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2667 lines
89 KiB
2667 lines
89 KiB
/* |
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* Copyright 2015 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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|
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//#define LOG_NDEBUG 0 |
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|
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#undef LOG_TAG |
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#define LOG_TAG "HWC2On1Adapter" |
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#define ATRACE_TAG ATRACE_TAG_GRAPHICS |
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|
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#include "HWC2On1Adapter.h" |
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|
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#include <hardware/hwcomposer.h> |
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#include <log/log.h> |
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#include <utils/Trace.h> |
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|
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#include <cstdlib> |
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#include <chrono> |
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#include <inttypes.h> |
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#include <sstream> |
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|
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using namespace std::chrono_literals; |
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|
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static bool operator==(const hwc_color_t& lhs, const hwc_color_t& rhs) { |
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return lhs.r == rhs.r && |
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lhs.g == rhs.g && |
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lhs.b == rhs.b && |
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lhs.a == rhs.a; |
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} |
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static bool operator==(const hwc_rect_t& lhs, const hwc_rect_t& rhs) { |
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return lhs.left == rhs.left && |
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lhs.top == rhs.top && |
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lhs.right == rhs.right && |
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lhs.bottom == rhs.bottom; |
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} |
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static bool operator==(const hwc_frect_t& lhs, const hwc_frect_t& rhs) { |
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return lhs.left == rhs.left && |
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lhs.top == rhs.top && |
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lhs.right == rhs.right && |
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lhs.bottom == rhs.bottom; |
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} |
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template <typename T> |
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static inline bool operator!=(const T& lhs, const T& rhs) |
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{ |
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return !(lhs == rhs); |
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} |
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static uint8_t getMinorVersion(struct hwc_composer_device_1* device) |
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{ |
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auto version = device->common.version & HARDWARE_API_VERSION_2_MAJ_MIN_MASK; |
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return (version >> 16) & 0xF; |
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} |
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|
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template <typename PFN, typename T> |
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static hwc2_function_pointer_t asFP(T function) |
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{ |
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static_assert(std::is_same<PFN, T>::value, "Incompatible function pointer"); |
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return reinterpret_cast<hwc2_function_pointer_t>(function); |
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} |
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using namespace HWC2; |
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static constexpr Attribute ColorMode = static_cast<Attribute>(6); |
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namespace android { |
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void HWC2On1Adapter::DisplayContentsDeleter::operator()( |
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hwc_display_contents_1_t* contents) |
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{ |
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if (contents != nullptr) { |
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for (size_t l = 0; l < contents->numHwLayers; ++l) { |
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auto& layer = contents->hwLayers[l]; |
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std::free(const_cast<hwc_rect_t*>(layer.visibleRegionScreen.rects)); |
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} |
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} |
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std::free(contents); |
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} |
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class HWC2On1Adapter::Callbacks : public hwc_procs_t { |
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public: |
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explicit Callbacks(HWC2On1Adapter& adapter) : mAdapter(adapter) { |
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invalidate = &invalidateHook; |
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vsync = &vsyncHook; |
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hotplug = &hotplugHook; |
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} |
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static void invalidateHook(const hwc_procs_t* procs) { |
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auto callbacks = static_cast<const Callbacks*>(procs); |
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callbacks->mAdapter.hwc1Invalidate(); |
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} |
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static void vsyncHook(const hwc_procs_t* procs, int display, |
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int64_t timestamp) { |
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auto callbacks = static_cast<const Callbacks*>(procs); |
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callbacks->mAdapter.hwc1Vsync(display, timestamp); |
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} |
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static void hotplugHook(const hwc_procs_t* procs, int display, |
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int connected) { |
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auto callbacks = static_cast<const Callbacks*>(procs); |
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callbacks->mAdapter.hwc1Hotplug(display, connected); |
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} |
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private: |
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HWC2On1Adapter& mAdapter; |
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}; |
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static int closeHook(hw_device_t* /*device*/) |
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{ |
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// Do nothing, since the real work is done in the class destructor, but we |
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// need to provide a valid function pointer for hwc2_close to call |
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return 0; |
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} |
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HWC2On1Adapter::HWC2On1Adapter(hwc_composer_device_1_t* hwc1Device) |
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: mDumpString(), |
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mHwc1Device(hwc1Device), |
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mHwc1MinorVersion(getMinorVersion(hwc1Device)), |
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mHwc1SupportsVirtualDisplays(false), |
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mHwc1Callbacks(std::make_unique<Callbacks>(*this)), |
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mCapabilities(), |
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mLayers(), |
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mHwc1VirtualDisplay(), |
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mStateMutex(), |
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mCallbacks(), |
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mHasPendingInvalidate(false), |
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mPendingVsyncs(), |
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mPendingHotplugs(), |
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mDisplays(), |
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mHwc1DisplayMap() |
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{ |
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common.close = closeHook; |
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getCapabilities = getCapabilitiesHook; |
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getFunction = getFunctionHook; |
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populateCapabilities(); |
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populatePrimary(); |
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mHwc1Device->registerProcs(mHwc1Device, |
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static_cast<const hwc_procs_t*>(mHwc1Callbacks.get())); |
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} |
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HWC2On1Adapter::~HWC2On1Adapter() { |
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hwc_close_1(mHwc1Device); |
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} |
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void HWC2On1Adapter::doGetCapabilities(uint32_t* outCount, |
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int32_t* outCapabilities) |
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{ |
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if (outCapabilities == nullptr) { |
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*outCount = mCapabilities.size(); |
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return; |
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} |
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auto capabilityIter = mCapabilities.cbegin(); |
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for (size_t written = 0; written < *outCount; ++written) { |
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if (capabilityIter == mCapabilities.cend()) { |
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return; |
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} |
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outCapabilities[written] = static_cast<int32_t>(*capabilityIter); |
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++capabilityIter; |
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} |
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} |
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hwc2_function_pointer_t HWC2On1Adapter::doGetFunction( |
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FunctionDescriptor descriptor) |
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{ |
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switch (descriptor) { |
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// Device functions |
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case FunctionDescriptor::CreateVirtualDisplay: |
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return asFP<HWC2_PFN_CREATE_VIRTUAL_DISPLAY>( |
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createVirtualDisplayHook); |
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case FunctionDescriptor::DestroyVirtualDisplay: |
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return asFP<HWC2_PFN_DESTROY_VIRTUAL_DISPLAY>( |
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destroyVirtualDisplayHook); |
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case FunctionDescriptor::Dump: |
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return asFP<HWC2_PFN_DUMP>(dumpHook); |
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case FunctionDescriptor::GetMaxVirtualDisplayCount: |
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return asFP<HWC2_PFN_GET_MAX_VIRTUAL_DISPLAY_COUNT>( |
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getMaxVirtualDisplayCountHook); |
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case FunctionDescriptor::RegisterCallback: |
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return asFP<HWC2_PFN_REGISTER_CALLBACK>(registerCallbackHook); |
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|
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// Display functions |
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case FunctionDescriptor::AcceptDisplayChanges: |
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return asFP<HWC2_PFN_ACCEPT_DISPLAY_CHANGES>( |
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displayHook<decltype(&Display::acceptChanges), |
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&Display::acceptChanges>); |
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case FunctionDescriptor::CreateLayer: |
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return asFP<HWC2_PFN_CREATE_LAYER>( |
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displayHook<decltype(&Display::createLayer), |
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&Display::createLayer, hwc2_layer_t*>); |
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case FunctionDescriptor::DestroyLayer: |
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return asFP<HWC2_PFN_DESTROY_LAYER>( |
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displayHook<decltype(&Display::destroyLayer), |
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&Display::destroyLayer, hwc2_layer_t>); |
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case FunctionDescriptor::GetActiveConfig: |
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return asFP<HWC2_PFN_GET_ACTIVE_CONFIG>( |
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displayHook<decltype(&Display::getActiveConfig), |
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&Display::getActiveConfig, hwc2_config_t*>); |
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case FunctionDescriptor::GetChangedCompositionTypes: |
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return asFP<HWC2_PFN_GET_CHANGED_COMPOSITION_TYPES>( |
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displayHook<decltype(&Display::getChangedCompositionTypes), |
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&Display::getChangedCompositionTypes, uint32_t*, |
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hwc2_layer_t*, int32_t*>); |
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case FunctionDescriptor::GetColorModes: |
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return asFP<HWC2_PFN_GET_COLOR_MODES>( |
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displayHook<decltype(&Display::getColorModes), |
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&Display::getColorModes, uint32_t*, int32_t*>); |
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case FunctionDescriptor::GetDisplayAttribute: |
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return asFP<HWC2_PFN_GET_DISPLAY_ATTRIBUTE>( |
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getDisplayAttributeHook); |
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case FunctionDescriptor::GetDisplayConfigs: |
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return asFP<HWC2_PFN_GET_DISPLAY_CONFIGS>( |
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displayHook<decltype(&Display::getConfigs), |
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&Display::getConfigs, uint32_t*, hwc2_config_t*>); |
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case FunctionDescriptor::GetDisplayName: |
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return asFP<HWC2_PFN_GET_DISPLAY_NAME>( |
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displayHook<decltype(&Display::getName), |
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&Display::getName, uint32_t*, char*>); |
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case FunctionDescriptor::GetDisplayRequests: |
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return asFP<HWC2_PFN_GET_DISPLAY_REQUESTS>( |
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displayHook<decltype(&Display::getRequests), |
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&Display::getRequests, int32_t*, uint32_t*, hwc2_layer_t*, |
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int32_t*>); |
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case FunctionDescriptor::GetDisplayType: |
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return asFP<HWC2_PFN_GET_DISPLAY_TYPE>( |
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displayHook<decltype(&Display::getType), |
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&Display::getType, int32_t*>); |
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case FunctionDescriptor::GetDozeSupport: |
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return asFP<HWC2_PFN_GET_DOZE_SUPPORT>( |
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displayHook<decltype(&Display::getDozeSupport), |
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&Display::getDozeSupport, int32_t*>); |
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case FunctionDescriptor::GetHdrCapabilities: |
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return asFP<HWC2_PFN_GET_HDR_CAPABILITIES>( |
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displayHook<decltype(&Display::getHdrCapabilities), |
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&Display::getHdrCapabilities, uint32_t*, int32_t*, float*, |
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float*, float*>); |
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case FunctionDescriptor::GetReleaseFences: |
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return asFP<HWC2_PFN_GET_RELEASE_FENCES>( |
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displayHook<decltype(&Display::getReleaseFences), |
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&Display::getReleaseFences, uint32_t*, hwc2_layer_t*, |
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int32_t*>); |
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case FunctionDescriptor::PresentDisplay: |
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return asFP<HWC2_PFN_PRESENT_DISPLAY>( |
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displayHook<decltype(&Display::present), |
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&Display::present, int32_t*>); |
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case FunctionDescriptor::SetActiveConfig: |
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return asFP<HWC2_PFN_SET_ACTIVE_CONFIG>( |
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displayHook<decltype(&Display::setActiveConfig), |
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&Display::setActiveConfig, hwc2_config_t>); |
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case FunctionDescriptor::SetClientTarget: |
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return asFP<HWC2_PFN_SET_CLIENT_TARGET>( |
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displayHook<decltype(&Display::setClientTarget), |
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&Display::setClientTarget, buffer_handle_t, int32_t, |
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int32_t, hwc_region_t>); |
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case FunctionDescriptor::SetColorMode: |
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return asFP<HWC2_PFN_SET_COLOR_MODE>(setColorModeHook); |
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case FunctionDescriptor::SetColorTransform: |
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return asFP<HWC2_PFN_SET_COLOR_TRANSFORM>(setColorTransformHook); |
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case FunctionDescriptor::SetOutputBuffer: |
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return asFP<HWC2_PFN_SET_OUTPUT_BUFFER>( |
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displayHook<decltype(&Display::setOutputBuffer), |
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&Display::setOutputBuffer, buffer_handle_t, int32_t>); |
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case FunctionDescriptor::SetPowerMode: |
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return asFP<HWC2_PFN_SET_POWER_MODE>(setPowerModeHook); |
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case FunctionDescriptor::SetVsyncEnabled: |
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return asFP<HWC2_PFN_SET_VSYNC_ENABLED>(setVsyncEnabledHook); |
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case FunctionDescriptor::ValidateDisplay: |
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return asFP<HWC2_PFN_VALIDATE_DISPLAY>( |
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displayHook<decltype(&Display::validate), |
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&Display::validate, uint32_t*, uint32_t*>); |
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|
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// Layer functions |
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case FunctionDescriptor::SetCursorPosition: |
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return asFP<HWC2_PFN_SET_CURSOR_POSITION>( |
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layerHook<decltype(&Layer::setCursorPosition), |
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&Layer::setCursorPosition, int32_t, int32_t>); |
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case FunctionDescriptor::SetLayerBuffer: |
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return asFP<HWC2_PFN_SET_LAYER_BUFFER>( |
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layerHook<decltype(&Layer::setBuffer), &Layer::setBuffer, |
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buffer_handle_t, int32_t>); |
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case FunctionDescriptor::SetLayerSurfaceDamage: |
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return asFP<HWC2_PFN_SET_LAYER_SURFACE_DAMAGE>( |
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layerHook<decltype(&Layer::setSurfaceDamage), |
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&Layer::setSurfaceDamage, hwc_region_t>); |
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|
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// Layer state functions |
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case FunctionDescriptor::SetLayerBlendMode: |
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return asFP<HWC2_PFN_SET_LAYER_BLEND_MODE>( |
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setLayerBlendModeHook); |
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case FunctionDescriptor::SetLayerColor: |
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return asFP<HWC2_PFN_SET_LAYER_COLOR>( |
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layerHook<decltype(&Layer::setColor), &Layer::setColor, |
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hwc_color_t>); |
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case FunctionDescriptor::SetLayerCompositionType: |
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return asFP<HWC2_PFN_SET_LAYER_COMPOSITION_TYPE>( |
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setLayerCompositionTypeHook); |
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case FunctionDescriptor::SetLayerDataspace: |
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return asFP<HWC2_PFN_SET_LAYER_DATASPACE>(setLayerDataspaceHook); |
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case FunctionDescriptor::SetLayerDisplayFrame: |
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return asFP<HWC2_PFN_SET_LAYER_DISPLAY_FRAME>( |
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layerHook<decltype(&Layer::setDisplayFrame), |
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&Layer::setDisplayFrame, hwc_rect_t>); |
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case FunctionDescriptor::SetLayerPlaneAlpha: |
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return asFP<HWC2_PFN_SET_LAYER_PLANE_ALPHA>( |
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layerHook<decltype(&Layer::setPlaneAlpha), |
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&Layer::setPlaneAlpha, float>); |
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case FunctionDescriptor::SetLayerSidebandStream: |
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return asFP<HWC2_PFN_SET_LAYER_SIDEBAND_STREAM>( |
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layerHook<decltype(&Layer::setSidebandStream), |
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&Layer::setSidebandStream, const native_handle_t*>); |
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case FunctionDescriptor::SetLayerSourceCrop: |
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return asFP<HWC2_PFN_SET_LAYER_SOURCE_CROP>( |
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layerHook<decltype(&Layer::setSourceCrop), |
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&Layer::setSourceCrop, hwc_frect_t>); |
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case FunctionDescriptor::SetLayerTransform: |
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return asFP<HWC2_PFN_SET_LAYER_TRANSFORM>(setLayerTransformHook); |
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case FunctionDescriptor::SetLayerVisibleRegion: |
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return asFP<HWC2_PFN_SET_LAYER_VISIBLE_REGION>( |
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layerHook<decltype(&Layer::setVisibleRegion), |
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&Layer::setVisibleRegion, hwc_region_t>); |
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case FunctionDescriptor::SetLayerZOrder: |
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return asFP<HWC2_PFN_SET_LAYER_Z_ORDER>(setLayerZOrderHook); |
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|
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default: |
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ALOGE("doGetFunction: Unknown function descriptor: %d (%s)", |
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static_cast<int32_t>(descriptor), |
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to_string(descriptor).c_str()); |
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return nullptr; |
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} |
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} |
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|
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// Device functions |
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|
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Error HWC2On1Adapter::createVirtualDisplay(uint32_t width, |
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uint32_t height, hwc2_display_t* outDisplay) |
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{ |
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std::unique_lock<std::recursive_timed_mutex> lock(mStateMutex); |
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|
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if (mHwc1VirtualDisplay) { |
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// We have already allocated our only HWC1 virtual display |
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ALOGE("createVirtualDisplay: HWC1 virtual display already allocated"); |
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return Error::NoResources; |
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} |
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|
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if (MAX_VIRTUAL_DISPLAY_DIMENSION != 0 && |
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(width > MAX_VIRTUAL_DISPLAY_DIMENSION || |
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height > MAX_VIRTUAL_DISPLAY_DIMENSION)) { |
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ALOGE("createVirtualDisplay: Can't create a virtual display with" |
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" a dimension > %u (tried %u x %u)", |
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MAX_VIRTUAL_DISPLAY_DIMENSION, width, height); |
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return Error::NoResources; |
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} |
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|
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mHwc1VirtualDisplay = std::make_shared<HWC2On1Adapter::Display>(*this, |
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HWC2::DisplayType::Virtual); |
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mHwc1VirtualDisplay->populateConfigs(width, height); |
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const auto displayId = mHwc1VirtualDisplay->getId(); |
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mHwc1DisplayMap[HWC_DISPLAY_VIRTUAL] = displayId; |
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mHwc1VirtualDisplay->setHwc1Id(HWC_DISPLAY_VIRTUAL); |
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mDisplays.emplace(displayId, mHwc1VirtualDisplay); |
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*outDisplay = displayId; |
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|
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return Error::None; |
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} |
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Error HWC2On1Adapter::destroyVirtualDisplay(hwc2_display_t displayId) |
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{ |
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std::unique_lock<std::recursive_timed_mutex> lock(mStateMutex); |
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|
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if (!mHwc1VirtualDisplay || (mHwc1VirtualDisplay->getId() != displayId)) { |
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return Error::BadDisplay; |
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} |
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|
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mHwc1VirtualDisplay.reset(); |
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mHwc1DisplayMap.erase(HWC_DISPLAY_VIRTUAL); |
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mDisplays.erase(displayId); |
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|
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return Error::None; |
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} |
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|
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void HWC2On1Adapter::dump(uint32_t* outSize, char* outBuffer) |
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{ |
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if (outBuffer != nullptr) { |
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auto copiedBytes = mDumpString.copy(outBuffer, *outSize); |
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*outSize = static_cast<uint32_t>(copiedBytes); |
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return; |
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} |
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|
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std::stringstream output; |
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|
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output << "-- HWC2On1Adapter --\n"; |
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|
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output << "Adapting to a HWC 1." << static_cast<int>(mHwc1MinorVersion) << |
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" device\n"; |
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|
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// Attempt to acquire the lock for 1 second, but proceed without the lock |
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// after that, so we can still get some information if we're deadlocked |
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std::unique_lock<std::recursive_timed_mutex> lock(mStateMutex, |
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std::defer_lock); |
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lock.try_lock_for(1s); |
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|
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if (mCapabilities.empty()) { |
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output << "Capabilities: None\n"; |
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} else { |
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output << "Capabilities:\n"; |
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for (auto capability : mCapabilities) { |
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output << " " << to_string(capability) << '\n'; |
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} |
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} |
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|
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output << "Displays:\n"; |
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for (const auto& element : mDisplays) { |
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const auto& display = element.second; |
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output << display->dump(); |
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} |
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output << '\n'; |
|
|
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// Release the lock before calling into HWC1, and since we no longer require |
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// mutual exclusion to access mCapabilities or mDisplays |
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lock.unlock(); |
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|
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if (mHwc1Device->dump) { |
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output << "HWC1 dump:\n"; |
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std::vector<char> hwc1Dump(4096); |
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// Call with size - 1 to preserve a null character at the end |
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mHwc1Device->dump(mHwc1Device, hwc1Dump.data(), |
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static_cast<int>(hwc1Dump.size() - 1)); |
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output << hwc1Dump.data(); |
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} |
|
|
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mDumpString = output.str(); |
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*outSize = static_cast<uint32_t>(mDumpString.size()); |
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} |
|
|
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uint32_t HWC2On1Adapter::getMaxVirtualDisplayCount() |
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{ |
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return mHwc1SupportsVirtualDisplays ? 1 : 0; |
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} |
|
|
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static bool isValid(Callback descriptor) { |
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switch (descriptor) { |
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case Callback::Hotplug: // Fall-through |
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case Callback::Refresh: // Fall-through |
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case Callback::Vsync: return true; |
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default: return false; |
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} |
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} |
|
|
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Error HWC2On1Adapter::registerCallback(Callback descriptor, |
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hwc2_callback_data_t callbackData, hwc2_function_pointer_t pointer) |
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{ |
|
if (!isValid(descriptor)) { |
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return Error::BadParameter; |
|
} |
|
|
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ALOGV("registerCallback(%s, %p, %p)", to_string(descriptor).c_str(), |
|
callbackData, pointer); |
|
|
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std::unique_lock<std::recursive_timed_mutex> lock(mStateMutex); |
|
|
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mCallbacks[descriptor] = {callbackData, pointer}; |
|
|
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bool hasPendingInvalidate = false; |
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std::vector<hwc2_display_t> displayIds; |
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std::vector<std::pair<hwc2_display_t, int64_t>> pendingVsyncs; |
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std::vector<std::pair<hwc2_display_t, int>> pendingHotplugs; |
|
|
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if (descriptor == Callback::Refresh) { |
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hasPendingInvalidate = mHasPendingInvalidate; |
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if (hasPendingInvalidate) { |
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for (auto& displayPair : mDisplays) { |
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displayIds.emplace_back(displayPair.first); |
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} |
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} |
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mHasPendingInvalidate = false; |
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} else if (descriptor == Callback::Vsync) { |
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for (auto pending : mPendingVsyncs) { |
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auto hwc1DisplayId = pending.first; |
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if (mHwc1DisplayMap.count(hwc1DisplayId) == 0) { |
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ALOGE("hwc1Vsync: Couldn't find display for HWC1 id %d", |
|
hwc1DisplayId); |
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continue; |
|
} |
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auto displayId = mHwc1DisplayMap[hwc1DisplayId]; |
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auto timestamp = pending.second; |
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pendingVsyncs.emplace_back(displayId, timestamp); |
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} |
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mPendingVsyncs.clear(); |
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} else if (descriptor == Callback::Hotplug) { |
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// Hotplug the primary display |
|
pendingHotplugs.emplace_back(mHwc1DisplayMap[HWC_DISPLAY_PRIMARY], |
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static_cast<int32_t>(Connection::Connected)); |
|
|
|
for (auto pending : mPendingHotplugs) { |
|
auto hwc1DisplayId = pending.first; |
|
if (mHwc1DisplayMap.count(hwc1DisplayId) == 0) { |
|
ALOGE("hwc1Hotplug: Couldn't find display for HWC1 id %d", |
|
hwc1DisplayId); |
|
continue; |
|
} |
|
auto displayId = mHwc1DisplayMap[hwc1DisplayId]; |
|
auto connected = pending.second; |
|
pendingHotplugs.emplace_back(displayId, connected); |
|
} |
|
} |
|
|
|
// Call pending callbacks without the state lock held |
|
lock.unlock(); |
|
|
|
if (hasPendingInvalidate) { |
|
auto refresh = reinterpret_cast<HWC2_PFN_REFRESH>(pointer); |
|
for (auto displayId : displayIds) { |
|
refresh(callbackData, displayId); |
|
} |
|
} |
|
if (!pendingVsyncs.empty()) { |
|
auto vsync = reinterpret_cast<HWC2_PFN_VSYNC>(pointer); |
|
for (auto& pendingVsync : pendingVsyncs) { |
|
vsync(callbackData, pendingVsync.first, pendingVsync.second); |
|
} |
|
} |
|
if (!pendingHotplugs.empty()) { |
|
auto hotplug = reinterpret_cast<HWC2_PFN_HOTPLUG>(pointer); |
|
for (auto& pendingHotplug : pendingHotplugs) { |
|
hotplug(callbackData, pendingHotplug.first, pendingHotplug.second); |
|
} |
|
} |
|
return Error::None; |
|
} |
|
|
|
// Display functions |
|
|
|
std::atomic<hwc2_display_t> HWC2On1Adapter::Display::sNextId(1); |
|
|
|
HWC2On1Adapter::Display::Display(HWC2On1Adapter& device, HWC2::DisplayType type) |
|
: mId(sNextId++), |
|
mDevice(device), |
|
mDirtyCount(0), |
|
mStateMutex(), |
|
mZIsDirty(false), |
|
mHwc1RequestedContents(nullptr), |
|
mHwc1ReceivedContents(nullptr), |
|
mRetireFence(), |
|
mChanges(), |
|
mHwc1Id(-1), |
|
mConfigs(), |
|
mActiveConfig(nullptr), |
|
mActiveColorMode(static_cast<android_color_mode_t>(-1)), |
|
mName(), |
|
mType(type), |
|
mPowerMode(PowerMode::Off), |
|
mVsyncEnabled(Vsync::Invalid), |
|
mClientTarget(), |
|
mOutputBuffer(), |
|
mHasColorTransform(false), |
|
mLayers(), |
|
mHwc1LayerMap() {} |
|
|
|
Error HWC2On1Adapter::Display::acceptChanges() |
|
{ |
|
std::unique_lock<std::recursive_mutex> lock(mStateMutex); |
|
|
|
if (!mChanges) { |
|
ALOGV("[%" PRIu64 "] acceptChanges failed, not validated", mId); |
|
return Error::NotValidated; |
|
} |
|
|
|
ALOGV("[%" PRIu64 "] acceptChanges", mId); |
|
|
|
for (auto& change : mChanges->getTypeChanges()) { |
|
auto layerId = change.first; |
|
auto type = change.second; |
|
auto layer = mDevice.mLayers[layerId]; |
|
layer->setCompositionType(type); |
|
} |
|
|
|
mChanges->clearTypeChanges(); |
|
|
|
mHwc1RequestedContents = std::move(mHwc1ReceivedContents); |
|
|
|
return Error::None; |
|
} |
|
|
|
Error HWC2On1Adapter::Display::createLayer(hwc2_layer_t* outLayerId) |
|
{ |
|
std::unique_lock<std::recursive_mutex> lock(mStateMutex); |
|
|
|
auto layer = *mLayers.emplace(std::make_shared<Layer>(*this)); |
|
mDevice.mLayers.emplace(std::make_pair(layer->getId(), layer)); |
|
*outLayerId = layer->getId(); |
|
ALOGV("[%" PRIu64 "] created layer %" PRIu64, mId, *outLayerId); |
|
return Error::None; |
|
} |
|
|
|
Error HWC2On1Adapter::Display::destroyLayer(hwc2_layer_t layerId) |
|
{ |
|
std::unique_lock<std::recursive_mutex> lock(mStateMutex); |
|
|
|
const auto mapLayer = mDevice.mLayers.find(layerId); |
|
if (mapLayer == mDevice.mLayers.end()) { |
|
ALOGV("[%" PRIu64 "] destroyLayer(%" PRIu64 ") failed: no such layer", |
|
mId, layerId); |
|
return Error::BadLayer; |
|
} |
|
const auto layer = mapLayer->second; |
|
mDevice.mLayers.erase(mapLayer); |
|
const auto zRange = mLayers.equal_range(layer); |
|
for (auto current = zRange.first; current != zRange.second; ++current) { |
|
if (**current == *layer) { |
|
current = mLayers.erase(current); |
|
break; |
|
} |
|
} |
|
ALOGV("[%" PRIu64 "] destroyed layer %" PRIu64, mId, layerId); |
|
return Error::None; |
|
} |
|
|
|
Error HWC2On1Adapter::Display::getActiveConfig(hwc2_config_t* outConfig) |
|
{ |
|
std::unique_lock<std::recursive_mutex> lock(mStateMutex); |
|
|
|
if (!mActiveConfig) { |
|
ALOGV("[%" PRIu64 "] getActiveConfig --> %s", mId, |
|
to_string(Error::BadConfig).c_str()); |
|
return Error::BadConfig; |
|
} |
|
auto configId = mActiveConfig->getId(); |
|
ALOGV("[%" PRIu64 "] getActiveConfig --> %u", mId, configId); |
|
*outConfig = configId; |
|
return Error::None; |
|
} |
|
|
|
Error HWC2On1Adapter::Display::getAttribute(hwc2_config_t configId, |
|
Attribute attribute, int32_t* outValue) |
|
{ |
|
std::unique_lock<std::recursive_mutex> lock(mStateMutex); |
|
|
|
if (configId > mConfigs.size() || !mConfigs[configId]->isOnDisplay(*this)) { |
|
ALOGV("[%" PRIu64 "] getAttribute failed: bad config (%u)", mId, |
|
configId); |
|
return Error::BadConfig; |
|
} |
|
*outValue = mConfigs[configId]->getAttribute(attribute); |
|
ALOGV("[%" PRIu64 "] getAttribute(%u, %s) --> %d", mId, configId, |
|
to_string(attribute).c_str(), *outValue); |
|
return Error::None; |
|
} |
|
|
|
Error HWC2On1Adapter::Display::getChangedCompositionTypes( |
|
uint32_t* outNumElements, hwc2_layer_t* outLayers, int32_t* outTypes) |
|
{ |
|
std::unique_lock<std::recursive_mutex> lock(mStateMutex); |
|
|
|
if (!mChanges) { |
|
ALOGE("[%" PRIu64 "] getChangedCompositionTypes failed: not validated", |
|
mId); |
|
return Error::NotValidated; |
|
} |
|
|
|
if ((outLayers == nullptr) || (outTypes == nullptr)) { |
|
*outNumElements = mChanges->getTypeChanges().size(); |
|
return Error::None; |
|
} |
|
|
|
uint32_t numWritten = 0; |
|
for (const auto& element : mChanges->getTypeChanges()) { |
|
if (numWritten == *outNumElements) { |
|
break; |
|
} |
|
auto layerId = element.first; |
|
auto intType = static_cast<int32_t>(element.second); |
|
ALOGV("Adding %" PRIu64 " %s", layerId, |
|
to_string(element.second).c_str()); |
|
outLayers[numWritten] = layerId; |
|
outTypes[numWritten] = intType; |
|
++numWritten; |
|
} |
|
*outNumElements = numWritten; |
|
|
|
return Error::None; |
|
} |
|
|
|
Error HWC2On1Adapter::Display::getColorModes(uint32_t* outNumModes, |
|
int32_t* outModes) |
|
{ |
|
std::unique_lock<std::recursive_mutex> lock(mStateMutex); |
|
|
|
if (!outModes) { |
|
*outNumModes = mColorModes.size(); |
|
return Error::None; |
|
} |
|
uint32_t numModes = std::min(*outNumModes, |
|
static_cast<uint32_t>(mColorModes.size())); |
|
std::copy_n(mColorModes.cbegin(), numModes, outModes); |
|
*outNumModes = numModes; |
|
return Error::None; |
|
} |
|
|
|
Error HWC2On1Adapter::Display::getConfigs(uint32_t* outNumConfigs, |
|
hwc2_config_t* outConfigs) |
|
{ |
|
std::unique_lock<std::recursive_mutex> lock(mStateMutex); |
|
|
|
if (!outConfigs) { |
|
*outNumConfigs = mConfigs.size(); |
|
return Error::None; |
|
} |
|
uint32_t numWritten = 0; |
|
for (const auto& config : mConfigs) { |
|
if (numWritten == *outNumConfigs) { |
|
break; |
|
} |
|
outConfigs[numWritten] = config->getId(); |
|
++numWritten; |
|
} |
|
*outNumConfigs = numWritten; |
|
return Error::None; |
|
} |
|
|
|
Error HWC2On1Adapter::Display::getDozeSupport(int32_t* outSupport) |
|
{ |
|
std::unique_lock<std::recursive_mutex> lock(mStateMutex); |
|
|
|
if (mDevice.mHwc1MinorVersion < 4 || mHwc1Id != 0) { |
|
*outSupport = 0; |
|
} else { |
|
*outSupport = 1; |
|
} |
|
return Error::None; |
|
} |
|
|
|
Error HWC2On1Adapter::Display::getHdrCapabilities(uint32_t* outNumTypes, |
|
int32_t* /*outTypes*/, float* /*outMaxLuminance*/, |
|
float* /*outMaxAverageLuminance*/, float* /*outMinLuminance*/) |
|
{ |
|
// This isn't supported on HWC1, so per the HWC2 header, return numTypes = 0 |
|
*outNumTypes = 0; |
|
return Error::None; |
|
} |
|
|
|
Error HWC2On1Adapter::Display::getName(uint32_t* outSize, char* outName) |
|
{ |
|
std::unique_lock<std::recursive_mutex> lock(mStateMutex); |
|
|
|
if (!outName) { |
|
*outSize = mName.size(); |
|
return Error::None; |
|
} |
|
auto numCopied = mName.copy(outName, *outSize); |
|
*outSize = numCopied; |
|
return Error::None; |
|
} |
|
|
|
Error HWC2On1Adapter::Display::getReleaseFences(uint32_t* outNumElements, |
|
hwc2_layer_t* outLayers, int32_t* outFences) |
|
{ |
|
std::unique_lock<std::recursive_mutex> lock(mStateMutex); |
|
|
|
uint32_t numWritten = 0; |
|
bool outputsNonNull = (outLayers != nullptr) && (outFences != nullptr); |
|
for (const auto& layer : mLayers) { |
|
if (outputsNonNull && (numWritten == *outNumElements)) { |
|
break; |
|
} |
|
|
|
auto releaseFence = layer->getReleaseFence(); |
|
if (releaseFence != Fence::NO_FENCE) { |
|
if (outputsNonNull) { |
|
outLayers[numWritten] = layer->getId(); |
|
outFences[numWritten] = releaseFence->dup(); |
|
} |
|
++numWritten; |
|
} |
|
} |
|
*outNumElements = numWritten; |
|
|
|
return Error::None; |
|
} |
|
|
|
Error HWC2On1Adapter::Display::getRequests(int32_t* outDisplayRequests, |
|
uint32_t* outNumElements, hwc2_layer_t* outLayers, |
|
int32_t* outLayerRequests) |
|
{ |
|
std::unique_lock<std::recursive_mutex> lock(mStateMutex); |
|
|
|
if (!mChanges) { |
|
return Error::NotValidated; |
|
} |
|
|
|
if (outLayers == nullptr || outLayerRequests == nullptr) { |
|
*outNumElements = mChanges->getNumLayerRequests(); |
|
return Error::None; |
|
} |
|
|
|
*outDisplayRequests = mChanges->getDisplayRequests(); |
|
uint32_t numWritten = 0; |
|
for (const auto& request : mChanges->getLayerRequests()) { |
|
if (numWritten == *outNumElements) { |
|
break; |
|
} |
|
outLayers[numWritten] = request.first; |
|
outLayerRequests[numWritten] = static_cast<int32_t>(request.second); |
|
++numWritten; |
|
} |
|
|
|
return Error::None; |
|
} |
|
|
|
Error HWC2On1Adapter::Display::getType(int32_t* outType) |
|
{ |
|
std::unique_lock<std::recursive_mutex> lock(mStateMutex); |
|
|
|
*outType = static_cast<int32_t>(mType); |
|
return Error::None; |
|
} |
|
|
|
Error HWC2On1Adapter::Display::present(int32_t* outRetireFence) |
|
{ |
|
std::unique_lock<std::recursive_mutex> lock(mStateMutex); |
|
|
|
if (mChanges) { |
|
Error error = mDevice.setAllDisplays(); |
|
if (error != Error::None) { |
|
ALOGE("[%" PRIu64 "] present: setAllDisplaysFailed (%s)", mId, |
|
to_string(error).c_str()); |
|
return error; |
|
} |
|
} |
|
|
|
*outRetireFence = mRetireFence.get()->dup(); |
|
ALOGV("[%" PRIu64 "] present returning retire fence %d", mId, |
|
*outRetireFence); |
|
|
|
return Error::None; |
|
} |
|
|
|
Error HWC2On1Adapter::Display::setActiveConfig(hwc2_config_t configId) |
|
{ |
|
std::unique_lock<std::recursive_mutex> lock(mStateMutex); |
|
|
|
auto config = getConfig(configId); |
|
if (!config) { |
|
return Error::BadConfig; |
|
} |
|
if (config == mActiveConfig) { |
|
return Error::None; |
|
} |
|
|
|
if (mDevice.mHwc1MinorVersion >= 4) { |
|
uint32_t hwc1Id = 0; |
|
auto error = config->getHwc1IdForColorMode(mActiveColorMode, &hwc1Id); |
|
if (error != Error::None) { |
|
return error; |
|
} |
|
|
|
int intError = mDevice.mHwc1Device->setActiveConfig(mDevice.mHwc1Device, |
|
mHwc1Id, static_cast<int>(hwc1Id)); |
|
if (intError != 0) { |
|
ALOGE("setActiveConfig: Failed to set active config on HWC1 (%d)", |
|
intError); |
|
return Error::BadConfig; |
|
} |
|
mActiveConfig = config; |
|
} |
|
|
|
return Error::None; |
|
} |
|
|
|
Error HWC2On1Adapter::Display::setClientTarget(buffer_handle_t target, |
|
int32_t acquireFence, int32_t /*dataspace*/, hwc_region_t /*damage*/) |
|
{ |
|
std::unique_lock<std::recursive_mutex> lock(mStateMutex); |
|
|
|
ALOGV("[%" PRIu64 "] setClientTarget(%p, %d)", mId, target, acquireFence); |
|
mClientTarget.setBuffer(target); |
|
mClientTarget.setFence(acquireFence); |
|
// dataspace and damage can't be used by HWC1, so ignore them |
|
return Error::None; |
|
} |
|
|
|
Error HWC2On1Adapter::Display::setColorMode(android_color_mode_t mode) |
|
{ |
|
std::unique_lock<std::recursive_mutex> lock (mStateMutex); |
|
|
|
ALOGV("[%" PRIu64 "] setColorMode(%d)", mId, mode); |
|
|
|
if (mode == mActiveColorMode) { |
|
return Error::None; |
|
} |
|
if (mColorModes.count(mode) == 0) { |
|
ALOGE("[%" PRIu64 "] Mode %d not found in mColorModes", mId, mode); |
|
return Error::Unsupported; |
|
} |
|
|
|
uint32_t hwc1Config = 0; |
|
auto error = mActiveConfig->getHwc1IdForColorMode(mode, &hwc1Config); |
|
if (error != Error::None) { |
|
return error; |
|
} |
|
|
|
ALOGV("[%" PRIu64 "] Setting HWC1 config %u", mId, hwc1Config); |
|
int intError = mDevice.mHwc1Device->setActiveConfig(mDevice.mHwc1Device, |
|
mHwc1Id, hwc1Config); |
|
if (intError != 0) { |
|
ALOGE("[%" PRIu64 "] Failed to set HWC1 config (%d)", mId, intError); |
|
return Error::Unsupported; |
|
} |
|
|
|
mActiveColorMode = mode; |
|
return Error::None; |
|
} |
|
|
|
Error HWC2On1Adapter::Display::setColorTransform(android_color_transform_t hint) |
|
{ |
|
std::unique_lock<std::recursive_mutex> lock(mStateMutex); |
|
|
|
ALOGV("%" PRIu64 "] setColorTransform(%d)", mId, |
|
static_cast<int32_t>(hint)); |
|
mHasColorTransform = (hint != HAL_COLOR_TRANSFORM_IDENTITY); |
|
return Error::None; |
|
} |
|
|
|
Error HWC2On1Adapter::Display::setOutputBuffer(buffer_handle_t buffer, |
|
int32_t releaseFence) |
|
{ |
|
std::unique_lock<std::recursive_mutex> lock(mStateMutex); |
|
|
|
ALOGV("[%" PRIu64 "] setOutputBuffer(%p, %d)", mId, buffer, releaseFence); |
|
mOutputBuffer.setBuffer(buffer); |
|
mOutputBuffer.setFence(releaseFence); |
|
return Error::None; |
|
} |
|
|
|
static bool isValid(PowerMode mode) |
|
{ |
|
switch (mode) { |
|
case PowerMode::Off: // Fall-through |
|
case PowerMode::DozeSuspend: // Fall-through |
|
case PowerMode::Doze: // Fall-through |
|
case PowerMode::On: return true; |
|
default: return false; |
|
} |
|
} |
|
|
|
static int getHwc1PowerMode(PowerMode mode) |
|
{ |
|
switch (mode) { |
|
case PowerMode::Off: return HWC_POWER_MODE_OFF; |
|
case PowerMode::DozeSuspend: return HWC_POWER_MODE_DOZE_SUSPEND; |
|
case PowerMode::Doze: return HWC_POWER_MODE_DOZE; |
|
case PowerMode::On: return HWC_POWER_MODE_NORMAL; |
|
default: return HWC_POWER_MODE_OFF; |
|
} |
|
} |
|
|
|
Error HWC2On1Adapter::Display::setPowerMode(PowerMode mode) |
|
{ |
|
if (!isValid(mode)) { |
|
return Error::BadParameter; |
|
} |
|
if (mode == mPowerMode) { |
|
return Error::None; |
|
} |
|
|
|
std::unique_lock<std::recursive_mutex> lock(mStateMutex); |
|
|
|
int error = 0; |
|
if (mDevice.mHwc1MinorVersion < 4) { |
|
error = mDevice.mHwc1Device->blank(mDevice.mHwc1Device, mHwc1Id, |
|
mode == PowerMode::Off); |
|
} else { |
|
error = mDevice.mHwc1Device->setPowerMode(mDevice.mHwc1Device, |
|
mHwc1Id, getHwc1PowerMode(mode)); |
|
} |
|
ALOGE_IF(error != 0, "setPowerMode: Failed to set power mode on HWC1 (%d)", |
|
error); |
|
|
|
ALOGV("[%" PRIu64 "] setPowerMode(%s)", mId, to_string(mode).c_str()); |
|
mPowerMode = mode; |
|
return Error::None; |
|
} |
|
|
|
static bool isValid(Vsync enable) { |
|
switch (enable) { |
|
case Vsync::Enable: // Fall-through |
|
case Vsync::Disable: return true; |
|
default: return false; |
|
} |
|
} |
|
|
|
Error HWC2On1Adapter::Display::setVsyncEnabled(Vsync enable) |
|
{ |
|
if (!isValid(enable)) { |
|
return Error::BadParameter; |
|
} |
|
if (enable == mVsyncEnabled) { |
|
return Error::None; |
|
} |
|
|
|
std::unique_lock<std::recursive_mutex> lock(mStateMutex); |
|
|
|
int error = mDevice.mHwc1Device->eventControl(mDevice.mHwc1Device, |
|
mHwc1Id, HWC_EVENT_VSYNC, enable == Vsync::Enable); |
|
ALOGE_IF(error != 0, "setVsyncEnabled: Failed to set vsync on HWC1 (%d)", |
|
error); |
|
|
|
mVsyncEnabled = enable; |
|
return Error::None; |
|
} |
|
|
|
Error HWC2On1Adapter::Display::validate(uint32_t* outNumTypes, |
|
uint32_t* outNumRequests) |
|
{ |
|
std::unique_lock<std::recursive_mutex> lock(mStateMutex); |
|
|
|
ALOGV("[%" PRIu64 "] Entering validate", mId); |
|
|
|
if (!mChanges) { |
|
if (!mDevice.prepareAllDisplays()) { |
|
return Error::BadDisplay; |
|
} |
|
} |
|
|
|
*outNumTypes = mChanges->getNumTypes(); |
|
*outNumRequests = mChanges->getNumLayerRequests(); |
|
ALOGV("[%" PRIu64 "] validate --> %u types, %u requests", mId, *outNumTypes, |
|
*outNumRequests); |
|
for (auto request : mChanges->getTypeChanges()) { |
|
ALOGV("Layer %" PRIu64 " --> %s", request.first, |
|
to_string(request.second).c_str()); |
|
} |
|
return *outNumTypes > 0 ? Error::HasChanges : Error::None; |
|
} |
|
|
|
// Display helpers |
|
|
|
Error HWC2On1Adapter::Display::updateLayerZ(hwc2_layer_t layerId, uint32_t z) |
|
{ |
|
std::unique_lock<std::recursive_mutex> lock(mStateMutex); |
|
|
|
const auto mapLayer = mDevice.mLayers.find(layerId); |
|
if (mapLayer == mDevice.mLayers.end()) { |
|
ALOGE("[%" PRIu64 "] updateLayerZ failed to find layer", mId); |
|
return Error::BadLayer; |
|
} |
|
|
|
const auto layer = mapLayer->second; |
|
const auto zRange = mLayers.equal_range(layer); |
|
bool layerOnDisplay = false; |
|
for (auto current = zRange.first; current != zRange.second; ++current) { |
|
if (**current == *layer) { |
|
if ((*current)->getZ() == z) { |
|
// Don't change anything if the Z hasn't changed |
|
return Error::None; |
|
} |
|
current = mLayers.erase(current); |
|
layerOnDisplay = true; |
|
break; |
|
} |
|
} |
|
|
|
if (!layerOnDisplay) { |
|
ALOGE("[%" PRIu64 "] updateLayerZ failed to find layer on display", |
|
mId); |
|
return Error::BadLayer; |
|
} |
|
|
|
layer->setZ(z); |
|
mLayers.emplace(std::move(layer)); |
|
mZIsDirty = true; |
|
|
|
return Error::None; |
|
} |
|
|
|
static constexpr uint32_t ATTRIBUTES_WITH_COLOR[] = { |
|
HWC_DISPLAY_VSYNC_PERIOD, |
|
HWC_DISPLAY_WIDTH, |
|
HWC_DISPLAY_HEIGHT, |
|
HWC_DISPLAY_DPI_X, |
|
HWC_DISPLAY_DPI_Y, |
|
HWC_DISPLAY_COLOR_TRANSFORM, |
|
HWC_DISPLAY_NO_ATTRIBUTE, |
|
}; |
|
|
|
static constexpr uint32_t ATTRIBUTES_WITHOUT_COLOR[] = { |
|
HWC_DISPLAY_VSYNC_PERIOD, |
|
HWC_DISPLAY_WIDTH, |
|
HWC_DISPLAY_HEIGHT, |
|
HWC_DISPLAY_DPI_X, |
|
HWC_DISPLAY_DPI_Y, |
|
HWC_DISPLAY_NO_ATTRIBUTE, |
|
}; |
|
|
|
static constexpr size_t NUM_ATTRIBUTES_WITH_COLOR = |
|
sizeof(ATTRIBUTES_WITH_COLOR) / sizeof(uint32_t); |
|
static_assert(sizeof(ATTRIBUTES_WITH_COLOR) > sizeof(ATTRIBUTES_WITHOUT_COLOR), |
|
"Attribute tables have unexpected sizes"); |
|
|
|
static constexpr uint32_t ATTRIBUTE_MAP_WITH_COLOR[] = { |
|
6, // HWC_DISPLAY_NO_ATTRIBUTE = 0 |
|
0, // HWC_DISPLAY_VSYNC_PERIOD = 1, |
|
1, // HWC_DISPLAY_WIDTH = 2, |
|
2, // HWC_DISPLAY_HEIGHT = 3, |
|
3, // HWC_DISPLAY_DPI_X = 4, |
|
4, // HWC_DISPLAY_DPI_Y = 5, |
|
5, // HWC_DISPLAY_COLOR_TRANSFORM = 6, |
|
}; |
|
|
|
static constexpr uint32_t ATTRIBUTE_MAP_WITHOUT_COLOR[] = { |
|
5, // HWC_DISPLAY_NO_ATTRIBUTE = 0 |
|
0, // HWC_DISPLAY_VSYNC_PERIOD = 1, |
|
1, // HWC_DISPLAY_WIDTH = 2, |
|
2, // HWC_DISPLAY_HEIGHT = 3, |
|
3, // HWC_DISPLAY_DPI_X = 4, |
|
4, // HWC_DISPLAY_DPI_Y = 5, |
|
}; |
|
|
|
template <uint32_t attribute> |
|
static constexpr bool attributesMatch() |
|
{ |
|
bool match = (attribute == |
|
ATTRIBUTES_WITH_COLOR[ATTRIBUTE_MAP_WITH_COLOR[attribute]]); |
|
if (attribute == HWC_DISPLAY_COLOR_TRANSFORM) { |
|
return match; |
|
} |
|
|
|
return match && (attribute == |
|
ATTRIBUTES_WITHOUT_COLOR[ATTRIBUTE_MAP_WITHOUT_COLOR[attribute]]); |
|
} |
|
static_assert(attributesMatch<HWC_DISPLAY_VSYNC_PERIOD>(), |
|
"Tables out of sync"); |
|
static_assert(attributesMatch<HWC_DISPLAY_WIDTH>(), "Tables out of sync"); |
|
static_assert(attributesMatch<HWC_DISPLAY_HEIGHT>(), "Tables out of sync"); |
|
static_assert(attributesMatch<HWC_DISPLAY_DPI_X>(), "Tables out of sync"); |
|
static_assert(attributesMatch<HWC_DISPLAY_DPI_Y>(), "Tables out of sync"); |
|
static_assert(attributesMatch<HWC_DISPLAY_COLOR_TRANSFORM>(), |
|
"Tables out of sync"); |
|
|
|
void HWC2On1Adapter::Display::populateConfigs() |
|
{ |
|
std::unique_lock<std::recursive_mutex> lock(mStateMutex); |
|
|
|
ALOGV("[%" PRIu64 "] populateConfigs", mId); |
|
|
|
if (mHwc1Id == -1) { |
|
ALOGE("populateConfigs: HWC1 ID not set"); |
|
return; |
|
} |
|
|
|
const size_t MAX_NUM_CONFIGS = 128; |
|
uint32_t configs[MAX_NUM_CONFIGS] = {}; |
|
size_t numConfigs = MAX_NUM_CONFIGS; |
|
mDevice.mHwc1Device->getDisplayConfigs(mDevice.mHwc1Device, mHwc1Id, |
|
configs, &numConfigs); |
|
|
|
for (size_t c = 0; c < numConfigs; ++c) { |
|
uint32_t hwc1ConfigId = configs[c]; |
|
auto newConfig = std::make_shared<Config>(*this); |
|
|
|
int32_t values[NUM_ATTRIBUTES_WITH_COLOR] = {}; |
|
bool hasColor = true; |
|
auto result = mDevice.mHwc1Device->getDisplayAttributes( |
|
mDevice.mHwc1Device, mHwc1Id, hwc1ConfigId, |
|
ATTRIBUTES_WITH_COLOR, values); |
|
if (result != 0) { |
|
mDevice.mHwc1Device->getDisplayAttributes(mDevice.mHwc1Device, |
|
mHwc1Id, hwc1ConfigId, ATTRIBUTES_WITHOUT_COLOR, values); |
|
hasColor = false; |
|
} |
|
|
|
auto attributeMap = hasColor ? |
|
ATTRIBUTE_MAP_WITH_COLOR : ATTRIBUTE_MAP_WITHOUT_COLOR; |
|
|
|
newConfig->setAttribute(Attribute::VsyncPeriod, |
|
values[attributeMap[HWC_DISPLAY_VSYNC_PERIOD]]); |
|
newConfig->setAttribute(Attribute::Width, |
|
values[attributeMap[HWC_DISPLAY_WIDTH]]); |
|
newConfig->setAttribute(Attribute::Height, |
|
values[attributeMap[HWC_DISPLAY_HEIGHT]]); |
|
newConfig->setAttribute(Attribute::DpiX, |
|
values[attributeMap[HWC_DISPLAY_DPI_X]]); |
|
newConfig->setAttribute(Attribute::DpiY, |
|
values[attributeMap[HWC_DISPLAY_DPI_Y]]); |
|
if (hasColor) { |
|
// In HWC1, color modes are referred to as color transforms. To avoid confusion with |
|
// the HWC2 concept of color transforms, we internally refer to them as color modes for |
|
// both HWC1 and 2. |
|
newConfig->setAttribute(ColorMode, |
|
values[attributeMap[HWC_DISPLAY_COLOR_TRANSFORM]]); |
|
} |
|
|
|
// We can only do this after attempting to read the color mode |
|
newConfig->setHwc1Id(hwc1ConfigId); |
|
|
|
for (auto& existingConfig : mConfigs) { |
|
if (existingConfig->merge(*newConfig)) { |
|
ALOGV("Merged config %d with existing config %u: %s", |
|
hwc1ConfigId, existingConfig->getId(), |
|
existingConfig->toString().c_str()); |
|
newConfig.reset(); |
|
break; |
|
} |
|
} |
|
|
|
// If it wasn't merged with any existing config, add it to the end |
|
if (newConfig) { |
|
newConfig->setId(static_cast<hwc2_config_t>(mConfigs.size())); |
|
ALOGV("Found new config %u: %s", newConfig->getId(), |
|
newConfig->toString().c_str()); |
|
mConfigs.emplace_back(std::move(newConfig)); |
|
} |
|
} |
|
|
|
initializeActiveConfig(); |
|
populateColorModes(); |
|
} |
|
|
|
void HWC2On1Adapter::Display::populateConfigs(uint32_t width, uint32_t height) |
|
{ |
|
std::unique_lock<std::recursive_mutex> lock(mStateMutex); |
|
|
|
mConfigs.emplace_back(std::make_shared<Config>(*this)); |
|
auto& config = mConfigs[0]; |
|
|
|
config->setAttribute(Attribute::Width, static_cast<int32_t>(width)); |
|
config->setAttribute(Attribute::Height, static_cast<int32_t>(height)); |
|
config->setHwc1Id(0); |
|
config->setId(0); |
|
mActiveConfig = config; |
|
} |
|
|
|
bool HWC2On1Adapter::Display::prepare() |
|
{ |
|
std::unique_lock<std::recursive_mutex> lock(mStateMutex); |
|
|
|
// Only prepare display contents for displays HWC1 knows about |
|
if (mHwc1Id == -1) { |
|
return true; |
|
} |
|
|
|
// It doesn't make sense to prepare a display for which there is no active |
|
// config, so return early |
|
if (!mActiveConfig) { |
|
ALOGE("[%" PRIu64 "] Attempted to prepare, but no config active", mId); |
|
return false; |
|
} |
|
|
|
ALOGV("[%" PRIu64 "] Entering prepare", mId); |
|
|
|
auto currentCount = mHwc1RequestedContents ? |
|
mHwc1RequestedContents->numHwLayers : 0; |
|
auto requiredCount = mLayers.size() + 1; |
|
ALOGV("[%" PRIu64 "] Requires %zd layers, %zd allocated in %p", mId, |
|
requiredCount, currentCount, mHwc1RequestedContents.get()); |
|
|
|
bool layerCountChanged = (currentCount != requiredCount); |
|
if (layerCountChanged) { |
|
reallocateHwc1Contents(); |
|
} |
|
|
|
bool applyAllState = false; |
|
if (layerCountChanged || mZIsDirty) { |
|
assignHwc1LayerIds(); |
|
mZIsDirty = false; |
|
applyAllState = true; |
|
} |
|
|
|
mHwc1RequestedContents->retireFenceFd = -1; |
|
mHwc1RequestedContents->flags = 0; |
|
if (isDirty() || applyAllState) { |
|
mHwc1RequestedContents->flags |= HWC_GEOMETRY_CHANGED; |
|
} |
|
|
|
for (auto& layer : mLayers) { |
|
auto& hwc1Layer = mHwc1RequestedContents->hwLayers[layer->getHwc1Id()]; |
|
hwc1Layer.releaseFenceFd = -1; |
|
layer->applyState(hwc1Layer, applyAllState); |
|
} |
|
|
|
mHwc1RequestedContents->outbuf = mOutputBuffer.getBuffer(); |
|
mHwc1RequestedContents->outbufAcquireFenceFd = mOutputBuffer.getFence(); |
|
|
|
prepareFramebufferTarget(); |
|
|
|
return true; |
|
} |
|
|
|
static void cloneHWCRegion(hwc_region_t& region) |
|
{ |
|
auto size = sizeof(hwc_rect_t) * region.numRects; |
|
auto newRects = static_cast<hwc_rect_t*>(std::malloc(size)); |
|
std::copy_n(region.rects, region.numRects, newRects); |
|
region.rects = newRects; |
|
} |
|
|
|
HWC2On1Adapter::Display::HWC1Contents |
|
HWC2On1Adapter::Display::cloneRequestedContents() const |
|
{ |
|
std::unique_lock<std::recursive_mutex> lock(mStateMutex); |
|
|
|
size_t size = sizeof(hwc_display_contents_1_t) + |
|
sizeof(hwc_layer_1_t) * (mHwc1RequestedContents->numHwLayers); |
|
auto contents = static_cast<hwc_display_contents_1_t*>(std::malloc(size)); |
|
std::memcpy(contents, mHwc1RequestedContents.get(), size); |
|
for (size_t layerId = 0; layerId < contents->numHwLayers; ++layerId) { |
|
auto& layer = contents->hwLayers[layerId]; |
|
// Deep copy the regions to avoid double-frees |
|
cloneHWCRegion(layer.visibleRegionScreen); |
|
cloneHWCRegion(layer.surfaceDamage); |
|
} |
|
return HWC1Contents(contents); |
|
} |
|
|
|
void HWC2On1Adapter::Display::setReceivedContents(HWC1Contents contents) |
|
{ |
|
std::unique_lock<std::recursive_mutex> lock(mStateMutex); |
|
|
|
mHwc1ReceivedContents = std::move(contents); |
|
|
|
mChanges.reset(new Changes); |
|
|
|
size_t numLayers = mHwc1ReceivedContents->numHwLayers; |
|
for (size_t hwc1Id = 0; hwc1Id < numLayers; ++hwc1Id) { |
|
const auto& receivedLayer = mHwc1ReceivedContents->hwLayers[hwc1Id]; |
|
if (mHwc1LayerMap.count(hwc1Id) == 0) { |
|
ALOGE_IF(receivedLayer.compositionType != HWC_FRAMEBUFFER_TARGET, |
|
"setReceivedContents: HWC1 layer %zd doesn't have a" |
|
" matching HWC2 layer, and isn't the framebuffer target", |
|
hwc1Id); |
|
continue; |
|
} |
|
|
|
Layer& layer = *mHwc1LayerMap[hwc1Id]; |
|
updateTypeChanges(receivedLayer, layer); |
|
updateLayerRequests(receivedLayer, layer); |
|
} |
|
} |
|
|
|
bool HWC2On1Adapter::Display::hasChanges() const |
|
{ |
|
std::unique_lock<std::recursive_mutex> lock(mStateMutex); |
|
return mChanges != nullptr; |
|
} |
|
|
|
Error HWC2On1Adapter::Display::set(hwc_display_contents_1& hwcContents) |
|
{ |
|
std::unique_lock<std::recursive_mutex> lock(mStateMutex); |
|
|
|
if (!mChanges || (mChanges->getNumTypes() > 0)) { |
|
ALOGE("[%" PRIu64 "] set failed: not validated", mId); |
|
return Error::NotValidated; |
|
} |
|
|
|
// Set up the client/framebuffer target |
|
auto numLayers = hwcContents.numHwLayers; |
|
|
|
// Close acquire fences on FRAMEBUFFER layers, since they will not be used |
|
// by HWC |
|
for (size_t l = 0; l < numLayers - 1; ++l) { |
|
auto& layer = hwcContents.hwLayers[l]; |
|
if (layer.compositionType == HWC_FRAMEBUFFER) { |
|
ALOGV("Closing fence %d for layer %zd", layer.acquireFenceFd, l); |
|
close(layer.acquireFenceFd); |
|
layer.acquireFenceFd = -1; |
|
} |
|
} |
|
|
|
auto& clientTargetLayer = hwcContents.hwLayers[numLayers - 1]; |
|
if (clientTargetLayer.compositionType == HWC_FRAMEBUFFER_TARGET) { |
|
clientTargetLayer.handle = mClientTarget.getBuffer(); |
|
clientTargetLayer.acquireFenceFd = mClientTarget.getFence(); |
|
} else { |
|
ALOGE("[%" PRIu64 "] set: last HWC layer wasn't FRAMEBUFFER_TARGET", |
|
mId); |
|
} |
|
|
|
mChanges.reset(); |
|
|
|
return Error::None; |
|
} |
|
|
|
void HWC2On1Adapter::Display::addRetireFence(int fenceFd) |
|
{ |
|
std::unique_lock<std::recursive_mutex> lock(mStateMutex); |
|
mRetireFence.add(fenceFd); |
|
} |
|
|
|
void HWC2On1Adapter::Display::addReleaseFences( |
|
const hwc_display_contents_1_t& hwcContents) |
|
{ |
|
std::unique_lock<std::recursive_mutex> lock(mStateMutex); |
|
|
|
size_t numLayers = hwcContents.numHwLayers; |
|
for (size_t hwc1Id = 0; hwc1Id < numLayers; ++hwc1Id) { |
|
const auto& receivedLayer = hwcContents.hwLayers[hwc1Id]; |
|
if (mHwc1LayerMap.count(hwc1Id) == 0) { |
|
if (receivedLayer.compositionType != HWC_FRAMEBUFFER_TARGET) { |
|
ALOGE("addReleaseFences: HWC1 layer %zd doesn't have a" |
|
" matching HWC2 layer, and isn't the framebuffer" |
|
" target", hwc1Id); |
|
} |
|
// Close the framebuffer target release fence since we will use the |
|
// display retire fence instead |
|
if (receivedLayer.releaseFenceFd != -1) { |
|
close(receivedLayer.releaseFenceFd); |
|
} |
|
continue; |
|
} |
|
|
|
Layer& layer = *mHwc1LayerMap[hwc1Id]; |
|
ALOGV("Adding release fence %d to layer %" PRIu64, |
|
receivedLayer.releaseFenceFd, layer.getId()); |
|
layer.addReleaseFence(receivedLayer.releaseFenceFd); |
|
} |
|
} |
|
|
|
bool HWC2On1Adapter::Display::hasColorTransform() const |
|
{ |
|
std::unique_lock<std::recursive_mutex> lock(mStateMutex); |
|
return mHasColorTransform; |
|
} |
|
|
|
static std::string hwc1CompositionString(int32_t type) |
|
{ |
|
switch (type) { |
|
case HWC_FRAMEBUFFER: return "Framebuffer"; |
|
case HWC_OVERLAY: return "Overlay"; |
|
case HWC_BACKGROUND: return "Background"; |
|
case HWC_FRAMEBUFFER_TARGET: return "FramebufferTarget"; |
|
case HWC_SIDEBAND: return "Sideband"; |
|
case HWC_CURSOR_OVERLAY: return "CursorOverlay"; |
|
default: |
|
return std::string("Unknown (") + std::to_string(type) + ")"; |
|
} |
|
} |
|
|
|
static std::string hwc1TransformString(int32_t transform) |
|
{ |
|
switch (transform) { |
|
case 0: return "None"; |
|
case HWC_TRANSFORM_FLIP_H: return "FlipH"; |
|
case HWC_TRANSFORM_FLIP_V: return "FlipV"; |
|
case HWC_TRANSFORM_ROT_90: return "Rotate90"; |
|
case HWC_TRANSFORM_ROT_180: return "Rotate180"; |
|
case HWC_TRANSFORM_ROT_270: return "Rotate270"; |
|
case HWC_TRANSFORM_FLIP_H_ROT_90: return "FlipHRotate90"; |
|
case HWC_TRANSFORM_FLIP_V_ROT_90: return "FlipVRotate90"; |
|
default: |
|
return std::string("Unknown (") + std::to_string(transform) + ")"; |
|
} |
|
} |
|
|
|
static std::string hwc1BlendModeString(int32_t mode) |
|
{ |
|
switch (mode) { |
|
case HWC_BLENDING_NONE: return "None"; |
|
case HWC_BLENDING_PREMULT: return "Premultiplied"; |
|
case HWC_BLENDING_COVERAGE: return "Coverage"; |
|
default: |
|
return std::string("Unknown (") + std::to_string(mode) + ")"; |
|
} |
|
} |
|
|
|
static std::string rectString(hwc_rect_t rect) |
|
{ |
|
std::stringstream output; |
|
output << "[" << rect.left << ", " << rect.top << ", "; |
|
output << rect.right << ", " << rect.bottom << "]"; |
|
return output.str(); |
|
} |
|
|
|
static std::string approximateFloatString(float f) |
|
{ |
|
if (static_cast<int32_t>(f) == f) { |
|
return std::to_string(static_cast<int32_t>(f)); |
|
} |
|
int32_t truncated = static_cast<int32_t>(f * 10); |
|
bool approximate = (static_cast<float>(truncated) != f * 10); |
|
const size_t BUFFER_SIZE = 32; |
|
char buffer[BUFFER_SIZE] = {}; |
|
auto bytesWritten = snprintf(buffer, BUFFER_SIZE, |
|
"%s%.1f", approximate ? "~" : "", f); |
|
return std::string(buffer, bytesWritten); |
|
} |
|
|
|
static std::string frectString(hwc_frect_t frect) |
|
{ |
|
std::stringstream output; |
|
output << "[" << approximateFloatString(frect.left) << ", "; |
|
output << approximateFloatString(frect.top) << ", "; |
|
output << approximateFloatString(frect.right) << ", "; |
|
output << approximateFloatString(frect.bottom) << "]"; |
|
return output.str(); |
|
} |
|
|
|
static std::string colorString(hwc_color_t color) |
|
{ |
|
std::stringstream output; |
|
output << "RGBA ["; |
|
output << static_cast<int32_t>(color.r) << ", "; |
|
output << static_cast<int32_t>(color.g) << ", "; |
|
output << static_cast<int32_t>(color.b) << ", "; |
|
output << static_cast<int32_t>(color.a) << "]"; |
|
return output.str(); |
|
} |
|
|
|
static std::string alphaString(float f) |
|
{ |
|
const size_t BUFFER_SIZE = 8; |
|
char buffer[BUFFER_SIZE] = {}; |
|
auto bytesWritten = snprintf(buffer, BUFFER_SIZE, "%.3f", f); |
|
return std::string(buffer, bytesWritten); |
|
} |
|
|
|
static std::string to_string(const hwc_layer_1_t& hwcLayer, |
|
int32_t hwc1MinorVersion) |
|
{ |
|
const char* fill = " "; |
|
|
|
std::stringstream output; |
|
|
|
output << " Composition: " << |
|
hwc1CompositionString(hwcLayer.compositionType); |
|
|
|
if (hwcLayer.compositionType == HWC_BACKGROUND) { |
|
output << " Color: " << colorString(hwcLayer.backgroundColor) << '\n'; |
|
} else if (hwcLayer.compositionType == HWC_SIDEBAND) { |
|
output << " Stream: " << hwcLayer.sidebandStream << '\n'; |
|
} else { |
|
output << " Buffer: " << hwcLayer.handle << "/" << |
|
hwcLayer.acquireFenceFd << '\n'; |
|
} |
|
|
|
output << fill << "Display frame: " << rectString(hwcLayer.displayFrame) << |
|
'\n'; |
|
|
|
output << fill << "Source crop: "; |
|
if (hwc1MinorVersion >= 3) { |
|
output << frectString(hwcLayer.sourceCropf) << '\n'; |
|
} else { |
|
output << rectString(hwcLayer.sourceCropi) << '\n'; |
|
} |
|
|
|
output << fill << "Transform: " << hwc1TransformString(hwcLayer.transform); |
|
output << " Blend mode: " << hwc1BlendModeString(hwcLayer.blending); |
|
if (hwcLayer.planeAlpha != 0xFF) { |
|
output << " Alpha: " << alphaString(hwcLayer.planeAlpha / 255.0f); |
|
} |
|
output << '\n'; |
|
|
|
if (hwcLayer.hints != 0) { |
|
output << fill << "Hints:"; |
|
if ((hwcLayer.hints & HWC_HINT_TRIPLE_BUFFER) != 0) { |
|
output << " TripleBuffer"; |
|
} |
|
if ((hwcLayer.hints & HWC_HINT_CLEAR_FB) != 0) { |
|
output << " ClearFB"; |
|
} |
|
output << '\n'; |
|
} |
|
|
|
if (hwcLayer.flags != 0) { |
|
output << fill << "Flags:"; |
|
if ((hwcLayer.flags & HWC_SKIP_LAYER) != 0) { |
|
output << " SkipLayer"; |
|
} |
|
if ((hwcLayer.flags & HWC_IS_CURSOR_LAYER) != 0) { |
|
output << " IsCursorLayer"; |
|
} |
|
output << '\n'; |
|
} |
|
|
|
return output.str(); |
|
} |
|
|
|
static std::string to_string(const hwc_display_contents_1_t& hwcContents, |
|
int32_t hwc1MinorVersion) |
|
{ |
|
const char* fill = " "; |
|
|
|
std::stringstream output; |
|
output << fill << "Geometry changed: " << |
|
((hwcContents.flags & HWC_GEOMETRY_CHANGED) != 0 ? "Y\n" : "N\n"); |
|
|
|
output << fill << hwcContents.numHwLayers << " Layer" << |
|
((hwcContents.numHwLayers == 1) ? "\n" : "s\n"); |
|
for (size_t layer = 0; layer < hwcContents.numHwLayers; ++layer) { |
|
output << fill << " Layer " << layer; |
|
output << to_string(hwcContents.hwLayers[layer], hwc1MinorVersion); |
|
} |
|
|
|
if (hwcContents.outbuf != nullptr) { |
|
output << fill << "Output buffer: " << hwcContents.outbuf << "/" << |
|
hwcContents.outbufAcquireFenceFd << '\n'; |
|
} |
|
|
|
return output.str(); |
|
} |
|
|
|
std::string HWC2On1Adapter::Display::dump() const |
|
{ |
|
std::unique_lock<std::recursive_mutex> lock(mStateMutex); |
|
|
|
std::stringstream output; |
|
|
|
output << " Display " << mId << ": "; |
|
output << to_string(mType) << " "; |
|
output << "HWC1 ID: " << mHwc1Id << " "; |
|
output << "Power mode: " << to_string(mPowerMode) << " "; |
|
output << "Vsync: " << to_string(mVsyncEnabled) << '\n'; |
|
|
|
output << " Color modes [active]:"; |
|
for (const auto& mode : mColorModes) { |
|
if (mode == mActiveColorMode) { |
|
output << " [" << mode << ']'; |
|
} else { |
|
output << " " << mode; |
|
} |
|
} |
|
output << '\n'; |
|
|
|
output << " " << mConfigs.size() << " Config" << |
|
(mConfigs.size() == 1 ? "" : "s") << " (* active)\n"; |
|
for (const auto& config : mConfigs) { |
|
output << (config == mActiveConfig ? " * " : " "); |
|
output << config->toString(true) << '\n'; |
|
} |
|
|
|
output << " " << mLayers.size() << " Layer" << |
|
(mLayers.size() == 1 ? "" : "s") << '\n'; |
|
for (const auto& layer : mLayers) { |
|
output << layer->dump(); |
|
} |
|
|
|
output << " Client target: " << mClientTarget.getBuffer() << '\n'; |
|
|
|
if (mOutputBuffer.getBuffer() != nullptr) { |
|
output << " Output buffer: " << mOutputBuffer.getBuffer() << '\n'; |
|
} |
|
|
|
if (mHwc1ReceivedContents) { |
|
output << " Last received HWC1 state\n"; |
|
output << to_string(*mHwc1ReceivedContents, mDevice.mHwc1MinorVersion); |
|
} else if (mHwc1RequestedContents) { |
|
output << " Last requested HWC1 state\n"; |
|
output << to_string(*mHwc1RequestedContents, mDevice.mHwc1MinorVersion); |
|
} |
|
|
|
return output.str(); |
|
} |
|
|
|
void HWC2On1Adapter::Display::Config::setAttribute(HWC2::Attribute attribute, |
|
int32_t value) |
|
{ |
|
mAttributes[attribute] = value; |
|
} |
|
|
|
int32_t HWC2On1Adapter::Display::Config::getAttribute(Attribute attribute) const |
|
{ |
|
if (mAttributes.count(attribute) == 0) { |
|
return -1; |
|
} |
|
return mAttributes.at(attribute); |
|
} |
|
|
|
void HWC2On1Adapter::Display::Config::setHwc1Id(uint32_t id) |
|
{ |
|
android_color_mode_t colorMode = static_cast<android_color_mode_t>(getAttribute(ColorMode)); |
|
mHwc1Ids.emplace(colorMode, id); |
|
} |
|
|
|
bool HWC2On1Adapter::Display::Config::hasHwc1Id(uint32_t id) const |
|
{ |
|
for (const auto& idPair : mHwc1Ids) { |
|
if (id == idPair.second) { |
|
return true; |
|
} |
|
} |
|
return false; |
|
} |
|
|
|
Error HWC2On1Adapter::Display::Config::getColorModeForHwc1Id( |
|
uint32_t id, android_color_mode_t* outMode) const |
|
{ |
|
for (const auto& idPair : mHwc1Ids) { |
|
if (id == idPair.second) { |
|
*outMode = idPair.first; |
|
return Error::None; |
|
} |
|
} |
|
ALOGE("Unable to find color mode for HWC ID %" PRIu32 " on config %u", id, mId); |
|
return Error::BadParameter; |
|
} |
|
|
|
Error HWC2On1Adapter::Display::Config::getHwc1IdForColorMode(android_color_mode_t mode, |
|
uint32_t* outId) const |
|
{ |
|
for (const auto& idPair : mHwc1Ids) { |
|
if (mode == idPair.first) { |
|
*outId = idPair.second; |
|
return Error::None; |
|
} |
|
} |
|
ALOGE("Unable to find HWC1 ID for color mode %d on config %u", mode, mId); |
|
return Error::BadParameter; |
|
} |
|
|
|
bool HWC2On1Adapter::Display::Config::merge(const Config& other) |
|
{ |
|
auto attributes = {HWC2::Attribute::Width, HWC2::Attribute::Height, |
|
HWC2::Attribute::VsyncPeriod, HWC2::Attribute::DpiX, |
|
HWC2::Attribute::DpiY}; |
|
for (auto attribute : attributes) { |
|
if (getAttribute(attribute) != other.getAttribute(attribute)) { |
|
return false; |
|
} |
|
} |
|
android_color_mode_t otherColorMode = |
|
static_cast<android_color_mode_t>(other.getAttribute(ColorMode)); |
|
if (mHwc1Ids.count(otherColorMode) != 0) { |
|
ALOGE("Attempted to merge two configs (%u and %u) which appear to be " |
|
"identical", mHwc1Ids.at(otherColorMode), |
|
other.mHwc1Ids.at(otherColorMode)); |
|
return false; |
|
} |
|
mHwc1Ids.emplace(otherColorMode, |
|
other.mHwc1Ids.at(otherColorMode)); |
|
return true; |
|
} |
|
|
|
std::set<android_color_mode_t> HWC2On1Adapter::Display::Config::getColorModes() const |
|
{ |
|
std::set<android_color_mode_t> colorModes; |
|
for (const auto& idPair : mHwc1Ids) { |
|
colorModes.emplace(idPair.first); |
|
} |
|
return colorModes; |
|
} |
|
|
|
std::string HWC2On1Adapter::Display::Config::toString(bool splitLine) const |
|
{ |
|
std::string output; |
|
|
|
const size_t BUFFER_SIZE = 100; |
|
char buffer[BUFFER_SIZE] = {}; |
|
auto writtenBytes = snprintf(buffer, BUFFER_SIZE, |
|
"%u x %u", mAttributes.at(HWC2::Attribute::Width), |
|
mAttributes.at(HWC2::Attribute::Height)); |
|
output.append(buffer, writtenBytes); |
|
|
|
if (mAttributes.count(HWC2::Attribute::VsyncPeriod) != 0) { |
|
std::memset(buffer, 0, BUFFER_SIZE); |
|
writtenBytes = snprintf(buffer, BUFFER_SIZE, " @ %.1f Hz", |
|
1e9 / mAttributes.at(HWC2::Attribute::VsyncPeriod)); |
|
output.append(buffer, writtenBytes); |
|
} |
|
|
|
if (mAttributes.count(HWC2::Attribute::DpiX) != 0 && |
|
mAttributes.at(HWC2::Attribute::DpiX) != -1) { |
|
std::memset(buffer, 0, BUFFER_SIZE); |
|
writtenBytes = snprintf(buffer, BUFFER_SIZE, |
|
", DPI: %.1f x %.1f", |
|
mAttributes.at(HWC2::Attribute::DpiX) / 1000.0f, |
|
mAttributes.at(HWC2::Attribute::DpiY) / 1000.0f); |
|
output.append(buffer, writtenBytes); |
|
} |
|
|
|
std::memset(buffer, 0, BUFFER_SIZE); |
|
if (splitLine) { |
|
writtenBytes = snprintf(buffer, BUFFER_SIZE, |
|
"\n HWC1 ID/Color transform:"); |
|
} else { |
|
writtenBytes = snprintf(buffer, BUFFER_SIZE, |
|
", HWC1 ID/Color transform:"); |
|
} |
|
output.append(buffer, writtenBytes); |
|
|
|
|
|
for (const auto& id : mHwc1Ids) { |
|
android_color_mode_t colorMode = id.first; |
|
uint32_t hwc1Id = id.second; |
|
std::memset(buffer, 0, BUFFER_SIZE); |
|
if (colorMode == mDisplay.mActiveColorMode) { |
|
writtenBytes = snprintf(buffer, BUFFER_SIZE, " [%u/%d]", hwc1Id, |
|
colorMode); |
|
} else { |
|
writtenBytes = snprintf(buffer, BUFFER_SIZE, " %u/%d", hwc1Id, |
|
colorMode); |
|
} |
|
output.append(buffer, writtenBytes); |
|
} |
|
|
|
return output; |
|
} |
|
|
|
std::shared_ptr<const HWC2On1Adapter::Display::Config> |
|
HWC2On1Adapter::Display::getConfig(hwc2_config_t configId) const |
|
{ |
|
if (configId > mConfigs.size() || !mConfigs[configId]->isOnDisplay(*this)) { |
|
return nullptr; |
|
} |
|
return mConfigs[configId]; |
|
} |
|
|
|
void HWC2On1Adapter::Display::populateColorModes() |
|
{ |
|
mColorModes = mConfigs[0]->getColorModes(); |
|
for (const auto& config : mConfigs) { |
|
std::set<android_color_mode_t> intersection; |
|
auto configModes = config->getColorModes(); |
|
std::set_intersection(mColorModes.cbegin(), mColorModes.cend(), |
|
configModes.cbegin(), configModes.cend(), |
|
std::inserter(intersection, intersection.begin())); |
|
std::swap(intersection, mColorModes); |
|
} |
|
} |
|
|
|
void HWC2On1Adapter::Display::initializeActiveConfig() |
|
{ |
|
if (mDevice.mHwc1Device->getActiveConfig == nullptr) { |
|
ALOGV("getActiveConfig is null, choosing config 0"); |
|
mActiveConfig = mConfigs[0]; |
|
mActiveColorMode = HAL_COLOR_MODE_NATIVE; |
|
return; |
|
} |
|
|
|
auto activeConfig = mDevice.mHwc1Device->getActiveConfig( |
|
mDevice.mHwc1Device, mHwc1Id); |
|
if (activeConfig >= 0) { |
|
for (const auto& config : mConfigs) { |
|
if (config->hasHwc1Id(activeConfig)) { |
|
ALOGV("Setting active config to %d for HWC1 config %u", |
|
config->getId(), activeConfig); |
|
mActiveConfig = config; |
|
if (config->getColorModeForHwc1Id(activeConfig, &mActiveColorMode) != Error::None) { |
|
// This should never happen since we checked for the config's presence before |
|
// setting it as active. |
|
ALOGE("Unable to find color mode for active HWC1 config %d", |
|
config->getId()); |
|
mActiveColorMode = HAL_COLOR_MODE_NATIVE; |
|
} |
|
break; |
|
} |
|
} |
|
if (!mActiveConfig) { |
|
ALOGV("Unable to find active HWC1 config %u, defaulting to " |
|
"config 0", activeConfig); |
|
mActiveConfig = mConfigs[0]; |
|
mActiveColorMode = HAL_COLOR_MODE_NATIVE; |
|
} |
|
} |
|
} |
|
|
|
void HWC2On1Adapter::Display::reallocateHwc1Contents() |
|
{ |
|
// Allocate an additional layer for the framebuffer target |
|
auto numLayers = mLayers.size() + 1; |
|
size_t size = sizeof(hwc_display_contents_1_t) + |
|
sizeof(hwc_layer_1_t) * numLayers; |
|
ALOGV("[%" PRIu64 "] reallocateHwc1Contents creating %zd layer%s", mId, |
|
numLayers, numLayers != 1 ? "s" : ""); |
|
auto contents = |
|
static_cast<hwc_display_contents_1_t*>(std::calloc(size, 1)); |
|
contents->numHwLayers = numLayers; |
|
mHwc1RequestedContents.reset(contents); |
|
} |
|
|
|
void HWC2On1Adapter::Display::assignHwc1LayerIds() |
|
{ |
|
mHwc1LayerMap.clear(); |
|
size_t nextHwc1Id = 0; |
|
for (auto& layer : mLayers) { |
|
mHwc1LayerMap[nextHwc1Id] = layer; |
|
layer->setHwc1Id(nextHwc1Id++); |
|
} |
|
} |
|
|
|
void HWC2On1Adapter::Display::updateTypeChanges(const hwc_layer_1_t& hwc1Layer, |
|
const Layer& layer) |
|
{ |
|
auto layerId = layer.getId(); |
|
switch (hwc1Layer.compositionType) { |
|
case HWC_FRAMEBUFFER: |
|
if (layer.getCompositionType() != Composition::Client) { |
|
mChanges->addTypeChange(layerId, Composition::Client); |
|
} |
|
break; |
|
case HWC_OVERLAY: |
|
if (layer.getCompositionType() != Composition::Device) { |
|
mChanges->addTypeChange(layerId, Composition::Device); |
|
} |
|
break; |
|
case HWC_BACKGROUND: |
|
ALOGE_IF(layer.getCompositionType() != Composition::SolidColor, |
|
"updateTypeChanges: HWC1 requested BACKGROUND, but HWC2" |
|
" wasn't expecting SolidColor"); |
|
break; |
|
case HWC_FRAMEBUFFER_TARGET: |
|
// Do nothing, since it shouldn't be modified by HWC1 |
|
break; |
|
case HWC_SIDEBAND: |
|
ALOGE_IF(layer.getCompositionType() != Composition::Sideband, |
|
"updateTypeChanges: HWC1 requested SIDEBAND, but HWC2" |
|
" wasn't expecting Sideband"); |
|
break; |
|
case HWC_CURSOR_OVERLAY: |
|
ALOGE_IF(layer.getCompositionType() != Composition::Cursor, |
|
"updateTypeChanges: HWC1 requested CURSOR_OVERLAY, but" |
|
" HWC2 wasn't expecting Cursor"); |
|
break; |
|
} |
|
} |
|
|
|
void HWC2On1Adapter::Display::updateLayerRequests( |
|
const hwc_layer_1_t& hwc1Layer, const Layer& layer) |
|
{ |
|
if ((hwc1Layer.hints & HWC_HINT_CLEAR_FB) != 0) { |
|
mChanges->addLayerRequest(layer.getId(), |
|
LayerRequest::ClearClientTarget); |
|
} |
|
} |
|
|
|
void HWC2On1Adapter::Display::prepareFramebufferTarget() |
|
{ |
|
// We check that mActiveConfig is valid in Display::prepare |
|
int32_t width = mActiveConfig->getAttribute(Attribute::Width); |
|
int32_t height = mActiveConfig->getAttribute(Attribute::Height); |
|
|
|
auto& hwc1Target = mHwc1RequestedContents->hwLayers[mLayers.size()]; |
|
hwc1Target.compositionType = HWC_FRAMEBUFFER_TARGET; |
|
hwc1Target.releaseFenceFd = -1; |
|
hwc1Target.hints = 0; |
|
hwc1Target.flags = 0; |
|
hwc1Target.transform = 0; |
|
hwc1Target.blending = HWC_BLENDING_PREMULT; |
|
if (mDevice.getHwc1MinorVersion() < 3) { |
|
hwc1Target.sourceCropi = {0, 0, width, height}; |
|
} else { |
|
hwc1Target.sourceCropf = {0.0f, 0.0f, static_cast<float>(width), |
|
static_cast<float>(height)}; |
|
} |
|
hwc1Target.displayFrame = {0, 0, width, height}; |
|
hwc1Target.planeAlpha = 255; |
|
hwc1Target.visibleRegionScreen.numRects = 1; |
|
auto rects = static_cast<hwc_rect_t*>(std::malloc(sizeof(hwc_rect_t))); |
|
rects[0].left = 0; |
|
rects[0].top = 0; |
|
rects[0].right = width; |
|
rects[0].bottom = height; |
|
hwc1Target.visibleRegionScreen.rects = rects; |
|
|
|
// We will set this to the correct value in set |
|
hwc1Target.acquireFenceFd = -1; |
|
} |
|
|
|
// Layer functions |
|
|
|
std::atomic<hwc2_layer_t> HWC2On1Adapter::Layer::sNextId(1); |
|
|
|
HWC2On1Adapter::Layer::Layer(Display& display) |
|
: mId(sNextId++), |
|
mDisplay(display), |
|
mDirtyCount(0), |
|
mBuffer(), |
|
mSurfaceDamage(), |
|
mBlendMode(*this, BlendMode::None), |
|
mColor(*this, {0, 0, 0, 0}), |
|
mCompositionType(*this, Composition::Invalid), |
|
mDisplayFrame(*this, {0, 0, -1, -1}), |
|
mPlaneAlpha(*this, 0.0f), |
|
mSidebandStream(*this, nullptr), |
|
mSourceCrop(*this, {0.0f, 0.0f, -1.0f, -1.0f}), |
|
mTransform(*this, Transform::None), |
|
mVisibleRegion(*this, std::vector<hwc_rect_t>()), |
|
mZ(0), |
|
mReleaseFence(), |
|
mHwc1Id(0), |
|
mHasUnsupportedDataspace(false), |
|
mHasUnsupportedPlaneAlpha(false) {} |
|
|
|
bool HWC2On1Adapter::SortLayersByZ::operator()( |
|
const std::shared_ptr<Layer>& lhs, const std::shared_ptr<Layer>& rhs) |
|
{ |
|
return lhs->getZ() < rhs->getZ(); |
|
} |
|
|
|
Error HWC2On1Adapter::Layer::setBuffer(buffer_handle_t buffer, |
|
int32_t acquireFence) |
|
{ |
|
ALOGV("Setting acquireFence to %d for layer %" PRIu64, acquireFence, mId); |
|
mBuffer.setBuffer(buffer); |
|
mBuffer.setFence(acquireFence); |
|
return Error::None; |
|
} |
|
|
|
Error HWC2On1Adapter::Layer::setCursorPosition(int32_t x, int32_t y) |
|
{ |
|
if (mCompositionType.getValue() != Composition::Cursor) { |
|
return Error::BadLayer; |
|
} |
|
|
|
if (mDisplay.hasChanges()) { |
|
return Error::NotValidated; |
|
} |
|
|
|
auto displayId = mDisplay.getHwc1Id(); |
|
auto hwc1Device = mDisplay.getDevice().getHwc1Device(); |
|
hwc1Device->setCursorPositionAsync(hwc1Device, displayId, x, y); |
|
return Error::None; |
|
} |
|
|
|
Error HWC2On1Adapter::Layer::setSurfaceDamage(hwc_region_t damage) |
|
{ |
|
mSurfaceDamage.resize(damage.numRects); |
|
std::copy_n(damage.rects, damage.numRects, mSurfaceDamage.begin()); |
|
return Error::None; |
|
} |
|
|
|
// Layer state functions |
|
|
|
Error HWC2On1Adapter::Layer::setBlendMode(BlendMode mode) |
|
{ |
|
mBlendMode.setPending(mode); |
|
return Error::None; |
|
} |
|
|
|
Error HWC2On1Adapter::Layer::setColor(hwc_color_t color) |
|
{ |
|
mColor.setPending(color); |
|
return Error::None; |
|
} |
|
|
|
Error HWC2On1Adapter::Layer::setCompositionType(Composition type) |
|
{ |
|
mCompositionType.setPending(type); |
|
return Error::None; |
|
} |
|
|
|
Error HWC2On1Adapter::Layer::setDataspace(android_dataspace_t dataspace) |
|
{ |
|
mHasUnsupportedDataspace = (dataspace != HAL_DATASPACE_UNKNOWN); |
|
return Error::None; |
|
} |
|
|
|
Error HWC2On1Adapter::Layer::setDisplayFrame(hwc_rect_t frame) |
|
{ |
|
mDisplayFrame.setPending(frame); |
|
return Error::None; |
|
} |
|
|
|
Error HWC2On1Adapter::Layer::setPlaneAlpha(float alpha) |
|
{ |
|
mPlaneAlpha.setPending(alpha); |
|
return Error::None; |
|
} |
|
|
|
Error HWC2On1Adapter::Layer::setSidebandStream(const native_handle_t* stream) |
|
{ |
|
mSidebandStream.setPending(stream); |
|
return Error::None; |
|
} |
|
|
|
Error HWC2On1Adapter::Layer::setSourceCrop(hwc_frect_t crop) |
|
{ |
|
mSourceCrop.setPending(crop); |
|
return Error::None; |
|
} |
|
|
|
Error HWC2On1Adapter::Layer::setTransform(Transform transform) |
|
{ |
|
mTransform.setPending(transform); |
|
return Error::None; |
|
} |
|
|
|
Error HWC2On1Adapter::Layer::setVisibleRegion(hwc_region_t rawVisible) |
|
{ |
|
std::vector<hwc_rect_t> visible(rawVisible.rects, |
|
rawVisible.rects + rawVisible.numRects); |
|
mVisibleRegion.setPending(std::move(visible)); |
|
return Error::None; |
|
} |
|
|
|
Error HWC2On1Adapter::Layer::setZ(uint32_t z) |
|
{ |
|
mZ = z; |
|
return Error::None; |
|
} |
|
|
|
void HWC2On1Adapter::Layer::addReleaseFence(int fenceFd) |
|
{ |
|
ALOGV("addReleaseFence %d to layer %" PRIu64, fenceFd, mId); |
|
mReleaseFence.add(fenceFd); |
|
} |
|
|
|
const sp<Fence>& HWC2On1Adapter::Layer::getReleaseFence() const |
|
{ |
|
return mReleaseFence.get(); |
|
} |
|
|
|
void HWC2On1Adapter::Layer::applyState(hwc_layer_1_t& hwc1Layer, |
|
bool applyAllState) |
|
{ |
|
applyCommonState(hwc1Layer, applyAllState); |
|
auto compositionType = mCompositionType.getPendingValue(); |
|
if (compositionType == Composition::SolidColor) { |
|
applySolidColorState(hwc1Layer, applyAllState); |
|
} else if (compositionType == Composition::Sideband) { |
|
applySidebandState(hwc1Layer, applyAllState); |
|
} else { |
|
applyBufferState(hwc1Layer); |
|
} |
|
applyCompositionType(hwc1Layer, applyAllState); |
|
} |
|
|
|
// Layer dump helpers |
|
|
|
static std::string regionStrings(const std::vector<hwc_rect_t>& visibleRegion, |
|
const std::vector<hwc_rect_t>& surfaceDamage) |
|
{ |
|
std::string regions; |
|
regions += " Visible Region"; |
|
regions.resize(40, ' '); |
|
regions += "Surface Damage\n"; |
|
|
|
size_t numPrinted = 0; |
|
size_t maxSize = std::max(visibleRegion.size(), surfaceDamage.size()); |
|
while (numPrinted < maxSize) { |
|
std::string line(" "); |
|
if (visibleRegion.empty() && numPrinted == 0) { |
|
line += "None"; |
|
} else if (numPrinted < visibleRegion.size()) { |
|
line += rectString(visibleRegion[numPrinted]); |
|
} |
|
line.resize(40, ' '); |
|
if (surfaceDamage.empty() && numPrinted == 0) { |
|
line += "None"; |
|
} else if (numPrinted < surfaceDamage.size()) { |
|
line += rectString(surfaceDamage[numPrinted]); |
|
} |
|
line += '\n'; |
|
regions += line; |
|
++numPrinted; |
|
} |
|
return regions; |
|
} |
|
|
|
std::string HWC2On1Adapter::Layer::dump() const |
|
{ |
|
std::stringstream output; |
|
const char* fill = " "; |
|
|
|
output << fill << to_string(mCompositionType.getPendingValue()); |
|
output << " Layer HWC2/1: " << mId << "/" << mHwc1Id << " "; |
|
output << "Z: " << mZ; |
|
if (mCompositionType.getValue() == HWC2::Composition::SolidColor) { |
|
output << " " << colorString(mColor.getValue()); |
|
} else if (mCompositionType.getValue() == HWC2::Composition::Sideband) { |
|
output << " Handle: " << mSidebandStream.getValue() << '\n'; |
|
} else { |
|
output << " Buffer: " << mBuffer.getBuffer() << "/" << |
|
mBuffer.getFence() << '\n'; |
|
output << fill << " Display frame [LTRB]: " << |
|
rectString(mDisplayFrame.getValue()) << '\n'; |
|
output << fill << " Source crop: " << |
|
frectString(mSourceCrop.getValue()) << '\n'; |
|
output << fill << " Transform: " << to_string(mTransform.getValue()); |
|
output << " Blend mode: " << to_string(mBlendMode.getValue()); |
|
if (mPlaneAlpha.getValue() != 1.0f) { |
|
output << " Alpha: " << |
|
alphaString(mPlaneAlpha.getValue()) << '\n'; |
|
} else { |
|
output << '\n'; |
|
} |
|
output << regionStrings(mVisibleRegion.getValue(), mSurfaceDamage); |
|
} |
|
return output.str(); |
|
} |
|
|
|
static int getHwc1Blending(HWC2::BlendMode blendMode) |
|
{ |
|
switch (blendMode) { |
|
case BlendMode::Coverage: return HWC_BLENDING_COVERAGE; |
|
case BlendMode::Premultiplied: return HWC_BLENDING_PREMULT; |
|
default: return HWC_BLENDING_NONE; |
|
} |
|
} |
|
|
|
void HWC2On1Adapter::Layer::applyCommonState(hwc_layer_1_t& hwc1Layer, |
|
bool applyAllState) |
|
{ |
|
auto minorVersion = mDisplay.getDevice().getHwc1MinorVersion(); |
|
if (applyAllState || mBlendMode.isDirty()) { |
|
hwc1Layer.blending = getHwc1Blending(mBlendMode.getPendingValue()); |
|
mBlendMode.latch(); |
|
} |
|
if (applyAllState || mDisplayFrame.isDirty()) { |
|
hwc1Layer.displayFrame = mDisplayFrame.getPendingValue(); |
|
mDisplayFrame.latch(); |
|
} |
|
if (applyAllState || mPlaneAlpha.isDirty()) { |
|
auto pendingAlpha = mPlaneAlpha.getPendingValue(); |
|
if (minorVersion < 2) { |
|
mHasUnsupportedPlaneAlpha = pendingAlpha < 1.0f; |
|
} else { |
|
hwc1Layer.planeAlpha = |
|
static_cast<uint8_t>(255.0f * pendingAlpha + 0.5f); |
|
} |
|
mPlaneAlpha.latch(); |
|
} |
|
if (applyAllState || mSourceCrop.isDirty()) { |
|
if (minorVersion < 3) { |
|
auto pending = mSourceCrop.getPendingValue(); |
|
hwc1Layer.sourceCropi.left = |
|
static_cast<int32_t>(std::ceil(pending.left)); |
|
hwc1Layer.sourceCropi.top = |
|
static_cast<int32_t>(std::ceil(pending.top)); |
|
hwc1Layer.sourceCropi.right = |
|
static_cast<int32_t>(std::floor(pending.right)); |
|
hwc1Layer.sourceCropi.bottom = |
|
static_cast<int32_t>(std::floor(pending.bottom)); |
|
} else { |
|
hwc1Layer.sourceCropf = mSourceCrop.getPendingValue(); |
|
} |
|
mSourceCrop.latch(); |
|
} |
|
if (applyAllState || mTransform.isDirty()) { |
|
hwc1Layer.transform = |
|
static_cast<uint32_t>(mTransform.getPendingValue()); |
|
mTransform.latch(); |
|
} |
|
if (applyAllState || mVisibleRegion.isDirty()) { |
|
auto& hwc1VisibleRegion = hwc1Layer.visibleRegionScreen; |
|
|
|
std::free(const_cast<hwc_rect_t*>(hwc1VisibleRegion.rects)); |
|
|
|
auto pending = mVisibleRegion.getPendingValue(); |
|
hwc_rect_t* newRects = static_cast<hwc_rect_t*>( |
|
std::malloc(sizeof(hwc_rect_t) * pending.size())); |
|
std::copy(pending.begin(), pending.end(), newRects); |
|
hwc1VisibleRegion.rects = const_cast<const hwc_rect_t*>(newRects); |
|
hwc1VisibleRegion.numRects = pending.size(); |
|
mVisibleRegion.latch(); |
|
} |
|
} |
|
|
|
void HWC2On1Adapter::Layer::applySolidColorState(hwc_layer_1_t& hwc1Layer, |
|
bool applyAllState) |
|
{ |
|
if (applyAllState || mColor.isDirty()) { |
|
hwc1Layer.backgroundColor = mColor.getPendingValue(); |
|
mColor.latch(); |
|
} |
|
} |
|
|
|
void HWC2On1Adapter::Layer::applySidebandState(hwc_layer_1_t& hwc1Layer, |
|
bool applyAllState) |
|
{ |
|
if (applyAllState || mSidebandStream.isDirty()) { |
|
hwc1Layer.sidebandStream = mSidebandStream.getPendingValue(); |
|
mSidebandStream.latch(); |
|
} |
|
} |
|
|
|
void HWC2On1Adapter::Layer::applyBufferState(hwc_layer_1_t& hwc1Layer) |
|
{ |
|
hwc1Layer.handle = mBuffer.getBuffer(); |
|
hwc1Layer.acquireFenceFd = mBuffer.getFence(); |
|
} |
|
|
|
void HWC2On1Adapter::Layer::applyCompositionType(hwc_layer_1_t& hwc1Layer, |
|
bool applyAllState) |
|
{ |
|
// HWC1 never supports color transforms or dataspaces and only sometimes |
|
// supports plane alpha (depending on the version). These require us to drop |
|
// some or all layers to client composition. |
|
if (mHasUnsupportedDataspace || mHasUnsupportedPlaneAlpha || |
|
mDisplay.hasColorTransform()) { |
|
hwc1Layer.compositionType = HWC_FRAMEBUFFER; |
|
hwc1Layer.flags = HWC_SKIP_LAYER; |
|
return; |
|
} |
|
|
|
if (applyAllState || mCompositionType.isDirty()) { |
|
hwc1Layer.flags = 0; |
|
switch (mCompositionType.getPendingValue()) { |
|
case Composition::Client: |
|
hwc1Layer.compositionType = HWC_FRAMEBUFFER; |
|
hwc1Layer.flags |= HWC_SKIP_LAYER; |
|
break; |
|
case Composition::Device: |
|
hwc1Layer.compositionType = HWC_FRAMEBUFFER; |
|
break; |
|
case Composition::SolidColor: |
|
// In theory the following line should work, but since the HWC1 |
|
// version of SurfaceFlinger never used HWC_BACKGROUND, HWC1 |
|
// devices may not work correctly. To be on the safe side, we |
|
// fall back to client composition. |
|
// |
|
// hwc1Layer.compositionType = HWC_BACKGROUND; |
|
hwc1Layer.compositionType = HWC_FRAMEBUFFER; |
|
hwc1Layer.flags |= HWC_SKIP_LAYER; |
|
break; |
|
case Composition::Cursor: |
|
hwc1Layer.compositionType = HWC_FRAMEBUFFER; |
|
if (mDisplay.getDevice().getHwc1MinorVersion() >= 4) { |
|
hwc1Layer.hints |= HWC_IS_CURSOR_LAYER; |
|
} |
|
break; |
|
case Composition::Sideband: |
|
if (mDisplay.getDevice().getHwc1MinorVersion() < 4) { |
|
hwc1Layer.compositionType = HWC_SIDEBAND; |
|
} else { |
|
hwc1Layer.compositionType = HWC_FRAMEBUFFER; |
|
hwc1Layer.flags |= HWC_SKIP_LAYER; |
|
} |
|
break; |
|
default: |
|
hwc1Layer.compositionType = HWC_FRAMEBUFFER; |
|
hwc1Layer.flags |= HWC_SKIP_LAYER; |
|
break; |
|
} |
|
ALOGV("Layer %" PRIu64 " %s set to %d", mId, |
|
to_string(mCompositionType.getPendingValue()).c_str(), |
|
hwc1Layer.compositionType); |
|
ALOGV_IF(hwc1Layer.flags & HWC_SKIP_LAYER, " and skipping"); |
|
mCompositionType.latch(); |
|
} |
|
} |
|
|
|
// Adapter helpers |
|
|
|
void HWC2On1Adapter::populateCapabilities() |
|
{ |
|
ALOGV("populateCapabilities"); |
|
if (mHwc1MinorVersion >= 3U) { |
|
int supportedTypes = 0; |
|
auto result = mHwc1Device->query(mHwc1Device, |
|
HWC_DISPLAY_TYPES_SUPPORTED, &supportedTypes); |
|
if ((result == 0) && ((supportedTypes & HWC_DISPLAY_VIRTUAL_BIT) != 0)) { |
|
ALOGI("Found support for HWC virtual displays"); |
|
mHwc1SupportsVirtualDisplays = true; |
|
} |
|
} |
|
if (mHwc1MinorVersion >= 4U) { |
|
mCapabilities.insert(Capability::SidebandStream); |
|
} |
|
} |
|
|
|
HWC2On1Adapter::Display* HWC2On1Adapter::getDisplay(hwc2_display_t id) |
|
{ |
|
std::unique_lock<std::recursive_timed_mutex> lock(mStateMutex); |
|
|
|
auto display = mDisplays.find(id); |
|
if (display == mDisplays.end()) { |
|
return nullptr; |
|
} |
|
|
|
return display->second.get(); |
|
} |
|
|
|
std::tuple<HWC2On1Adapter::Layer*, Error> HWC2On1Adapter::getLayer( |
|
hwc2_display_t displayId, hwc2_layer_t layerId) |
|
{ |
|
auto display = getDisplay(displayId); |
|
if (!display) { |
|
return std::make_tuple(static_cast<Layer*>(nullptr), Error::BadDisplay); |
|
} |
|
|
|
auto layerEntry = mLayers.find(layerId); |
|
if (layerEntry == mLayers.end()) { |
|
return std::make_tuple(static_cast<Layer*>(nullptr), Error::BadLayer); |
|
} |
|
|
|
auto layer = layerEntry->second; |
|
if (layer->getDisplay().getId() != displayId) { |
|
return std::make_tuple(static_cast<Layer*>(nullptr), Error::BadLayer); |
|
} |
|
return std::make_tuple(layer.get(), Error::None); |
|
} |
|
|
|
void HWC2On1Adapter::populatePrimary() |
|
{ |
|
ALOGV("populatePrimary"); |
|
|
|
std::unique_lock<std::recursive_timed_mutex> lock(mStateMutex); |
|
|
|
auto display = |
|
std::make_shared<Display>(*this, HWC2::DisplayType::Physical); |
|
mHwc1DisplayMap[HWC_DISPLAY_PRIMARY] = display->getId(); |
|
display->setHwc1Id(HWC_DISPLAY_PRIMARY); |
|
display->populateConfigs(); |
|
mDisplays.emplace(display->getId(), std::move(display)); |
|
} |
|
|
|
bool HWC2On1Adapter::prepareAllDisplays() |
|
{ |
|
ATRACE_CALL(); |
|
|
|
std::unique_lock<std::recursive_timed_mutex> lock(mStateMutex); |
|
|
|
for (const auto& displayPair : mDisplays) { |
|
auto& display = displayPair.second; |
|
if (!display->prepare()) { |
|
return false; |
|
} |
|
} |
|
|
|
if (mHwc1DisplayMap.count(0) == 0) { |
|
ALOGE("prepareAllDisplays: Unable to find primary HWC1 display"); |
|
return false; |
|
} |
|
|
|
// Always push the primary display |
|
std::vector<HWC2On1Adapter::Display::HWC1Contents> requestedContents; |
|
auto primaryDisplayId = mHwc1DisplayMap[HWC_DISPLAY_PRIMARY]; |
|
auto& primaryDisplay = mDisplays[primaryDisplayId]; |
|
auto primaryDisplayContents = primaryDisplay->cloneRequestedContents(); |
|
requestedContents.push_back(std::move(primaryDisplayContents)); |
|
|
|
// Push the external display, if present |
|
if (mHwc1DisplayMap.count(HWC_DISPLAY_EXTERNAL) != 0) { |
|
auto externalDisplayId = mHwc1DisplayMap[HWC_DISPLAY_EXTERNAL]; |
|
auto& externalDisplay = mDisplays[externalDisplayId]; |
|
auto externalDisplayContents = |
|
externalDisplay->cloneRequestedContents(); |
|
requestedContents.push_back(std::move(externalDisplayContents)); |
|
} else { |
|
// Even if an external display isn't present, we still need to send |
|
// at least two displays down to HWC1 |
|
requestedContents.push_back(nullptr); |
|
} |
|
|
|
// Push the hardware virtual display, if supported and present |
|
if (mHwc1MinorVersion >= 3) { |
|
if (mHwc1DisplayMap.count(HWC_DISPLAY_VIRTUAL) != 0) { |
|
auto virtualDisplayId = mHwc1DisplayMap[HWC_DISPLAY_VIRTUAL]; |
|
auto& virtualDisplay = mDisplays[virtualDisplayId]; |
|
auto virtualDisplayContents = |
|
virtualDisplay->cloneRequestedContents(); |
|
requestedContents.push_back(std::move(virtualDisplayContents)); |
|
} else { |
|
requestedContents.push_back(nullptr); |
|
} |
|
} |
|
|
|
mHwc1Contents.clear(); |
|
for (auto& displayContents : requestedContents) { |
|
mHwc1Contents.push_back(displayContents.get()); |
|
if (!displayContents) { |
|
continue; |
|
} |
|
|
|
ALOGV("Display %zd layers:", mHwc1Contents.size() - 1); |
|
for (size_t l = 0; l < displayContents->numHwLayers; ++l) { |
|
auto& layer = displayContents->hwLayers[l]; |
|
ALOGV(" %zd: %d", l, layer.compositionType); |
|
} |
|
} |
|
|
|
ALOGV("Calling HWC1 prepare"); |
|
{ |
|
ATRACE_NAME("HWC1 prepare"); |
|
mHwc1Device->prepare(mHwc1Device, mHwc1Contents.size(), |
|
mHwc1Contents.data()); |
|
} |
|
|
|
for (size_t c = 0; c < mHwc1Contents.size(); ++c) { |
|
auto& contents = mHwc1Contents[c]; |
|
if (!contents) { |
|
continue; |
|
} |
|
ALOGV("Display %zd layers:", c); |
|
for (size_t l = 0; l < contents->numHwLayers; ++l) { |
|
ALOGV(" %zd: %d", l, contents->hwLayers[l].compositionType); |
|
} |
|
} |
|
|
|
// Return the received contents to their respective displays |
|
for (size_t hwc1Id = 0; hwc1Id < mHwc1Contents.size(); ++hwc1Id) { |
|
if (mHwc1Contents[hwc1Id] == nullptr) { |
|
continue; |
|
} |
|
|
|
auto displayId = mHwc1DisplayMap[hwc1Id]; |
|
auto& display = mDisplays[displayId]; |
|
display->setReceivedContents(std::move(requestedContents[hwc1Id])); |
|
} |
|
|
|
return true; |
|
} |
|
|
|
Error HWC2On1Adapter::setAllDisplays() |
|
{ |
|
ATRACE_CALL(); |
|
|
|
std::unique_lock<std::recursive_timed_mutex> lock(mStateMutex); |
|
|
|
// Make sure we're ready to validate |
|
for (size_t hwc1Id = 0; hwc1Id < mHwc1Contents.size(); ++hwc1Id) { |
|
if (mHwc1Contents[hwc1Id] == nullptr) { |
|
continue; |
|
} |
|
|
|
auto displayId = mHwc1DisplayMap[hwc1Id]; |
|
auto& display = mDisplays[displayId]; |
|
Error error = display->set(*mHwc1Contents[hwc1Id]); |
|
if (error != Error::None) { |
|
ALOGE("setAllDisplays: Failed to set display %zd: %s", hwc1Id, |
|
to_string(error).c_str()); |
|
return error; |
|
} |
|
} |
|
|
|
ALOGV("Calling HWC1 set"); |
|
{ |
|
ATRACE_NAME("HWC1 set"); |
|
mHwc1Device->set(mHwc1Device, mHwc1Contents.size(), |
|
mHwc1Contents.data()); |
|
} |
|
|
|
// Add retire and release fences |
|
for (size_t hwc1Id = 0; hwc1Id < mHwc1Contents.size(); ++hwc1Id) { |
|
if (mHwc1Contents[hwc1Id] == nullptr) { |
|
continue; |
|
} |
|
|
|
auto displayId = mHwc1DisplayMap[hwc1Id]; |
|
auto& display = mDisplays[displayId]; |
|
auto retireFenceFd = mHwc1Contents[hwc1Id]->retireFenceFd; |
|
ALOGV("setAllDisplays: Adding retire fence %d to display %zd", |
|
retireFenceFd, hwc1Id); |
|
display->addRetireFence(mHwc1Contents[hwc1Id]->retireFenceFd); |
|
display->addReleaseFences(*mHwc1Contents[hwc1Id]); |
|
} |
|
|
|
return Error::None; |
|
} |
|
|
|
void HWC2On1Adapter::hwc1Invalidate() |
|
{ |
|
ALOGV("Received hwc1Invalidate"); |
|
|
|
std::unique_lock<std::recursive_timed_mutex> lock(mStateMutex); |
|
|
|
// If the HWC2-side callback hasn't been registered yet, buffer this until |
|
// it is registered |
|
if (mCallbacks.count(Callback::Refresh) == 0) { |
|
mHasPendingInvalidate = true; |
|
return; |
|
} |
|
|
|
const auto& callbackInfo = mCallbacks[Callback::Refresh]; |
|
std::vector<hwc2_display_t> displays; |
|
for (const auto& displayPair : mDisplays) { |
|
displays.emplace_back(displayPair.first); |
|
} |
|
|
|
// Call back without the state lock held |
|
lock.unlock(); |
|
|
|
auto refresh = reinterpret_cast<HWC2_PFN_REFRESH>(callbackInfo.pointer); |
|
for (auto display : displays) { |
|
refresh(callbackInfo.data, display); |
|
} |
|
} |
|
|
|
void HWC2On1Adapter::hwc1Vsync(int hwc1DisplayId, int64_t timestamp) |
|
{ |
|
ALOGV("Received hwc1Vsync(%d, %" PRId64 ")", hwc1DisplayId, timestamp); |
|
|
|
std::unique_lock<std::recursive_timed_mutex> lock(mStateMutex); |
|
|
|
// If the HWC2-side callback hasn't been registered yet, buffer this until |
|
// it is registered |
|
if (mCallbacks.count(Callback::Vsync) == 0) { |
|
mPendingVsyncs.emplace_back(hwc1DisplayId, timestamp); |
|
return; |
|
} |
|
|
|
if (mHwc1DisplayMap.count(hwc1DisplayId) == 0) { |
|
ALOGE("hwc1Vsync: Couldn't find display for HWC1 id %d", hwc1DisplayId); |
|
return; |
|
} |
|
|
|
const auto& callbackInfo = mCallbacks[Callback::Vsync]; |
|
auto displayId = mHwc1DisplayMap[hwc1DisplayId]; |
|
|
|
// Call back without the state lock held |
|
lock.unlock(); |
|
|
|
auto vsync = reinterpret_cast<HWC2_PFN_VSYNC>(callbackInfo.pointer); |
|
vsync(callbackInfo.data, displayId, timestamp); |
|
} |
|
|
|
void HWC2On1Adapter::hwc1Hotplug(int hwc1DisplayId, int connected) |
|
{ |
|
ALOGV("Received hwc1Hotplug(%d, %d)", hwc1DisplayId, connected); |
|
|
|
if (hwc1DisplayId != HWC_DISPLAY_EXTERNAL) { |
|
ALOGE("hwc1Hotplug: Received hotplug for non-external display"); |
|
return; |
|
} |
|
|
|
std::unique_lock<std::recursive_timed_mutex> lock(mStateMutex); |
|
|
|
// If the HWC2-side callback hasn't been registered yet, buffer this until |
|
// it is registered |
|
if (mCallbacks.count(Callback::Hotplug) == 0) { |
|
mPendingHotplugs.emplace_back(hwc1DisplayId, connected); |
|
return; |
|
} |
|
|
|
hwc2_display_t displayId = UINT64_MAX; |
|
if (mHwc1DisplayMap.count(hwc1DisplayId) == 0) { |
|
if (connected == 0) { |
|
ALOGW("hwc1Hotplug: Received disconnect for unconnected display"); |
|
return; |
|
} |
|
|
|
// Create a new display on connect |
|
auto display = std::make_shared<HWC2On1Adapter::Display>(*this, |
|
HWC2::DisplayType::Physical); |
|
display->setHwc1Id(HWC_DISPLAY_EXTERNAL); |
|
display->populateConfigs(); |
|
displayId = display->getId(); |
|
mHwc1DisplayMap[HWC_DISPLAY_EXTERNAL] = displayId; |
|
mDisplays.emplace(displayId, std::move(display)); |
|
} else { |
|
if (connected != 0) { |
|
ALOGW("hwc1Hotplug: Received connect for previously connected " |
|
"display"); |
|
return; |
|
} |
|
|
|
// Disconnect an existing display |
|
displayId = mHwc1DisplayMap[hwc1DisplayId]; |
|
mHwc1DisplayMap.erase(HWC_DISPLAY_EXTERNAL); |
|
mDisplays.erase(displayId); |
|
} |
|
|
|
const auto& callbackInfo = mCallbacks[Callback::Hotplug]; |
|
|
|
// Call back without the state lock held |
|
lock.unlock(); |
|
|
|
auto hotplug = reinterpret_cast<HWC2_PFN_HOTPLUG>(callbackInfo.pointer); |
|
auto hwc2Connected = (connected == 0) ? |
|
HWC2::Connection::Disconnected : HWC2::Connection::Connected; |
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hotplug(callbackInfo.data, displayId, static_cast<int32_t>(hwc2Connected)); |
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} |
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} // namespace android
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