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532 lines
20 KiB
532 lines
20 KiB
/*
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* Copyright (C) 2021 The Android Open Source Project
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*
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* Licensed under the Apache License, Version 2.0 (the "License");
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* you may not use this file except in compliance with the License.
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* You may obtain a copy of the License at
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*
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* http://www.apache.org/licenses/LICENSE-2.0
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*
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* Unless required by applicable law or agreed to in writing, software
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* distributed under the License is distributed on an "AS IS" BASIS,
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* WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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* See the License for the specific language governing permissions and
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* limitations under the License.
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*/
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#include <locale>
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#include <regex>
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#include "../Macros.h"
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#include "PeripheralController.h"
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#include "input/NamedEnum.h"
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// Log detailed debug messages about input device lights.
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static constexpr bool DEBUG_LIGHT_DETAILS = false;
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namespace android {
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static inline int32_t getAlpha(int32_t color) {
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return (color >> 24) & 0xff;
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}
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static inline int32_t getRed(int32_t color) {
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return (color >> 16) & 0xff;
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}
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static inline int32_t getGreen(int32_t color) {
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return (color >> 8) & 0xff;
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}
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static inline int32_t getBlue(int32_t color) {
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return color & 0xff;
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}
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static inline int32_t toArgb(int32_t brightness, int32_t red, int32_t green, int32_t blue) {
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return (brightness & 0xff) << 24 | (red & 0xff) << 16 | (green & 0xff) << 8 | (blue & 0xff);
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}
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/**
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* Input controller owned by InputReader device, implements the native API for querying input
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* lights, getting and setting the lights brightness and color, by interacting with EventHub
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* devices.
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*/
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PeripheralController::PeripheralController(InputDeviceContext& deviceContext)
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: mDeviceContext(deviceContext) {
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configureBattries();
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configureLights();
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}
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PeripheralController::~PeripheralController() {}
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std::optional<std::int32_t> PeripheralController::Light::getRawLightBrightness(int32_t rawLightId) {
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std::optional<RawLightInfo> rawInfoOpt = context.getRawLightInfo(rawLightId);
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if (!rawInfoOpt.has_value()) {
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return std::nullopt;
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}
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std::optional<int32_t> brightnessOpt = context.getLightBrightness(rawLightId);
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if (!brightnessOpt.has_value()) {
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return std::nullopt;
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}
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int brightness = brightnessOpt.value();
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// If the light node doesn't have max brightness, use the default max brightness.
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int rawMaxBrightness = rawInfoOpt->maxBrightness.value_or(MAX_BRIGHTNESS);
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float ratio = MAX_BRIGHTNESS / rawMaxBrightness;
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// Scale the returned brightness in [0, rawMaxBrightness] to [0, 255]
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if (rawMaxBrightness != MAX_BRIGHTNESS) {
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brightness = brightness * ratio;
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}
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if (DEBUG_LIGHT_DETAILS) {
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ALOGD("getRawLightBrightness rawLightId %d brightness 0x%x ratio %.2f", rawLightId,
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brightness, ratio);
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}
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return brightness;
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}
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void PeripheralController::Light::setRawLightBrightness(int32_t rawLightId, int32_t brightness) {
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std::optional<RawLightInfo> rawInfo = context.getRawLightInfo(rawLightId);
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if (!rawInfo.has_value()) {
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return;
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}
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// If the light node doesn't have max brightness, use the default max brightness.
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int rawMaxBrightness = rawInfo->maxBrightness.value_or(MAX_BRIGHTNESS);
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float ratio = MAX_BRIGHTNESS / rawMaxBrightness;
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// Scale the requested brightness in [0, 255] to [0, rawMaxBrightness]
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if (rawMaxBrightness != MAX_BRIGHTNESS) {
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brightness = ceil(brightness / ratio);
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}
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if (DEBUG_LIGHT_DETAILS) {
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ALOGD("setRawLightBrightness rawLightId %d brightness 0x%x ratio %.2f", rawLightId,
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brightness, ratio);
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}
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context.setLightBrightness(rawLightId, brightness);
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}
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bool PeripheralController::MonoLight::setLightColor(int32_t color) {
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int32_t brightness = getAlpha(color);
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setRawLightBrightness(rawId, brightness);
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return true;
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}
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bool PeripheralController::RgbLight::setLightColor(int32_t color) {
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// Compose color value as per:
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// https://developer.android.com/reference/android/graphics/Color?hl=en
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// int color = (A & 0xff) << 24 | (R & 0xff) << 16 | (G & 0xff) << 8 | (B & 0xff);
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// The alpha component is used to scale the R,G,B leds brightness, with the ratio to
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// MAX_BRIGHTNESS.
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brightness = getAlpha(color);
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int32_t red = 0;
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int32_t green = 0;
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int32_t blue = 0;
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if (brightness > 0) {
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float ratio = MAX_BRIGHTNESS / brightness;
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red = ceil(getRed(color) / ratio);
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green = ceil(getGreen(color) / ratio);
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blue = ceil(getBlue(color) / ratio);
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}
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setRawLightBrightness(rawRgbIds.at(LightColor::RED), red);
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setRawLightBrightness(rawRgbIds.at(LightColor::GREEN), green);
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setRawLightBrightness(rawRgbIds.at(LightColor::BLUE), blue);
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if (rawGlobalId.has_value()) {
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setRawLightBrightness(rawGlobalId.value(), brightness);
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}
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return true;
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}
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bool PeripheralController::MultiColorLight::setLightColor(int32_t color) {
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std::unordered_map<LightColor, int32_t> intensities;
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intensities.emplace(LightColor::RED, getRed(color));
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intensities.emplace(LightColor::GREEN, getGreen(color));
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intensities.emplace(LightColor::BLUE, getBlue(color));
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context.setLightIntensities(rawId, intensities);
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setRawLightBrightness(rawId, getAlpha(color));
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return true;
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}
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std::optional<int32_t> PeripheralController::MonoLight::getLightColor() {
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std::optional<int32_t> brightness = getRawLightBrightness(rawId);
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if (!brightness.has_value()) {
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return std::nullopt;
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}
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return toArgb(brightness.value(), 0 /* red */, 0 /* green */, 0 /* blue */);
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}
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std::optional<int32_t> PeripheralController::RgbLight::getLightColor() {
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// If the Alpha component is zero, then return color 0.
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if (brightness == 0) {
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return 0;
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}
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// Compose color value as per:
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// https://developer.android.com/reference/android/graphics/Color?hl=en
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// int color = (A & 0xff) << 24 | (R & 0xff) << 16 | (G & 0xff) << 8 | (B & 0xff);
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std::optional<int32_t> redOr = getRawLightBrightness(rawRgbIds.at(LightColor::RED));
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std::optional<int32_t> greenOr = getRawLightBrightness(rawRgbIds.at(LightColor::GREEN));
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std::optional<int32_t> blueOr = getRawLightBrightness(rawRgbIds.at(LightColor::BLUE));
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// If we can't get brightness for any of the RGB light
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if (!redOr.has_value() || !greenOr.has_value() || !blueOr.has_value()) {
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return std::nullopt;
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}
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// Compose the ARGB format color. As the R,G,B color led brightness is scaled by Alpha
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// value, scale it back to return the nominal color value.
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float ratio = MAX_BRIGHTNESS / brightness;
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int32_t red = round(redOr.value() * ratio);
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int32_t green = round(greenOr.value() * ratio);
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int32_t blue = round(blueOr.value() * ratio);
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if (red > MAX_BRIGHTNESS || green > MAX_BRIGHTNESS || blue > MAX_BRIGHTNESS) {
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// Previously stored brightness isn't valid for current LED values, so just reset to max
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// brightness since an app couldn't have provided these values in the first place.
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red = redOr.value();
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green = greenOr.value();
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blue = blueOr.value();
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brightness = MAX_BRIGHTNESS;
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}
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return toArgb(brightness, red, green, blue);
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}
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std::optional<int32_t> PeripheralController::MultiColorLight::getLightColor() {
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auto ret = context.getLightIntensities(rawId);
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if (!ret.has_value()) {
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return std::nullopt;
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}
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std::unordered_map<LightColor, int32_t> intensities = ret.value();
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// Get red, green, blue colors
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int32_t color = toArgb(0 /* brightness */, intensities.at(LightColor::RED) /* red */,
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intensities.at(LightColor::GREEN) /* green */,
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intensities.at(LightColor::BLUE) /* blue */);
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// Get brightness
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std::optional<int32_t> brightness = getRawLightBrightness(rawId);
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if (brightness.has_value()) {
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return toArgb(brightness.value() /* A */, 0, 0, 0) | color;
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}
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return std::nullopt;
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}
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bool PeripheralController::PlayerIdLight::setLightPlayerId(int32_t playerId) {
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if (rawLightIds.find(playerId) == rawLightIds.end()) {
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return false;
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}
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for (const auto& [id, rawId] : rawLightIds) {
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if (playerId == id) {
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setRawLightBrightness(rawId, MAX_BRIGHTNESS);
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} else {
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setRawLightBrightness(rawId, 0);
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}
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}
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return true;
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}
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std::optional<int32_t> PeripheralController::PlayerIdLight::getLightPlayerId() {
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for (const auto& [id, rawId] : rawLightIds) {
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std::optional<int32_t> brightness = getRawLightBrightness(rawId);
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if (brightness.has_value() && brightness.value() > 0) {
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return id;
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}
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}
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return std::nullopt;
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}
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void PeripheralController::MonoLight::dump(std::string& dump) {
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dump += StringPrintf(INDENT4 "Color: 0x%x\n", getLightColor().value_or(0));
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}
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void PeripheralController::PlayerIdLight::dump(std::string& dump) {
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dump += StringPrintf(INDENT4 "PlayerId: %d\n", getLightPlayerId().value_or(-1));
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dump += StringPrintf(INDENT4 "Raw Player ID LEDs:");
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for (const auto& [id, rawId] : rawLightIds) {
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dump += StringPrintf("id %d -> %d ", id, rawId);
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}
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dump += "\n";
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}
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void PeripheralController::RgbLight::dump(std::string& dump) {
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dump += StringPrintf(INDENT4 "Color: 0x%x\n", getLightColor().value_or(0));
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dump += StringPrintf(INDENT4 "Raw RGB LEDs: [%d, %d, %d] ", rawRgbIds.at(LightColor::RED),
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rawRgbIds.at(LightColor::GREEN), rawRgbIds.at(LightColor::BLUE));
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if (rawGlobalId.has_value()) {
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dump += StringPrintf(INDENT4 "Raw Global LED: [%d] ", rawGlobalId.value());
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}
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dump += "\n";
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}
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void PeripheralController::MultiColorLight::dump(std::string& dump) {
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dump += StringPrintf(INDENT4 "Color: 0x%x\n", getLightColor().value_or(0));
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}
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void PeripheralController::populateDeviceInfo(InputDeviceInfo* deviceInfo) {
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// TODO: b/180733860 Remove this after enabling multi-battery
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if (!mBatteries.empty()) {
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deviceInfo->setHasBattery(true);
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}
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for (const auto& [batteryId, battery] : mBatteries) {
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InputDeviceBatteryInfo batteryInfo(battery->name, battery->id);
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deviceInfo->addBatteryInfo(batteryInfo);
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}
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for (const auto& [lightId, light] : mLights) {
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// Input device light doesn't support ordinal, always pass 1.
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InputDeviceLightInfo lightInfo(light->name, light->id, light->type, 1 /* ordinal */);
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deviceInfo->addLightInfo(lightInfo);
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}
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}
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void PeripheralController::dump(std::string& dump) {
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dump += INDENT2 "Input Controller:\n";
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if (!mLights.empty()) {
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dump += INDENT3 "Lights:\n";
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for (const auto& [lightId, light] : mLights) {
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dump += StringPrintf(INDENT4 "Id: %d", lightId);
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dump += StringPrintf(INDENT4 "Name: %s", light->name.c_str());
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dump += StringPrintf(INDENT4 "Type: %s", NamedEnum::string(light->type).c_str());
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light->dump(dump);
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}
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}
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// Dump raw lights
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dump += INDENT3 "RawLights:\n";
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dump += INDENT4 "Id:\t Name:\t Flags:\t Max brightness:\t Brightness\n";
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const std::vector<int32_t> rawLightIds = getDeviceContext().getRawLightIds();
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// Map from raw light id to raw light info
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std::unordered_map<int32_t, RawLightInfo> rawInfos;
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for (const auto& rawId : rawLightIds) {
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std::optional<RawLightInfo> rawInfo = getDeviceContext().getRawLightInfo(rawId);
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if (!rawInfo.has_value()) {
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continue;
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}
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dump += StringPrintf(INDENT4 "%d", rawId);
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dump += StringPrintf(INDENT4 "%s", rawInfo->name.c_str());
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dump += StringPrintf(INDENT4 "%s", rawInfo->flags.string().c_str());
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dump += StringPrintf(INDENT4 "%d", rawInfo->maxBrightness.value_or(MAX_BRIGHTNESS));
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dump += StringPrintf(INDENT4 "%d\n",
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getDeviceContext().getLightBrightness(rawId).value_or(-1));
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}
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if (!mBatteries.empty()) {
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dump += INDENT3 "Batteries:\n";
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for (const auto& [batteryId, battery] : mBatteries) {
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dump += StringPrintf(INDENT4 "Id: %d", batteryId);
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dump += StringPrintf(INDENT4 "Name: %s", battery->name.c_str());
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dump += getBatteryCapacity(batteryId).has_value()
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? StringPrintf(INDENT3 "Capacity: %d\n", getBatteryCapacity(batteryId).value())
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: StringPrintf(INDENT3 "Capacity: Unknown");
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std::string status;
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switch (getBatteryStatus(batteryId).value_or(BATTERY_STATUS_UNKNOWN)) {
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case BATTERY_STATUS_CHARGING:
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status = "Charging";
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break;
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case BATTERY_STATUS_DISCHARGING:
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status = "Discharging";
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break;
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case BATTERY_STATUS_NOT_CHARGING:
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status = "Not charging";
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break;
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case BATTERY_STATUS_FULL:
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status = "Full";
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break;
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default:
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status = "Unknown";
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}
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dump += StringPrintf(INDENT3 "Status: %s\n", status.c_str());
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}
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}
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}
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void PeripheralController::configureBattries() {
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// Check raw batteries
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const std::vector<int32_t> rawBatteryIds = getDeviceContext().getRawBatteryIds();
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for (const auto& rawId : rawBatteryIds) {
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std::optional<RawBatteryInfo> rawInfo = getDeviceContext().getRawBatteryInfo(rawId);
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if (!rawInfo.has_value()) {
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continue;
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}
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std::unique_ptr<Battery> battery =
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std::make_unique<Battery>(getDeviceContext(), rawInfo->name, rawInfo->id);
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mBatteries.insert_or_assign(rawId, std::move(battery));
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}
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}
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void PeripheralController::configureLights() {
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bool hasRedLed = false;
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bool hasGreenLed = false;
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bool hasBlueLed = false;
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std::optional<int32_t> rawGlobalId = std::nullopt;
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// Player ID light common name string
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std::string playerIdName;
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// Raw RGB color to raw light ID
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std::unordered_map<LightColor, int32_t /* rawLightId */> rawRgbIds;
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// Map from player Id to raw light Id
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std::unordered_map<int32_t, int32_t> playerIdLightIds;
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// Check raw lights
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const std::vector<int32_t> rawLightIds = getDeviceContext().getRawLightIds();
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// Map from raw light id to raw light info
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std::unordered_map<int32_t, RawLightInfo> rawInfos;
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for (const auto& rawId : rawLightIds) {
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std::optional<RawLightInfo> rawInfo = getDeviceContext().getRawLightInfo(rawId);
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if (!rawInfo.has_value()) {
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continue;
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}
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rawInfos.insert_or_assign(rawId, rawInfo.value());
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// Check if this is a group LEDs for player ID
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std::regex lightPattern("([a-z]+)([0-9]+)");
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std::smatch results;
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if (std::regex_match(rawInfo->name, results, lightPattern)) {
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std::string commonName = results[1].str();
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int32_t playerId = std::stoi(results[2]);
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if (playerIdLightIds.empty()) {
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playerIdName = commonName;
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playerIdLightIds.insert_or_assign(playerId, rawId);
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} else {
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// Make sure the player ID leds have common string name
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if (playerIdName.compare(commonName) == 0 &&
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playerIdLightIds.find(playerId) == playerIdLightIds.end()) {
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playerIdLightIds.insert_or_assign(playerId, rawId);
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}
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}
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}
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// Check if this is an LED of RGB light
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if (rawInfo->flags.test(InputLightClass::RED)) {
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hasRedLed = true;
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rawRgbIds.emplace(LightColor::RED, rawId);
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}
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if (rawInfo->flags.test(InputLightClass::GREEN)) {
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hasGreenLed = true;
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rawRgbIds.emplace(LightColor::GREEN, rawId);
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}
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if (rawInfo->flags.test(InputLightClass::BLUE)) {
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hasBlueLed = true;
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rawRgbIds.emplace(LightColor::BLUE, rawId);
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}
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if (rawInfo->flags.test(InputLightClass::GLOBAL)) {
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rawGlobalId = rawId;
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}
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if (DEBUG_LIGHT_DETAILS) {
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ALOGD("Light rawId %d name %s max %d flags %s \n", rawInfo->id, rawInfo->name.c_str(),
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rawInfo->maxBrightness.value_or(MAX_BRIGHTNESS), rawInfo->flags.string().c_str());
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}
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}
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// Construct a player ID light
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if (playerIdLightIds.size() > 1) {
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std::unique_ptr<Light> light =
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std::make_unique<PlayerIdLight>(getDeviceContext(), playerIdName, ++mNextId,
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playerIdLightIds);
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mLights.insert_or_assign(light->id, std::move(light));
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// Remove these raw lights from raw light info as they've been used to compose a
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// Player ID light, so we do not expose these raw lights as mono lights.
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for (const auto& [playerId, rawId] : playerIdLightIds) {
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rawInfos.erase(rawId);
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}
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}
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// Construct a RGB light for composed RGB light
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if (hasRedLed && hasGreenLed && hasBlueLed) {
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if (DEBUG_LIGHT_DETAILS) {
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ALOGD("Rgb light ids [%d, %d, %d] \n", rawRgbIds.at(LightColor::RED),
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rawRgbIds.at(LightColor::GREEN), rawRgbIds.at(LightColor::BLUE));
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}
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std::unique_ptr<Light> light =
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std::make_unique<RgbLight>(getDeviceContext(), ++mNextId, rawRgbIds, rawGlobalId);
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mLights.insert_or_assign(light->id, std::move(light));
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// Remove from raw light info as they've been composed a RBG light.
|
|
rawInfos.erase(rawRgbIds.at(LightColor::RED));
|
|
rawInfos.erase(rawRgbIds.at(LightColor::GREEN));
|
|
rawInfos.erase(rawRgbIds.at(LightColor::BLUE));
|
|
if (rawGlobalId.has_value()) {
|
|
rawInfos.erase(rawGlobalId.value());
|
|
}
|
|
}
|
|
|
|
// Check the rest of raw light infos
|
|
for (const auto& [rawId, rawInfo] : rawInfos) {
|
|
// If the node is multi-color led, construct a MULTI_COLOR light
|
|
if (rawInfo.flags.test(InputLightClass::MULTI_INDEX) &&
|
|
rawInfo.flags.test(InputLightClass::MULTI_INTENSITY)) {
|
|
if (DEBUG_LIGHT_DETAILS) {
|
|
ALOGD("Multicolor light Id %d name %s \n", rawInfo.id, rawInfo.name.c_str());
|
|
}
|
|
std::unique_ptr<Light> light =
|
|
std::make_unique<MultiColorLight>(getDeviceContext(), rawInfo.name, ++mNextId,
|
|
rawInfo.id);
|
|
mLights.insert_or_assign(light->id, std::move(light));
|
|
continue;
|
|
}
|
|
// Construct a Mono LED light
|
|
if (DEBUG_LIGHT_DETAILS) {
|
|
ALOGD("Mono light Id %d name %s \n", rawInfo.id, rawInfo.name.c_str());
|
|
}
|
|
std::unique_ptr<Light> light = std::make_unique<MonoLight>(getDeviceContext(), rawInfo.name,
|
|
++mNextId, rawInfo.id);
|
|
|
|
mLights.insert_or_assign(light->id, std::move(light));
|
|
}
|
|
}
|
|
|
|
std::optional<int32_t> PeripheralController::getBatteryCapacity(int batteryId) {
|
|
return getDeviceContext().getBatteryCapacity(batteryId);
|
|
}
|
|
|
|
std::optional<int32_t> PeripheralController::getBatteryStatus(int batteryId) {
|
|
return getDeviceContext().getBatteryStatus(batteryId);
|
|
}
|
|
|
|
bool PeripheralController::setLightColor(int32_t lightId, int32_t color) {
|
|
auto it = mLights.find(lightId);
|
|
if (it == mLights.end()) {
|
|
return false;
|
|
}
|
|
auto& light = it->second;
|
|
if (DEBUG_LIGHT_DETAILS) {
|
|
ALOGD("setLightColor lightId %d type %s color 0x%x", lightId,
|
|
NamedEnum::string(light->type).c_str(), color);
|
|
}
|
|
return light->setLightColor(color);
|
|
}
|
|
|
|
std::optional<int32_t> PeripheralController::getLightColor(int32_t lightId) {
|
|
auto it = mLights.find(lightId);
|
|
if (it == mLights.end()) {
|
|
return std::nullopt;
|
|
}
|
|
auto& light = it->second;
|
|
std::optional<int32_t> color = light->getLightColor();
|
|
if (DEBUG_LIGHT_DETAILS) {
|
|
ALOGD("getLightColor lightId %d type %s color 0x%x", lightId,
|
|
NamedEnum::string(light->type).c_str(), color.value_or(0));
|
|
}
|
|
return color;
|
|
}
|
|
|
|
bool PeripheralController::setLightPlayerId(int32_t lightId, int32_t playerId) {
|
|
auto it = mLights.find(lightId);
|
|
if (it == mLights.end()) {
|
|
return false;
|
|
}
|
|
auto& light = it->second;
|
|
return light->setLightPlayerId(playerId);
|
|
}
|
|
|
|
std::optional<int32_t> PeripheralController::getLightPlayerId(int32_t lightId) {
|
|
auto it = mLights.find(lightId);
|
|
if (it == mLights.end()) {
|
|
return std::nullopt;
|
|
}
|
|
auto& light = it->second;
|
|
return light->getLightPlayerId();
|
|
}
|
|
|
|
int32_t PeripheralController::getEventHubId() const {
|
|
return getDeviceContext().getEventHubId();
|
|
}
|
|
|
|
} // namespace android
|