = size;
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return size;
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}
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@@ -611,6 +629,9 @@ public final class Sensor {
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if (other.hasPower()) {
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mergePower(other.getPower());
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}
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if (other.hasBatteryLevel()) {
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mergeBatteryLevel(other.getBatteryLevel());
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}
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return this;
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}
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@@ -660,6 +681,15 @@ public final class Sensor {
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setPower(subBuilder.buildPartial());
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break;
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}
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case 42: {
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com.google.android.apps.mytracks.content.Sensor.SensorData.Builder subBuilder = com.google.android.apps.mytracks.content.Sensor.SensorData.newBuilder();
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if (hasBatteryLevel()) {
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subBuilder.mergeFrom(getBatteryLevel());
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}
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input.readMessage(subBuilder, extensionRegistry);
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setBatteryLevel(subBuilder.buildPartial());
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break;
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}
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}
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}
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}
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@@ -794,6 +824,43 @@ public final class Sensor {
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return this;
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}
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// optional .com.google.android.apps.mytracks.content.SensorData battery_level = 5;
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public boolean hasBatteryLevel() {
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return result.hasBatteryLevel();
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}
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public com.google.android.apps.mytracks.content.Sensor.SensorData getBatteryLevel() {
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return result.getBatteryLevel();
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}
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public Builder setBatteryLevel(com.google.android.apps.mytracks.content.Sensor.SensorData value) {
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if (value == null) {
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throw new NullPointerException();
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}
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result.hasBatteryLevel = true;
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result.batteryLevel_ = value;
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return this;
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}
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public Builder setBatteryLevel(com.google.android.apps.mytracks.content.Sensor.SensorData.Builder builderForValue) {
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result.hasBatteryLevel = true;
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result.batteryLevel_ = builderForValue.build();
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return this;
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}
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public Builder mergeBatteryLevel(com.google.android.apps.mytracks.content.Sensor.SensorData value) {
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if (result.hasBatteryLevel() &&
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result.batteryLevel_ != com.google.android.apps.mytracks.content.Sensor.SensorData.getDefaultInstance()) {
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result.batteryLevel_ =
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com.google.android.apps.mytracks.content.Sensor.SensorData.newBuilder(result.batteryLevel_).mergeFrom(value).buildPartial();
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} else {
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result.batteryLevel_ = value;
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}
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result.hasBatteryLevel = true;
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return this;
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}
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public Builder clearBatteryLevel() {
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result.hasBatteryLevel = false;
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result.batteryLevel_ = com.google.android.apps.mytracks.content.Sensor.SensorData.getDefaultInstance();
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return this;
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}
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// @@protoc_insertion_point(builder_scope:com.google.android.apps.mytracks.content.SensorDataSet)
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}
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