1 /*
2 * Copyright (C) 2013-2018 The Android Open Source Project
3 *
4 * Licensed under the Apache License, Version 2.0 (the "License");
5 * you may not use this file except in compliance with the License.
6 * You may obtain a copy of the License at
7 *
8 * http://www.apache.org/licenses/LICENSE-2.0
9 *
10 * Unless required by applicable law or agreed to in writing, software
11 * distributed under the License is distributed on an "AS IS" BASIS,
12 * WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
13 * See the License for the specific language governing permissions and
14 * limitations under the License.
15 */
16
17 #define LOG_TAG "Camera3-Device"
18 #define ATRACE_TAG ATRACE_TAG_CAMERA
19 //#define LOG_NDEBUG 0
20 //#define LOG_NNDEBUG 0 // Per-frame verbose logging
21
22 #ifdef LOG_NNDEBUG
23 #define ALOGVV(...) ALOGV(__VA_ARGS__)
24 #else
25 #define ALOGVV(...) ((void)0)
26 #endif
27
28 // Convenience macro for transient errors
29 #define CLOGE(fmt, ...) ALOGE("Camera %s: %s: " fmt, mId.string(), __FUNCTION__, \
30 ##__VA_ARGS__)
31
32 #define CLOGW(fmt, ...) ALOGW("Camera %s: %s: " fmt, mId.string(), __FUNCTION__, \
33 ##__VA_ARGS__)
34
35 // Convenience macros for transitioning to the error state
36 #define SET_ERR(fmt, ...) setErrorState( \
37 "%s: " fmt, __FUNCTION__, \
38 ##__VA_ARGS__)
39 #define SET_ERR_L(fmt, ...) setErrorStateLocked( \
40 "%s: " fmt, __FUNCTION__, \
41 ##__VA_ARGS__)
42
43 #include <inttypes.h>
44
45 #include <utility>
46
47 #include <utils/Log.h>
48 #include <utils/Trace.h>
49 #include <utils/Timers.h>
50 #include <cutils/properties.h>
51
52 #include <android/hardware/camera2/ICameraDeviceUser.h>
53
54 #include "utils/CameraTraces.h"
55 #include "mediautils/SchedulingPolicyService.h"
56 #include "device3/Camera3Device.h"
57 #include "device3/Camera3OutputStream.h"
58 #include "device3/Camera3InputStream.h"
59 #include "device3/Camera3DummyStream.h"
60 #include "device3/Camera3SharedOutputStream.h"
61 #include "CameraService.h"
62 #include "utils/CameraThreadState.h"
63
64 #include <tuple>
65
66 using namespace android::camera3;
67 using namespace android::hardware::camera;
68 using namespace android::hardware::camera::device::V3_2;
69
70 namespace android {
71
Camera3Device(const String8 & id)72 Camera3Device::Camera3Device(const String8 &id):
73 mId(id),
74 mOperatingMode(NO_MODE),
75 mIsConstrainedHighSpeedConfiguration(false),
76 mStatus(STATUS_UNINITIALIZED),
77 mStatusWaiters(0),
78 mUsePartialResult(false),
79 mNumPartialResults(1),
80 mTimestampOffset(0),
81 mNextResultFrameNumber(0),
82 mNextReprocessResultFrameNumber(0),
83 mNextZslStillResultFrameNumber(0),
84 mNextShutterFrameNumber(0),
85 mNextReprocessShutterFrameNumber(0),
86 mNextZslStillShutterFrameNumber(0),
87 mListener(NULL),
88 mVendorTagId(CAMERA_METADATA_INVALID_VENDOR_ID),
89 mLastTemplateId(-1),
90 mNeedFixupMonochromeTags(false)
91 {
92 ATRACE_CALL();
93 ALOGV("%s: Created device for camera %s", __FUNCTION__, mId.string());
94 }
95
~Camera3Device()96 Camera3Device::~Camera3Device()
97 {
98 ATRACE_CALL();
99 ALOGV("%s: Tearing down for camera id %s", __FUNCTION__, mId.string());
100 disconnectImpl();
101 }
102
getId() const103 const String8& Camera3Device::getId() const {
104 return mId;
105 }
106
initialize(sp<CameraProviderManager> manager,const String8 & monitorTags)107 status_t Camera3Device::initialize(sp<CameraProviderManager> manager, const String8& monitorTags) {
108 ATRACE_CALL();
109 Mutex::Autolock il(mInterfaceLock);
110 Mutex::Autolock l(mLock);
111
112 ALOGV("%s: Initializing HIDL device for camera %s", __FUNCTION__, mId.string());
113 if (mStatus != STATUS_UNINITIALIZED) {
114 CLOGE("Already initialized!");
115 return INVALID_OPERATION;
116 }
117 if (manager == nullptr) return INVALID_OPERATION;
118
119 sp<ICameraDeviceSession> session;
120 ATRACE_BEGIN("CameraHal::openSession");
121 status_t res = manager->openSession(mId.string(), this,
122 /*out*/ &session);
123 ATRACE_END();
124 if (res != OK) {
125 SET_ERR_L("Could not open camera session: %s (%d)", strerror(-res), res);
126 return res;
127 }
128
129 res = manager->getCameraCharacteristics(mId.string(), &mDeviceInfo);
130 if (res != OK) {
131 SET_ERR_L("Could not retrieve camera characteristics: %s (%d)", strerror(-res), res);
132 session->close();
133 return res;
134 }
135
136 std::vector<std::string> physicalCameraIds;
137 bool isLogical = manager->isLogicalCamera(mId.string(), &physicalCameraIds);
138 if (isLogical) {
139 for (auto& physicalId : physicalCameraIds) {
140 res = manager->getCameraCharacteristics(
141 physicalId, &mPhysicalDeviceInfoMap[physicalId]);
142 if (res != OK) {
143 SET_ERR_L("Could not retrieve camera %s characteristics: %s (%d)",
144 physicalId.c_str(), strerror(-res), res);
145 session->close();
146 return res;
147 }
148
149 if (DistortionMapper::isDistortionSupported(mPhysicalDeviceInfoMap[physicalId])) {
150 mDistortionMappers[physicalId].setupStaticInfo(mPhysicalDeviceInfoMap[physicalId]);
151 if (res != OK) {
152 SET_ERR_L("Unable to read camera %s's calibration fields for distortion "
153 "correction", physicalId.c_str());
154 session->close();
155 return res;
156 }
157 }
158 }
159 }
160
161 std::shared_ptr<RequestMetadataQueue> queue;
162 auto requestQueueRet = session->getCaptureRequestMetadataQueue(
163 [&queue](const auto& descriptor) {
164 queue = std::make_shared<RequestMetadataQueue>(descriptor);
165 if (!queue->isValid() || queue->availableToWrite() <= 0) {
166 ALOGE("HAL returns empty request metadata fmq, not use it");
167 queue = nullptr;
168 // don't use the queue onwards.
169 }
170 });
171 if (!requestQueueRet.isOk()) {
172 ALOGE("Transaction error when getting request metadata fmq: %s, not use it",
173 requestQueueRet.description().c_str());
174 return DEAD_OBJECT;
175 }
176
177 std::unique_ptr<ResultMetadataQueue>& resQueue = mResultMetadataQueue;
178 auto resultQueueRet = session->getCaptureResultMetadataQueue(
179 [&resQueue](const auto& descriptor) {
180 resQueue = std::make_unique<ResultMetadataQueue>(descriptor);
181 if (!resQueue->isValid() || resQueue->availableToWrite() <= 0) {
182 ALOGE("HAL returns empty result metadata fmq, not use it");
183 resQueue = nullptr;
184 // Don't use the resQueue onwards.
185 }
186 });
187 if (!resultQueueRet.isOk()) {
188 ALOGE("Transaction error when getting result metadata queue from camera session: %s",
189 resultQueueRet.description().c_str());
190 return DEAD_OBJECT;
191 }
192 IF_ALOGV() {
193 session->interfaceChain([](
194 ::android::hardware::hidl_vec<::android::hardware::hidl_string> interfaceChain) {
195 ALOGV("Session interface chain:");
196 for (const auto& iface : interfaceChain) {
197 ALOGV(" %s", iface.c_str());
198 }
199 });
200 }
201
202 camera_metadata_entry bufMgrMode =
203 mDeviceInfo.find(ANDROID_INFO_SUPPORTED_BUFFER_MANAGEMENT_VERSION);
204 if (bufMgrMode.count > 0) {
205 mUseHalBufManager = (bufMgrMode.data.u8[0] ==
206 ANDROID_INFO_SUPPORTED_BUFFER_MANAGEMENT_VERSION_HIDL_DEVICE_3_5);
207 }
208
209 mInterface = new HalInterface(session, queue, mUseHalBufManager);
210 std::string providerType;
211 mVendorTagId = manager->getProviderTagIdLocked(mId.string());
212 mTagMonitor.initialize(mVendorTagId);
213 if (!monitorTags.isEmpty()) {
214 mTagMonitor.parseTagsToMonitor(String8(monitorTags));
215 }
216
217 // Metadata tags needs fixup for monochrome camera device version less
218 // than 3.5.
219 hardware::hidl_version maxVersion{0,0};
220 res = manager->getHighestSupportedVersion(mId.string(), &maxVersion);
221 if (res != OK) {
222 ALOGE("%s: Error in getting camera device version id: %s (%d)",
223 __FUNCTION__, strerror(-res), res);
224 return res;
225 }
226 int deviceVersion = HARDWARE_DEVICE_API_VERSION(
227 maxVersion.get_major(), maxVersion.get_minor());
228
229 bool isMonochrome = false;
230 camera_metadata_entry_t entry = mDeviceInfo.find(ANDROID_REQUEST_AVAILABLE_CAPABILITIES);
231 for (size_t i = 0; i < entry.count; i++) {
232 uint8_t capability = entry.data.u8[i];
233 if (capability == ANDROID_REQUEST_AVAILABLE_CAPABILITIES_MONOCHROME) {
234 isMonochrome = true;
235 }
236 }
237 mNeedFixupMonochromeTags = (isMonochrome && deviceVersion < CAMERA_DEVICE_API_VERSION_3_5);
238
239 return initializeCommonLocked();
240 }
241
initializeCommonLocked()242 status_t Camera3Device::initializeCommonLocked() {
243
244 /** Start up status tracker thread */
245 mStatusTracker = new StatusTracker(this);
246 status_t res = mStatusTracker->run(String8::format("C3Dev-%s-Status", mId.string()).string());
247 if (res != OK) {
248 SET_ERR_L("Unable to start status tracking thread: %s (%d)",
249 strerror(-res), res);
250 mInterface->close();
251 mStatusTracker.clear();
252 return res;
253 }
254
255 /** Register in-flight map to the status tracker */
256 mInFlightStatusId = mStatusTracker->addComponent();
257
258 if (mUseHalBufManager) {
259 res = mRequestBufferSM.initialize(mStatusTracker);
260 if (res != OK) {
261 SET_ERR_L("Unable to start request buffer state machine: %s (%d)",
262 strerror(-res), res);
263 mInterface->close();
264 mStatusTracker.clear();
265 return res;
266 }
267 }
268
269 /** Create buffer manager */
270 mBufferManager = new Camera3BufferManager();
271
272 Vector<int32_t> sessionParamKeys;
273 camera_metadata_entry_t sessionKeysEntry = mDeviceInfo.find(
274 ANDROID_REQUEST_AVAILABLE_SESSION_KEYS);
275 if (sessionKeysEntry.count > 0) {
276 sessionParamKeys.insertArrayAt(sessionKeysEntry.data.i32, 0, sessionKeysEntry.count);
277 }
278
279 /** Start up request queue thread */
280 mRequestThread = new RequestThread(
281 this, mStatusTracker, mInterface, sessionParamKeys, mUseHalBufManager);
282 res = mRequestThread->run(String8::format("C3Dev-%s-ReqQueue", mId.string()).string());
283 if (res != OK) {
284 SET_ERR_L("Unable to start request queue thread: %s (%d)",
285 strerror(-res), res);
286 mInterface->close();
287 mRequestThread.clear();
288 return res;
289 }
290
291 mPreparerThread = new PreparerThread();
292
293 internalUpdateStatusLocked(STATUS_UNCONFIGURED);
294 mNextStreamId = 0;
295 mDummyStreamId = NO_STREAM;
296 mNeedConfig = true;
297 mPauseStateNotify = false;
298
299 // Measure the clock domain offset between camera and video/hw_composer
300 camera_metadata_entry timestampSource =
301 mDeviceInfo.find(ANDROID_SENSOR_INFO_TIMESTAMP_SOURCE);
302 if (timestampSource.count > 0 && timestampSource.data.u8[0] ==
303 ANDROID_SENSOR_INFO_TIMESTAMP_SOURCE_REALTIME) {
304 mTimestampOffset = getMonoToBoottimeOffset();
305 }
306
307 // Will the HAL be sending in early partial result metadata?
308 camera_metadata_entry partialResultsCount =
309 mDeviceInfo.find(ANDROID_REQUEST_PARTIAL_RESULT_COUNT);
310 if (partialResultsCount.count > 0) {
311 mNumPartialResults = partialResultsCount.data.i32[0];
312 mUsePartialResult = (mNumPartialResults > 1);
313 }
314
315 camera_metadata_entry configs =
316 mDeviceInfo.find(ANDROID_SCALER_AVAILABLE_STREAM_CONFIGURATIONS);
317 for (uint32_t i = 0; i < configs.count; i += 4) {
318 if (configs.data.i32[i] == HAL_PIXEL_FORMAT_IMPLEMENTATION_DEFINED &&
319 configs.data.i32[i + 3] ==
320 ANDROID_SCALER_AVAILABLE_STREAM_CONFIGURATIONS_INPUT) {
321 mSupportedOpaqueInputSizes.add(Size(configs.data.i32[i + 1],
322 configs.data.i32[i + 2]));
323 }
324 }
325
326 if (DistortionMapper::isDistortionSupported(mDeviceInfo)) {
327 res = mDistortionMappers[mId.c_str()].setupStaticInfo(mDeviceInfo);
328 if (res != OK) {
329 SET_ERR_L("Unable to read necessary calibration fields for distortion correction");
330 return res;
331 }
332 }
333 return OK;
334 }
335
disconnect()336 status_t Camera3Device::disconnect() {
337 return disconnectImpl();
338 }
339
disconnectImpl()340 status_t Camera3Device::disconnectImpl() {
341 ATRACE_CALL();
342 ALOGI("%s: E", __FUNCTION__);
343
344 status_t res = OK;
345 std::vector<wp<Camera3StreamInterface>> streams;
346 {
347 Mutex::Autolock il(mInterfaceLock);
348 nsecs_t maxExpectedDuration = getExpectedInFlightDuration();
349 {
350 Mutex::Autolock l(mLock);
351 if (mStatus == STATUS_UNINITIALIZED) return res;
352
353 if (mStatus == STATUS_ACTIVE ||
354 (mStatus == STATUS_ERROR && mRequestThread != NULL)) {
355 res = mRequestThread->clearRepeatingRequests();
356 if (res != OK) {
357 SET_ERR_L("Can't stop streaming");
358 // Continue to close device even in case of error
359 } else {
360 res = waitUntilStateThenRelock(/*active*/ false, maxExpectedDuration);
361 if (res != OK) {
362 SET_ERR_L("Timeout waiting for HAL to drain (% " PRIi64 " ns)",
363 maxExpectedDuration);
364 // Continue to close device even in case of error
365 }
366 }
367 }
368
369 if (mStatus == STATUS_ERROR) {
370 CLOGE("Shutting down in an error state");
371 }
372
373 if (mStatusTracker != NULL) {
374 mStatusTracker->requestExit();
375 }
376
377 if (mRequestThread != NULL) {
378 mRequestThread->requestExit();
379 }
380
381 streams.reserve(mOutputStreams.size() + (mInputStream != nullptr ? 1 : 0));
382 for (size_t i = 0; i < mOutputStreams.size(); i++) {
383 streams.push_back(mOutputStreams[i]);
384 }
385 if (mInputStream != nullptr) {
386 streams.push_back(mInputStream);
387 }
388 }
389 }
390 // Joining done without holding mLock and mInterfaceLock, otherwise deadlocks may ensue
391 // as the threads try to access parent state (b/143513518)
392 if (mRequestThread != NULL && mStatus != STATUS_ERROR) {
393 // HAL may be in a bad state, so waiting for request thread
394 // (which may be stuck in the HAL processCaptureRequest call)
395 // could be dangerous.
396 // give up mInterfaceLock here and then lock it again. Could this lead
397 // to other deadlocks
398 mRequestThread->join();
399 }
400 {
401 Mutex::Autolock il(mInterfaceLock);
402 if (mStatusTracker != NULL) {
403 mStatusTracker->join();
404 }
405
406 HalInterface* interface;
407 {
408 Mutex::Autolock l(mLock);
409 mRequestThread.clear();
410 Mutex::Autolock stLock(mTrackerLock);
411 mStatusTracker.clear();
412 interface = mInterface.get();
413 }
414
415 // Call close without internal mutex held, as the HAL close may need to
416 // wait on assorted callbacks,etc, to complete before it can return.
417 interface->close();
418
419 flushInflightRequests();
420
421 {
422 Mutex::Autolock l(mLock);
423 mInterface->clear();
424 mOutputStreams.clear();
425 mInputStream.clear();
426 mDeletedStreams.clear();
427 mBufferManager.clear();
428 internalUpdateStatusLocked(STATUS_UNINITIALIZED);
429 }
430
431 for (auto& weakStream : streams) {
432 sp<Camera3StreamInterface> stream = weakStream.promote();
433 if (stream != nullptr) {
434 ALOGE("%s: Stream %d leaked! strong reference (%d)!",
435 __FUNCTION__, stream->getId(), stream->getStrongCount() - 1);
436 }
437 }
438 }
439 ALOGI("%s: X", __FUNCTION__);
440 return res;
441 }
442
443 // For dumping/debugging only -
444 // try to acquire a lock a few times, eventually give up to proceed with
445 // debug/dump operations
tryLockSpinRightRound(Mutex & lock)446 bool Camera3Device::tryLockSpinRightRound(Mutex& lock) {
447 bool gotLock = false;
448 for (size_t i = 0; i < kDumpLockAttempts; ++i) {
449 if (lock.tryLock() == NO_ERROR) {
450 gotLock = true;
451 break;
452 } else {
453 usleep(kDumpSleepDuration);
454 }
455 }
456 return gotLock;
457 }
458
getMaxJpegResolution() const459 Camera3Device::Size Camera3Device::getMaxJpegResolution() const {
460 int32_t maxJpegWidth = 0, maxJpegHeight = 0;
461 const int STREAM_CONFIGURATION_SIZE = 4;
462 const int STREAM_FORMAT_OFFSET = 0;
463 const int STREAM_WIDTH_OFFSET = 1;
464 const int STREAM_HEIGHT_OFFSET = 2;
465 const int STREAM_IS_INPUT_OFFSET = 3;
466 camera_metadata_ro_entry_t availableStreamConfigs =
467 mDeviceInfo.find(ANDROID_SCALER_AVAILABLE_STREAM_CONFIGURATIONS);
468 if (availableStreamConfigs.count == 0 ||
469 availableStreamConfigs.count % STREAM_CONFIGURATION_SIZE != 0) {
470 return Size(0, 0);
471 }
472
473 // Get max jpeg size (area-wise).
474 for (size_t i=0; i < availableStreamConfigs.count; i+= STREAM_CONFIGURATION_SIZE) {
475 int32_t format = availableStreamConfigs.data.i32[i + STREAM_FORMAT_OFFSET];
476 int32_t width = availableStreamConfigs.data.i32[i + STREAM_WIDTH_OFFSET];
477 int32_t height = availableStreamConfigs.data.i32[i + STREAM_HEIGHT_OFFSET];
478 int32_t isInput = availableStreamConfigs.data.i32[i + STREAM_IS_INPUT_OFFSET];
479 if (isInput == ANDROID_SCALER_AVAILABLE_STREAM_CONFIGURATIONS_OUTPUT
480 && format == HAL_PIXEL_FORMAT_BLOB &&
481 (width * height > maxJpegWidth * maxJpegHeight)) {
482 maxJpegWidth = width;
483 maxJpegHeight = height;
484 }
485 }
486
487 return Size(maxJpegWidth, maxJpegHeight);
488 }
489
getMonoToBoottimeOffset()490 nsecs_t Camera3Device::getMonoToBoottimeOffset() {
491 // try three times to get the clock offset, choose the one
492 // with the minimum gap in measurements.
493 const int tries = 3;
494 nsecs_t bestGap, measured;
495 for (int i = 0; i < tries; ++i) {
496 const nsecs_t tmono = systemTime(SYSTEM_TIME_MONOTONIC);
497 const nsecs_t tbase = systemTime(SYSTEM_TIME_BOOTTIME);
498 const nsecs_t tmono2 = systemTime(SYSTEM_TIME_MONOTONIC);
499 const nsecs_t gap = tmono2 - tmono;
500 if (i == 0 || gap < bestGap) {
501 bestGap = gap;
502 measured = tbase - ((tmono + tmono2) >> 1);
503 }
504 }
505 return measured;
506 }
507
mapToPixelFormat(int frameworkFormat)508 hardware::graphics::common::V1_0::PixelFormat Camera3Device::mapToPixelFormat(
509 int frameworkFormat) {
510 return (hardware::graphics::common::V1_0::PixelFormat) frameworkFormat;
511 }
512
mapToHidlDataspace(android_dataspace dataSpace)513 DataspaceFlags Camera3Device::mapToHidlDataspace(
514 android_dataspace dataSpace) {
515 return dataSpace;
516 }
517
mapToConsumerUsage(uint64_t usage)518 BufferUsageFlags Camera3Device::mapToConsumerUsage(
519 uint64_t usage) {
520 return usage;
521 }
522
mapToStreamRotation(camera3_stream_rotation_t rotation)523 StreamRotation Camera3Device::mapToStreamRotation(camera3_stream_rotation_t rotation) {
524 switch (rotation) {
525 case CAMERA3_STREAM_ROTATION_0:
526 return StreamRotation::ROTATION_0;
527 case CAMERA3_STREAM_ROTATION_90:
528 return StreamRotation::ROTATION_90;
529 case CAMERA3_STREAM_ROTATION_180:
530 return StreamRotation::ROTATION_180;
531 case CAMERA3_STREAM_ROTATION_270:
532 return StreamRotation::ROTATION_270;
533 }
534 ALOGE("%s: Unknown stream rotation %d", __FUNCTION__, rotation);
535 return StreamRotation::ROTATION_0;
536 }
537
mapToStreamConfigurationMode(camera3_stream_configuration_mode_t operationMode,StreamConfigurationMode * mode)538 status_t Camera3Device::mapToStreamConfigurationMode(
539 camera3_stream_configuration_mode_t operationMode, StreamConfigurationMode *mode) {
540 if (mode == nullptr) return BAD_VALUE;
541 if (operationMode < CAMERA3_VENDOR_STREAM_CONFIGURATION_MODE_START) {
542 switch(operationMode) {
543 case CAMERA3_STREAM_CONFIGURATION_NORMAL_MODE:
544 *mode = StreamConfigurationMode::NORMAL_MODE;
545 break;
546 case CAMERA3_STREAM_CONFIGURATION_CONSTRAINED_HIGH_SPEED_MODE:
547 *mode = StreamConfigurationMode::CONSTRAINED_HIGH_SPEED_MODE;
548 break;
549 default:
550 ALOGE("%s: Unknown stream configuration mode %d", __FUNCTION__, operationMode);
551 return BAD_VALUE;
552 }
553 } else {
554 *mode = static_cast<StreamConfigurationMode>(operationMode);
555 }
556 return OK;
557 }
558
mapHidlBufferStatus(BufferStatus status)559 camera3_buffer_status_t Camera3Device::mapHidlBufferStatus(BufferStatus status) {
560 switch (status) {
561 case BufferStatus::OK: return CAMERA3_BUFFER_STATUS_OK;
562 case BufferStatus::ERROR: return CAMERA3_BUFFER_STATUS_ERROR;
563 }
564 return CAMERA3_BUFFER_STATUS_ERROR;
565 }
566
mapToFrameworkFormat(hardware::graphics::common::V1_0::PixelFormat pixelFormat)567 int Camera3Device::mapToFrameworkFormat(
568 hardware::graphics::common::V1_0::PixelFormat pixelFormat) {
569 return static_cast<uint32_t>(pixelFormat);
570 }
571
mapToFrameworkDataspace(DataspaceFlags dataSpace)572 android_dataspace Camera3Device::mapToFrameworkDataspace(
573 DataspaceFlags dataSpace) {
574 return static_cast<android_dataspace>(dataSpace);
575 }
576
mapConsumerToFrameworkUsage(BufferUsageFlags usage)577 uint64_t Camera3Device::mapConsumerToFrameworkUsage(
578 BufferUsageFlags usage) {
579 return usage;
580 }
581
mapProducerToFrameworkUsage(BufferUsageFlags usage)582 uint64_t Camera3Device::mapProducerToFrameworkUsage(
583 BufferUsageFlags usage) {
584 return usage;
585 }
586
getJpegBufferSize(uint32_t width,uint32_t height) const587 ssize_t Camera3Device::getJpegBufferSize(uint32_t width, uint32_t height) const {
588 // Get max jpeg size (area-wise).
589 Size maxJpegResolution = getMaxJpegResolution();
590 if (maxJpegResolution.width == 0) {
591 ALOGE("%s: Camera %s: Can't find valid available jpeg sizes in static metadata!",
592 __FUNCTION__, mId.string());
593 return BAD_VALUE;
594 }
595
596 // Get max jpeg buffer size
597 ssize_t maxJpegBufferSize = 0;
598 camera_metadata_ro_entry jpegBufMaxSize = mDeviceInfo.find(ANDROID_JPEG_MAX_SIZE);
599 if (jpegBufMaxSize.count == 0) {
600 ALOGE("%s: Camera %s: Can't find maximum JPEG size in static metadata!", __FUNCTION__,
601 mId.string());
602 return BAD_VALUE;
603 }
604 maxJpegBufferSize = jpegBufMaxSize.data.i32[0];
605 assert(kMinJpegBufferSize < maxJpegBufferSize);
606
607 // Calculate final jpeg buffer size for the given resolution.
608 float scaleFactor = ((float) (width * height)) /
609 (maxJpegResolution.width * maxJpegResolution.height);
610 ssize_t jpegBufferSize = scaleFactor * (maxJpegBufferSize - kMinJpegBufferSize) +
611 kMinJpegBufferSize;
612 if (jpegBufferSize > maxJpegBufferSize) {
613 jpegBufferSize = maxJpegBufferSize;
614 }
615
616 return jpegBufferSize;
617 }
618
getPointCloudBufferSize() const619 ssize_t Camera3Device::getPointCloudBufferSize() const {
620 const int FLOATS_PER_POINT=4;
621 camera_metadata_ro_entry maxPointCount = mDeviceInfo.find(ANDROID_DEPTH_MAX_DEPTH_SAMPLES);
622 if (maxPointCount.count == 0) {
623 ALOGE("%s: Camera %s: Can't find maximum depth point cloud size in static metadata!",
624 __FUNCTION__, mId.string());
625 return BAD_VALUE;
626 }
627 ssize_t maxBytesForPointCloud = sizeof(android_depth_points) +
628 maxPointCount.data.i32[0] * sizeof(float) * FLOATS_PER_POINT;
629 return maxBytesForPointCloud;
630 }
631
getRawOpaqueBufferSize(int32_t width,int32_t height) const632 ssize_t Camera3Device::getRawOpaqueBufferSize(int32_t width, int32_t height) const {
633 const int PER_CONFIGURATION_SIZE = 3;
634 const int WIDTH_OFFSET = 0;
635 const int HEIGHT_OFFSET = 1;
636 const int SIZE_OFFSET = 2;
637 camera_metadata_ro_entry rawOpaqueSizes =
638 mDeviceInfo.find(ANDROID_SENSOR_OPAQUE_RAW_SIZE);
639 size_t count = rawOpaqueSizes.count;
640 if (count == 0 || (count % PER_CONFIGURATION_SIZE)) {
641 ALOGE("%s: Camera %s: bad opaque RAW size static metadata length(%zu)!",
642 __FUNCTION__, mId.string(), count);
643 return BAD_VALUE;
644 }
645
646 for (size_t i = 0; i < count; i += PER_CONFIGURATION_SIZE) {
647 if (width == rawOpaqueSizes.data.i32[i + WIDTH_OFFSET] &&
648 height == rawOpaqueSizes.data.i32[i + HEIGHT_OFFSET]) {
649 return rawOpaqueSizes.data.i32[i + SIZE_OFFSET];
650 }
651 }
652
653 ALOGE("%s: Camera %s: cannot find size for %dx%d opaque RAW image!",
654 __FUNCTION__, mId.string(), width, height);
655 return BAD_VALUE;
656 }
657
dump(int fd,const Vector<String16> & args)658 status_t Camera3Device::dump(int fd, const Vector<String16> &args) {
659 ATRACE_CALL();
660 (void)args;
661
662 // Try to lock, but continue in case of failure (to avoid blocking in
663 // deadlocks)
664 bool gotInterfaceLock = tryLockSpinRightRound(mInterfaceLock);
665 bool gotLock = tryLockSpinRightRound(mLock);
666
667 ALOGW_IF(!gotInterfaceLock,
668 "Camera %s: %s: Unable to lock interface lock, proceeding anyway",
669 mId.string(), __FUNCTION__);
670 ALOGW_IF(!gotLock,
671 "Camera %s: %s: Unable to lock main lock, proceeding anyway",
672 mId.string(), __FUNCTION__);
673
674 bool dumpTemplates = false;
675
676 String16 templatesOption("-t");
677 int n = args.size();
678 for (int i = 0; i < n; i++) {
679 if (args[i] == templatesOption) {
680 dumpTemplates = true;
681 }
682 if (args[i] == TagMonitor::kMonitorOption) {
683 if (i + 1 < n) {
684 String8 monitorTags = String8(args[i + 1]);
685 if (monitorTags == "off") {
686 mTagMonitor.disableMonitoring();
687 } else {
688 mTagMonitor.parseTagsToMonitor(monitorTags);
689 }
690 } else {
691 mTagMonitor.disableMonitoring();
692 }
693 }
694 }
695
696 String8 lines;
697
698 const char *status =
699 mStatus == STATUS_ERROR ? "ERROR" :
700 mStatus == STATUS_UNINITIALIZED ? "UNINITIALIZED" :
701 mStatus == STATUS_UNCONFIGURED ? "UNCONFIGURED" :
702 mStatus == STATUS_CONFIGURED ? "CONFIGURED" :
703 mStatus == STATUS_ACTIVE ? "ACTIVE" :
704 "Unknown";
705
706 lines.appendFormat(" Device status: %s\n", status);
707 if (mStatus == STATUS_ERROR) {
708 lines.appendFormat(" Error cause: %s\n", mErrorCause.string());
709 }
710 lines.appendFormat(" Stream configuration:\n");
711 const char *mode =
712 mOperatingMode == static_cast<int>(StreamConfigurationMode::NORMAL_MODE) ? "NORMAL" :
713 mOperatingMode == static_cast<int>(
714 StreamConfigurationMode::CONSTRAINED_HIGH_SPEED_MODE) ? "CONSTRAINED_HIGH_SPEED" :
715 "CUSTOM";
716 lines.appendFormat(" Operation mode: %s (%d) \n", mode, mOperatingMode);
717
718 if (mInputStream != NULL) {
719 write(fd, lines.string(), lines.size());
720 mInputStream->dump(fd, args);
721 } else {
722 lines.appendFormat(" No input stream.\n");
723 write(fd, lines.string(), lines.size());
724 }
725 for (size_t i = 0; i < mOutputStreams.size(); i++) {
726 mOutputStreams[i]->dump(fd,args);
727 }
728
729 if (mBufferManager != NULL) {
730 lines = String8(" Camera3 Buffer Manager:\n");
731 write(fd, lines.string(), lines.size());
732 mBufferManager->dump(fd, args);
733 }
734
735 lines = String8(" In-flight requests:\n");
736 if (mInFlightMap.size() == 0) {
737 lines.append(" None\n");
738 } else {
739 for (size_t i = 0; i < mInFlightMap.size(); i++) {
740 InFlightRequest r = mInFlightMap.valueAt(i);
741 lines.appendFormat(" Frame %d | Timestamp: %" PRId64 ", metadata"
742 " arrived: %s, buffers left: %d\n", mInFlightMap.keyAt(i),
743 r.shutterTimestamp, r.haveResultMetadata ? "true" : "false",
744 r.numBuffersLeft);
745 }
746 }
747 write(fd, lines.string(), lines.size());
748
749 if (mRequestThread != NULL) {
750 mRequestThread->dumpCaptureRequestLatency(fd,
751 " ProcessCaptureRequest latency histogram:");
752 }
753
754 {
755 lines = String8(" Last request sent:\n");
756 write(fd, lines.string(), lines.size());
757
758 CameraMetadata lastRequest = getLatestRequestLocked();
759 lastRequest.dump(fd, /*verbosity*/2, /*indentation*/6);
760 }
761
762 if (dumpTemplates) {
763 const char *templateNames[CAMERA3_TEMPLATE_COUNT] = {
764 "TEMPLATE_PREVIEW",
765 "TEMPLATE_STILL_CAPTURE",
766 "TEMPLATE_VIDEO_RECORD",
767 "TEMPLATE_VIDEO_SNAPSHOT",
768 "TEMPLATE_ZERO_SHUTTER_LAG",
769 "TEMPLATE_MANUAL",
770 };
771
772 for (int i = 1; i < CAMERA3_TEMPLATE_COUNT; i++) {
773 camera_metadata_t *templateRequest = nullptr;
774 mInterface->constructDefaultRequestSettings(
775 (camera3_request_template_t) i, &templateRequest);
776 lines = String8::format(" HAL Request %s:\n", templateNames[i-1]);
777 if (templateRequest == nullptr) {
778 lines.append(" Not supported\n");
779 write(fd, lines.string(), lines.size());
780 } else {
781 write(fd, lines.string(), lines.size());
782 dump_indented_camera_metadata(templateRequest,
783 fd, /*verbosity*/2, /*indentation*/8);
784 }
785 free_camera_metadata(templateRequest);
786 }
787 }
788
789 mTagMonitor.dumpMonitoredMetadata(fd);
790
791 if (mInterface->valid()) {
792 lines = String8(" HAL device dump:\n");
793 write(fd, lines.string(), lines.size());
794 mInterface->dump(fd);
795 }
796
797 if (gotLock) mLock.unlock();
798 if (gotInterfaceLock) mInterfaceLock.unlock();
799
800 return OK;
801 }
802
info(const String8 & physicalId) const803 const CameraMetadata& Camera3Device::info(const String8& physicalId) const {
804 ALOGVV("%s: E", __FUNCTION__);
805 if (CC_UNLIKELY(mStatus == STATUS_UNINITIALIZED ||
806 mStatus == STATUS_ERROR)) {
807 ALOGW("%s: Access to static info %s!", __FUNCTION__,
808 mStatus == STATUS_ERROR ?
809 "when in error state" : "before init");
810 }
811 if (physicalId.isEmpty()) {
812 return mDeviceInfo;
813 } else {
814 std::string id(physicalId.c_str());
815 if (mPhysicalDeviceInfoMap.find(id) != mPhysicalDeviceInfoMap.end()) {
816 return mPhysicalDeviceInfoMap.at(id);
817 } else {
818 ALOGE("%s: Invalid physical camera id %s", __FUNCTION__, physicalId.c_str());
819 return mDeviceInfo;
820 }
821 }
822 }
823
info() const824 const CameraMetadata& Camera3Device::info() const {
825 String8 emptyId;
826 return info(emptyId);
827 }
828
checkStatusOkToCaptureLocked()829 status_t Camera3Device::checkStatusOkToCaptureLocked() {
830 switch (mStatus) {
831 case STATUS_ERROR:
832 CLOGE("Device has encountered a serious error");
833 return INVALID_OPERATION;
834 case STATUS_UNINITIALIZED:
835 CLOGE("Device not initialized");
836 return INVALID_OPERATION;
837 case STATUS_UNCONFIGURED:
838 case STATUS_CONFIGURED:
839 case STATUS_ACTIVE:
840 // OK
841 break;
842 default:
843 SET_ERR_L("Unexpected status: %d", mStatus);
844 return INVALID_OPERATION;
845 }
846 return OK;
847 }
848
convertMetadataListToRequestListLocked(const List<const PhysicalCameraSettingsList> & metadataList,const std::list<const SurfaceMap> & surfaceMaps,bool repeating,RequestList * requestList)849 status_t Camera3Device::convertMetadataListToRequestListLocked(
850 const List<const PhysicalCameraSettingsList> &metadataList,
851 const std::list<const SurfaceMap> &surfaceMaps,
852 bool repeating,
853 RequestList *requestList) {
854 if (requestList == NULL) {
855 CLOGE("requestList cannot be NULL.");
856 return BAD_VALUE;
857 }
858
859 int32_t burstId = 0;
860 List<const PhysicalCameraSettingsList>::const_iterator metadataIt = metadataList.begin();
861 std::list<const SurfaceMap>::const_iterator surfaceMapIt = surfaceMaps.begin();
862 for (; metadataIt != metadataList.end() && surfaceMapIt != surfaceMaps.end();
863 ++metadataIt, ++surfaceMapIt) {
864 sp<CaptureRequest> newRequest = setUpRequestLocked(*metadataIt, *surfaceMapIt);
865 if (newRequest == 0) {
866 CLOGE("Can't create capture request");
867 return BAD_VALUE;
868 }
869
870 newRequest->mRepeating = repeating;
871
872 // Setup burst Id and request Id
873 newRequest->mResultExtras.burstId = burstId++;
874 if (metadataIt->begin()->metadata.exists(ANDROID_REQUEST_ID)) {
875 if (metadataIt->begin()->metadata.find(ANDROID_REQUEST_ID).count == 0) {
876 CLOGE("RequestID entry exists; but must not be empty in metadata");
877 return BAD_VALUE;
878 }
879 newRequest->mResultExtras.requestId = metadataIt->begin()->metadata.find(
880 ANDROID_REQUEST_ID).data.i32[0];
881 } else {
882 CLOGE("RequestID does not exist in metadata");
883 return BAD_VALUE;
884 }
885
886 requestList->push_back(newRequest);
887
888 ALOGV("%s: requestId = %" PRId32, __FUNCTION__, newRequest->mResultExtras.requestId);
889 }
890 if (metadataIt != metadataList.end() || surfaceMapIt != surfaceMaps.end()) {
891 ALOGE("%s: metadataList and surfaceMaps are not the same size!", __FUNCTION__);
892 return BAD_VALUE;
893 }
894
895 // Setup batch size if this is a high speed video recording request.
896 if (mIsConstrainedHighSpeedConfiguration && requestList->size() > 0) {
897 auto firstRequest = requestList->begin();
898 for (auto& outputStream : (*firstRequest)->mOutputStreams) {
899 if (outputStream->isVideoStream()) {
900 (*firstRequest)->mBatchSize = requestList->size();
901 break;
902 }
903 }
904 }
905
906 return OK;
907 }
908
capture(CameraMetadata & request,int64_t * lastFrameNumber)909 status_t Camera3Device::capture(CameraMetadata &request, int64_t* lastFrameNumber) {
910 ATRACE_CALL();
911
912 List<const PhysicalCameraSettingsList> requestsList;
913 std::list<const SurfaceMap> surfaceMaps;
914 convertToRequestList(requestsList, surfaceMaps, request);
915
916 return captureList(requestsList, surfaceMaps, lastFrameNumber);
917 }
918
convertToRequestList(List<const PhysicalCameraSettingsList> & requestsList,std::list<const SurfaceMap> & surfaceMaps,const CameraMetadata & request)919 void Camera3Device::convertToRequestList(List<const PhysicalCameraSettingsList>& requestsList,
920 std::list<const SurfaceMap>& surfaceMaps,
921 const CameraMetadata& request) {
922 PhysicalCameraSettingsList requestList;
923 requestList.push_back({std::string(getId().string()), request});
924 requestsList.push_back(requestList);
925
926 SurfaceMap surfaceMap;
927 camera_metadata_ro_entry streams = request.find(ANDROID_REQUEST_OUTPUT_STREAMS);
928 // With no surface list passed in, stream and surface will have 1-to-1
929 // mapping. So the surface index is 0 for each stream in the surfaceMap.
930 for (size_t i = 0; i < streams.count; i++) {
931 surfaceMap[streams.data.i32[i]].push_back(0);
932 }
933 surfaceMaps.push_back(surfaceMap);
934 }
935
submitRequestsHelper(const List<const PhysicalCameraSettingsList> & requests,const std::list<const SurfaceMap> & surfaceMaps,bool repeating,int64_t * lastFrameNumber)936 status_t Camera3Device::submitRequestsHelper(
937 const List<const PhysicalCameraSettingsList> &requests,
938 const std::list<const SurfaceMap> &surfaceMaps,
939 bool repeating,
940 /*out*/
941 int64_t *lastFrameNumber) {
942 ATRACE_CALL();
943 Mutex::Autolock il(mInterfaceLock);
944 Mutex::Autolock l(mLock);
945
946 status_t res = checkStatusOkToCaptureLocked();
947 if (res != OK) {
948 // error logged by previous call
949 return res;
950 }
951
952 RequestList requestList;
953
954 res = convertMetadataListToRequestListLocked(requests, surfaceMaps,
955 repeating, /*out*/&requestList);
956 if (res != OK) {
957 // error logged by previous call
958 return res;
959 }
960
961 if (repeating) {
962 res = mRequestThread->setRepeatingRequests(requestList, lastFrameNumber);
963 } else {
964 res = mRequestThread->queueRequestList(requestList, lastFrameNumber);
965 }
966
967 if (res == OK) {
968 waitUntilStateThenRelock(/*active*/true, kActiveTimeout);
969 if (res != OK) {
970 SET_ERR_L("Can't transition to active in %f seconds!",
971 kActiveTimeout/1e9);
972 }
973 ALOGV("Camera %s: Capture request %" PRId32 " enqueued", mId.string(),
974 (*(requestList.begin()))->mResultExtras.requestId);
975 } else {
976 CLOGE("Cannot queue request. Impossible.");
977 return BAD_VALUE;
978 }
979
980 return res;
981 }
982
requestStreamBuffers(const hardware::hidl_vec<hardware::camera::device::V3_5::BufferRequest> & bufReqs,requestStreamBuffers_cb _hidl_cb)983 hardware::Return<void> Camera3Device::requestStreamBuffers(
984 const hardware::hidl_vec<hardware::camera::device::V3_5::BufferRequest>& bufReqs,
985 requestStreamBuffers_cb _hidl_cb) {
986 using hardware::camera::device::V3_5::BufferRequestStatus;
987 using hardware::camera::device::V3_5::StreamBufferRet;
988 using hardware::camera::device::V3_5::StreamBufferRequestError;
989
990 std::lock_guard<std::mutex> lock(mRequestBufferInterfaceLock);
991
992 hardware::hidl_vec<StreamBufferRet> bufRets;
993 if (!mUseHalBufManager) {
994 ALOGE("%s: Camera %s does not support HAL buffer management",
995 __FUNCTION__, mId.string());
996 _hidl_cb(BufferRequestStatus::FAILED_ILLEGAL_ARGUMENTS, bufRets);
997 return hardware::Void();
998 }
999
1000 SortedVector<int32_t> streamIds;
1001 ssize_t sz = streamIds.setCapacity(bufReqs.size());
1002 if (sz < 0 || static_cast<size_t>(sz) != bufReqs.size()) {
1003 ALOGE("%s: failed to allocate memory for %zu buffer requests",
1004 __FUNCTION__, bufReqs.size());
1005 _hidl_cb(BufferRequestStatus::FAILED_ILLEGAL_ARGUMENTS, bufRets);
1006 return hardware::Void();
1007 }
1008
1009 if (bufReqs.size() > mOutputStreams.size()) {
1010 ALOGE("%s: too many buffer requests (%zu > # of output streams %zu)",
1011 __FUNCTION__, bufReqs.size(), mOutputStreams.size());
1012 _hidl_cb(BufferRequestStatus::FAILED_ILLEGAL_ARGUMENTS, bufRets);
1013 return hardware::Void();
1014 }
1015
1016 // Check for repeated streamId
1017 for (const auto& bufReq : bufReqs) {
1018 if (streamIds.indexOf(bufReq.streamId) != NAME_NOT_FOUND) {
1019 ALOGE("%s: Stream %d appear multiple times in buffer requests",
1020 __FUNCTION__, bufReq.streamId);
1021 _hidl_cb(BufferRequestStatus::FAILED_ILLEGAL_ARGUMENTS, bufRets);
1022 return hardware::Void();
1023 }
1024 streamIds.add(bufReq.streamId);
1025 }
1026
1027 if (!mRequestBufferSM.startRequestBuffer()) {
1028 ALOGE("%s: request buffer disallowed while camera service is configuring",
1029 __FUNCTION__);
1030 _hidl_cb(BufferRequestStatus::FAILED_CONFIGURING, bufRets);
1031 return hardware::Void();
1032 }
1033
1034 bufRets.resize(bufReqs.size());
1035
1036 bool allReqsSucceeds = true;
1037 bool oneReqSucceeds = false;
1038 for (size_t i = 0; i < bufReqs.size(); i++) {
1039 const auto& bufReq = bufReqs[i];
1040 auto& bufRet = bufRets[i];
1041 int32_t streamId = bufReq.streamId;
1042 sp<Camera3OutputStreamInterface> outputStream = mOutputStreams.get(streamId);
1043 if (outputStream == nullptr) {
1044 ALOGE("%s: Output stream id %d not found!", __FUNCTION__, streamId);
1045 hardware::hidl_vec<StreamBufferRet> emptyBufRets;
1046 _hidl_cb(BufferRequestStatus::FAILED_ILLEGAL_ARGUMENTS, emptyBufRets);
1047 mRequestBufferSM.endRequestBuffer();
1048 return hardware::Void();
1049 }
1050
1051 bufRet.streamId = streamId;
1052 if (outputStream->isAbandoned()) {
1053 bufRet.val.error(StreamBufferRequestError::STREAM_DISCONNECTED);
1054 allReqsSucceeds = false;
1055 continue;
1056 }
1057
1058 size_t handOutBufferCount = outputStream->getOutstandingBuffersCount();
1059 uint32_t numBuffersRequested = bufReq.numBuffersRequested;
1060 size_t totalHandout = handOutBufferCount + numBuffersRequested;
1061 uint32_t maxBuffers = outputStream->asHalStream()->max_buffers;
1062 if (totalHandout > maxBuffers) {
1063 // Not able to allocate enough buffer. Exit early for this stream
1064 ALOGE("%s: request too much buffers for stream %d: at HAL: %zu + requesting: %d"
1065 " > max: %d", __FUNCTION__, streamId, handOutBufferCount,
1066 numBuffersRequested, maxBuffers);
1067 bufRet.val.error(StreamBufferRequestError::MAX_BUFFER_EXCEEDED);
1068 allReqsSucceeds = false;
1069 continue;
1070 }
1071
1072 hardware::hidl_vec<StreamBuffer> tmpRetBuffers(numBuffersRequested);
1073 bool currentReqSucceeds = true;
1074 std::vector<camera3_stream_buffer_t> streamBuffers(numBuffersRequested);
1075 size_t numAllocatedBuffers = 0;
1076 size_t numPushedInflightBuffers = 0;
1077 for (size_t b = 0; b < numBuffersRequested; b++) {
1078 camera3_stream_buffer_t& sb = streamBuffers[b];
1079 // Since this method can run concurrently with request thread
1080 // We need to update the wait duration everytime we call getbuffer
1081 nsecs_t waitDuration = kBaseGetBufferWait + getExpectedInFlightDuration();
1082 status_t res = outputStream->getBuffer(&sb, waitDuration);
1083 if (res != OK) {
1084 if (res == NO_INIT || res == DEAD_OBJECT) {
1085 ALOGV("%s: Can't get output buffer for stream %d: %s (%d)",
1086 __FUNCTION__, streamId, strerror(-res), res);
1087 bufRet.val.error(StreamBufferRequestError::STREAM_DISCONNECTED);
1088 } else {
1089 ALOGE("%s: Can't get output buffer for stream %d: %s (%d)",
1090 __FUNCTION__, streamId, strerror(-res), res);
1091 if (res == TIMED_OUT || res == NO_MEMORY) {
1092 bufRet.val.error(StreamBufferRequestError::NO_BUFFER_AVAILABLE);
1093 } else {
1094 bufRet.val.error(StreamBufferRequestError::UNKNOWN_ERROR);
1095 }
1096 }
1097 currentReqSucceeds = false;
1098 break;
1099 }
1100 numAllocatedBuffers++;
1101
1102 buffer_handle_t *buffer = sb.buffer;
1103 auto pair = mInterface->getBufferId(*buffer, streamId);
1104 bool isNewBuffer = pair.first;
1105 uint64_t bufferId = pair.second;
1106 StreamBuffer& hBuf = tmpRetBuffers[b];
1107
1108 hBuf.streamId = streamId;
1109 hBuf.bufferId = bufferId;
1110 hBuf.buffer = (isNewBuffer) ? *buffer : nullptr;
1111 hBuf.status = BufferStatus::OK;
1112 hBuf.releaseFence = nullptr;
1113
1114 native_handle_t *acquireFence = nullptr;
1115 if (sb.acquire_fence != -1) {
1116 acquireFence = native_handle_create(1,0);
1117 acquireFence->data[0] = sb.acquire_fence;
1118 }
1119 hBuf.acquireFence.setTo(acquireFence, /*shouldOwn*/true);
1120 hBuf.releaseFence = nullptr;
1121
1122 res = mInterface->pushInflightRequestBuffer(bufferId, buffer, streamId);
1123 if (res != OK) {
1124 ALOGE("%s: Can't get register request buffers for stream %d: %s (%d)",
1125 __FUNCTION__, streamId, strerror(-res), res);
1126 bufRet.val.error(StreamBufferRequestError::UNKNOWN_ERROR);
1127 currentReqSucceeds = false;
1128 break;
1129 }
1130 numPushedInflightBuffers++;
1131 }
1132 if (currentReqSucceeds) {
1133 bufRet.val.buffers(std::move(tmpRetBuffers));
1134 oneReqSucceeds = true;
1135 } else {
1136 allReqsSucceeds = false;
1137 for (size_t b = 0; b < numPushedInflightBuffers; b++) {
1138 StreamBuffer& hBuf = tmpRetBuffers[b];
1139 buffer_handle_t* buffer;
1140 status_t res = mInterface->popInflightRequestBuffer(hBuf.bufferId, &buffer);
1141 if (res != OK) {
1142 SET_ERR("%s: popInflightRequestBuffer failed for stream %d: %s (%d)",
1143 __FUNCTION__, streamId, strerror(-res), res);
1144 }
1145 }
1146 for (size_t b = 0; b < numAllocatedBuffers; b++) {
1147 camera3_stream_buffer_t& sb = streamBuffers[b];
1148 sb.acquire_fence = -1;
1149 sb.status = CAMERA3_BUFFER_STATUS_ERROR;
1150 }
1151 returnOutputBuffers(streamBuffers.data(), numAllocatedBuffers, 0);
1152 }
1153 }
1154
1155 _hidl_cb(allReqsSucceeds ? BufferRequestStatus::OK :
1156 oneReqSucceeds ? BufferRequestStatus::FAILED_PARTIAL :
1157 BufferRequestStatus::FAILED_UNKNOWN,
1158 bufRets);
1159 mRequestBufferSM.endRequestBuffer();
1160 return hardware::Void();
1161 }
1162
returnStreamBuffers(const hardware::hidl_vec<hardware::camera::device::V3_2::StreamBuffer> & buffers)1163 hardware::Return<void> Camera3Device::returnStreamBuffers(
1164 const hardware::hidl_vec<hardware::camera::device::V3_2::StreamBuffer>& buffers) {
1165 if (!mUseHalBufManager) {
1166 ALOGE("%s: Camera %s does not support HAL buffer managerment",
1167 __FUNCTION__, mId.string());
1168 return hardware::Void();
1169 }
1170
1171 for (const auto& buf : buffers) {
1172 if (buf.bufferId == HalInterface::BUFFER_ID_NO_BUFFER) {
1173 ALOGE("%s: cannot return a buffer without bufferId", __FUNCTION__);
1174 continue;
1175 }
1176
1177 buffer_handle_t* buffer;
1178 status_t res = mInterface->popInflightRequestBuffer(buf.bufferId, &buffer);
1179
1180 if (res != OK) {
1181 ALOGE("%s: cannot find in-flight buffer %" PRIu64 " for stream %d",
1182 __FUNCTION__, buf.bufferId, buf.streamId);
1183 continue;
1184 }
1185
1186 camera3_stream_buffer_t streamBuffer;
1187 streamBuffer.buffer = buffer;
1188 streamBuffer.status = CAMERA3_BUFFER_STATUS_ERROR;
1189 streamBuffer.acquire_fence = -1;
1190 streamBuffer.release_fence = -1;
1191
1192 if (buf.releaseFence == nullptr) {
1193 streamBuffer.release_fence = -1;
1194 } else if (buf.releaseFence->numFds == 1) {
1195 streamBuffer.release_fence = dup(buf.releaseFence->data[0]);
1196 } else {
1197 ALOGE("%s: Invalid release fence, fd count is %d, not 1",
1198 __FUNCTION__, buf.releaseFence->numFds);
1199 continue;
1200 }
1201
1202 sp<Camera3StreamInterface> stream = mOutputStreams.get(buf.streamId);
1203 if (stream == nullptr) {
1204 ALOGE("%s: Output stream id %d not found!", __FUNCTION__, buf.streamId);
1205 continue;
1206 }
1207 streamBuffer.stream = stream->asHalStream();
1208 returnOutputBuffers(&streamBuffer, /*size*/1, /*timestamp*/ 0);
1209 }
1210 return hardware::Void();
1211 }
1212
processCaptureResult_3_4(const hardware::hidl_vec<hardware::camera::device::V3_4::CaptureResult> & results)1213 hardware::Return<void> Camera3Device::processCaptureResult_3_4(
1214 const hardware::hidl_vec<
1215 hardware::camera::device::V3_4::CaptureResult>& results) {
1216 // Ideally we should grab mLock, but that can lead to deadlock, and
1217 // it's not super important to get up to date value of mStatus for this
1218 // warning print, hence skipping the lock here
1219 if (mStatus == STATUS_ERROR) {
1220 // Per API contract, HAL should act as closed after device error
1221 // But mStatus can be set to error by framework as well, so just log
1222 // a warning here.
1223 ALOGW("%s: received capture result in error state.", __FUNCTION__);
1224 }
1225
1226 if (mProcessCaptureResultLock.tryLock() != OK) {
1227 // This should never happen; it indicates a wrong client implementation
1228 // that doesn't follow the contract. But, we can be tolerant here.
1229 ALOGE("%s: callback overlapped! waiting 1s...",
1230 __FUNCTION__);
1231 if (mProcessCaptureResultLock.timedLock(1000000000 /* 1s */) != OK) {
1232 ALOGE("%s: cannot acquire lock in 1s, dropping results",
1233 __FUNCTION__);
1234 // really don't know what to do, so bail out.
1235 return hardware::Void();
1236 }
1237 }
1238 for (const auto& result : results) {
1239 processOneCaptureResultLocked(result.v3_2, result.physicalCameraMetadata);
1240 }
1241 mProcessCaptureResultLock.unlock();
1242 return hardware::Void();
1243 }
1244
1245 // Only one processCaptureResult should be called at a time, so
1246 // the locks won't block. The locks are present here simply to enforce this.
processCaptureResult(const hardware::hidl_vec<hardware::camera::device::V3_2::CaptureResult> & results)1247 hardware::Return<void> Camera3Device::processCaptureResult(
1248 const hardware::hidl_vec<
1249 hardware::camera::device::V3_2::CaptureResult>& results) {
1250 hardware::hidl_vec<hardware::camera::device::V3_4::PhysicalCameraMetadata> noPhysMetadata;
1251
1252 // Ideally we should grab mLock, but that can lead to deadlock, and
1253 // it's not super important to get up to date value of mStatus for this
1254 // warning print, hence skipping the lock here
1255 if (mStatus == STATUS_ERROR) {
1256 // Per API contract, HAL should act as closed after device error
1257 // But mStatus can be set to error by framework as well, so just log
1258 // a warning here.
1259 ALOGW("%s: received capture result in error state.", __FUNCTION__);
1260 }
1261
1262 if (mProcessCaptureResultLock.tryLock() != OK) {
1263 // This should never happen; it indicates a wrong client implementation
1264 // that doesn't follow the contract. But, we can be tolerant here.
1265 ALOGE("%s: callback overlapped! waiting 1s...",
1266 __FUNCTION__);
1267 if (mProcessCaptureResultLock.timedLock(1000000000 /* 1s */) != OK) {
1268 ALOGE("%s: cannot acquire lock in 1s, dropping results",
1269 __FUNCTION__);
1270 // really don't know what to do, so bail out.
1271 return hardware::Void();
1272 }
1273 }
1274 for (const auto& result : results) {
1275 processOneCaptureResultLocked(result, noPhysMetadata);
1276 }
1277 mProcessCaptureResultLock.unlock();
1278 return hardware::Void();
1279 }
1280
readOneCameraMetadataLocked(uint64_t fmqResultSize,hardware::camera::device::V3_2::CameraMetadata & resultMetadata,const hardware::camera::device::V3_2::CameraMetadata & result)1281 status_t Camera3Device::readOneCameraMetadataLocked(
1282 uint64_t fmqResultSize, hardware::camera::device::V3_2::CameraMetadata& resultMetadata,
1283 const hardware::camera::device::V3_2::CameraMetadata& result) {
1284 if (fmqResultSize > 0) {
1285 resultMetadata.resize(fmqResultSize);
1286 if (mResultMetadataQueue == nullptr) {
1287 return NO_MEMORY; // logged in initialize()
1288 }
1289 if (!mResultMetadataQueue->read(resultMetadata.data(), fmqResultSize)) {
1290 ALOGE("%s: Cannot read camera metadata from fmq, size = %" PRIu64,
1291 __FUNCTION__, fmqResultSize);
1292 return INVALID_OPERATION;
1293 }
1294 } else {
1295 resultMetadata.setToExternal(const_cast<uint8_t *>(result.data()),
1296 result.size());
1297 }
1298
1299 if (resultMetadata.size() != 0) {
1300 status_t res;
1301 const camera_metadata_t* metadata =
1302 reinterpret_cast<const camera_metadata_t*>(resultMetadata.data());
1303 size_t expected_metadata_size = resultMetadata.size();
1304 if ((res = validate_camera_metadata_structure(metadata, &expected_metadata_size)) != OK) {
1305 ALOGE("%s: Invalid camera metadata received by camera service from HAL: %s (%d)",
1306 __FUNCTION__, strerror(-res), res);
1307 return INVALID_OPERATION;
1308 }
1309 }
1310
1311 return OK;
1312 }
1313
processOneCaptureResultLocked(const hardware::camera::device::V3_2::CaptureResult & result,const hardware::hidl_vec<hardware::camera::device::V3_4::PhysicalCameraMetadata> physicalCameraMetadata)1314 void Camera3Device::processOneCaptureResultLocked(
1315 const hardware::camera::device::V3_2::CaptureResult& result,
1316 const hardware::hidl_vec<
1317 hardware::camera::device::V3_4::PhysicalCameraMetadata> physicalCameraMetadata) {
1318 camera3_capture_result r;
1319 status_t res;
1320 r.frame_number = result.frameNumber;
1321
1322 // Read and validate the result metadata.
1323 hardware::camera::device::V3_2::CameraMetadata resultMetadata;
1324 res = readOneCameraMetadataLocked(result.fmqResultSize, resultMetadata, result.result);
1325 if (res != OK) {
1326 ALOGE("%s: Frame %d: Failed to read capture result metadata",
1327 __FUNCTION__, result.frameNumber);
1328 return;
1329 }
1330 r.result = reinterpret_cast<const camera_metadata_t*>(resultMetadata.data());
1331
1332 // Read and validate physical camera metadata
1333 size_t physResultCount = physicalCameraMetadata.size();
1334 std::vector<const char*> physCamIds(physResultCount);
1335 std::vector<const camera_metadata_t *> phyCamMetadatas(physResultCount);
1336 std::vector<hardware::camera::device::V3_2::CameraMetadata> physResultMetadata;
1337 physResultMetadata.resize(physResultCount);
1338 for (size_t i = 0; i < physicalCameraMetadata.size(); i++) {
1339 res = readOneCameraMetadataLocked(physicalCameraMetadata[i].fmqMetadataSize,
1340 physResultMetadata[i], physicalCameraMetadata[i].metadata);
1341 if (res != OK) {
1342 ALOGE("%s: Frame %d: Failed to read capture result metadata for camera %s",
1343 __FUNCTION__, result.frameNumber,
1344 physicalCameraMetadata[i].physicalCameraId.c_str());
1345 return;
1346 }
1347 physCamIds[i] = physicalCameraMetadata[i].physicalCameraId.c_str();
1348 phyCamMetadatas[i] = reinterpret_cast<const camera_metadata_t*>(
1349 physResultMetadata[i].data());
1350 }
1351 r.num_physcam_metadata = physResultCount;
1352 r.physcam_ids = physCamIds.data();
1353 r.physcam_metadata = phyCamMetadatas.data();
1354
1355 std::vector<camera3_stream_buffer_t> outputBuffers(result.outputBuffers.size());
1356 std::vector<buffer_handle_t> outputBufferHandles(result.outputBuffers.size());
1357 for (size_t i = 0; i < result.outputBuffers.size(); i++) {
1358 auto& bDst = outputBuffers[i];
1359 const StreamBuffer &bSrc = result.outputBuffers[i];
1360
1361 sp<Camera3StreamInterface> stream = mOutputStreams.get(bSrc.streamId);
1362 if (stream == nullptr) {
1363 ALOGE("%s: Frame %d: Buffer %zu: Invalid output stream id %d",
1364 __FUNCTION__, result.frameNumber, i, bSrc.streamId);
1365 return;
1366 }
1367 bDst.stream = stream->asHalStream();
1368
1369 bool noBufferReturned = false;
1370 buffer_handle_t *buffer = nullptr;
1371 if (mUseHalBufManager) {
1372 // This is suspicious most of the time but can be correct during flush where HAL
1373 // has to return capture result before a buffer is requested
1374 if (bSrc.bufferId == HalInterface::BUFFER_ID_NO_BUFFER) {
1375 if (bSrc.status == BufferStatus::OK) {
1376 ALOGE("%s: Frame %d: Buffer %zu: No bufferId for stream %d",
1377 __FUNCTION__, result.frameNumber, i, bSrc.streamId);
1378 // Still proceeds so other buffers can be returned
1379 }
1380 noBufferReturned = true;
1381 }
1382 if (noBufferReturned) {
1383 res = OK;
1384 } else {
1385 res = mInterface->popInflightRequestBuffer(bSrc.bufferId, &buffer);
1386 }
1387 } else {
1388 res = mInterface->popInflightBuffer(result.frameNumber, bSrc.streamId, &buffer);
1389 }
1390
1391 if (res != OK) {
1392 ALOGE("%s: Frame %d: Buffer %zu: No in-flight buffer for stream %d",
1393 __FUNCTION__, result.frameNumber, i, bSrc.streamId);
1394 return;
1395 }
1396
1397 bDst.buffer = buffer;
1398 bDst.status = mapHidlBufferStatus(bSrc.status);
1399 bDst.acquire_fence = -1;
1400 if (bSrc.releaseFence == nullptr) {
1401 bDst.release_fence = -1;
1402 } else if (bSrc.releaseFence->numFds == 1) {
1403 if (noBufferReturned) {
1404 ALOGE("%s: got releaseFence without output buffer!", __FUNCTION__);
1405 }
1406 bDst.release_fence = dup(bSrc.releaseFence->data[0]);
1407 } else {
1408 ALOGE("%s: Frame %d: Invalid release fence for buffer %zu, fd count is %d, not 1",
1409 __FUNCTION__, result.frameNumber, i, bSrc.releaseFence->numFds);
1410 return;
1411 }
1412 }
1413 r.num_output_buffers = outputBuffers.size();
1414 r.output_buffers = outputBuffers.data();
1415
1416 camera3_stream_buffer_t inputBuffer;
1417 if (result.inputBuffer.streamId == -1) {
1418 r.input_buffer = nullptr;
1419 } else {
1420 if (mInputStream->getId() != result.inputBuffer.streamId) {
1421 ALOGE("%s: Frame %d: Invalid input stream id %d", __FUNCTION__,
1422 result.frameNumber, result.inputBuffer.streamId);
1423 return;
1424 }
1425 inputBuffer.stream = mInputStream->asHalStream();
1426 buffer_handle_t *buffer;
1427 res = mInterface->popInflightBuffer(result.frameNumber, result.inputBuffer.streamId,
1428 &buffer);
1429 if (res != OK) {
1430 ALOGE("%s: Frame %d: Input buffer: No in-flight buffer for stream %d",
1431 __FUNCTION__, result.frameNumber, result.inputBuffer.streamId);
1432 return;
1433 }
1434 inputBuffer.buffer = buffer;
1435 inputBuffer.status = mapHidlBufferStatus(result.inputBuffer.status);
1436 inputBuffer.acquire_fence = -1;
1437 if (result.inputBuffer.releaseFence == nullptr) {
1438 inputBuffer.release_fence = -1;
1439 } else if (result.inputBuffer.releaseFence->numFds == 1) {
1440 inputBuffer.release_fence = dup(result.inputBuffer.releaseFence->data[0]);
1441 } else {
1442 ALOGE("%s: Frame %d: Invalid release fence for input buffer, fd count is %d, not 1",
1443 __FUNCTION__, result.frameNumber, result.inputBuffer.releaseFence->numFds);
1444 return;
1445 }
1446 r.input_buffer = &inputBuffer;
1447 }
1448
1449 r.partial_result = result.partialResult;
1450
1451 processCaptureResult(&r);
1452 }
1453
notify(const hardware::hidl_vec<hardware::camera::device::V3_2::NotifyMsg> & msgs)1454 hardware::Return<void> Camera3Device::notify(
1455 const hardware::hidl_vec<hardware::camera::device::V3_2::NotifyMsg>& msgs) {
1456 // Ideally we should grab mLock, but that can lead to deadlock, and
1457 // it's not super important to get up to date value of mStatus for this
1458 // warning print, hence skipping the lock here
1459 if (mStatus == STATUS_ERROR) {
1460 // Per API contract, HAL should act as closed after device error
1461 // But mStatus can be set to error by framework as well, so just log
1462 // a warning here.
1463 ALOGW("%s: received notify message in error state.", __FUNCTION__);
1464 }
1465
1466 for (const auto& msg : msgs) {
1467 notify(msg);
1468 }
1469 return hardware::Void();
1470 }
1471
notify(const hardware::camera::device::V3_2::NotifyMsg & msg)1472 void Camera3Device::notify(
1473 const hardware::camera::device::V3_2::NotifyMsg& msg) {
1474
1475 camera3_notify_msg m;
1476 switch (msg.type) {
1477 case MsgType::ERROR:
1478 m.type = CAMERA3_MSG_ERROR;
1479 m.message.error.frame_number = msg.msg.error.frameNumber;
1480 if (msg.msg.error.errorStreamId >= 0) {
1481 sp<Camera3StreamInterface> stream = mOutputStreams.get(msg.msg.error.errorStreamId);
1482 if (stream == nullptr) {
1483 ALOGE("%s: Frame %d: Invalid error stream id %d", __FUNCTION__,
1484 m.message.error.frame_number, msg.msg.error.errorStreamId);
1485 return;
1486 }
1487 m.message.error.error_stream = stream->asHalStream();
1488 } else {
1489 m.message.error.error_stream = nullptr;
1490 }
1491 switch (msg.msg.error.errorCode) {
1492 case ErrorCode::ERROR_DEVICE:
1493 m.message.error.error_code = CAMERA3_MSG_ERROR_DEVICE;
1494 break;
1495 case ErrorCode::ERROR_REQUEST:
1496 m.message.error.error_code = CAMERA3_MSG_ERROR_REQUEST;
1497 break;
1498 case ErrorCode::ERROR_RESULT:
1499 m.message.error.error_code = CAMERA3_MSG_ERROR_RESULT;
1500 break;
1501 case ErrorCode::ERROR_BUFFER:
1502 m.message.error.error_code = CAMERA3_MSG_ERROR_BUFFER;
1503 break;
1504 }
1505 break;
1506 case MsgType::SHUTTER:
1507 m.type = CAMERA3_MSG_SHUTTER;
1508 m.message.shutter.frame_number = msg.msg.shutter.frameNumber;
1509 m.message.shutter.timestamp = msg.msg.shutter.timestamp;
1510 break;
1511 }
1512 notify(&m);
1513 }
1514
captureList(const List<const PhysicalCameraSettingsList> & requestsList,const std::list<const SurfaceMap> & surfaceMaps,int64_t * lastFrameNumber)1515 status_t Camera3Device::captureList(const List<const PhysicalCameraSettingsList> &requestsList,
1516 const std::list<const SurfaceMap> &surfaceMaps,
1517 int64_t *lastFrameNumber) {
1518 ATRACE_CALL();
1519
1520 return submitRequestsHelper(requestsList, surfaceMaps, /*repeating*/false, lastFrameNumber);
1521 }
1522
setStreamingRequest(const CameraMetadata & request,int64_t *)1523 status_t Camera3Device::setStreamingRequest(const CameraMetadata &request,
1524 int64_t* /*lastFrameNumber*/) {
1525 ATRACE_CALL();
1526
1527 List<const PhysicalCameraSettingsList> requestsList;
1528 std::list<const SurfaceMap> surfaceMaps;
1529 convertToRequestList(requestsList, surfaceMaps, request);
1530
1531 return setStreamingRequestList(requestsList, /*surfaceMap*/surfaceMaps,
1532 /*lastFrameNumber*/NULL);
1533 }
1534
setStreamingRequestList(const List<const PhysicalCameraSettingsList> & requestsList,const std::list<const SurfaceMap> & surfaceMaps,int64_t * lastFrameNumber)1535 status_t Camera3Device::setStreamingRequestList(
1536 const List<const PhysicalCameraSettingsList> &requestsList,
1537 const std::list<const SurfaceMap> &surfaceMaps, int64_t *lastFrameNumber) {
1538 ATRACE_CALL();
1539
1540 return submitRequestsHelper(requestsList, surfaceMaps, /*repeating*/true, lastFrameNumber);
1541 }
1542
setUpRequestLocked(const PhysicalCameraSettingsList & request,const SurfaceMap & surfaceMap)1543 sp<Camera3Device::CaptureRequest> Camera3Device::setUpRequestLocked(
1544 const PhysicalCameraSettingsList &request, const SurfaceMap &surfaceMap) {
1545 status_t res;
1546
1547 if (mStatus == STATUS_UNCONFIGURED || mNeedConfig) {
1548 // This point should only be reached via API1 (API2 must explicitly call configureStreams)
1549 // so unilaterally select normal operating mode.
1550 res = filterParamsAndConfigureLocked(request.begin()->metadata,
1551 CAMERA3_STREAM_CONFIGURATION_NORMAL_MODE);
1552 // Stream configuration failed. Client might try other configuraitons.
1553 if (res != OK) {
1554 CLOGE("Can't set up streams: %s (%d)", strerror(-res), res);
1555 return NULL;
1556 } else if (mStatus == STATUS_UNCONFIGURED) {
1557 // Stream configuration successfully configure to empty stream configuration.
1558 CLOGE("No streams configured");
1559 return NULL;
1560 }
1561 }
1562
1563 sp<CaptureRequest> newRequest = createCaptureRequest(request, surfaceMap);
1564 return newRequest;
1565 }
1566
clearStreamingRequest(int64_t * lastFrameNumber)1567 status_t Camera3Device::clearStreamingRequest(int64_t *lastFrameNumber) {
1568 ATRACE_CALL();
1569 Mutex::Autolock il(mInterfaceLock);
1570 Mutex::Autolock l(mLock);
1571
1572 switch (mStatus) {
1573 case STATUS_ERROR:
1574 CLOGE("Device has encountered a serious error");
1575 return INVALID_OPERATION;
1576 case STATUS_UNINITIALIZED:
1577 CLOGE("Device not initialized");
1578 return INVALID_OPERATION;
1579 case STATUS_UNCONFIGURED:
1580 case STATUS_CONFIGURED:
1581 case STATUS_ACTIVE:
1582 // OK
1583 break;
1584 default:
1585 SET_ERR_L("Unexpected status: %d", mStatus);
1586 return INVALID_OPERATION;
1587 }
1588 ALOGV("Camera %s: Clearing repeating request", mId.string());
1589
1590 return mRequestThread->clearRepeatingRequests(lastFrameNumber);
1591 }
1592
waitUntilRequestReceived(int32_t requestId,nsecs_t timeout)1593 status_t Camera3Device::waitUntilRequestReceived(int32_t requestId, nsecs_t timeout) {
1594 ATRACE_CALL();
1595 Mutex::Autolock il(mInterfaceLock);
1596
1597 return mRequestThread->waitUntilRequestProcessed(requestId, timeout);
1598 }
1599
createInputStream(uint32_t width,uint32_t height,int format,int * id)1600 status_t Camera3Device::createInputStream(
1601 uint32_t width, uint32_t height, int format, int *id) {
1602 ATRACE_CALL();
1603 Mutex::Autolock il(mInterfaceLock);
1604 nsecs_t maxExpectedDuration = getExpectedInFlightDuration();
1605 Mutex::Autolock l(mLock);
1606 ALOGV("Camera %s: Creating new input stream %d: %d x %d, format %d",
1607 mId.string(), mNextStreamId, width, height, format);
1608
1609 status_t res;
1610 bool wasActive = false;
1611
1612 switch (mStatus) {
1613 case STATUS_ERROR:
1614 ALOGE("%s: Device has encountered a serious error", __FUNCTION__);
1615 return INVALID_OPERATION;
1616 case STATUS_UNINITIALIZED:
1617 ALOGE("%s: Device not initialized", __FUNCTION__);
1618 return INVALID_OPERATION;
1619 case STATUS_UNCONFIGURED:
1620 case STATUS_CONFIGURED:
1621 // OK
1622 break;
1623 case STATUS_ACTIVE:
1624 ALOGV("%s: Stopping activity to reconfigure streams", __FUNCTION__);
1625 res = internalPauseAndWaitLocked(maxExpectedDuration);
1626 if (res != OK) {
1627 SET_ERR_L("Can't pause captures to reconfigure streams!");
1628 return res;
1629 }
1630 wasActive = true;
1631 break;
1632 default:
1633 SET_ERR_L("%s: Unexpected status: %d", mStatus);
1634 return INVALID_OPERATION;
1635 }
1636 assert(mStatus != STATUS_ACTIVE);
1637
1638 if (mInputStream != 0) {
1639 ALOGE("%s: Cannot create more than 1 input stream", __FUNCTION__);
1640 return INVALID_OPERATION;
1641 }
1642
1643 sp<Camera3InputStream> newStream = new Camera3InputStream(mNextStreamId,
1644 width, height, format);
1645 newStream->setStatusTracker(mStatusTracker);
1646
1647 mInputStream = newStream;
1648
1649 *id = mNextStreamId++;
1650
1651 // Continue captures if active at start
1652 if (wasActive) {
1653 ALOGV("%s: Restarting activity to reconfigure streams", __FUNCTION__);
1654 // Reuse current operating mode and session parameters for new stream config
1655 res = configureStreamsLocked(mOperatingMode, mSessionParams);
1656 if (res != OK) {
1657 ALOGE("%s: Can't reconfigure device for new stream %d: %s (%d)",
1658 __FUNCTION__, mNextStreamId, strerror(-res), res);
1659 return res;
1660 }
1661 internalResumeLocked();
1662 }
1663
1664 ALOGV("Camera %s: Created input stream", mId.string());
1665 return OK;
1666 }
1667
add(int streamId,sp<camera3::Camera3OutputStreamInterface> stream)1668 status_t Camera3Device::StreamSet::add(
1669 int streamId, sp<camera3::Camera3OutputStreamInterface> stream) {
1670 if (stream == nullptr) {
1671 ALOGE("%s: cannot add null stream", __FUNCTION__);
1672 return BAD_VALUE;
1673 }
1674 std::lock_guard<std::mutex> lock(mLock);
1675 return mData.add(streamId, stream);
1676 }
1677
remove(int streamId)1678 ssize_t Camera3Device::StreamSet::remove(int streamId) {
1679 std::lock_guard<std::mutex> lock(mLock);
1680 return mData.removeItem(streamId);
1681 }
1682
1683 sp<camera3::Camera3OutputStreamInterface>
get(int streamId)1684 Camera3Device::StreamSet::get(int streamId) {
1685 std::lock_guard<std::mutex> lock(mLock);
1686 ssize_t idx = mData.indexOfKey(streamId);
1687 if (idx == NAME_NOT_FOUND) {
1688 return nullptr;
1689 }
1690 return mData.editValueAt(idx);
1691 }
1692
1693 sp<camera3::Camera3OutputStreamInterface>
operator [](size_t index)1694 Camera3Device::StreamSet::operator[] (size_t index) {
1695 std::lock_guard<std::mutex> lock(mLock);
1696 return mData.editValueAt(index);
1697 }
1698
size() const1699 size_t Camera3Device::StreamSet::size() const {
1700 std::lock_guard<std::mutex> lock(mLock);
1701 return mData.size();
1702 }
1703
clear()1704 void Camera3Device::StreamSet::clear() {
1705 std::lock_guard<std::mutex> lock(mLock);
1706 return mData.clear();
1707 }
1708
getStreamIds()1709 std::vector<int> Camera3Device::StreamSet::getStreamIds() {
1710 std::lock_guard<std::mutex> lock(mLock);
1711 std::vector<int> streamIds(mData.size());
1712 for (size_t i = 0; i < mData.size(); i++) {
1713 streamIds[i] = mData.keyAt(i);
1714 }
1715 return streamIds;
1716 }
1717
createStream(sp<Surface> consumer,uint32_t width,uint32_t height,int format,android_dataspace dataSpace,camera3_stream_rotation_t rotation,int * id,const String8 & physicalCameraId,std::vector<int> * surfaceIds,int streamSetId,bool isShared,uint64_t consumerUsage)1718 status_t Camera3Device::createStream(sp<Surface> consumer,
1719 uint32_t width, uint32_t height, int format,
1720 android_dataspace dataSpace, camera3_stream_rotation_t rotation, int *id,
1721 const String8& physicalCameraId,
1722 std::vector<int> *surfaceIds, int streamSetId, bool isShared, uint64_t consumerUsage) {
1723 ATRACE_CALL();
1724
1725 if (consumer == nullptr) {
1726 ALOGE("%s: consumer must not be null", __FUNCTION__);
1727 return BAD_VALUE;
1728 }
1729
1730 std::vector<sp<Surface>> consumers;
1731 consumers.push_back(consumer);
1732
1733 return createStream(consumers, /*hasDeferredConsumer*/ false, width, height,
1734 format, dataSpace, rotation, id, physicalCameraId, surfaceIds, streamSetId,
1735 isShared, consumerUsage);
1736 }
1737
createStream(const std::vector<sp<Surface>> & consumers,bool hasDeferredConsumer,uint32_t width,uint32_t height,int format,android_dataspace dataSpace,camera3_stream_rotation_t rotation,int * id,const String8 & physicalCameraId,std::vector<int> * surfaceIds,int streamSetId,bool isShared,uint64_t consumerUsage)1738 status_t Camera3Device::createStream(const std::vector<sp<Surface>>& consumers,
1739 bool hasDeferredConsumer, uint32_t width, uint32_t height, int format,
1740 android_dataspace dataSpace, camera3_stream_rotation_t rotation, int *id,
1741 const String8& physicalCameraId,
1742 std::vector<int> *surfaceIds, int streamSetId, bool isShared, uint64_t consumerUsage) {
1743 ATRACE_CALL();
1744
1745 Mutex::Autolock il(mInterfaceLock);
1746 nsecs_t maxExpectedDuration = getExpectedInFlightDuration();
1747 Mutex::Autolock l(mLock);
1748 ALOGV("Camera %s: Creating new stream %d: %d x %d, format %d, dataspace %d rotation %d"
1749 " consumer usage %" PRIu64 ", isShared %d, physicalCameraId %s", mId.string(),
1750 mNextStreamId, width, height, format, dataSpace, rotation, consumerUsage, isShared,
1751 physicalCameraId.string());
1752
1753 status_t res;
1754 bool wasActive = false;
1755
1756 switch (mStatus) {
1757 case STATUS_ERROR:
1758 CLOGE("Device has encountered a serious error");
1759 return INVALID_OPERATION;
1760 case STATUS_UNINITIALIZED:
1761 CLOGE("Device not initialized");
1762 return INVALID_OPERATION;
1763 case STATUS_UNCONFIGURED:
1764 case STATUS_CONFIGURED:
1765 // OK
1766 break;
1767 case STATUS_ACTIVE:
1768 ALOGV("%s: Stopping activity to reconfigure streams", __FUNCTION__);
1769 res = internalPauseAndWaitLocked(maxExpectedDuration);
1770 if (res != OK) {
1771 SET_ERR_L("Can't pause captures to reconfigure streams!");
1772 return res;
1773 }
1774 wasActive = true;
1775 break;
1776 default:
1777 SET_ERR_L("Unexpected status: %d", mStatus);
1778 return INVALID_OPERATION;
1779 }
1780 assert(mStatus != STATUS_ACTIVE);
1781
1782 sp<Camera3OutputStream> newStream;
1783
1784 if (consumers.size() == 0 && !hasDeferredConsumer) {
1785 ALOGE("%s: Number of consumers cannot be smaller than 1", __FUNCTION__);
1786 return BAD_VALUE;
1787 }
1788
1789 if (hasDeferredConsumer && format != HAL_PIXEL_FORMAT_IMPLEMENTATION_DEFINED) {
1790 ALOGE("Deferred consumer stream creation only support IMPLEMENTATION_DEFINED format");
1791 return BAD_VALUE;
1792 }
1793
1794 if (format == HAL_PIXEL_FORMAT_BLOB) {
1795 ssize_t blobBufferSize;
1796 if (dataSpace == HAL_DATASPACE_DEPTH) {
1797 blobBufferSize = getPointCloudBufferSize();
1798 if (blobBufferSize <= 0) {
1799 SET_ERR_L("Invalid point cloud buffer size %zd", blobBufferSize);
1800 return BAD_VALUE;
1801 }
1802 } else if (dataSpace == static_cast<android_dataspace>(HAL_DATASPACE_JPEG_APP_SEGMENTS)) {
1803 blobBufferSize = width * height;
1804 } else {
1805 blobBufferSize = getJpegBufferSize(width, height);
1806 if (blobBufferSize <= 0) {
1807 SET_ERR_L("Invalid jpeg buffer size %zd", blobBufferSize);
1808 return BAD_VALUE;
1809 }
1810 }
1811 newStream = new Camera3OutputStream(mNextStreamId, consumers[0],
1812 width, height, blobBufferSize, format, dataSpace, rotation,
1813 mTimestampOffset, physicalCameraId, streamSetId);
1814 } else if (format == HAL_PIXEL_FORMAT_RAW_OPAQUE) {
1815 ssize_t rawOpaqueBufferSize = getRawOpaqueBufferSize(width, height);
1816 if (rawOpaqueBufferSize <= 0) {
1817 SET_ERR_L("Invalid RAW opaque buffer size %zd", rawOpaqueBufferSize);
1818 return BAD_VALUE;
1819 }
1820 newStream = new Camera3OutputStream(mNextStreamId, consumers[0],
1821 width, height, rawOpaqueBufferSize, format, dataSpace, rotation,
1822 mTimestampOffset, physicalCameraId, streamSetId);
1823 } else if (isShared) {
1824 newStream = new Camera3SharedOutputStream(mNextStreamId, consumers,
1825 width, height, format, consumerUsage, dataSpace, rotation,
1826 mTimestampOffset, physicalCameraId, streamSetId,
1827 mUseHalBufManager);
1828 } else if (consumers.size() == 0 && hasDeferredConsumer) {
1829 newStream = new Camera3OutputStream(mNextStreamId,
1830 width, height, format, consumerUsage, dataSpace, rotation,
1831 mTimestampOffset, physicalCameraId, streamSetId);
1832 } else {
1833 newStream = new Camera3OutputStream(mNextStreamId, consumers[0],
1834 width, height, format, dataSpace, rotation,
1835 mTimestampOffset, physicalCameraId, streamSetId);
1836 }
1837
1838 size_t consumerCount = consumers.size();
1839 for (size_t i = 0; i < consumerCount; i++) {
1840 int id = newStream->getSurfaceId(consumers[i]);
1841 if (id < 0) {
1842 SET_ERR_L("Invalid surface id");
1843 return BAD_VALUE;
1844 }
1845 if (surfaceIds != nullptr) {
1846 surfaceIds->push_back(id);
1847 }
1848 }
1849
1850 newStream->setStatusTracker(mStatusTracker);
1851
1852 newStream->setBufferManager(mBufferManager);
1853
1854 res = mOutputStreams.add(mNextStreamId, newStream);
1855 if (res < 0) {
1856 SET_ERR_L("Can't add new stream to set: %s (%d)", strerror(-res), res);
1857 return res;
1858 }
1859
1860 *id = mNextStreamId++;
1861 mNeedConfig = true;
1862
1863 // Continue captures if active at start
1864 if (wasActive) {
1865 ALOGV("%s: Restarting activity to reconfigure streams", __FUNCTION__);
1866 // Reuse current operating mode and session parameters for new stream config
1867 res = configureStreamsLocked(mOperatingMode, mSessionParams);
1868 if (res != OK) {
1869 CLOGE("Can't reconfigure device for new stream %d: %s (%d)",
1870 mNextStreamId, strerror(-res), res);
1871 return res;
1872 }
1873 internalResumeLocked();
1874 }
1875 ALOGV("Camera %s: Created new stream", mId.string());
1876 return OK;
1877 }
1878
getStreamInfo(int id,StreamInfo * streamInfo)1879 status_t Camera3Device::getStreamInfo(int id, StreamInfo *streamInfo) {
1880 ATRACE_CALL();
1881 if (nullptr == streamInfo) {
1882 return BAD_VALUE;
1883 }
1884 Mutex::Autolock il(mInterfaceLock);
1885 Mutex::Autolock l(mLock);
1886
1887 switch (mStatus) {
1888 case STATUS_ERROR:
1889 CLOGE("Device has encountered a serious error");
1890 return INVALID_OPERATION;
1891 case STATUS_UNINITIALIZED:
1892 CLOGE("Device not initialized!");
1893 return INVALID_OPERATION;
1894 case STATUS_UNCONFIGURED:
1895 case STATUS_CONFIGURED:
1896 case STATUS_ACTIVE:
1897 // OK
1898 break;
1899 default:
1900 SET_ERR_L("Unexpected status: %d", mStatus);
1901 return INVALID_OPERATION;
1902 }
1903
1904 sp<Camera3StreamInterface> stream = mOutputStreams.get(id);
1905 if (stream == nullptr) {
1906 CLOGE("Stream %d is unknown", id);
1907 return BAD_VALUE;
1908 }
1909
1910 streamInfo->width = stream->getWidth();
1911 streamInfo->height = stream->getHeight();
1912 streamInfo->format = stream->getFormat();
1913 streamInfo->dataSpace = stream->getDataSpace();
1914 streamInfo->formatOverridden = stream->isFormatOverridden();
1915 streamInfo->originalFormat = stream->getOriginalFormat();
1916 streamInfo->dataSpaceOverridden = stream->isDataSpaceOverridden();
1917 streamInfo->originalDataSpace = stream->getOriginalDataSpace();
1918 return OK;
1919 }
1920
setStreamTransform(int id,int transform)1921 status_t Camera3Device::setStreamTransform(int id,
1922 int transform) {
1923 ATRACE_CALL();
1924 Mutex::Autolock il(mInterfaceLock);
1925 Mutex::Autolock l(mLock);
1926
1927 switch (mStatus) {
1928 case STATUS_ERROR:
1929 CLOGE("Device has encountered a serious error");
1930 return INVALID_OPERATION;
1931 case STATUS_UNINITIALIZED:
1932 CLOGE("Device not initialized");
1933 return INVALID_OPERATION;
1934 case STATUS_UNCONFIGURED:
1935 case STATUS_CONFIGURED:
1936 case STATUS_ACTIVE:
1937 // OK
1938 break;
1939 default:
1940 SET_ERR_L("Unexpected status: %d", mStatus);
1941 return INVALID_OPERATION;
1942 }
1943
1944 sp<Camera3OutputStreamInterface> stream = mOutputStreams.get(id);
1945 if (stream == nullptr) {
1946 CLOGE("Stream %d does not exist", id);
1947 return BAD_VALUE;
1948 }
1949 return stream->setTransform(transform);
1950 }
1951
deleteStream(int id)1952 status_t Camera3Device::deleteStream(int id) {
1953 ATRACE_CALL();
1954 Mutex::Autolock il(mInterfaceLock);
1955 Mutex::Autolock l(mLock);
1956 status_t res;
1957
1958 ALOGV("%s: Camera %s: Deleting stream %d", __FUNCTION__, mId.string(), id);
1959
1960 // CameraDevice semantics require device to already be idle before
1961 // deleteStream is called, unlike for createStream.
1962 if (mStatus == STATUS_ACTIVE) {
1963 ALOGW("%s: Camera %s: Device not idle", __FUNCTION__, mId.string());
1964 return -EBUSY;
1965 }
1966
1967 if (mStatus == STATUS_ERROR) {
1968 ALOGW("%s: Camera %s: deleteStream not allowed in ERROR state",
1969 __FUNCTION__, mId.string());
1970 return -EBUSY;
1971 }
1972
1973 sp<Camera3StreamInterface> deletedStream;
1974 sp<Camera3StreamInterface> stream = mOutputStreams.get(id);
1975 if (mInputStream != NULL && id == mInputStream->getId()) {
1976 deletedStream = mInputStream;
1977 mInputStream.clear();
1978 } else {
1979 if (stream == nullptr) {
1980 CLOGE("Stream %d does not exist", id);
1981 return BAD_VALUE;
1982 }
1983 }
1984
1985 // Delete output stream or the output part of a bi-directional stream.
1986 if (stream != nullptr) {
1987 deletedStream = stream;
1988 mOutputStreams.remove(id);
1989 }
1990
1991 // Free up the stream endpoint so that it can be used by some other stream
1992 res = deletedStream->disconnect();
1993 if (res != OK) {
1994 SET_ERR_L("Can't disconnect deleted stream %d", id);
1995 // fall through since we want to still list the stream as deleted.
1996 }
1997 mDeletedStreams.add(deletedStream);
1998 mNeedConfig = true;
1999
2000 return res;
2001 }
2002
configureStreams(const CameraMetadata & sessionParams,int operatingMode)2003 status_t Camera3Device::configureStreams(const CameraMetadata& sessionParams, int operatingMode) {
2004 ATRACE_CALL();
2005 ALOGV("%s: E", __FUNCTION__);
2006
2007 Mutex::Autolock il(mInterfaceLock);
2008 Mutex::Autolock l(mLock);
2009
2010 // In case the client doesn't include any session parameter, try a
2011 // speculative configuration using the values from the last cached
2012 // default request.
2013 if (sessionParams.isEmpty() &&
2014 ((mLastTemplateId > 0) && (mLastTemplateId < CAMERA3_TEMPLATE_COUNT)) &&
2015 (!mRequestTemplateCache[mLastTemplateId].isEmpty())) {
2016 ALOGV("%s: Speculative session param configuration with template id: %d", __func__,
2017 mLastTemplateId);
2018 return filterParamsAndConfigureLocked(mRequestTemplateCache[mLastTemplateId],
2019 operatingMode);
2020 }
2021
2022 return filterParamsAndConfigureLocked(sessionParams, operatingMode);
2023 }
2024
filterParamsAndConfigureLocked(const CameraMetadata & sessionParams,int operatingMode)2025 status_t Camera3Device::filterParamsAndConfigureLocked(const CameraMetadata& sessionParams,
2026 int operatingMode) {
2027 //Filter out any incoming session parameters
2028 const CameraMetadata params(sessionParams);
2029 camera_metadata_entry_t availableSessionKeys = mDeviceInfo.find(
2030 ANDROID_REQUEST_AVAILABLE_SESSION_KEYS);
2031 CameraMetadata filteredParams(availableSessionKeys.count);
2032 camera_metadata_t *meta = const_cast<camera_metadata_t *>(
2033 filteredParams.getAndLock());
2034 set_camera_metadata_vendor_id(meta, mVendorTagId);
2035 filteredParams.unlock(meta);
2036 if (availableSessionKeys.count > 0) {
2037 for (size_t i = 0; i < availableSessionKeys.count; i++) {
2038 camera_metadata_ro_entry entry = params.find(
2039 availableSessionKeys.data.i32[i]);
2040 if (entry.count > 0) {
2041 filteredParams.update(entry);
2042 }
2043 }
2044 }
2045
2046 return configureStreamsLocked(operatingMode, filteredParams);
2047 }
2048
getInputBufferProducer(sp<IGraphicBufferProducer> * producer)2049 status_t Camera3Device::getInputBufferProducer(
2050 sp<IGraphicBufferProducer> *producer) {
2051 ATRACE_CALL();
2052 Mutex::Autolock il(mInterfaceLock);
2053 Mutex::Autolock l(mLock);
2054
2055 if (producer == NULL) {
2056 return BAD_VALUE;
2057 } else if (mInputStream == NULL) {
2058 return INVALID_OPERATION;
2059 }
2060
2061 return mInputStream->getInputBufferProducer(producer);
2062 }
2063
createDefaultRequest(int templateId,CameraMetadata * request)2064 status_t Camera3Device::createDefaultRequest(int templateId,
2065 CameraMetadata *request) {
2066 ATRACE_CALL();
2067 ALOGV("%s: for template %d", __FUNCTION__, templateId);
2068
2069 if (templateId <= 0 || templateId >= CAMERA3_TEMPLATE_COUNT) {
2070 android_errorWriteWithInfoLog(CameraService::SN_EVENT_LOG_ID, "26866110",
2071 CameraThreadState::getCallingUid(), nullptr, 0);
2072 return BAD_VALUE;
2073 }
2074
2075 Mutex::Autolock il(mInterfaceLock);
2076
2077 {
2078 Mutex::Autolock l(mLock);
2079 switch (mStatus) {
2080 case STATUS_ERROR:
2081 CLOGE("Device has encountered a serious error");
2082 return INVALID_OPERATION;
2083 case STATUS_UNINITIALIZED:
2084 CLOGE("Device is not initialized!");
2085 return INVALID_OPERATION;
2086 case STATUS_UNCONFIGURED:
2087 case STATUS_CONFIGURED:
2088 case STATUS_ACTIVE:
2089 // OK
2090 break;
2091 default:
2092 SET_ERR_L("Unexpected status: %d", mStatus);
2093 return INVALID_OPERATION;
2094 }
2095
2096 if (!mRequestTemplateCache[templateId].isEmpty()) {
2097 *request = mRequestTemplateCache[templateId];
2098 mLastTemplateId = templateId;
2099 return OK;
2100 }
2101 }
2102
2103 camera_metadata_t *rawRequest;
2104 status_t res = mInterface->constructDefaultRequestSettings(
2105 (camera3_request_template_t) templateId, &rawRequest);
2106
2107 {
2108 Mutex::Autolock l(mLock);
2109 if (res == BAD_VALUE) {
2110 ALOGI("%s: template %d is not supported on this camera device",
2111 __FUNCTION__, templateId);
2112 return res;
2113 } else if (res != OK) {
2114 CLOGE("Unable to construct request template %d: %s (%d)",
2115 templateId, strerror(-res), res);
2116 return res;
2117 }
2118
2119 set_camera_metadata_vendor_id(rawRequest, mVendorTagId);
2120 mRequestTemplateCache[templateId].acquire(rawRequest);
2121
2122 *request = mRequestTemplateCache[templateId];
2123 mLastTemplateId = templateId;
2124 }
2125 return OK;
2126 }
2127
waitUntilDrained()2128 status_t Camera3Device::waitUntilDrained() {
2129 ATRACE_CALL();
2130 Mutex::Autolock il(mInterfaceLock);
2131 nsecs_t maxExpectedDuration = getExpectedInFlightDuration();
2132 Mutex::Autolock l(mLock);
2133
2134 return waitUntilDrainedLocked(maxExpectedDuration);
2135 }
2136
waitUntilDrainedLocked(nsecs_t maxExpectedDuration)2137 status_t Camera3Device::waitUntilDrainedLocked(nsecs_t maxExpectedDuration) {
2138 switch (mStatus) {
2139 case STATUS_UNINITIALIZED:
2140 case STATUS_UNCONFIGURED:
2141 ALOGV("%s: Already idle", __FUNCTION__);
2142 return OK;
2143 case STATUS_CONFIGURED:
2144 // To avoid race conditions, check with tracker to be sure
2145 case STATUS_ERROR:
2146 case STATUS_ACTIVE:
2147 // Need to verify shut down
2148 break;
2149 default:
2150 SET_ERR_L("Unexpected status: %d",mStatus);
2151 return INVALID_OPERATION;
2152 }
2153 ALOGV("%s: Camera %s: Waiting until idle (%" PRIi64 "ns)", __FUNCTION__, mId.string(),
2154 maxExpectedDuration);
2155 status_t res = waitUntilStateThenRelock(/*active*/ false, maxExpectedDuration);
2156 if (res != OK) {
2157 SET_ERR_L("Error waiting for HAL to drain: %s (%d)", strerror(-res),
2158 res);
2159 }
2160 return res;
2161 }
2162
2163
internalUpdateStatusLocked(Status status)2164 void Camera3Device::internalUpdateStatusLocked(Status status) {
2165 mStatus = status;
2166 mRecentStatusUpdates.add(mStatus);
2167 mStatusChanged.broadcast();
2168 }
2169
pauseStateNotify(bool enable)2170 void Camera3Device::pauseStateNotify(bool enable) {
2171 Mutex::Autolock il(mInterfaceLock);
2172 Mutex::Autolock l(mLock);
2173
2174 mPauseStateNotify = enable;
2175 }
2176
2177 // Pause to reconfigure
internalPauseAndWaitLocked(nsecs_t maxExpectedDuration)2178 status_t Camera3Device::internalPauseAndWaitLocked(nsecs_t maxExpectedDuration) {
2179 if (mRequestThread.get() != nullptr) {
2180 mRequestThread->setPaused(true);
2181 } else {
2182 return NO_INIT;
2183 }
2184
2185 ALOGV("%s: Camera %s: Internal wait until idle (% " PRIi64 " ns)", __FUNCTION__, mId.string(),
2186 maxExpectedDuration);
2187 status_t res = waitUntilStateThenRelock(/*active*/ false, maxExpectedDuration);
2188 if (res != OK) {
2189 SET_ERR_L("Can't idle device in %f seconds!",
2190 maxExpectedDuration/1e9);
2191 }
2192
2193 return res;
2194 }
2195
2196 // Resume after internalPauseAndWaitLocked
internalResumeLocked()2197 status_t Camera3Device::internalResumeLocked() {
2198 status_t res;
2199
2200 mRequestThread->setPaused(false);
2201
2202 ALOGV("%s: Camera %s: Internal wait until active (% " PRIi64 " ns)", __FUNCTION__, mId.string(),
2203 kActiveTimeout);
2204 res = waitUntilStateThenRelock(/*active*/ true, kActiveTimeout);
2205 if (res != OK) {
2206 SET_ERR_L("Can't transition to active in %f seconds!",
2207 kActiveTimeout/1e9);
2208 }
2209 mPauseStateNotify = false;
2210 return OK;
2211 }
2212
waitUntilStateThenRelock(bool active,nsecs_t timeout)2213 status_t Camera3Device::waitUntilStateThenRelock(bool active, nsecs_t timeout) {
2214 status_t res = OK;
2215
2216 size_t startIndex = 0;
2217 if (mStatusWaiters == 0) {
2218 // Clear the list of recent statuses if there are no existing threads waiting on updates to
2219 // this status list
2220 mRecentStatusUpdates.clear();
2221 } else {
2222 // If other threads are waiting on updates to this status list, set the position of the
2223 // first element that this list will check rather than clearing the list.
2224 startIndex = mRecentStatusUpdates.size();
2225 }
2226
2227 mStatusWaiters++;
2228
2229 if (!active && mUseHalBufManager) {
2230 auto streamIds = mOutputStreams.getStreamIds();
2231 if (mStatus == STATUS_ACTIVE) {
2232 mRequestThread->signalPipelineDrain(streamIds);
2233 }
2234 mRequestBufferSM.onWaitUntilIdle();
2235 }
2236
2237 bool stateSeen = false;
2238 do {
2239 if (active == (mStatus == STATUS_ACTIVE)) {
2240 // Desired state is current
2241 break;
2242 }
2243
2244 res = mStatusChanged.waitRelative(mLock, timeout);
2245 if (res != OK) break;
2246
2247 // This is impossible, but if not, could result in subtle deadlocks and invalid state
2248 // transitions.
2249 LOG_ALWAYS_FATAL_IF(startIndex > mRecentStatusUpdates.size(),
2250 "%s: Skipping status updates in Camera3Device, may result in deadlock.",
2251 __FUNCTION__);
2252
2253 // Encountered desired state since we began waiting
2254 for (size_t i = startIndex; i < mRecentStatusUpdates.size(); i++) {
2255 if (active == (mRecentStatusUpdates[i] == STATUS_ACTIVE) ) {
2256 stateSeen = true;
2257 break;
2258 }
2259 }
2260 } while (!stateSeen);
2261
2262 mStatusWaiters--;
2263
2264 return res;
2265 }
2266
2267
setNotifyCallback(wp<NotificationListener> listener)2268 status_t Camera3Device::setNotifyCallback(wp<NotificationListener> listener) {
2269 ATRACE_CALL();
2270 Mutex::Autolock l(mOutputLock);
2271
2272 if (listener != NULL && mListener != NULL) {
2273 ALOGW("%s: Replacing old callback listener", __FUNCTION__);
2274 }
2275 mListener = listener;
2276 mRequestThread->setNotificationListener(listener);
2277 mPreparerThread->setNotificationListener(listener);
2278
2279 return OK;
2280 }
2281
willNotify3A()2282 bool Camera3Device::willNotify3A() {
2283 return false;
2284 }
2285
waitForNextFrame(nsecs_t timeout)2286 status_t Camera3Device::waitForNextFrame(nsecs_t timeout) {
2287 ATRACE_CALL();
2288 status_t res;
2289 Mutex::Autolock l(mOutputLock);
2290
2291 while (mResultQueue.empty()) {
2292 res = mResultSignal.waitRelative(mOutputLock, timeout);
2293 if (res == TIMED_OUT) {
2294 return res;
2295 } else if (res != OK) {
2296 ALOGW("%s: Camera %s: No frame in %" PRId64 " ns: %s (%d)",
2297 __FUNCTION__, mId.string(), timeout, strerror(-res), res);
2298 return res;
2299 }
2300 }
2301 return OK;
2302 }
2303
getNextResult(CaptureResult * frame)2304 status_t Camera3Device::getNextResult(CaptureResult *frame) {
2305 ATRACE_CALL();
2306 Mutex::Autolock l(mOutputLock);
2307
2308 if (mResultQueue.empty()) {
2309 return NOT_ENOUGH_DATA;
2310 }
2311
2312 if (frame == NULL) {
2313 ALOGE("%s: argument cannot be NULL", __FUNCTION__);
2314 return BAD_VALUE;
2315 }
2316
2317 CaptureResult &result = *(mResultQueue.begin());
2318 frame->mResultExtras = result.mResultExtras;
2319 frame->mMetadata.acquire(result.mMetadata);
2320 frame->mPhysicalMetadatas = std::move(result.mPhysicalMetadatas);
2321 mResultQueue.erase(mResultQueue.begin());
2322
2323 return OK;
2324 }
2325
triggerAutofocus(uint32_t id)2326 status_t Camera3Device::triggerAutofocus(uint32_t id) {
2327 ATRACE_CALL();
2328 Mutex::Autolock il(mInterfaceLock);
2329
2330 ALOGV("%s: Triggering autofocus, id %d", __FUNCTION__, id);
2331 // Mix-in this trigger into the next request and only the next request.
2332 RequestTrigger trigger[] = {
2333 {
2334 ANDROID_CONTROL_AF_TRIGGER,
2335 ANDROID_CONTROL_AF_TRIGGER_START
2336 },
2337 {
2338 ANDROID_CONTROL_AF_TRIGGER_ID,
2339 static_cast<int32_t>(id)
2340 }
2341 };
2342
2343 return mRequestThread->queueTrigger(trigger,
2344 sizeof(trigger)/sizeof(trigger[0]));
2345 }
2346
triggerCancelAutofocus(uint32_t id)2347 status_t Camera3Device::triggerCancelAutofocus(uint32_t id) {
2348 ATRACE_CALL();
2349 Mutex::Autolock il(mInterfaceLock);
2350
2351 ALOGV("%s: Triggering cancel autofocus, id %d", __FUNCTION__, id);
2352 // Mix-in this trigger into the next request and only the next request.
2353 RequestTrigger trigger[] = {
2354 {
2355 ANDROID_CONTROL_AF_TRIGGER,
2356 ANDROID_CONTROL_AF_TRIGGER_CANCEL
2357 },
2358 {
2359 ANDROID_CONTROL_AF_TRIGGER_ID,
2360 static_cast<int32_t>(id)
2361 }
2362 };
2363
2364 return mRequestThread->queueTrigger(trigger,
2365 sizeof(trigger)/sizeof(trigger[0]));
2366 }
2367
triggerPrecaptureMetering(uint32_t id)2368 status_t Camera3Device::triggerPrecaptureMetering(uint32_t id) {
2369 ATRACE_CALL();
2370 Mutex::Autolock il(mInterfaceLock);
2371
2372 ALOGV("%s: Triggering precapture metering, id %d", __FUNCTION__, id);
2373 // Mix-in this trigger into the next request and only the next request.
2374 RequestTrigger trigger[] = {
2375 {
2376 ANDROID_CONTROL_AE_PRECAPTURE_TRIGGER,
2377 ANDROID_CONTROL_AE_PRECAPTURE_TRIGGER_START
2378 },
2379 {
2380 ANDROID_CONTROL_AE_PRECAPTURE_ID,
2381 static_cast<int32_t>(id)
2382 }
2383 };
2384
2385 return mRequestThread->queueTrigger(trigger,
2386 sizeof(trigger)/sizeof(trigger[0]));
2387 }
2388
flush(int64_t * frameNumber)2389 status_t Camera3Device::flush(int64_t *frameNumber) {
2390 ATRACE_CALL();
2391 ALOGV("%s: Camera %s: Flushing all requests", __FUNCTION__, mId.string());
2392 Mutex::Autolock il(mInterfaceLock);
2393
2394 {
2395 Mutex::Autolock l(mLock);
2396
2397 // b/116514106 "disconnect()" can get called twice for the same device. The
2398 // camera device will not be initialized during the second run.
2399 if (mStatus == STATUS_UNINITIALIZED) {
2400 return OK;
2401 }
2402
2403 mRequestThread->clear(/*out*/frameNumber);
2404 }
2405
2406 return mRequestThread->flush();
2407 }
2408
prepare(int streamId)2409 status_t Camera3Device::prepare(int streamId) {
2410 return prepare(camera3::Camera3StreamInterface::ALLOCATE_PIPELINE_MAX, streamId);
2411 }
2412
prepare(int maxCount,int streamId)2413 status_t Camera3Device::prepare(int maxCount, int streamId) {
2414 ATRACE_CALL();
2415 ALOGV("%s: Camera %s: Preparing stream %d", __FUNCTION__, mId.string(), streamId);
2416 Mutex::Autolock il(mInterfaceLock);
2417 Mutex::Autolock l(mLock);
2418
2419 sp<Camera3StreamInterface> stream = mOutputStreams.get(streamId);
2420 if (stream == nullptr) {
2421 CLOGE("Stream %d does not exist", streamId);
2422 return BAD_VALUE;
2423 }
2424
2425 if (stream->isUnpreparable() || stream->hasOutstandingBuffers() ) {
2426 CLOGE("Stream %d has already been a request target", streamId);
2427 return BAD_VALUE;
2428 }
2429
2430 if (mRequestThread->isStreamPending(stream)) {
2431 CLOGE("Stream %d is already a target in a pending request", streamId);
2432 return BAD_VALUE;
2433 }
2434
2435 return mPreparerThread->prepare(maxCount, stream);
2436 }
2437
tearDown(int streamId)2438 status_t Camera3Device::tearDown(int streamId) {
2439 ATRACE_CALL();
2440 ALOGV("%s: Camera %s: Tearing down stream %d", __FUNCTION__, mId.string(), streamId);
2441 Mutex::Autolock il(mInterfaceLock);
2442 Mutex::Autolock l(mLock);
2443
2444 sp<Camera3StreamInterface> stream = mOutputStreams.get(streamId);
2445 if (stream == nullptr) {
2446 CLOGE("Stream %d does not exist", streamId);
2447 return BAD_VALUE;
2448 }
2449
2450 if (stream->hasOutstandingBuffers() || mRequestThread->isStreamPending(stream)) {
2451 CLOGE("Stream %d is a target of a in-progress request", streamId);
2452 return BAD_VALUE;
2453 }
2454
2455 return stream->tearDown();
2456 }
2457
addBufferListenerForStream(int streamId,wp<Camera3StreamBufferListener> listener)2458 status_t Camera3Device::addBufferListenerForStream(int streamId,
2459 wp<Camera3StreamBufferListener> listener) {
2460 ATRACE_CALL();
2461 ALOGV("%s: Camera %s: Adding buffer listener for stream %d", __FUNCTION__, mId.string(), streamId);
2462 Mutex::Autolock il(mInterfaceLock);
2463 Mutex::Autolock l(mLock);
2464
2465 sp<Camera3StreamInterface> stream = mOutputStreams.get(streamId);
2466 if (stream == nullptr) {
2467 CLOGE("Stream %d does not exist", streamId);
2468 return BAD_VALUE;
2469 }
2470 stream->addBufferListener(listener);
2471
2472 return OK;
2473 }
2474
2475 /**
2476 * Methods called by subclasses
2477 */
2478
notifyStatus(bool idle)2479 void Camera3Device::notifyStatus(bool idle) {
2480 ATRACE_CALL();
2481 {
2482 // Need mLock to safely update state and synchronize to current
2483 // state of methods in flight.
2484 Mutex::Autolock l(mLock);
2485 // We can get various system-idle notices from the status tracker
2486 // while starting up. Only care about them if we've actually sent
2487 // in some requests recently.
2488 if (mStatus != STATUS_ACTIVE && mStatus != STATUS_CONFIGURED) {
2489 return;
2490 }
2491 ALOGV("%s: Camera %s: Now %s, pauseState: %s", __FUNCTION__, mId.string(),
2492 idle ? "idle" : "active", mPauseStateNotify ? "true" : "false");
2493 internalUpdateStatusLocked(idle ? STATUS_CONFIGURED : STATUS_ACTIVE);
2494
2495 // Skip notifying listener if we're doing some user-transparent
2496 // state changes
2497 if (mPauseStateNotify) return;
2498 }
2499
2500 sp<NotificationListener> listener;
2501 {
2502 Mutex::Autolock l(mOutputLock);
2503 listener = mListener.promote();
2504 }
2505 if (idle && listener != NULL) {
2506 listener->notifyIdle();
2507 }
2508 }
2509
setConsumerSurfaces(int streamId,const std::vector<sp<Surface>> & consumers,std::vector<int> * surfaceIds)2510 status_t Camera3Device::setConsumerSurfaces(int streamId,
2511 const std::vector<sp<Surface>>& consumers, std::vector<int> *surfaceIds) {
2512 ATRACE_CALL();
2513 ALOGV("%s: Camera %s: set consumer surface for stream %d",
2514 __FUNCTION__, mId.string(), streamId);
2515
2516 if (surfaceIds == nullptr) {
2517 return BAD_VALUE;
2518 }
2519
2520 Mutex::Autolock il(mInterfaceLock);
2521 Mutex::Autolock l(mLock);
2522
2523 if (consumers.size() == 0) {
2524 CLOGE("No consumer is passed!");
2525 return BAD_VALUE;
2526 }
2527
2528 sp<Camera3OutputStreamInterface> stream = mOutputStreams.get(streamId);
2529 if (stream == nullptr) {
2530 CLOGE("Stream %d is unknown", streamId);
2531 return BAD_VALUE;
2532 }
2533
2534 // isConsumerConfigurationDeferred will be off after setConsumers
2535 bool isDeferred = stream->isConsumerConfigurationDeferred();
2536 status_t res = stream->setConsumers(consumers);
2537 if (res != OK) {
2538 CLOGE("Stream %d set consumer failed (error %d %s) ", streamId, res, strerror(-res));
2539 return res;
2540 }
2541
2542 for (auto &consumer : consumers) {
2543 int id = stream->getSurfaceId(consumer);
2544 if (id < 0) {
2545 CLOGE("Invalid surface id!");
2546 return BAD_VALUE;
2547 }
2548 surfaceIds->push_back(id);
2549 }
2550
2551 if (isDeferred) {
2552 if (!stream->isConfiguring()) {
2553 CLOGE("Stream %d was already fully configured.", streamId);
2554 return INVALID_OPERATION;
2555 }
2556
2557 res = stream->finishConfiguration();
2558 if (res != OK) {
2559 // If finishConfiguration fails due to abandoned surface, do not set
2560 // device to error state.
2561 bool isSurfaceAbandoned =
2562 (res == NO_INIT || res == DEAD_OBJECT) && stream->isAbandoned();
2563 if (!isSurfaceAbandoned) {
2564 SET_ERR_L("Can't finish configuring output stream %d: %s (%d)",
2565 stream->getId(), strerror(-res), res);
2566 }
2567 return res;
2568 }
2569 }
2570
2571 return OK;
2572 }
2573
updateStream(int streamId,const std::vector<sp<Surface>> & newSurfaces,const std::vector<OutputStreamInfo> & outputInfo,const std::vector<size_t> & removedSurfaceIds,KeyedVector<sp<Surface>,size_t> * outputMap)2574 status_t Camera3Device::updateStream(int streamId, const std::vector<sp<Surface>> &newSurfaces,
2575 const std::vector<OutputStreamInfo> &outputInfo,
2576 const std::vector<size_t> &removedSurfaceIds, KeyedVector<sp<Surface>, size_t> *outputMap) {
2577 Mutex::Autolock il(mInterfaceLock);
2578 Mutex::Autolock l(mLock);
2579
2580 sp<Camera3OutputStreamInterface> stream = mOutputStreams.get(streamId);
2581 if (stream == nullptr) {
2582 CLOGE("Stream %d is unknown", streamId);
2583 return BAD_VALUE;
2584 }
2585
2586 for (const auto &it : removedSurfaceIds) {
2587 if (mRequestThread->isOutputSurfacePending(streamId, it)) {
2588 CLOGE("Shared surface still part of a pending request!");
2589 return -EBUSY;
2590 }
2591 }
2592
2593 status_t res = stream->updateStream(newSurfaces, outputInfo, removedSurfaceIds, outputMap);
2594 if (res != OK) {
2595 CLOGE("Stream %d failed to update stream (error %d %s) ",
2596 streamId, res, strerror(-res));
2597 if (res == UNKNOWN_ERROR) {
2598 SET_ERR_L("%s: Stream update failed to revert to previous output configuration!",
2599 __FUNCTION__);
2600 }
2601 return res;
2602 }
2603
2604 return res;
2605 }
2606
dropStreamBuffers(bool dropping,int streamId)2607 status_t Camera3Device::dropStreamBuffers(bool dropping, int streamId) {
2608 Mutex::Autolock il(mInterfaceLock);
2609 Mutex::Autolock l(mLock);
2610
2611 sp<Camera3OutputStreamInterface> stream = mOutputStreams.get(streamId);
2612 if (stream == nullptr) {
2613 ALOGE("%s: Stream %d is not found.", __FUNCTION__, streamId);
2614 return BAD_VALUE;
2615 }
2616 return stream->dropBuffers(dropping);
2617 }
2618
2619 /**
2620 * Camera3Device private methods
2621 */
2622
createCaptureRequest(const PhysicalCameraSettingsList & request,const SurfaceMap & surfaceMap)2623 sp<Camera3Device::CaptureRequest> Camera3Device::createCaptureRequest(
2624 const PhysicalCameraSettingsList &request, const SurfaceMap &surfaceMap) {
2625 ATRACE_CALL();
2626
2627 sp<CaptureRequest> newRequest = new CaptureRequest;
2628 newRequest->mSettingsList = request;
2629
2630 camera_metadata_entry_t inputStreams =
2631 newRequest->mSettingsList.begin()->metadata.find(ANDROID_REQUEST_INPUT_STREAMS);
2632 if (inputStreams.count > 0) {
2633 if (mInputStream == NULL ||
2634 mInputStream->getId() != inputStreams.data.i32[0]) {
2635 CLOGE("Request references unknown input stream %d",
2636 inputStreams.data.u8[0]);
2637 return NULL;
2638 }
2639
2640 if (mInputStream->isConfiguring()) {
2641 SET_ERR_L("%s: input stream %d is not configured!",
2642 __FUNCTION__, mInputStream->getId());
2643 return NULL;
2644 }
2645 // Check if stream prepare is blocking requests.
2646 if (mInputStream->isBlockedByPrepare()) {
2647 CLOGE("Request references an input stream that's being prepared!");
2648 return NULL;
2649 }
2650
2651 newRequest->mInputStream = mInputStream;
2652 newRequest->mSettingsList.begin()->metadata.erase(ANDROID_REQUEST_INPUT_STREAMS);
2653 }
2654
2655 camera_metadata_entry_t streams =
2656 newRequest->mSettingsList.begin()->metadata.find(ANDROID_REQUEST_OUTPUT_STREAMS);
2657 if (streams.count == 0) {
2658 CLOGE("Zero output streams specified!");
2659 return NULL;
2660 }
2661
2662 for (size_t i = 0; i < streams.count; i++) {
2663 sp<Camera3OutputStreamInterface> stream = mOutputStreams.get(streams.data.i32[i]);
2664 if (stream == nullptr) {
2665 CLOGE("Request references unknown stream %d",
2666 streams.data.i32[i]);
2667 return NULL;
2668 }
2669 // It is illegal to include a deferred consumer output stream into a request
2670 auto iter = surfaceMap.find(streams.data.i32[i]);
2671 if (iter != surfaceMap.end()) {
2672 const std::vector<size_t>& surfaces = iter->second;
2673 for (const auto& surface : surfaces) {
2674 if (stream->isConsumerConfigurationDeferred(surface)) {
2675 CLOGE("Stream %d surface %zu hasn't finished configuration yet "
2676 "due to deferred consumer", stream->getId(), surface);
2677 return NULL;
2678 }
2679 }
2680 newRequest->mOutputSurfaces[streams.data.i32[i]] = surfaces;
2681 }
2682
2683 if (stream->isConfiguring()) {
2684 SET_ERR_L("%s: stream %d is not configured!", __FUNCTION__, stream->getId());
2685 return NULL;
2686 }
2687 // Check if stream prepare is blocking requests.
2688 if (stream->isBlockedByPrepare()) {
2689 CLOGE("Request references an output stream that's being prepared!");
2690 return NULL;
2691 }
2692
2693 newRequest->mOutputStreams.push(stream);
2694 }
2695 newRequest->mSettingsList.begin()->metadata.erase(ANDROID_REQUEST_OUTPUT_STREAMS);
2696 newRequest->mBatchSize = 1;
2697
2698 return newRequest;
2699 }
2700
isOpaqueInputSizeSupported(uint32_t width,uint32_t height)2701 bool Camera3Device::isOpaqueInputSizeSupported(uint32_t width, uint32_t height) {
2702 for (uint32_t i = 0; i < mSupportedOpaqueInputSizes.size(); i++) {
2703 Size size = mSupportedOpaqueInputSizes[i];
2704 if (size.width == width && size.height == height) {
2705 return true;
2706 }
2707 }
2708
2709 return false;
2710 }
2711
cancelStreamsConfigurationLocked()2712 void Camera3Device::cancelStreamsConfigurationLocked() {
2713 int res = OK;
2714 if (mInputStream != NULL && mInputStream->isConfiguring()) {
2715 res = mInputStream->cancelConfiguration();
2716 if (res != OK) {
2717 CLOGE("Can't cancel configuring input stream %d: %s (%d)",
2718 mInputStream->getId(), strerror(-res), res);
2719 }
2720 }
2721
2722 for (size_t i = 0; i < mOutputStreams.size(); i++) {
2723 sp<Camera3OutputStreamInterface> outputStream = mOutputStreams[i];
2724 if (outputStream->isConfiguring()) {
2725 res = outputStream->cancelConfiguration();
2726 if (res != OK) {
2727 CLOGE("Can't cancel configuring output stream %d: %s (%d)",
2728 outputStream->getId(), strerror(-res), res);
2729 }
2730 }
2731 }
2732
2733 // Return state to that at start of call, so that future configures
2734 // properly clean things up
2735 internalUpdateStatusLocked(STATUS_UNCONFIGURED);
2736 mNeedConfig = true;
2737
2738 res = mPreparerThread->resume();
2739 if (res != OK) {
2740 ALOGE("%s: Camera %s: Preparer thread failed to resume!", __FUNCTION__, mId.string());
2741 }
2742 }
2743
reconfigureCamera(const CameraMetadata & sessionParams)2744 bool Camera3Device::reconfigureCamera(const CameraMetadata& sessionParams) {
2745 ATRACE_CALL();
2746 bool ret = false;
2747
2748 Mutex::Autolock il(mInterfaceLock);
2749 nsecs_t maxExpectedDuration = getExpectedInFlightDuration();
2750
2751 Mutex::Autolock l(mLock);
2752 auto rc = internalPauseAndWaitLocked(maxExpectedDuration);
2753 if (rc == NO_ERROR) {
2754 mNeedConfig = true;
2755 rc = configureStreamsLocked(mOperatingMode, sessionParams, /*notifyRequestThread*/ false);
2756 if (rc == NO_ERROR) {
2757 ret = true;
2758 mPauseStateNotify = false;
2759 //Moving to active state while holding 'mLock' is important.
2760 //There could be pending calls to 'create-/deleteStream' which
2761 //will trigger another stream configuration while the already
2762 //present streams end up with outstanding buffers that will
2763 //not get drained.
2764 internalUpdateStatusLocked(STATUS_ACTIVE);
2765 } else if (rc == DEAD_OBJECT) {
2766 // DEAD_OBJECT can be returned if either the consumer surface is
2767 // abandoned, or the HAL has died.
2768 // - If the HAL has died, configureStreamsLocked call will set
2769 // device to error state,
2770 // - If surface is abandoned, we should not set device to error
2771 // state.
2772 ALOGE("Failed to re-configure camera due to abandoned surface");
2773 } else {
2774 SET_ERR_L("Failed to re-configure camera: %d", rc);
2775 }
2776 } else {
2777 ALOGE("%s: Failed to pause streaming: %d", __FUNCTION__, rc);
2778 }
2779
2780 return ret;
2781 }
2782
configureStreamsLocked(int operatingMode,const CameraMetadata & sessionParams,bool notifyRequestThread)2783 status_t Camera3Device::configureStreamsLocked(int operatingMode,
2784 const CameraMetadata& sessionParams, bool notifyRequestThread) {
2785 ATRACE_CALL();
2786 status_t res;
2787
2788 if (mStatus != STATUS_UNCONFIGURED && mStatus != STATUS_CONFIGURED) {
2789 CLOGE("Not idle");
2790 return INVALID_OPERATION;
2791 }
2792
2793 if (operatingMode < 0) {
2794 CLOGE("Invalid operating mode: %d", operatingMode);
2795 return BAD_VALUE;
2796 }
2797
2798 bool isConstrainedHighSpeed =
2799 static_cast<int>(StreamConfigurationMode::CONSTRAINED_HIGH_SPEED_MODE) ==
2800 operatingMode;
2801
2802 if (mOperatingMode != operatingMode) {
2803 mNeedConfig = true;
2804 mIsConstrainedHighSpeedConfiguration = isConstrainedHighSpeed;
2805 mOperatingMode = operatingMode;
2806 }
2807
2808 if (!mNeedConfig) {
2809 ALOGV("%s: Skipping config, no stream changes", __FUNCTION__);
2810 return OK;
2811 }
2812
2813 // Workaround for device HALv3.2 or older spec bug - zero streams requires
2814 // adding a dummy stream instead.
2815 // TODO: Bug: 17321404 for fixing the HAL spec and removing this workaround.
2816 if (mOutputStreams.size() == 0) {
2817 addDummyStreamLocked();
2818 } else {
2819 tryRemoveDummyStreamLocked();
2820 }
2821
2822 // Start configuring the streams
2823 ALOGV("%s: Camera %s: Starting stream configuration", __FUNCTION__, mId.string());
2824
2825 mPreparerThread->pause();
2826
2827 camera3_stream_configuration config;
2828 config.operation_mode = mOperatingMode;
2829 config.num_streams = (mInputStream != NULL) + mOutputStreams.size();
2830
2831 Vector<camera3_stream_t*> streams;
2832 streams.setCapacity(config.num_streams);
2833 std::vector<uint32_t> bufferSizes(config.num_streams, 0);
2834
2835
2836 if (mInputStream != NULL) {
2837 camera3_stream_t *inputStream;
2838 inputStream = mInputStream->startConfiguration();
2839 if (inputStream == NULL) {
2840 CLOGE("Can't start input stream configuration");
2841 cancelStreamsConfigurationLocked();
2842 return INVALID_OPERATION;
2843 }
2844 streams.add(inputStream);
2845 }
2846
2847 for (size_t i = 0; i < mOutputStreams.size(); i++) {
2848
2849 // Don't configure bidi streams twice, nor add them twice to the list
2850 if (mOutputStreams[i].get() ==
2851 static_cast<Camera3StreamInterface*>(mInputStream.get())) {
2852
2853 config.num_streams--;
2854 continue;
2855 }
2856
2857 camera3_stream_t *outputStream;
2858 outputStream = mOutputStreams[i]->startConfiguration();
2859 if (outputStream == NULL) {
2860 CLOGE("Can't start output stream configuration");
2861 cancelStreamsConfigurationLocked();
2862 return INVALID_OPERATION;
2863 }
2864 streams.add(outputStream);
2865
2866 if (outputStream->format == HAL_PIXEL_FORMAT_BLOB) {
2867 size_t k = i + ((mInputStream != nullptr) ? 1 : 0); // Input stream if present should
2868 // always occupy the initial entry.
2869 if (outputStream->data_space == HAL_DATASPACE_V0_JFIF) {
2870 bufferSizes[k] = static_cast<uint32_t>(
2871 getJpegBufferSize(outputStream->width, outputStream->height));
2872 } else if (outputStream->data_space ==
2873 static_cast<android_dataspace>(HAL_DATASPACE_JPEG_APP_SEGMENTS)) {
2874 bufferSizes[k] = outputStream->width * outputStream->height;
2875 } else {
2876 ALOGW("%s: Blob dataSpace %d not supported",
2877 __FUNCTION__, outputStream->data_space);
2878 }
2879 }
2880 }
2881
2882 config.streams = streams.editArray();
2883
2884 // Do the HAL configuration; will potentially touch stream
2885 // max_buffers, usage, and priv fields, as well as data_space and format
2886 // fields for IMPLEMENTATION_DEFINED formats.
2887
2888 const camera_metadata_t *sessionBuffer = sessionParams.getAndLock();
2889 res = mInterface->configureStreams(sessionBuffer, &config, bufferSizes);
2890 sessionParams.unlock(sessionBuffer);
2891
2892 if (res == BAD_VALUE) {
2893 // HAL rejected this set of streams as unsupported, clean up config
2894 // attempt and return to unconfigured state
2895 CLOGE("Set of requested inputs/outputs not supported by HAL");
2896 cancelStreamsConfigurationLocked();
2897 return BAD_VALUE;
2898 } else if (res != OK) {
2899 // Some other kind of error from configure_streams - this is not
2900 // expected
2901 SET_ERR_L("Unable to configure streams with HAL: %s (%d)",
2902 strerror(-res), res);
2903 return res;
2904 }
2905
2906 // Finish all stream configuration immediately.
2907 // TODO: Try to relax this later back to lazy completion, which should be
2908 // faster
2909
2910 if (mInputStream != NULL && mInputStream->isConfiguring()) {
2911 bool streamReConfigured = false;
2912 res = mInputStream->finishConfiguration(&streamReConfigured);
2913 if (res != OK) {
2914 CLOGE("Can't finish configuring input stream %d: %s (%d)",
2915 mInputStream->getId(), strerror(-res), res);
2916 cancelStreamsConfigurationLocked();
2917 if ((res == NO_INIT || res == DEAD_OBJECT) && mInputStream->isAbandoned()) {
2918 return DEAD_OBJECT;
2919 }
2920 return BAD_VALUE;
2921 }
2922 if (streamReConfigured) {
2923 mInterface->onStreamReConfigured(mInputStream->getId());
2924 }
2925 }
2926
2927 for (size_t i = 0; i < mOutputStreams.size(); i++) {
2928 sp<Camera3OutputStreamInterface> outputStream = mOutputStreams[i];
2929 if (outputStream->isConfiguring() && !outputStream->isConsumerConfigurationDeferred()) {
2930 bool streamReConfigured = false;
2931 res = outputStream->finishConfiguration(&streamReConfigured);
2932 if (res != OK) {
2933 CLOGE("Can't finish configuring output stream %d: %s (%d)",
2934 outputStream->getId(), strerror(-res), res);
2935 cancelStreamsConfigurationLocked();
2936 if ((res == NO_INIT || res == DEAD_OBJECT) && outputStream->isAbandoned()) {
2937 return DEAD_OBJECT;
2938 }
2939 return BAD_VALUE;
2940 }
2941 if (streamReConfigured) {
2942 mInterface->onStreamReConfigured(outputStream->getId());
2943 }
2944 }
2945 }
2946
2947 // Request thread needs to know to avoid using repeat-last-settings protocol
2948 // across configure_streams() calls
2949 if (notifyRequestThread) {
2950 mRequestThread->configurationComplete(mIsConstrainedHighSpeedConfiguration, sessionParams);
2951 }
2952
2953 char value[PROPERTY_VALUE_MAX];
2954 property_get("camera.fifo.disable", value, "0");
2955 int32_t disableFifo = atoi(value);
2956 if (disableFifo != 1) {
2957 // Boost priority of request thread to SCHED_FIFO.
2958 pid_t requestThreadTid = mRequestThread->getTid();
2959 res = requestPriority(getpid(), requestThreadTid,
2960 kRequestThreadPriority, /*isForApp*/ false, /*asynchronous*/ false);
2961 if (res != OK) {
2962 ALOGW("Can't set realtime priority for request processing thread: %s (%d)",
2963 strerror(-res), res);
2964 } else {
2965 ALOGD("Set real time priority for request queue thread (tid %d)", requestThreadTid);
2966 }
2967 }
2968
2969 // Update device state
2970 const camera_metadata_t *newSessionParams = sessionParams.getAndLock();
2971 const camera_metadata_t *currentSessionParams = mSessionParams.getAndLock();
2972 bool updateSessionParams = (newSessionParams != currentSessionParams) ? true : false;
2973 sessionParams.unlock(newSessionParams);
2974 mSessionParams.unlock(currentSessionParams);
2975 if (updateSessionParams) {
2976 mSessionParams = sessionParams;
2977 }
2978
2979 mNeedConfig = false;
2980
2981 internalUpdateStatusLocked((mDummyStreamId == NO_STREAM) ?
2982 STATUS_CONFIGURED : STATUS_UNCONFIGURED);
2983
2984 ALOGV("%s: Camera %s: Stream configuration complete", __FUNCTION__, mId.string());
2985
2986 // tear down the deleted streams after configure streams.
2987 mDeletedStreams.clear();
2988
2989 auto rc = mPreparerThread->resume();
2990 if (rc != OK) {
2991 SET_ERR_L("%s: Camera %s: Preparer thread failed to resume!", __FUNCTION__, mId.string());
2992 return rc;
2993 }
2994
2995 if (mDummyStreamId == NO_STREAM) {
2996 mRequestBufferSM.onStreamsConfigured();
2997 }
2998
2999 return OK;
3000 }
3001
addDummyStreamLocked()3002 status_t Camera3Device::addDummyStreamLocked() {
3003 ATRACE_CALL();
3004 status_t res;
3005
3006 if (mDummyStreamId != NO_STREAM) {
3007 // Should never be adding a second dummy stream when one is already
3008 // active
3009 SET_ERR_L("%s: Camera %s: A dummy stream already exists!",
3010 __FUNCTION__, mId.string());
3011 return INVALID_OPERATION;
3012 }
3013
3014 ALOGV("%s: Camera %s: Adding a dummy stream", __FUNCTION__, mId.string());
3015
3016 sp<Camera3OutputStreamInterface> dummyStream =
3017 new Camera3DummyStream(mNextStreamId);
3018
3019 res = mOutputStreams.add(mNextStreamId, dummyStream);
3020 if (res < 0) {
3021 SET_ERR_L("Can't add dummy stream to set: %s (%d)", strerror(-res), res);
3022 return res;
3023 }
3024
3025 mDummyStreamId = mNextStreamId;
3026 mNextStreamId++;
3027
3028 return OK;
3029 }
3030
tryRemoveDummyStreamLocked()3031 status_t Camera3Device::tryRemoveDummyStreamLocked() {
3032 ATRACE_CALL();
3033 status_t res;
3034
3035 if (mDummyStreamId == NO_STREAM) return OK;
3036 if (mOutputStreams.size() == 1) return OK;
3037
3038 ALOGV("%s: Camera %s: Removing the dummy stream", __FUNCTION__, mId.string());
3039
3040 // Ok, have a dummy stream and there's at least one other output stream,
3041 // so remove the dummy
3042
3043 sp<Camera3StreamInterface> deletedStream = mOutputStreams.get(mDummyStreamId);
3044 if (deletedStream == nullptr) {
3045 SET_ERR_L("Dummy stream %d does not appear to exist", mDummyStreamId);
3046 return INVALID_OPERATION;
3047 }
3048 mOutputStreams.remove(mDummyStreamId);
3049
3050 // Free up the stream endpoint so that it can be used by some other stream
3051 res = deletedStream->disconnect();
3052 if (res != OK) {
3053 SET_ERR_L("Can't disconnect deleted dummy stream %d", mDummyStreamId);
3054 // fall through since we want to still list the stream as deleted.
3055 }
3056 mDeletedStreams.add(deletedStream);
3057 mDummyStreamId = NO_STREAM;
3058
3059 return res;
3060 }
3061
setErrorState(const char * fmt,...)3062 void Camera3Device::setErrorState(const char *fmt, ...) {
3063 ATRACE_CALL();
3064 Mutex::Autolock l(mLock);
3065 va_list args;
3066 va_start(args, fmt);
3067
3068 setErrorStateLockedV(fmt, args);
3069
3070 va_end(args);
3071 }
3072
setErrorStateV(const char * fmt,va_list args)3073 void Camera3Device::setErrorStateV(const char *fmt, va_list args) {
3074 ATRACE_CALL();
3075 Mutex::Autolock l(mLock);
3076 setErrorStateLockedV(fmt, args);
3077 }
3078
setErrorStateLocked(const char * fmt,...)3079 void Camera3Device::setErrorStateLocked(const char *fmt, ...) {
3080 va_list args;
3081 va_start(args, fmt);
3082
3083 setErrorStateLockedV(fmt, args);
3084
3085 va_end(args);
3086 }
3087
setErrorStateLockedV(const char * fmt,va_list args)3088 void Camera3Device::setErrorStateLockedV(const char *fmt, va_list args) {
3089 // Print out all error messages to log
3090 String8 errorCause = String8::formatV(fmt, args);
3091 ALOGE("Camera %s: %s", mId.string(), errorCause.string());
3092
3093 // But only do error state transition steps for the first error
3094 if (mStatus == STATUS_ERROR || mStatus == STATUS_UNINITIALIZED) return;
3095
3096 mErrorCause = errorCause;
3097
3098 if (mRequestThread != nullptr) {
3099 mRequestThread->setPaused(true);
3100 }
3101 internalUpdateStatusLocked(STATUS_ERROR);
3102
3103 // Notify upstream about a device error
3104 sp<NotificationListener> listener = mListener.promote();
3105 if (listener != NULL) {
3106 listener->notifyError(hardware::camera2::ICameraDeviceCallbacks::ERROR_CAMERA_DEVICE,
3107 CaptureResultExtras());
3108 }
3109
3110 // Save stack trace. View by dumping it later.
3111 CameraTraces::saveTrace();
3112 // TODO: consider adding errorCause and client pid/procname
3113 }
3114
3115 /**
3116 * In-flight request management
3117 */
3118
registerInFlight(uint32_t frameNumber,int32_t numBuffers,CaptureResultExtras resultExtras,bool hasInput,bool hasAppCallback,nsecs_t maxExpectedDuration,std::set<String8> & physicalCameraIds,bool isStillCapture,bool isZslCapture,const SurfaceMap & outputSurfaces)3119 status_t Camera3Device::registerInFlight(uint32_t frameNumber,
3120 int32_t numBuffers, CaptureResultExtras resultExtras, bool hasInput,
3121 bool hasAppCallback, nsecs_t maxExpectedDuration,
3122 std::set<String8>& physicalCameraIds, bool isStillCapture,
3123 bool isZslCapture, const SurfaceMap& outputSurfaces) {
3124 ATRACE_CALL();
3125 Mutex::Autolock l(mInFlightLock);
3126
3127 ssize_t res;
3128 res = mInFlightMap.add(frameNumber, InFlightRequest(numBuffers, resultExtras, hasInput,
3129 hasAppCallback, maxExpectedDuration, physicalCameraIds, isStillCapture, isZslCapture,
3130 outputSurfaces));
3131 if (res < 0) return res;
3132
3133 if (mInFlightMap.size() == 1) {
3134 // Hold a separate dedicated tracker lock to prevent race with disconnect and also
3135 // avoid a deadlock during reprocess requests.
3136 Mutex::Autolock l(mTrackerLock);
3137 if (mStatusTracker != nullptr) {
3138 mStatusTracker->markComponentActive(mInFlightStatusId);
3139 }
3140 }
3141
3142 mExpectedInflightDuration += maxExpectedDuration;
3143 return OK;
3144 }
3145
returnOutputBuffers(const camera3_stream_buffer_t * outputBuffers,size_t numBuffers,nsecs_t timestamp,bool timestampIncreasing,const SurfaceMap & outputSurfaces,const CaptureResultExtras & inResultExtras)3146 void Camera3Device::returnOutputBuffers(
3147 const camera3_stream_buffer_t *outputBuffers, size_t numBuffers,
3148 nsecs_t timestamp, bool timestampIncreasing,
3149 const SurfaceMap& outputSurfaces,
3150 const CaptureResultExtras &inResultExtras) {
3151
3152 for (size_t i = 0; i < numBuffers; i++)
3153 {
3154 if (outputBuffers[i].buffer == nullptr) {
3155 if (!mUseHalBufManager) {
3156 // With HAL buffer management API, HAL sometimes will have to return buffers that
3157 // has not got a output buffer handle filled yet. This is though illegal if HAL
3158 // buffer management API is not being used.
3159 ALOGE("%s: cannot return a null buffer!", __FUNCTION__);
3160 }
3161 continue;
3162 }
3163
3164 Camera3StreamInterface *stream = Camera3Stream::cast(outputBuffers[i].stream);
3165 int streamId = stream->getId();
3166 const auto& it = outputSurfaces.find(streamId);
3167 status_t res = OK;
3168 if (it != outputSurfaces.end()) {
3169 res = stream->returnBuffer(
3170 outputBuffers[i], timestamp, timestampIncreasing, it->second,
3171 inResultExtras.frameNumber);
3172 } else {
3173 res = stream->returnBuffer(
3174 outputBuffers[i], timestamp, timestampIncreasing, std::vector<size_t> (),
3175 inResultExtras.frameNumber);
3176 }
3177
3178 // Note: stream may be deallocated at this point, if this buffer was
3179 // the last reference to it.
3180 if (res == NO_INIT || res == DEAD_OBJECT) {
3181 ALOGV("Can't return buffer to its stream: %s (%d)", strerror(-res), res);
3182 } else if (res != OK) {
3183 ALOGE("Can't return buffer to its stream: %s (%d)", strerror(-res), res);
3184 }
3185
3186 // Long processing consumers can cause returnBuffer timeout for shared stream
3187 // If that happens, cancel the buffer and send a buffer error to client
3188 if (it != outputSurfaces.end() && res == TIMED_OUT &&
3189 outputBuffers[i].status == CAMERA3_BUFFER_STATUS_OK) {
3190 // cancel the buffer
3191 camera3_stream_buffer_t sb = outputBuffers[i];
3192 sb.status = CAMERA3_BUFFER_STATUS_ERROR;
3193 stream->returnBuffer(sb, /*timestamp*/0, timestampIncreasing, std::vector<size_t> (),
3194 inResultExtras.frameNumber);
3195
3196 // notify client buffer error
3197 sp<NotificationListener> listener;
3198 {
3199 Mutex::Autolock l(mOutputLock);
3200 listener = mListener.promote();
3201 }
3202
3203 if (listener != nullptr) {
3204 CaptureResultExtras extras = inResultExtras;
3205 extras.errorStreamId = streamId;
3206 listener->notifyError(
3207 hardware::camera2::ICameraDeviceCallbacks::ERROR_CAMERA_BUFFER,
3208 extras);
3209 }
3210 }
3211 }
3212 }
3213
removeInFlightMapEntryLocked(int idx)3214 void Camera3Device::removeInFlightMapEntryLocked(int idx) {
3215 ATRACE_CALL();
3216 nsecs_t duration = mInFlightMap.valueAt(idx).maxExpectedDuration;
3217 mInFlightMap.removeItemsAt(idx, 1);
3218
3219 // Indicate idle inFlightMap to the status tracker
3220 if (mInFlightMap.size() == 0) {
3221 mRequestBufferSM.onInflightMapEmpty();
3222 // Hold a separate dedicated tracker lock to prevent race with disconnect and also
3223 // avoid a deadlock during reprocess requests.
3224 Mutex::Autolock l(mTrackerLock);
3225 if (mStatusTracker != nullptr) {
3226 mStatusTracker->markComponentIdle(mInFlightStatusId, Fence::NO_FENCE);
3227 }
3228 }
3229 mExpectedInflightDuration -= duration;
3230 }
3231
removeInFlightRequestIfReadyLocked(int idx)3232 void Camera3Device::removeInFlightRequestIfReadyLocked(int idx) {
3233
3234 const InFlightRequest &request = mInFlightMap.valueAt(idx);
3235 const uint32_t frameNumber = mInFlightMap.keyAt(idx);
3236
3237 nsecs_t sensorTimestamp = request.sensorTimestamp;
3238 nsecs_t shutterTimestamp = request.shutterTimestamp;
3239
3240 // Check if it's okay to remove the request from InFlightMap:
3241 // In the case of a successful request:
3242 // all input and output buffers, all result metadata, shutter callback
3243 // arrived.
3244 // In the case of a unsuccessful request:
3245 // all input and output buffers arrived.
3246 if (request.numBuffersLeft == 0 &&
3247 (request.skipResultMetadata ||
3248 (request.haveResultMetadata && shutterTimestamp != 0))) {
3249 if (request.stillCapture) {
3250 ATRACE_ASYNC_END("still capture", frameNumber);
3251 }
3252
3253 ATRACE_ASYNC_END("frame capture", frameNumber);
3254
3255 // Sanity check - if sensor timestamp matches shutter timestamp in the
3256 // case of request having callback.
3257 if (request.hasCallback && request.requestStatus == OK &&
3258 sensorTimestamp != shutterTimestamp) {
3259 SET_ERR("sensor timestamp (%" PRId64
3260 ") for frame %d doesn't match shutter timestamp (%" PRId64 ")",
3261 sensorTimestamp, frameNumber, shutterTimestamp);
3262 }
3263
3264 // for an unsuccessful request, it may have pending output buffers to
3265 // return.
3266 assert(request.requestStatus != OK ||
3267 request.pendingOutputBuffers.size() == 0);
3268 returnOutputBuffers(request.pendingOutputBuffers.array(),
3269 request.pendingOutputBuffers.size(), 0, /*timestampIncreasing*/true,
3270 request.outputSurfaces, request.resultExtras);
3271
3272 removeInFlightMapEntryLocked(idx);
3273 ALOGVV("%s: removed frame %d from InFlightMap", __FUNCTION__, frameNumber);
3274 }
3275
3276 // Sanity check - if we have too many in-flight frames with long total inflight duration,
3277 // something has likely gone wrong. This might still be legit only if application send in
3278 // a long burst of long exposure requests.
3279 if (mExpectedInflightDuration > kMinWarnInflightDuration) {
3280 if (!mIsConstrainedHighSpeedConfiguration && mInFlightMap.size() > kInFlightWarnLimit) {
3281 CLOGW("In-flight list too large: %zu, total inflight duration %" PRIu64,
3282 mInFlightMap.size(), mExpectedInflightDuration);
3283 } else if (mIsConstrainedHighSpeedConfiguration && mInFlightMap.size() >
3284 kInFlightWarnLimitHighSpeed) {
3285 CLOGW("In-flight list too large for high speed configuration: %zu,"
3286 "total inflight duration %" PRIu64,
3287 mInFlightMap.size(), mExpectedInflightDuration);
3288 }
3289 }
3290 }
3291
flushInflightRequests()3292 void Camera3Device::flushInflightRequests() {
3293 ATRACE_CALL();
3294 { // First return buffers cached in mInFlightMap
3295 Mutex::Autolock l(mInFlightLock);
3296 for (size_t idx = 0; idx < mInFlightMap.size(); idx++) {
3297 const InFlightRequest &request = mInFlightMap.valueAt(idx);
3298 returnOutputBuffers(request.pendingOutputBuffers.array(),
3299 request.pendingOutputBuffers.size(), 0,
3300 /*timestampIncreasing*/true, request.outputSurfaces,
3301 request.resultExtras);
3302 }
3303 mInFlightMap.clear();
3304 mExpectedInflightDuration = 0;
3305 }
3306
3307 // Then return all inflight buffers not returned by HAL
3308 std::vector<std::pair<int32_t, int32_t>> inflightKeys;
3309 mInterface->getInflightBufferKeys(&inflightKeys);
3310
3311 // Inflight buffers for HAL buffer manager
3312 std::vector<uint64_t> inflightRequestBufferKeys;
3313 mInterface->getInflightRequestBufferKeys(&inflightRequestBufferKeys);
3314
3315 // (streamId, frameNumber, buffer_handle_t*) tuple for all inflight buffers.
3316 // frameNumber will be -1 for buffers from HAL buffer manager
3317 std::vector<std::tuple<int32_t, int32_t, buffer_handle_t*>> inflightBuffers;
3318 inflightBuffers.reserve(inflightKeys.size() + inflightRequestBufferKeys.size());
3319
3320 for (auto& pair : inflightKeys) {
3321 int32_t frameNumber = pair.first;
3322 int32_t streamId = pair.second;
3323 buffer_handle_t* buffer;
3324 status_t res = mInterface->popInflightBuffer(frameNumber, streamId, &buffer);
3325 if (res != OK) {
3326 ALOGE("%s: Frame %d: No in-flight buffer for stream %d",
3327 __FUNCTION__, frameNumber, streamId);
3328 continue;
3329 }
3330 inflightBuffers.push_back(std::make_tuple(streamId, frameNumber, buffer));
3331 }
3332
3333 for (auto& bufferId : inflightRequestBufferKeys) {
3334 int32_t streamId = -1;
3335 buffer_handle_t* buffer = nullptr;
3336 status_t res = mInterface->popInflightRequestBuffer(bufferId, &buffer, &streamId);
3337 if (res != OK) {
3338 ALOGE("%s: cannot find in-flight buffer %" PRIu64, __FUNCTION__, bufferId);
3339 continue;
3340 }
3341 inflightBuffers.push_back(std::make_tuple(streamId, /*frameNumber*/-1, buffer));
3342 }
3343
3344 int32_t inputStreamId = (mInputStream != nullptr) ? mInputStream->getId() : -1;
3345 for (auto& tuple : inflightBuffers) {
3346 status_t res = OK;
3347 int32_t streamId = std::get<0>(tuple);
3348 int32_t frameNumber = std::get<1>(tuple);
3349 buffer_handle_t* buffer = std::get<2>(tuple);
3350
3351 camera3_stream_buffer_t streamBuffer;
3352 streamBuffer.buffer = buffer;
3353 streamBuffer.status = CAMERA3_BUFFER_STATUS_ERROR;
3354 streamBuffer.acquire_fence = -1;
3355 streamBuffer.release_fence = -1;
3356
3357 // First check if the buffer belongs to deleted stream
3358 bool streamDeleted = false;
3359 for (auto& stream : mDeletedStreams) {
3360 if (streamId == stream->getId()) {
3361 streamDeleted = true;
3362 // Return buffer to deleted stream
3363 camera3_stream* halStream = stream->asHalStream();
3364 streamBuffer.stream = halStream;
3365 switch (halStream->stream_type) {
3366 case CAMERA3_STREAM_OUTPUT:
3367 res = stream->returnBuffer(streamBuffer, /*timestamp*/ 0,
3368 /*timestampIncreasing*/true, std::vector<size_t> (), frameNumber);
3369 if (res != OK) {
3370 ALOGE("%s: Can't return output buffer for frame %d to"
3371 " stream %d: %s (%d)", __FUNCTION__,
3372 frameNumber, streamId, strerror(-res), res);
3373 }
3374 break;
3375 case CAMERA3_STREAM_INPUT:
3376 res = stream->returnInputBuffer(streamBuffer);
3377 if (res != OK) {
3378 ALOGE("%s: Can't return input buffer for frame %d to"
3379 " stream %d: %s (%d)", __FUNCTION__,
3380 frameNumber, streamId, strerror(-res), res);
3381 }
3382 break;
3383 default: // Bi-direcitonal stream is deprecated
3384 ALOGE("%s: stream %d has unknown stream type %d",
3385 __FUNCTION__, streamId, halStream->stream_type);
3386 break;
3387 }
3388 break;
3389 }
3390 }
3391 if (streamDeleted) {
3392 continue;
3393 }
3394
3395 // Then check against configured streams
3396 if (streamId == inputStreamId) {
3397 streamBuffer.stream = mInputStream->asHalStream();
3398 res = mInputStream->returnInputBuffer(streamBuffer);
3399 if (res != OK) {
3400 ALOGE("%s: Can't return input buffer for frame %d to"
3401 " stream %d: %s (%d)", __FUNCTION__,
3402 frameNumber, streamId, strerror(-res), res);
3403 }
3404 } else {
3405 sp<Camera3StreamInterface> stream = mOutputStreams.get(streamId);
3406 if (stream == nullptr) {
3407 ALOGE("%s: Output stream id %d not found!", __FUNCTION__, streamId);
3408 continue;
3409 }
3410 streamBuffer.stream = stream->asHalStream();
3411 returnOutputBuffers(&streamBuffer, /*size*/1, /*timestamp*/ 0);
3412 }
3413 }
3414 }
3415
insertResultLocked(CaptureResult * result,uint32_t frameNumber)3416 void Camera3Device::insertResultLocked(CaptureResult *result,
3417 uint32_t frameNumber) {
3418 if (result == nullptr) return;
3419
3420 camera_metadata_t *meta = const_cast<camera_metadata_t *>(
3421 result->mMetadata.getAndLock());
3422 set_camera_metadata_vendor_id(meta, mVendorTagId);
3423 result->mMetadata.unlock(meta);
3424
3425 if (result->mMetadata.update(ANDROID_REQUEST_FRAME_COUNT,
3426 (int32_t*)&frameNumber, 1) != OK) {
3427 SET_ERR("Failed to set frame number %d in metadata", frameNumber);
3428 return;
3429 }
3430
3431 if (result->mMetadata.update(ANDROID_REQUEST_ID, &result->mResultExtras.requestId, 1) != OK) {
3432 SET_ERR("Failed to set request ID in metadata for frame %d", frameNumber);
3433 return;
3434 }
3435
3436 // Update vendor tag id for physical metadata
3437 for (auto& physicalMetadata : result->mPhysicalMetadatas) {
3438 camera_metadata_t *pmeta = const_cast<camera_metadata_t *>(
3439 physicalMetadata.mPhysicalCameraMetadata.getAndLock());
3440 set_camera_metadata_vendor_id(pmeta, mVendorTagId);
3441 physicalMetadata.mPhysicalCameraMetadata.unlock(pmeta);
3442 }
3443
3444 // Valid result, insert into queue
3445 List<CaptureResult>::iterator queuedResult =
3446 mResultQueue.insert(mResultQueue.end(), CaptureResult(*result));
3447 ALOGVV("%s: result requestId = %" PRId32 ", frameNumber = %" PRId64
3448 ", burstId = %" PRId32, __FUNCTION__,
3449 queuedResult->mResultExtras.requestId,
3450 queuedResult->mResultExtras.frameNumber,
3451 queuedResult->mResultExtras.burstId);
3452
3453 mResultSignal.signal();
3454 }
3455
3456
sendPartialCaptureResult(const camera_metadata_t * partialResult,const CaptureResultExtras & resultExtras,uint32_t frameNumber)3457 void Camera3Device::sendPartialCaptureResult(const camera_metadata_t * partialResult,
3458 const CaptureResultExtras &resultExtras, uint32_t frameNumber) {
3459 ATRACE_CALL();
3460 Mutex::Autolock l(mOutputLock);
3461
3462 CaptureResult captureResult;
3463 captureResult.mResultExtras = resultExtras;
3464 captureResult.mMetadata = partialResult;
3465
3466 // Fix up result metadata for monochrome camera.
3467 status_t res = fixupMonochromeTags(mDeviceInfo, captureResult.mMetadata);
3468 if (res != OK) {
3469 SET_ERR("Failed to override result metadata: %s (%d)", strerror(-res), res);
3470 return;
3471 }
3472
3473 insertResultLocked(&captureResult, frameNumber);
3474 }
3475
3476
sendCaptureResult(CameraMetadata & pendingMetadata,CaptureResultExtras & resultExtras,CameraMetadata & collectedPartialResult,uint32_t frameNumber,bool reprocess,bool zslStillCapture,const std::vector<PhysicalCaptureResultInfo> & physicalMetadatas)3477 void Camera3Device::sendCaptureResult(CameraMetadata &pendingMetadata,
3478 CaptureResultExtras &resultExtras,
3479 CameraMetadata &collectedPartialResult,
3480 uint32_t frameNumber,
3481 bool reprocess, bool zslStillCapture,
3482 const std::vector<PhysicalCaptureResultInfo>& physicalMetadatas) {
3483 ATRACE_CALL();
3484 if (pendingMetadata.isEmpty())
3485 return;
3486
3487 Mutex::Autolock l(mOutputLock);
3488
3489 // TODO: need to track errors for tighter bounds on expected frame number
3490 if (reprocess) {
3491 if (frameNumber < mNextReprocessResultFrameNumber) {
3492 SET_ERR("Out-of-order reprocess capture result metadata submitted! "
3493 "(got frame number %d, expecting %d)",
3494 frameNumber, mNextReprocessResultFrameNumber);
3495 return;
3496 }
3497 mNextReprocessResultFrameNumber = frameNumber + 1;
3498 } else if (zslStillCapture) {
3499 if (frameNumber < mNextZslStillResultFrameNumber) {
3500 SET_ERR("Out-of-order ZSL still capture result metadata submitted! "
3501 "(got frame number %d, expecting %d)",
3502 frameNumber, mNextZslStillResultFrameNumber);
3503 return;
3504 }
3505 mNextZslStillResultFrameNumber = frameNumber + 1;
3506 } else {
3507 if (frameNumber < mNextResultFrameNumber) {
3508 SET_ERR("Out-of-order capture result metadata submitted! "
3509 "(got frame number %d, expecting %d)",
3510 frameNumber, mNextResultFrameNumber);
3511 return;
3512 }
3513 mNextResultFrameNumber = frameNumber + 1;
3514 }
3515
3516 CaptureResult captureResult;
3517 captureResult.mResultExtras = resultExtras;
3518 captureResult.mMetadata = pendingMetadata;
3519 captureResult.mPhysicalMetadatas = physicalMetadatas;
3520
3521 // Append any previous partials to form a complete result
3522 if (mUsePartialResult && !collectedPartialResult.isEmpty()) {
3523 captureResult.mMetadata.append(collectedPartialResult);
3524 }
3525
3526 captureResult.mMetadata.sort();
3527
3528 // Check that there's a timestamp in the result metadata
3529 camera_metadata_entry timestamp = captureResult.mMetadata.find(ANDROID_SENSOR_TIMESTAMP);
3530 if (timestamp.count == 0) {
3531 SET_ERR("No timestamp provided by HAL for frame %d!",
3532 frameNumber);
3533 return;
3534 }
3535 for (auto& physicalMetadata : captureResult.mPhysicalMetadatas) {
3536 camera_metadata_entry timestamp =
3537 physicalMetadata.mPhysicalCameraMetadata.find(ANDROID_SENSOR_TIMESTAMP);
3538 if (timestamp.count == 0) {
3539 SET_ERR("No timestamp provided by HAL for physical camera %s frame %d!",
3540 String8(physicalMetadata.mPhysicalCameraId).c_str(), frameNumber);
3541 return;
3542 }
3543 }
3544
3545 // Fix up some result metadata to account for HAL-level distortion correction
3546 status_t res =
3547 mDistortionMappers[mId.c_str()].correctCaptureResult(&captureResult.mMetadata);
3548 if (res != OK) {
3549 SET_ERR("Unable to correct capture result metadata for frame %d: %s (%d)",
3550 frameNumber, strerror(res), res);
3551 return;
3552 }
3553 for (auto& physicalMetadata : captureResult.mPhysicalMetadatas) {
3554 String8 cameraId8(physicalMetadata.mPhysicalCameraId);
3555 if (mDistortionMappers.find(cameraId8.c_str()) == mDistortionMappers.end()) {
3556 continue;
3557 }
3558 res = mDistortionMappers[cameraId8.c_str()].correctCaptureResult(
3559 &physicalMetadata.mPhysicalCameraMetadata);
3560 if (res != OK) {
3561 SET_ERR("Unable to correct physical capture result metadata for frame %d: %s (%d)",
3562 frameNumber, strerror(res), res);
3563 return;
3564 }
3565 }
3566
3567 // Fix up result metadata for monochrome camera.
3568 res = fixupMonochromeTags(mDeviceInfo, captureResult.mMetadata);
3569 if (res != OK) {
3570 SET_ERR("Failed to override result metadata: %s (%d)", strerror(-res), res);
3571 return;
3572 }
3573 for (auto& physicalMetadata : captureResult.mPhysicalMetadatas) {
3574 String8 cameraId8(physicalMetadata.mPhysicalCameraId);
3575 res = fixupMonochromeTags(mPhysicalDeviceInfoMap.at(cameraId8.c_str()),
3576 physicalMetadata.mPhysicalCameraMetadata);
3577 if (res != OK) {
3578 SET_ERR("Failed to override result metadata: %s (%d)", strerror(-res), res);
3579 return;
3580 }
3581 }
3582
3583 std::unordered_map<std::string, CameraMetadata> monitoredPhysicalMetadata;
3584 for (auto& m : physicalMetadatas) {
3585 monitoredPhysicalMetadata.emplace(String8(m.mPhysicalCameraId).string(),
3586 CameraMetadata(m.mPhysicalCameraMetadata));
3587 }
3588 mTagMonitor.monitorMetadata(TagMonitor::RESULT,
3589 frameNumber, timestamp.data.i64[0], captureResult.mMetadata,
3590 monitoredPhysicalMetadata);
3591
3592 insertResultLocked(&captureResult, frameNumber);
3593 }
3594
3595 /**
3596 * Camera HAL device callback methods
3597 */
3598
processCaptureResult(const camera3_capture_result * result)3599 void Camera3Device::processCaptureResult(const camera3_capture_result *result) {
3600 ATRACE_CALL();
3601
3602 status_t res;
3603
3604 uint32_t frameNumber = result->frame_number;
3605 if (result->result == NULL && result->num_output_buffers == 0 &&
3606 result->input_buffer == NULL) {
3607 SET_ERR("No result data provided by HAL for frame %d",
3608 frameNumber);
3609 return;
3610 }
3611
3612 if (!mUsePartialResult &&
3613 result->result != NULL &&
3614 result->partial_result != 1) {
3615 SET_ERR("Result is malformed for frame %d: partial_result %u must be 1"
3616 " if partial result is not supported",
3617 frameNumber, result->partial_result);
3618 return;
3619 }
3620
3621 bool isPartialResult = false;
3622 CameraMetadata collectedPartialResult;
3623 bool hasInputBufferInRequest = false;
3624
3625 // Get shutter timestamp and resultExtras from list of in-flight requests,
3626 // where it was added by the shutter notification for this frame. If the
3627 // shutter timestamp isn't received yet, append the output buffers to the
3628 // in-flight request and they will be returned when the shutter timestamp
3629 // arrives. Update the in-flight status and remove the in-flight entry if
3630 // all result data and shutter timestamp have been received.
3631 nsecs_t shutterTimestamp = 0;
3632
3633 {
3634 Mutex::Autolock l(mInFlightLock);
3635 ssize_t idx = mInFlightMap.indexOfKey(frameNumber);
3636 if (idx == NAME_NOT_FOUND) {
3637 SET_ERR("Unknown frame number for capture result: %d",
3638 frameNumber);
3639 return;
3640 }
3641 InFlightRequest &request = mInFlightMap.editValueAt(idx);
3642 ALOGVV("%s: got InFlightRequest requestId = %" PRId32
3643 ", frameNumber = %" PRId64 ", burstId = %" PRId32
3644 ", partialResultCount = %d, hasCallback = %d",
3645 __FUNCTION__, request.resultExtras.requestId,
3646 request.resultExtras.frameNumber, request.resultExtras.burstId,
3647 result->partial_result, request.hasCallback);
3648 // Always update the partial count to the latest one if it's not 0
3649 // (buffers only). When framework aggregates adjacent partial results
3650 // into one, the latest partial count will be used.
3651 if (result->partial_result != 0)
3652 request.resultExtras.partialResultCount = result->partial_result;
3653
3654 // Check if this result carries only partial metadata
3655 if (mUsePartialResult && result->result != NULL) {
3656 if (result->partial_result > mNumPartialResults || result->partial_result < 1) {
3657 SET_ERR("Result is malformed for frame %d: partial_result %u must be in"
3658 " the range of [1, %d] when metadata is included in the result",
3659 frameNumber, result->partial_result, mNumPartialResults);
3660 return;
3661 }
3662 isPartialResult = (result->partial_result < mNumPartialResults);
3663 if (isPartialResult && result->num_physcam_metadata) {
3664 SET_ERR("Result is malformed for frame %d: partial_result not allowed for"
3665 " physical camera result", frameNumber);
3666 return;
3667 }
3668 if (isPartialResult) {
3669 request.collectedPartialResult.append(result->result);
3670 }
3671
3672 if (isPartialResult && request.hasCallback) {
3673 // Send partial capture result
3674 sendPartialCaptureResult(result->result, request.resultExtras,
3675 frameNumber);
3676 }
3677 }
3678
3679 shutterTimestamp = request.shutterTimestamp;
3680 hasInputBufferInRequest = request.hasInputBuffer;
3681
3682 // Did we get the (final) result metadata for this capture?
3683 if (result->result != NULL && !isPartialResult) {
3684 if (request.physicalCameraIds.size() != result->num_physcam_metadata) {
3685 SET_ERR("Requested physical Camera Ids %d not equal to number of metadata %d",
3686 request.physicalCameraIds.size(), result->num_physcam_metadata);
3687 return;
3688 }
3689 if (request.haveResultMetadata) {
3690 SET_ERR("Called multiple times with metadata for frame %d",
3691 frameNumber);
3692 return;
3693 }
3694 for (uint32_t i = 0; i < result->num_physcam_metadata; i++) {
3695 String8 physicalId(result->physcam_ids[i]);
3696 std::set<String8>::iterator cameraIdIter =
3697 request.physicalCameraIds.find(physicalId);
3698 if (cameraIdIter != request.physicalCameraIds.end()) {
3699 request.physicalCameraIds.erase(cameraIdIter);
3700 } else {
3701 SET_ERR("Total result for frame %d has already returned for camera %s",
3702 frameNumber, physicalId.c_str());
3703 return;
3704 }
3705 }
3706 if (mUsePartialResult &&
3707 !request.collectedPartialResult.isEmpty()) {
3708 collectedPartialResult.acquire(
3709 request.collectedPartialResult);
3710 }
3711 request.haveResultMetadata = true;
3712 }
3713
3714 uint32_t numBuffersReturned = result->num_output_buffers;
3715 if (result->input_buffer != NULL) {
3716 if (hasInputBufferInRequest) {
3717 numBuffersReturned += 1;
3718 } else {
3719 ALOGW("%s: Input buffer should be NULL if there is no input"
3720 " buffer sent in the request",
3721 __FUNCTION__);
3722 }
3723 }
3724 request.numBuffersLeft -= numBuffersReturned;
3725 if (request.numBuffersLeft < 0) {
3726 SET_ERR("Too many buffers returned for frame %d",
3727 frameNumber);
3728 return;
3729 }
3730
3731 camera_metadata_ro_entry_t entry;
3732 res = find_camera_metadata_ro_entry(result->result,
3733 ANDROID_SENSOR_TIMESTAMP, &entry);
3734 if (res == OK && entry.count == 1) {
3735 request.sensorTimestamp = entry.data.i64[0];
3736 }
3737
3738 // If shutter event isn't received yet, append the output buffers to
3739 // the in-flight request. Otherwise, return the output buffers to
3740 // streams.
3741 if (shutterTimestamp == 0) {
3742 request.pendingOutputBuffers.appendArray(result->output_buffers,
3743 result->num_output_buffers);
3744 } else {
3745 bool timestampIncreasing = !(request.zslCapture || request.hasInputBuffer);
3746 returnOutputBuffers(result->output_buffers,
3747 result->num_output_buffers, shutterTimestamp, timestampIncreasing,
3748 request.outputSurfaces, request.resultExtras);
3749 }
3750
3751 if (result->result != NULL && !isPartialResult) {
3752 for (uint32_t i = 0; i < result->num_physcam_metadata; i++) {
3753 CameraMetadata physicalMetadata;
3754 physicalMetadata.append(result->physcam_metadata[i]);
3755 request.physicalMetadatas.push_back({String16(result->physcam_ids[i]),
3756 physicalMetadata});
3757 }
3758 if (shutterTimestamp == 0) {
3759 request.pendingMetadata = result->result;
3760 request.collectedPartialResult = collectedPartialResult;
3761 } else if (request.hasCallback) {
3762 CameraMetadata metadata;
3763 metadata = result->result;
3764 sendCaptureResult(metadata, request.resultExtras,
3765 collectedPartialResult, frameNumber,
3766 hasInputBufferInRequest, request.zslCapture && request.stillCapture,
3767 request.physicalMetadatas);
3768 }
3769 }
3770
3771 removeInFlightRequestIfReadyLocked(idx);
3772 } // scope for mInFlightLock
3773
3774 if (result->input_buffer != NULL) {
3775 if (hasInputBufferInRequest) {
3776 Camera3Stream *stream =
3777 Camera3Stream::cast(result->input_buffer->stream);
3778 res = stream->returnInputBuffer(*(result->input_buffer));
3779 // Note: stream may be deallocated at this point, if this buffer was the
3780 // last reference to it.
3781 if (res != OK) {
3782 ALOGE("%s: RequestThread: Can't return input buffer for frame %d to"
3783 " its stream:%s (%d)", __FUNCTION__,
3784 frameNumber, strerror(-res), res);
3785 }
3786 } else {
3787 ALOGW("%s: Input buffer should be NULL if there is no input"
3788 " buffer sent in the request, skipping input buffer return.",
3789 __FUNCTION__);
3790 }
3791 }
3792 }
3793
notify(const camera3_notify_msg * msg)3794 void Camera3Device::notify(const camera3_notify_msg *msg) {
3795 ATRACE_CALL();
3796 sp<NotificationListener> listener;
3797 {
3798 Mutex::Autolock l(mOutputLock);
3799 listener = mListener.promote();
3800 }
3801
3802 if (msg == NULL) {
3803 SET_ERR("HAL sent NULL notify message!");
3804 return;
3805 }
3806
3807 switch (msg->type) {
3808 case CAMERA3_MSG_ERROR: {
3809 notifyError(msg->message.error, listener);
3810 break;
3811 }
3812 case CAMERA3_MSG_SHUTTER: {
3813 notifyShutter(msg->message.shutter, listener);
3814 break;
3815 }
3816 default:
3817 SET_ERR("Unknown notify message from HAL: %d",
3818 msg->type);
3819 }
3820 }
3821
notifyError(const camera3_error_msg_t & msg,sp<NotificationListener> listener)3822 void Camera3Device::notifyError(const camera3_error_msg_t &msg,
3823 sp<NotificationListener> listener) {
3824 ATRACE_CALL();
3825 // Map camera HAL error codes to ICameraDeviceCallback error codes
3826 // Index into this with the HAL error code
3827 static const int32_t halErrorMap[CAMERA3_MSG_NUM_ERRORS] = {
3828 // 0 = Unused error code
3829 hardware::camera2::ICameraDeviceCallbacks::ERROR_CAMERA_INVALID_ERROR,
3830 // 1 = CAMERA3_MSG_ERROR_DEVICE
3831 hardware::camera2::ICameraDeviceCallbacks::ERROR_CAMERA_DEVICE,
3832 // 2 = CAMERA3_MSG_ERROR_REQUEST
3833 hardware::camera2::ICameraDeviceCallbacks::ERROR_CAMERA_REQUEST,
3834 // 3 = CAMERA3_MSG_ERROR_RESULT
3835 hardware::camera2::ICameraDeviceCallbacks::ERROR_CAMERA_RESULT,
3836 // 4 = CAMERA3_MSG_ERROR_BUFFER
3837 hardware::camera2::ICameraDeviceCallbacks::ERROR_CAMERA_BUFFER
3838 };
3839
3840 int32_t errorCode =
3841 ((msg.error_code >= 0) &&
3842 (msg.error_code < CAMERA3_MSG_NUM_ERRORS)) ?
3843 halErrorMap[msg.error_code] :
3844 hardware::camera2::ICameraDeviceCallbacks::ERROR_CAMERA_INVALID_ERROR;
3845
3846 int streamId = 0;
3847 String16 physicalCameraId;
3848 if (msg.error_stream != NULL) {
3849 Camera3Stream *stream =
3850 Camera3Stream::cast(msg.error_stream);
3851 streamId = stream->getId();
3852 physicalCameraId = String16(stream->physicalCameraId());
3853 }
3854 ALOGV("Camera %s: %s: HAL error, frame %d, stream %d: %d",
3855 mId.string(), __FUNCTION__, msg.frame_number,
3856 streamId, msg.error_code);
3857
3858 CaptureResultExtras resultExtras;
3859 switch (errorCode) {
3860 case hardware::camera2::ICameraDeviceCallbacks::ERROR_CAMERA_DEVICE:
3861 // SET_ERR calls notifyError
3862 SET_ERR("Camera HAL reported serious device error");
3863 break;
3864 case hardware::camera2::ICameraDeviceCallbacks::ERROR_CAMERA_REQUEST:
3865 case hardware::camera2::ICameraDeviceCallbacks::ERROR_CAMERA_RESULT:
3866 case hardware::camera2::ICameraDeviceCallbacks::ERROR_CAMERA_BUFFER:
3867 {
3868 Mutex::Autolock l(mInFlightLock);
3869 ssize_t idx = mInFlightMap.indexOfKey(msg.frame_number);
3870 if (idx >= 0) {
3871 InFlightRequest &r = mInFlightMap.editValueAt(idx);
3872 r.requestStatus = msg.error_code;
3873 resultExtras = r.resultExtras;
3874 bool logicalDeviceResultError = false;
3875 if (hardware::camera2::ICameraDeviceCallbacks::ERROR_CAMERA_RESULT ==
3876 errorCode) {
3877 if (physicalCameraId.size() > 0) {
3878 String8 cameraId(physicalCameraId);
3879 if (r.physicalCameraIds.find(cameraId) == r.physicalCameraIds.end()) {
3880 ALOGE("%s: Reported result failure for physical camera device: %s "
3881 " which is not part of the respective request!",
3882 __FUNCTION__, cameraId.string());
3883 break;
3884 }
3885 resultExtras.errorPhysicalCameraId = physicalCameraId;
3886 } else {
3887 logicalDeviceResultError = true;
3888 }
3889 }
3890
3891 if (logicalDeviceResultError
3892 || hardware::camera2::ICameraDeviceCallbacks::ERROR_CAMERA_REQUEST ==
3893 errorCode) {
3894 r.skipResultMetadata = true;
3895 }
3896 if (logicalDeviceResultError) {
3897 // In case of missing result check whether the buffers
3898 // returned. If they returned, then remove inflight
3899 // request.
3900 // TODO: should we call this for ERROR_CAMERA_REQUEST as well?
3901 // otherwise we are depending on HAL to send the buffers back after
3902 // calling notifyError. Not sure if that's in the spec.
3903 removeInFlightRequestIfReadyLocked(idx);
3904 }
3905 } else {
3906 resultExtras.frameNumber = msg.frame_number;
3907 ALOGE("Camera %s: %s: cannot find in-flight request on "
3908 "frame %" PRId64 " error", mId.string(), __FUNCTION__,
3909 resultExtras.frameNumber);
3910 }
3911 }
3912 resultExtras.errorStreamId = streamId;
3913 if (listener != NULL) {
3914 listener->notifyError(errorCode, resultExtras);
3915 } else {
3916 ALOGE("Camera %s: %s: no listener available", mId.string(), __FUNCTION__);
3917 }
3918 break;
3919 default:
3920 // SET_ERR calls notifyError
3921 SET_ERR("Unknown error message from HAL: %d", msg.error_code);
3922 break;
3923 }
3924 }
3925
notifyShutter(const camera3_shutter_msg_t & msg,sp<NotificationListener> listener)3926 void Camera3Device::notifyShutter(const camera3_shutter_msg_t &msg,
3927 sp<NotificationListener> listener) {
3928 ATRACE_CALL();
3929 ssize_t idx;
3930
3931 // Set timestamp for the request in the in-flight tracking
3932 // and get the request ID to send upstream
3933 {
3934 Mutex::Autolock l(mInFlightLock);
3935 idx = mInFlightMap.indexOfKey(msg.frame_number);
3936 if (idx >= 0) {
3937 InFlightRequest &r = mInFlightMap.editValueAt(idx);
3938
3939 // Verify ordering of shutter notifications
3940 {
3941 Mutex::Autolock l(mOutputLock);
3942 // TODO: need to track errors for tighter bounds on expected frame number.
3943 if (r.hasInputBuffer) {
3944 if (msg.frame_number < mNextReprocessShutterFrameNumber) {
3945 SET_ERR("Reprocess shutter notification out-of-order. Expected "
3946 "notification for frame %d, got frame %d",
3947 mNextReprocessShutterFrameNumber, msg.frame_number);
3948 return;
3949 }
3950 mNextReprocessShutterFrameNumber = msg.frame_number + 1;
3951 } else if (r.zslCapture && r.stillCapture) {
3952 if (msg.frame_number < mNextZslStillShutterFrameNumber) {
3953 SET_ERR("ZSL still capture shutter notification out-of-order. Expected "
3954 "notification for frame %d, got frame %d",
3955 mNextZslStillShutterFrameNumber, msg.frame_number);
3956 return;
3957 }
3958 mNextZslStillShutterFrameNumber = msg.frame_number + 1;
3959 } else {
3960 if (msg.frame_number < mNextShutterFrameNumber) {
3961 SET_ERR("Shutter notification out-of-order. Expected "
3962 "notification for frame %d, got frame %d",
3963 mNextShutterFrameNumber, msg.frame_number);
3964 return;
3965 }
3966 mNextShutterFrameNumber = msg.frame_number + 1;
3967 }
3968 }
3969
3970 r.shutterTimestamp = msg.timestamp;
3971 if (r.hasCallback) {
3972 ALOGVV("Camera %s: %s: Shutter fired for frame %d (id %d) at %" PRId64,
3973 mId.string(), __FUNCTION__,
3974 msg.frame_number, r.resultExtras.requestId, msg.timestamp);
3975 // Call listener, if any
3976 if (listener != NULL) {
3977 listener->notifyShutter(r.resultExtras, msg.timestamp);
3978 }
3979 // send pending result and buffers
3980 sendCaptureResult(r.pendingMetadata, r.resultExtras,
3981 r.collectedPartialResult, msg.frame_number,
3982 r.hasInputBuffer, r.zslCapture && r.stillCapture,
3983 r.physicalMetadatas);
3984 }
3985 bool timestampIncreasing = !(r.zslCapture || r.hasInputBuffer);
3986 returnOutputBuffers(r.pendingOutputBuffers.array(),
3987 r.pendingOutputBuffers.size(), r.shutterTimestamp, timestampIncreasing,
3988 r.outputSurfaces, r.resultExtras);
3989 r.pendingOutputBuffers.clear();
3990
3991 removeInFlightRequestIfReadyLocked(idx);
3992 }
3993 }
3994 if (idx < 0) {
3995 SET_ERR("Shutter notification for non-existent frame number %d",
3996 msg.frame_number);
3997 }
3998 }
3999
getLatestRequestLocked()4000 CameraMetadata Camera3Device::getLatestRequestLocked() {
4001 ALOGV("%s", __FUNCTION__);
4002
4003 CameraMetadata retVal;
4004
4005 if (mRequestThread != NULL) {
4006 retVal = mRequestThread->getLatestRequest();
4007 }
4008
4009 return retVal;
4010 }
4011
4012
monitorMetadata(TagMonitor::eventSource source,int64_t frameNumber,nsecs_t timestamp,const CameraMetadata & metadata,const std::unordered_map<std::string,CameraMetadata> & physicalMetadata)4013 void Camera3Device::monitorMetadata(TagMonitor::eventSource source,
4014 int64_t frameNumber, nsecs_t timestamp, const CameraMetadata& metadata,
4015 const std::unordered_map<std::string, CameraMetadata>& physicalMetadata) {
4016
4017 mTagMonitor.monitorMetadata(source, frameNumber, timestamp, metadata,
4018 physicalMetadata);
4019 }
4020
4021 /**
4022 * HalInterface inner class methods
4023 */
4024
HalInterface(sp<ICameraDeviceSession> & session,std::shared_ptr<RequestMetadataQueue> queue,bool useHalBufManager)4025 Camera3Device::HalInterface::HalInterface(
4026 sp<ICameraDeviceSession> &session,
4027 std::shared_ptr<RequestMetadataQueue> queue,
4028 bool useHalBufManager) :
4029 mHidlSession(session),
4030 mRequestMetadataQueue(queue),
4031 mUseHalBufManager(useHalBufManager),
4032 mIsReconfigurationQuerySupported(true) {
4033 // Check with hardware service manager if we can downcast these interfaces
4034 // Somewhat expensive, so cache the results at startup
4035 auto castResult_3_5 = device::V3_5::ICameraDeviceSession::castFrom(mHidlSession);
4036 if (castResult_3_5.isOk()) {
4037 mHidlSession_3_5 = castResult_3_5;
4038 }
4039 auto castResult_3_4 = device::V3_4::ICameraDeviceSession::castFrom(mHidlSession);
4040 if (castResult_3_4.isOk()) {
4041 mHidlSession_3_4 = castResult_3_4;
4042 }
4043 auto castResult_3_3 = device::V3_3::ICameraDeviceSession::castFrom(mHidlSession);
4044 if (castResult_3_3.isOk()) {
4045 mHidlSession_3_3 = castResult_3_3;
4046 }
4047 }
4048
HalInterface()4049 Camera3Device::HalInterface::HalInterface() : mUseHalBufManager(false) {}
4050
HalInterface(const HalInterface & other)4051 Camera3Device::HalInterface::HalInterface(const HalInterface& other) :
4052 mHidlSession(other.mHidlSession),
4053 mRequestMetadataQueue(other.mRequestMetadataQueue),
4054 mUseHalBufManager(other.mUseHalBufManager) {}
4055
valid()4056 bool Camera3Device::HalInterface::valid() {
4057 return (mHidlSession != nullptr);
4058 }
4059
clear()4060 void Camera3Device::HalInterface::clear() {
4061 mHidlSession_3_5.clear();
4062 mHidlSession_3_4.clear();
4063 mHidlSession_3_3.clear();
4064 mHidlSession.clear();
4065 }
4066
constructDefaultRequestSettings(camera3_request_template_t templateId,camera_metadata_t ** requestTemplate)4067 status_t Camera3Device::HalInterface::constructDefaultRequestSettings(
4068 camera3_request_template_t templateId,
4069 /*out*/ camera_metadata_t **requestTemplate) {
4070 ATRACE_NAME("CameraHal::constructDefaultRequestSettings");
4071 if (!valid()) return INVALID_OPERATION;
4072 status_t res = OK;
4073
4074 common::V1_0::Status status;
4075
4076 auto requestCallback = [&status, &requestTemplate]
4077 (common::V1_0::Status s, const device::V3_2::CameraMetadata& request) {
4078 status = s;
4079 if (status == common::V1_0::Status::OK) {
4080 const camera_metadata *r =
4081 reinterpret_cast<const camera_metadata_t*>(request.data());
4082 size_t expectedSize = request.size();
4083 int ret = validate_camera_metadata_structure(r, &expectedSize);
4084 if (ret == OK || ret == CAMERA_METADATA_VALIDATION_SHIFTED) {
4085 *requestTemplate = clone_camera_metadata(r);
4086 if (*requestTemplate == nullptr) {
4087 ALOGE("%s: Unable to clone camera metadata received from HAL",
4088 __FUNCTION__);
4089 status = common::V1_0::Status::INTERNAL_ERROR;
4090 }
4091 } else {
4092 ALOGE("%s: Malformed camera metadata received from HAL", __FUNCTION__);
4093 status = common::V1_0::Status::INTERNAL_ERROR;
4094 }
4095 }
4096 };
4097 hardware::Return<void> err;
4098 RequestTemplate id;
4099 switch (templateId) {
4100 case CAMERA3_TEMPLATE_PREVIEW:
4101 id = RequestTemplate::PREVIEW;
4102 break;
4103 case CAMERA3_TEMPLATE_STILL_CAPTURE:
4104 id = RequestTemplate::STILL_CAPTURE;
4105 break;
4106 case CAMERA3_TEMPLATE_VIDEO_RECORD:
4107 id = RequestTemplate::VIDEO_RECORD;
4108 break;
4109 case CAMERA3_TEMPLATE_VIDEO_SNAPSHOT:
4110 id = RequestTemplate::VIDEO_SNAPSHOT;
4111 break;
4112 case CAMERA3_TEMPLATE_ZERO_SHUTTER_LAG:
4113 id = RequestTemplate::ZERO_SHUTTER_LAG;
4114 break;
4115 case CAMERA3_TEMPLATE_MANUAL:
4116 id = RequestTemplate::MANUAL;
4117 break;
4118 default:
4119 // Unknown template ID, or this HAL is too old to support it
4120 return BAD_VALUE;
4121 }
4122 err = mHidlSession->constructDefaultRequestSettings(id, requestCallback);
4123
4124 if (!err.isOk()) {
4125 ALOGE("%s: Transaction error: %s", __FUNCTION__, err.description().c_str());
4126 res = DEAD_OBJECT;
4127 } else {
4128 res = CameraProviderManager::mapToStatusT(status);
4129 }
4130
4131 return res;
4132 }
4133
isReconfigurationRequired(CameraMetadata & oldSessionParams,CameraMetadata & newSessionParams)4134 bool Camera3Device::HalInterface::isReconfigurationRequired(CameraMetadata& oldSessionParams,
4135 CameraMetadata& newSessionParams) {
4136 // We do reconfiguration by default;
4137 bool ret = true;
4138 if ((mHidlSession_3_5 != nullptr) && mIsReconfigurationQuerySupported) {
4139 android::hardware::hidl_vec<uint8_t> oldParams, newParams;
4140 camera_metadata_t* oldSessioMeta = const_cast<camera_metadata_t*>(
4141 oldSessionParams.getAndLock());
4142 camera_metadata_t* newSessioMeta = const_cast<camera_metadata_t*>(
4143 newSessionParams.getAndLock());
4144 oldParams.setToExternal(reinterpret_cast<uint8_t*>(oldSessioMeta),
4145 get_camera_metadata_size(oldSessioMeta));
4146 newParams.setToExternal(reinterpret_cast<uint8_t*>(newSessioMeta),
4147 get_camera_metadata_size(newSessioMeta));
4148 hardware::camera::common::V1_0::Status callStatus;
4149 bool required;
4150 auto hidlCb = [&callStatus, &required] (hardware::camera::common::V1_0::Status s,
4151 bool requiredFlag) {
4152 callStatus = s;
4153 required = requiredFlag;
4154 };
4155 auto err = mHidlSession_3_5->isReconfigurationRequired(oldParams, newParams, hidlCb);
4156 oldSessionParams.unlock(oldSessioMeta);
4157 newSessionParams.unlock(newSessioMeta);
4158 if (err.isOk()) {
4159 switch (callStatus) {
4160 case hardware::camera::common::V1_0::Status::OK:
4161 ret = required;
4162 break;
4163 case hardware::camera::common::V1_0::Status::METHOD_NOT_SUPPORTED:
4164 mIsReconfigurationQuerySupported = false;
4165 ret = true;
4166 break;
4167 default:
4168 ALOGV("%s: Reconfiguration query failed: %d", __FUNCTION__, callStatus);
4169 ret = true;
4170 }
4171 } else {
4172 ALOGE("%s: Unexpected binder error: %s", __FUNCTION__, err.description().c_str());
4173 ret = true;
4174 }
4175 }
4176
4177 return ret;
4178 }
4179
configureStreams(const camera_metadata_t * sessionParams,camera3_stream_configuration * config,const std::vector<uint32_t> & bufferSizes)4180 status_t Camera3Device::HalInterface::configureStreams(const camera_metadata_t *sessionParams,
4181 camera3_stream_configuration *config, const std::vector<uint32_t>& bufferSizes) {
4182 ATRACE_NAME("CameraHal::configureStreams");
4183 if (!valid()) return INVALID_OPERATION;
4184 status_t res = OK;
4185
4186 // Convert stream config to HIDL
4187 std::set<int> activeStreams;
4188 device::V3_2::StreamConfiguration requestedConfiguration3_2;
4189 device::V3_4::StreamConfiguration requestedConfiguration3_4;
4190 requestedConfiguration3_2.streams.resize(config->num_streams);
4191 requestedConfiguration3_4.streams.resize(config->num_streams);
4192 for (size_t i = 0; i < config->num_streams; i++) {
4193 device::V3_2::Stream &dst3_2 = requestedConfiguration3_2.streams[i];
4194 device::V3_4::Stream &dst3_4 = requestedConfiguration3_4.streams[i];
4195 camera3_stream_t *src = config->streams[i];
4196
4197 Camera3Stream* cam3stream = Camera3Stream::cast(src);
4198 cam3stream->setBufferFreedListener(this);
4199 int streamId = cam3stream->getId();
4200 StreamType streamType;
4201 switch (src->stream_type) {
4202 case CAMERA3_STREAM_OUTPUT:
4203 streamType = StreamType::OUTPUT;
4204 break;
4205 case CAMERA3_STREAM_INPUT:
4206 streamType = StreamType::INPUT;
4207 break;
4208 default:
4209 ALOGE("%s: Stream %d: Unsupported stream type %d",
4210 __FUNCTION__, streamId, config->streams[i]->stream_type);
4211 return BAD_VALUE;
4212 }
4213 dst3_2.id = streamId;
4214 dst3_2.streamType = streamType;
4215 dst3_2.width = src->width;
4216 dst3_2.height = src->height;
4217 dst3_2.usage = mapToConsumerUsage(cam3stream->getUsage());
4218 dst3_2.rotation = mapToStreamRotation((camera3_stream_rotation_t) src->rotation);
4219 // For HidlSession version 3.5 or newer, the format and dataSpace sent
4220 // to HAL are original, not the overriden ones.
4221 if (mHidlSession_3_5 != nullptr) {
4222 dst3_2.format = mapToPixelFormat(cam3stream->isFormatOverridden() ?
4223 cam3stream->getOriginalFormat() : src->format);
4224 dst3_2.dataSpace = mapToHidlDataspace(cam3stream->isDataSpaceOverridden() ?
4225 cam3stream->getOriginalDataSpace() : src->data_space);
4226 } else {
4227 dst3_2.format = mapToPixelFormat(src->format);
4228 dst3_2.dataSpace = mapToHidlDataspace(src->data_space);
4229 }
4230 dst3_4.v3_2 = dst3_2;
4231 dst3_4.bufferSize = bufferSizes[i];
4232 if (src->physical_camera_id != nullptr) {
4233 dst3_4.physicalCameraId = src->physical_camera_id;
4234 }
4235
4236 activeStreams.insert(streamId);
4237 // Create Buffer ID map if necessary
4238 if (mBufferIdMaps.count(streamId) == 0) {
4239 mBufferIdMaps.emplace(streamId, BufferIdMap{});
4240 }
4241 }
4242 // remove BufferIdMap for deleted streams
4243 for(auto it = mBufferIdMaps.begin(); it != mBufferIdMaps.end();) {
4244 int streamId = it->first;
4245 bool active = activeStreams.count(streamId) > 0;
4246 if (!active) {
4247 it = mBufferIdMaps.erase(it);
4248 } else {
4249 ++it;
4250 }
4251 }
4252
4253 StreamConfigurationMode operationMode;
4254 res = mapToStreamConfigurationMode(
4255 (camera3_stream_configuration_mode_t) config->operation_mode,
4256 /*out*/ &operationMode);
4257 if (res != OK) {
4258 return res;
4259 }
4260 requestedConfiguration3_2.operationMode = operationMode;
4261 requestedConfiguration3_4.operationMode = operationMode;
4262 requestedConfiguration3_4.sessionParams.setToExternal(
4263 reinterpret_cast<uint8_t*>(const_cast<camera_metadata_t*>(sessionParams)),
4264 get_camera_metadata_size(sessionParams));
4265
4266 // Invoke configureStreams
4267 device::V3_3::HalStreamConfiguration finalConfiguration;
4268 device::V3_4::HalStreamConfiguration finalConfiguration3_4;
4269 common::V1_0::Status status;
4270
4271 auto configStream34Cb = [&status, &finalConfiguration3_4]
4272 (common::V1_0::Status s, const device::V3_4::HalStreamConfiguration& halConfiguration) {
4273 finalConfiguration3_4 = halConfiguration;
4274 status = s;
4275 };
4276
4277 auto postprocConfigStream34 = [&finalConfiguration, &finalConfiguration3_4]
4278 (hardware::Return<void>& err) -> status_t {
4279 if (!err.isOk()) {
4280 ALOGE("%s: Transaction error: %s", __FUNCTION__, err.description().c_str());
4281 return DEAD_OBJECT;
4282 }
4283 finalConfiguration.streams.resize(finalConfiguration3_4.streams.size());
4284 for (size_t i = 0; i < finalConfiguration3_4.streams.size(); i++) {
4285 finalConfiguration.streams[i] = finalConfiguration3_4.streams[i].v3_3;
4286 }
4287 return OK;
4288 };
4289
4290 // See which version of HAL we have
4291 if (mHidlSession_3_5 != nullptr) {
4292 ALOGV("%s: v3.5 device found", __FUNCTION__);
4293 device::V3_5::StreamConfiguration requestedConfiguration3_5;
4294 requestedConfiguration3_5.v3_4 = requestedConfiguration3_4;
4295 requestedConfiguration3_5.streamConfigCounter = mNextStreamConfigCounter++;
4296 auto err = mHidlSession_3_5->configureStreams_3_5(
4297 requestedConfiguration3_5, configStream34Cb);
4298 res = postprocConfigStream34(err);
4299 if (res != OK) {
4300 return res;
4301 }
4302 } else if (mHidlSession_3_4 != nullptr) {
4303 // We do; use v3.4 for the call
4304 ALOGV("%s: v3.4 device found", __FUNCTION__);
4305 auto err = mHidlSession_3_4->configureStreams_3_4(
4306 requestedConfiguration3_4, configStream34Cb);
4307 res = postprocConfigStream34(err);
4308 if (res != OK) {
4309 return res;
4310 }
4311 } else if (mHidlSession_3_3 != nullptr) {
4312 // We do; use v3.3 for the call
4313 ALOGV("%s: v3.3 device found", __FUNCTION__);
4314 auto err = mHidlSession_3_3->configureStreams_3_3(requestedConfiguration3_2,
4315 [&status, &finalConfiguration]
4316 (common::V1_0::Status s, const device::V3_3::HalStreamConfiguration& halConfiguration) {
4317 finalConfiguration = halConfiguration;
4318 status = s;
4319 });
4320 if (!err.isOk()) {
4321 ALOGE("%s: Transaction error: %s", __FUNCTION__, err.description().c_str());
4322 return DEAD_OBJECT;
4323 }
4324 } else {
4325 // We don't; use v3.2 call and construct a v3.3 HalStreamConfiguration
4326 ALOGV("%s: v3.2 device found", __FUNCTION__);
4327 HalStreamConfiguration finalConfiguration_3_2;
4328 auto err = mHidlSession->configureStreams(requestedConfiguration3_2,
4329 [&status, &finalConfiguration_3_2]
4330 (common::V1_0::Status s, const HalStreamConfiguration& halConfiguration) {
4331 finalConfiguration_3_2 = halConfiguration;
4332 status = s;
4333 });
4334 if (!err.isOk()) {
4335 ALOGE("%s: Transaction error: %s", __FUNCTION__, err.description().c_str());
4336 return DEAD_OBJECT;
4337 }
4338 finalConfiguration.streams.resize(finalConfiguration_3_2.streams.size());
4339 for (size_t i = 0; i < finalConfiguration_3_2.streams.size(); i++) {
4340 finalConfiguration.streams[i].v3_2 = finalConfiguration_3_2.streams[i];
4341 finalConfiguration.streams[i].overrideDataSpace =
4342 requestedConfiguration3_2.streams[i].dataSpace;
4343 }
4344 }
4345
4346 if (status != common::V1_0::Status::OK ) {
4347 return CameraProviderManager::mapToStatusT(status);
4348 }
4349
4350 // And convert output stream configuration from HIDL
4351
4352 for (size_t i = 0; i < config->num_streams; i++) {
4353 camera3_stream_t *dst = config->streams[i];
4354 int streamId = Camera3Stream::cast(dst)->getId();
4355
4356 // Start scan at i, with the assumption that the stream order matches
4357 size_t realIdx = i;
4358 bool found = false;
4359 size_t halStreamCount = finalConfiguration.streams.size();
4360 for (size_t idx = 0; idx < halStreamCount; idx++) {
4361 if (finalConfiguration.streams[realIdx].v3_2.id == streamId) {
4362 found = true;
4363 break;
4364 }
4365 realIdx = (realIdx >= halStreamCount - 1) ? 0 : realIdx + 1;
4366 }
4367 if (!found) {
4368 ALOGE("%s: Stream %d not found in stream configuration response from HAL",
4369 __FUNCTION__, streamId);
4370 return INVALID_OPERATION;
4371 }
4372 device::V3_3::HalStream &src = finalConfiguration.streams[realIdx];
4373
4374 Camera3Stream* dstStream = Camera3Stream::cast(dst);
4375 int overrideFormat = mapToFrameworkFormat(src.v3_2.overrideFormat);
4376 android_dataspace overrideDataSpace = mapToFrameworkDataspace(src.overrideDataSpace);
4377
4378 if (dstStream->getOriginalFormat() != HAL_PIXEL_FORMAT_IMPLEMENTATION_DEFINED) {
4379 dstStream->setFormatOverride(false);
4380 dstStream->setDataSpaceOverride(false);
4381 if (dst->format != overrideFormat) {
4382 ALOGE("%s: Stream %d: Format override not allowed for format 0x%x", __FUNCTION__,
4383 streamId, dst->format);
4384 }
4385 if (dst->data_space != overrideDataSpace) {
4386 ALOGE("%s: Stream %d: DataSpace override not allowed for format 0x%x", __FUNCTION__,
4387 streamId, dst->format);
4388 }
4389 } else {
4390 bool needFormatOverride =
4391 requestedConfiguration3_2.streams[i].format != src.v3_2.overrideFormat;
4392 bool needDataspaceOverride =
4393 requestedConfiguration3_2.streams[i].dataSpace != src.overrideDataSpace;
4394 // Override allowed with IMPLEMENTATION_DEFINED
4395 dstStream->setFormatOverride(needFormatOverride);
4396 dstStream->setDataSpaceOverride(needDataspaceOverride);
4397 dst->format = overrideFormat;
4398 dst->data_space = overrideDataSpace;
4399 }
4400
4401 if (dst->stream_type == CAMERA3_STREAM_INPUT) {
4402 if (src.v3_2.producerUsage != 0) {
4403 ALOGE("%s: Stream %d: INPUT streams must have 0 for producer usage",
4404 __FUNCTION__, streamId);
4405 return INVALID_OPERATION;
4406 }
4407 dstStream->setUsage(
4408 mapConsumerToFrameworkUsage(src.v3_2.consumerUsage));
4409 } else {
4410 // OUTPUT
4411 if (src.v3_2.consumerUsage != 0) {
4412 ALOGE("%s: Stream %d: OUTPUT streams must have 0 for consumer usage",
4413 __FUNCTION__, streamId);
4414 return INVALID_OPERATION;
4415 }
4416 dstStream->setUsage(
4417 mapProducerToFrameworkUsage(src.v3_2.producerUsage));
4418 }
4419 dst->max_buffers = src.v3_2.maxBuffers;
4420 }
4421
4422 return res;
4423 }
4424
wrapAsHidlRequest(camera3_capture_request_t * request,device::V3_2::CaptureRequest * captureRequest,std::vector<native_handle_t * > * handlesCreated,std::vector<std::pair<int32_t,int32_t>> * inflightBuffers)4425 status_t Camera3Device::HalInterface::wrapAsHidlRequest(camera3_capture_request_t* request,
4426 /*out*/device::V3_2::CaptureRequest* captureRequest,
4427 /*out*/std::vector<native_handle_t*>* handlesCreated,
4428 /*out*/std::vector<std::pair<int32_t, int32_t>>* inflightBuffers) {
4429 ATRACE_CALL();
4430 if (captureRequest == nullptr || handlesCreated == nullptr || inflightBuffers == nullptr) {
4431 ALOGE("%s: captureRequest (%p), handlesCreated (%p), and inflightBuffers(%p) "
4432 "must not be null", __FUNCTION__, captureRequest, handlesCreated, inflightBuffers);
4433 return BAD_VALUE;
4434 }
4435
4436 captureRequest->frameNumber = request->frame_number;
4437
4438 captureRequest->fmqSettingsSize = 0;
4439
4440 {
4441 std::lock_guard<std::mutex> lock(mInflightLock);
4442 if (request->input_buffer != nullptr) {
4443 int32_t streamId = Camera3Stream::cast(request->input_buffer->stream)->getId();
4444 buffer_handle_t buf = *(request->input_buffer->buffer);
4445 auto pair = getBufferId(buf, streamId);
4446 bool isNewBuffer = pair.first;
4447 uint64_t bufferId = pair.second;
4448 captureRequest->inputBuffer.streamId = streamId;
4449 captureRequest->inputBuffer.bufferId = bufferId;
4450 captureRequest->inputBuffer.buffer = (isNewBuffer) ? buf : nullptr;
4451 captureRequest->inputBuffer.status = BufferStatus::OK;
4452 native_handle_t *acquireFence = nullptr;
4453 if (request->input_buffer->acquire_fence != -1) {
4454 acquireFence = native_handle_create(1,0);
4455 acquireFence->data[0] = request->input_buffer->acquire_fence;
4456 handlesCreated->push_back(acquireFence);
4457 }
4458 captureRequest->inputBuffer.acquireFence = acquireFence;
4459 captureRequest->inputBuffer.releaseFence = nullptr;
4460
4461 pushInflightBufferLocked(captureRequest->frameNumber, streamId,
4462 request->input_buffer->buffer);
4463 inflightBuffers->push_back(std::make_pair(captureRequest->frameNumber, streamId));
4464 } else {
4465 captureRequest->inputBuffer.streamId = -1;
4466 captureRequest->inputBuffer.bufferId = BUFFER_ID_NO_BUFFER;
4467 }
4468
4469 captureRequest->outputBuffers.resize(request->num_output_buffers);
4470 for (size_t i = 0; i < request->num_output_buffers; i++) {
4471 const camera3_stream_buffer_t *src = request->output_buffers + i;
4472 StreamBuffer &dst = captureRequest->outputBuffers[i];
4473 int32_t streamId = Camera3Stream::cast(src->stream)->getId();
4474 if (src->buffer != nullptr) {
4475 buffer_handle_t buf = *(src->buffer);
4476 auto pair = getBufferId(buf, streamId);
4477 bool isNewBuffer = pair.first;
4478 dst.bufferId = pair.second;
4479 dst.buffer = isNewBuffer ? buf : nullptr;
4480 native_handle_t *acquireFence = nullptr;
4481 if (src->acquire_fence != -1) {
4482 acquireFence = native_handle_create(1,0);
4483 acquireFence->data[0] = src->acquire_fence;
4484 handlesCreated->push_back(acquireFence);
4485 }
4486 dst.acquireFence = acquireFence;
4487 } else if (mUseHalBufManager) {
4488 // HAL buffer management path
4489 dst.bufferId = BUFFER_ID_NO_BUFFER;
4490 dst.buffer = nullptr;
4491 dst.acquireFence = nullptr;
4492 } else {
4493 ALOGE("%s: cannot send a null buffer in capture request!", __FUNCTION__);
4494 return BAD_VALUE;
4495 }
4496 dst.streamId = streamId;
4497 dst.status = BufferStatus::OK;
4498 dst.releaseFence = nullptr;
4499
4500 // Output buffers are empty when using HAL buffer manager
4501 if (!mUseHalBufManager) {
4502 pushInflightBufferLocked(captureRequest->frameNumber, streamId, src->buffer);
4503 inflightBuffers->push_back(std::make_pair(captureRequest->frameNumber, streamId));
4504 }
4505 }
4506 }
4507 return OK;
4508 }
4509
cleanupNativeHandles(std::vector<native_handle_t * > * handles,bool closeFd)4510 void Camera3Device::HalInterface::cleanupNativeHandles(
4511 std::vector<native_handle_t*> *handles, bool closeFd) {
4512 if (handles == nullptr) {
4513 return;
4514 }
4515 if (closeFd) {
4516 for (auto& handle : *handles) {
4517 native_handle_close(handle);
4518 }
4519 }
4520 for (auto& handle : *handles) {
4521 native_handle_delete(handle);
4522 }
4523 handles->clear();
4524 return;
4525 }
4526
processBatchCaptureRequests(std::vector<camera3_capture_request_t * > & requests,uint32_t * numRequestProcessed)4527 status_t Camera3Device::HalInterface::processBatchCaptureRequests(
4528 std::vector<camera3_capture_request_t*>& requests,/*out*/uint32_t* numRequestProcessed) {
4529 ATRACE_NAME("CameraHal::processBatchCaptureRequests");
4530 if (!valid()) return INVALID_OPERATION;
4531
4532 sp<device::V3_4::ICameraDeviceSession> hidlSession_3_4;
4533 auto castResult_3_4 = device::V3_4::ICameraDeviceSession::castFrom(mHidlSession);
4534 if (castResult_3_4.isOk()) {
4535 hidlSession_3_4 = castResult_3_4;
4536 }
4537
4538 hardware::hidl_vec<device::V3_2::CaptureRequest> captureRequests;
4539 hardware::hidl_vec<device::V3_4::CaptureRequest> captureRequests_3_4;
4540 size_t batchSize = requests.size();
4541 if (hidlSession_3_4 != nullptr) {
4542 captureRequests_3_4.resize(batchSize);
4543 } else {
4544 captureRequests.resize(batchSize);
4545 }
4546 std::vector<native_handle_t*> handlesCreated;
4547 std::vector<std::pair<int32_t, int32_t>> inflightBuffers;
4548
4549 status_t res = OK;
4550 for (size_t i = 0; i < batchSize; i++) {
4551 if (hidlSession_3_4 != nullptr) {
4552 res = wrapAsHidlRequest(requests[i], /*out*/&captureRequests_3_4[i].v3_2,
4553 /*out*/&handlesCreated, /*out*/&inflightBuffers);
4554 } else {
4555 res = wrapAsHidlRequest(requests[i], /*out*/&captureRequests[i],
4556 /*out*/&handlesCreated, /*out*/&inflightBuffers);
4557 }
4558 if (res != OK) {
4559 popInflightBuffers(inflightBuffers);
4560 cleanupNativeHandles(&handlesCreated);
4561 return res;
4562 }
4563 }
4564
4565 std::vector<device::V3_2::BufferCache> cachesToRemove;
4566 {
4567 std::lock_guard<std::mutex> lock(mBufferIdMapLock);
4568 for (auto& pair : mFreedBuffers) {
4569 // The stream might have been removed since onBufferFreed
4570 if (mBufferIdMaps.find(pair.first) != mBufferIdMaps.end()) {
4571 cachesToRemove.push_back({pair.first, pair.second});
4572 }
4573 }
4574 mFreedBuffers.clear();
4575 }
4576
4577 common::V1_0::Status status = common::V1_0::Status::INTERNAL_ERROR;
4578 *numRequestProcessed = 0;
4579
4580 // Write metadata to FMQ.
4581 for (size_t i = 0; i < batchSize; i++) {
4582 camera3_capture_request_t* request = requests[i];
4583 device::V3_2::CaptureRequest* captureRequest;
4584 if (hidlSession_3_4 != nullptr) {
4585 captureRequest = &captureRequests_3_4[i].v3_2;
4586 } else {
4587 captureRequest = &captureRequests[i];
4588 }
4589
4590 if (request->settings != nullptr) {
4591 size_t settingsSize = get_camera_metadata_size(request->settings);
4592 if (mRequestMetadataQueue != nullptr && mRequestMetadataQueue->write(
4593 reinterpret_cast<const uint8_t*>(request->settings), settingsSize)) {
4594 captureRequest->settings.resize(0);
4595 captureRequest->fmqSettingsSize = settingsSize;
4596 } else {
4597 if (mRequestMetadataQueue != nullptr) {
4598 ALOGW("%s: couldn't utilize fmq, fallback to hwbinder", __FUNCTION__);
4599 }
4600 captureRequest->settings.setToExternal(
4601 reinterpret_cast<uint8_t*>(const_cast<camera_metadata_t*>(request->settings)),
4602 get_camera_metadata_size(request->settings));
4603 captureRequest->fmqSettingsSize = 0u;
4604 }
4605 } else {
4606 // A null request settings maps to a size-0 CameraMetadata
4607 captureRequest->settings.resize(0);
4608 captureRequest->fmqSettingsSize = 0u;
4609 }
4610
4611 if (hidlSession_3_4 != nullptr) {
4612 captureRequests_3_4[i].physicalCameraSettings.resize(request->num_physcam_settings);
4613 for (size_t j = 0; j < request->num_physcam_settings; j++) {
4614 if (request->physcam_settings != nullptr) {
4615 size_t settingsSize = get_camera_metadata_size(request->physcam_settings[j]);
4616 if (mRequestMetadataQueue != nullptr && mRequestMetadataQueue->write(
4617 reinterpret_cast<const uint8_t*>(request->physcam_settings[j]),
4618 settingsSize)) {
4619 captureRequests_3_4[i].physicalCameraSettings[j].settings.resize(0);
4620 captureRequests_3_4[i].physicalCameraSettings[j].fmqSettingsSize =
4621 settingsSize;
4622 } else {
4623 if (mRequestMetadataQueue != nullptr) {
4624 ALOGW("%s: couldn't utilize fmq, fallback to hwbinder", __FUNCTION__);
4625 }
4626 captureRequests_3_4[i].physicalCameraSettings[j].settings.setToExternal(
4627 reinterpret_cast<uint8_t*>(const_cast<camera_metadata_t*>(
4628 request->physcam_settings[j])),
4629 get_camera_metadata_size(request->physcam_settings[j]));
4630 captureRequests_3_4[i].physicalCameraSettings[j].fmqSettingsSize = 0u;
4631 }
4632 } else {
4633 captureRequests_3_4[i].physicalCameraSettings[j].fmqSettingsSize = 0u;
4634 captureRequests_3_4[i].physicalCameraSettings[j].settings.resize(0);
4635 }
4636 captureRequests_3_4[i].physicalCameraSettings[j].physicalCameraId =
4637 request->physcam_id[j];
4638 }
4639 }
4640 }
4641
4642 hardware::details::return_status err;
4643 auto resultCallback =
4644 [&status, &numRequestProcessed] (auto s, uint32_t n) {
4645 status = s;
4646 *numRequestProcessed = n;
4647 };
4648 if (hidlSession_3_4 != nullptr) {
4649 err = hidlSession_3_4->processCaptureRequest_3_4(captureRequests_3_4, cachesToRemove,
4650 resultCallback);
4651 } else {
4652 err = mHidlSession->processCaptureRequest(captureRequests, cachesToRemove,
4653 resultCallback);
4654 }
4655 if (!err.isOk()) {
4656 ALOGE("%s: Transaction error: %s", __FUNCTION__, err.description().c_str());
4657 status = common::V1_0::Status::CAMERA_DISCONNECTED;
4658 }
4659
4660 if (status == common::V1_0::Status::OK && *numRequestProcessed != batchSize) {
4661 ALOGE("%s: processCaptureRequest returns OK but processed %d/%zu requests",
4662 __FUNCTION__, *numRequestProcessed, batchSize);
4663 status = common::V1_0::Status::INTERNAL_ERROR;
4664 }
4665
4666 res = CameraProviderManager::mapToStatusT(status);
4667 if (res == OK) {
4668 if (mHidlSession->isRemote()) {
4669 // Only close acquire fence FDs when the HIDL transaction succeeds (so the FDs have been
4670 // sent to camera HAL processes)
4671 cleanupNativeHandles(&handlesCreated, /*closeFd*/true);
4672 } else {
4673 // In passthrough mode the FDs are now owned by HAL
4674 cleanupNativeHandles(&handlesCreated);
4675 }
4676 } else {
4677 popInflightBuffers(inflightBuffers);
4678 cleanupNativeHandles(&handlesCreated);
4679 }
4680 return res;
4681 }
4682
flush()4683 status_t Camera3Device::HalInterface::flush() {
4684 ATRACE_NAME("CameraHal::flush");
4685 if (!valid()) return INVALID_OPERATION;
4686 status_t res = OK;
4687
4688 auto err = mHidlSession->flush();
4689 if (!err.isOk()) {
4690 ALOGE("%s: Transaction error: %s", __FUNCTION__, err.description().c_str());
4691 res = DEAD_OBJECT;
4692 } else {
4693 res = CameraProviderManager::mapToStatusT(err);
4694 }
4695
4696 return res;
4697 }
4698
dump(int)4699 status_t Camera3Device::HalInterface::dump(int /*fd*/) {
4700 ATRACE_NAME("CameraHal::dump");
4701 if (!valid()) return INVALID_OPERATION;
4702
4703 // Handled by CameraProviderManager::dump
4704
4705 return OK;
4706 }
4707
close()4708 status_t Camera3Device::HalInterface::close() {
4709 ATRACE_NAME("CameraHal::close()");
4710 if (!valid()) return INVALID_OPERATION;
4711 status_t res = OK;
4712
4713 auto err = mHidlSession->close();
4714 // Interface will be dead shortly anyway, so don't log errors
4715 if (!err.isOk()) {
4716 res = DEAD_OBJECT;
4717 }
4718
4719 return res;
4720 }
4721
signalPipelineDrain(const std::vector<int> & streamIds)4722 void Camera3Device::HalInterface::signalPipelineDrain(const std::vector<int>& streamIds) {
4723 ATRACE_NAME("CameraHal::signalPipelineDrain");
4724 if (!valid() || mHidlSession_3_5 == nullptr) {
4725 ALOGE("%s called on invalid camera!", __FUNCTION__);
4726 return;
4727 }
4728
4729 auto err = mHidlSession_3_5->signalStreamFlush(streamIds, mNextStreamConfigCounter - 1);
4730 if (!err.isOk()) {
4731 ALOGE("%s: Transaction error: %s", __FUNCTION__, err.description().c_str());
4732 return;
4733 }
4734 }
4735
getInflightBufferKeys(std::vector<std::pair<int32_t,int32_t>> * out)4736 void Camera3Device::HalInterface::getInflightBufferKeys(
4737 std::vector<std::pair<int32_t, int32_t>>* out) {
4738 std::lock_guard<std::mutex> lock(mInflightLock);
4739 out->clear();
4740 out->reserve(mInflightBufferMap.size());
4741 for (auto& pair : mInflightBufferMap) {
4742 uint64_t key = pair.first;
4743 int32_t streamId = key & 0xFFFFFFFF;
4744 int32_t frameNumber = (key >> 32) & 0xFFFFFFFF;
4745 out->push_back(std::make_pair(frameNumber, streamId));
4746 }
4747 return;
4748 }
4749
getInflightRequestBufferKeys(std::vector<uint64_t> * out)4750 void Camera3Device::HalInterface::getInflightRequestBufferKeys(
4751 std::vector<uint64_t>* out) {
4752 std::lock_guard<std::mutex> lock(mRequestedBuffersLock);
4753 out->clear();
4754 out->reserve(mRequestedBuffers.size());
4755 for (auto& pair : mRequestedBuffers) {
4756 out->push_back(pair.first);
4757 }
4758 return;
4759 }
4760
pushInflightBufferLocked(int32_t frameNumber,int32_t streamId,buffer_handle_t * buffer)4761 status_t Camera3Device::HalInterface::pushInflightBufferLocked(
4762 int32_t frameNumber, int32_t streamId, buffer_handle_t *buffer) {
4763 uint64_t key = static_cast<uint64_t>(frameNumber) << 32 | static_cast<uint64_t>(streamId);
4764 mInflightBufferMap[key] = buffer;
4765 return OK;
4766 }
4767
popInflightBuffer(int32_t frameNumber,int32_t streamId,buffer_handle_t ** buffer)4768 status_t Camera3Device::HalInterface::popInflightBuffer(
4769 int32_t frameNumber, int32_t streamId,
4770 /*out*/ buffer_handle_t **buffer) {
4771 std::lock_guard<std::mutex> lock(mInflightLock);
4772
4773 uint64_t key = static_cast<uint64_t>(frameNumber) << 32 | static_cast<uint64_t>(streamId);
4774 auto it = mInflightBufferMap.find(key);
4775 if (it == mInflightBufferMap.end()) return NAME_NOT_FOUND;
4776 if (buffer != nullptr) {
4777 *buffer = it->second;
4778 }
4779 mInflightBufferMap.erase(it);
4780 return OK;
4781 }
4782
popInflightBuffers(const std::vector<std::pair<int32_t,int32_t>> & buffers)4783 void Camera3Device::HalInterface::popInflightBuffers(
4784 const std::vector<std::pair<int32_t, int32_t>>& buffers) {
4785 for (const auto& pair : buffers) {
4786 int32_t frameNumber = pair.first;
4787 int32_t streamId = pair.second;
4788 popInflightBuffer(frameNumber, streamId, nullptr);
4789 }
4790 }
4791
pushInflightRequestBuffer(uint64_t bufferId,buffer_handle_t * buf,int32_t streamId)4792 status_t Camera3Device::HalInterface::pushInflightRequestBuffer(
4793 uint64_t bufferId, buffer_handle_t* buf, int32_t streamId) {
4794 std::lock_guard<std::mutex> lock(mRequestedBuffersLock);
4795 auto pair = mRequestedBuffers.insert({bufferId, {streamId, buf}});
4796 if (!pair.second) {
4797 ALOGE("%s: bufId %" PRIu64 " is already inflight!",
4798 __FUNCTION__, bufferId);
4799 return BAD_VALUE;
4800 }
4801 return OK;
4802 }
4803
4804 // Find and pop a buffer_handle_t based on bufferId
popInflightRequestBuffer(uint64_t bufferId,buffer_handle_t ** buffer,int32_t * streamId)4805 status_t Camera3Device::HalInterface::popInflightRequestBuffer(
4806 uint64_t bufferId,
4807 /*out*/ buffer_handle_t** buffer,
4808 /*optional out*/ int32_t* streamId) {
4809 if (buffer == nullptr) {
4810 ALOGE("%s: buffer (%p) must not be null", __FUNCTION__, buffer);
4811 return BAD_VALUE;
4812 }
4813 std::lock_guard<std::mutex> lock(mRequestedBuffersLock);
4814 auto it = mRequestedBuffers.find(bufferId);
4815 if (it == mRequestedBuffers.end()) {
4816 ALOGE("%s: bufId %" PRIu64 " is not inflight!",
4817 __FUNCTION__, bufferId);
4818 return BAD_VALUE;
4819 }
4820 *buffer = it->second.second;
4821 if (streamId != nullptr) {
4822 *streamId = it->second.first;
4823 }
4824 mRequestedBuffers.erase(it);
4825 return OK;
4826 }
4827
getBufferId(const buffer_handle_t & buf,int streamId)4828 std::pair<bool, uint64_t> Camera3Device::HalInterface::getBufferId(
4829 const buffer_handle_t& buf, int streamId) {
4830 std::lock_guard<std::mutex> lock(mBufferIdMapLock);
4831
4832 BufferIdMap& bIdMap = mBufferIdMaps.at(streamId);
4833 auto it = bIdMap.find(buf);
4834 if (it == bIdMap.end()) {
4835 bIdMap[buf] = mNextBufferId++;
4836 ALOGV("stream %d now have %zu buffer caches, buf %p",
4837 streamId, bIdMap.size(), buf);
4838 return std::make_pair(true, mNextBufferId - 1);
4839 } else {
4840 return std::make_pair(false, it->second);
4841 }
4842 }
4843
onBufferFreed(int streamId,const native_handle_t * handle)4844 void Camera3Device::HalInterface::onBufferFreed(
4845 int streamId, const native_handle_t* handle) {
4846 std::lock_guard<std::mutex> lock(mBufferIdMapLock);
4847 uint64_t bufferId = BUFFER_ID_NO_BUFFER;
4848 auto mapIt = mBufferIdMaps.find(streamId);
4849 if (mapIt == mBufferIdMaps.end()) {
4850 // streamId might be from a deleted stream here
4851 ALOGI("%s: stream %d has been removed",
4852 __FUNCTION__, streamId);
4853 return;
4854 }
4855 BufferIdMap& bIdMap = mapIt->second;
4856 auto it = bIdMap.find(handle);
4857 if (it == bIdMap.end()) {
4858 ALOGW("%s: cannot find buffer %p in stream %d",
4859 __FUNCTION__, handle, streamId);
4860 return;
4861 } else {
4862 bufferId = it->second;
4863 bIdMap.erase(it);
4864 ALOGV("%s: stream %d now have %zu buffer caches after removing buf %p",
4865 __FUNCTION__, streamId, bIdMap.size(), handle);
4866 }
4867 mFreedBuffers.push_back(std::make_pair(streamId, bufferId));
4868 }
4869
onStreamReConfigured(int streamId)4870 void Camera3Device::HalInterface::onStreamReConfigured(int streamId) {
4871 std::lock_guard<std::mutex> lock(mBufferIdMapLock);
4872 auto mapIt = mBufferIdMaps.find(streamId);
4873 if (mapIt == mBufferIdMaps.end()) {
4874 ALOGE("%s: streamId %d not found!", __FUNCTION__, streamId);
4875 return;
4876 }
4877
4878 BufferIdMap& bIdMap = mapIt->second;
4879 for (const auto& it : bIdMap) {
4880 uint64_t bufferId = it.second;
4881 mFreedBuffers.push_back(std::make_pair(streamId, bufferId));
4882 }
4883 bIdMap.clear();
4884 }
4885
4886 /**
4887 * RequestThread inner class methods
4888 */
4889
RequestThread(wp<Camera3Device> parent,sp<StatusTracker> statusTracker,sp<HalInterface> interface,const Vector<int32_t> & sessionParamKeys,bool useHalBufManager)4890 Camera3Device::RequestThread::RequestThread(wp<Camera3Device> parent,
4891 sp<StatusTracker> statusTracker,
4892 sp<HalInterface> interface, const Vector<int32_t>& sessionParamKeys,
4893 bool useHalBufManager) :
4894 Thread(/*canCallJava*/false),
4895 mParent(parent),
4896 mStatusTracker(statusTracker),
4897 mInterface(interface),
4898 mListener(nullptr),
4899 mId(getId(parent)),
4900 mReconfigured(false),
4901 mDoPause(false),
4902 mPaused(true),
4903 mNotifyPipelineDrain(false),
4904 mFrameNumber(0),
4905 mLatestRequestId(NAME_NOT_FOUND),
4906 mCurrentAfTriggerId(0),
4907 mCurrentPreCaptureTriggerId(0),
4908 mRepeatingLastFrameNumber(
4909 hardware::camera2::ICameraDeviceUser::NO_IN_FLIGHT_REPEATING_FRAMES),
4910 mPrepareVideoStream(false),
4911 mConstrainedMode(false),
4912 mRequestLatency(kRequestLatencyBinSize),
4913 mSessionParamKeys(sessionParamKeys),
4914 mLatestSessionParams(sessionParamKeys.size()),
4915 mUseHalBufManager(useHalBufManager) {
4916 mStatusId = statusTracker->addComponent();
4917 }
4918
~RequestThread()4919 Camera3Device::RequestThread::~RequestThread() {}
4920
setNotificationListener(wp<NotificationListener> listener)4921 void Camera3Device::RequestThread::setNotificationListener(
4922 wp<NotificationListener> listener) {
4923 ATRACE_CALL();
4924 Mutex::Autolock l(mRequestLock);
4925 mListener = listener;
4926 }
4927
configurationComplete(bool isConstrainedHighSpeed,const CameraMetadata & sessionParams)4928 void Camera3Device::RequestThread::configurationComplete(bool isConstrainedHighSpeed,
4929 const CameraMetadata& sessionParams) {
4930 ATRACE_CALL();
4931 Mutex::Autolock l(mRequestLock);
4932 mReconfigured = true;
4933 mLatestSessionParams = sessionParams;
4934 // Prepare video stream for high speed recording.
4935 mPrepareVideoStream = isConstrainedHighSpeed;
4936 mConstrainedMode = isConstrainedHighSpeed;
4937 }
4938
queueRequestList(List<sp<CaptureRequest>> & requests,int64_t * lastFrameNumber)4939 status_t Camera3Device::RequestThread::queueRequestList(
4940 List<sp<CaptureRequest> > &requests,
4941 /*out*/
4942 int64_t *lastFrameNumber) {
4943 ATRACE_CALL();
4944 Mutex::Autolock l(mRequestLock);
4945 for (List<sp<CaptureRequest> >::iterator it = requests.begin(); it != requests.end();
4946 ++it) {
4947 mRequestQueue.push_back(*it);
4948 }
4949
4950 if (lastFrameNumber != NULL) {
4951 *lastFrameNumber = mFrameNumber + mRequestQueue.size() - 1;
4952 ALOGV("%s: requestId %d, mFrameNumber %" PRId32 ", lastFrameNumber %" PRId64 ".",
4953 __FUNCTION__, (*(requests.begin()))->mResultExtras.requestId, mFrameNumber,
4954 *lastFrameNumber);
4955 }
4956
4957 unpauseForNewRequests();
4958
4959 return OK;
4960 }
4961
4962
queueTrigger(RequestTrigger trigger[],size_t count)4963 status_t Camera3Device::RequestThread::queueTrigger(
4964 RequestTrigger trigger[],
4965 size_t count) {
4966 ATRACE_CALL();
4967 Mutex::Autolock l(mTriggerMutex);
4968 status_t ret;
4969
4970 for (size_t i = 0; i < count; ++i) {
4971 ret = queueTriggerLocked(trigger[i]);
4972
4973 if (ret != OK) {
4974 return ret;
4975 }
4976 }
4977
4978 return OK;
4979 }
4980
getId(const wp<Camera3Device> & device)4981 const String8& Camera3Device::RequestThread::getId(const wp<Camera3Device> &device) {
4982 static String8 deadId("<DeadDevice>");
4983 sp<Camera3Device> d = device.promote();
4984 if (d != nullptr) return d->mId;
4985 return deadId;
4986 }
4987
queueTriggerLocked(RequestTrigger trigger)4988 status_t Camera3Device::RequestThread::queueTriggerLocked(
4989 RequestTrigger trigger) {
4990
4991 uint32_t tag = trigger.metadataTag;
4992 ssize_t index = mTriggerMap.indexOfKey(tag);
4993
4994 switch (trigger.getTagType()) {
4995 case TYPE_BYTE:
4996 // fall-through
4997 case TYPE_INT32:
4998 break;
4999 default:
5000 ALOGE("%s: Type not supported: 0x%x", __FUNCTION__,
5001 trigger.getTagType());
5002 return INVALID_OPERATION;
5003 }
5004
5005 /**
5006 * Collect only the latest trigger, since we only have 1 field
5007 * in the request settings per trigger tag, and can't send more than 1
5008 * trigger per request.
5009 */
5010 if (index != NAME_NOT_FOUND) {
5011 mTriggerMap.editValueAt(index) = trigger;
5012 } else {
5013 mTriggerMap.add(tag, trigger);
5014 }
5015
5016 return OK;
5017 }
5018
setRepeatingRequests(const RequestList & requests,int64_t * lastFrameNumber)5019 status_t Camera3Device::RequestThread::setRepeatingRequests(
5020 const RequestList &requests,
5021 /*out*/
5022 int64_t *lastFrameNumber) {
5023 ATRACE_CALL();
5024 Mutex::Autolock l(mRequestLock);
5025 if (lastFrameNumber != NULL) {
5026 *lastFrameNumber = mRepeatingLastFrameNumber;
5027 }
5028 mRepeatingRequests.clear();
5029 mRepeatingRequests.insert(mRepeatingRequests.begin(),
5030 requests.begin(), requests.end());
5031
5032 unpauseForNewRequests();
5033
5034 mRepeatingLastFrameNumber = hardware::camera2::ICameraDeviceUser::NO_IN_FLIGHT_REPEATING_FRAMES;
5035 return OK;
5036 }
5037
isRepeatingRequestLocked(const sp<CaptureRequest> & requestIn)5038 bool Camera3Device::RequestThread::isRepeatingRequestLocked(const sp<CaptureRequest>& requestIn) {
5039 if (mRepeatingRequests.empty()) {
5040 return false;
5041 }
5042 int32_t requestId = requestIn->mResultExtras.requestId;
5043 const RequestList &repeatRequests = mRepeatingRequests;
5044 // All repeating requests are guaranteed to have same id so only check first quest
5045 const sp<CaptureRequest> firstRequest = *repeatRequests.begin();
5046 return (firstRequest->mResultExtras.requestId == requestId);
5047 }
5048
clearRepeatingRequests(int64_t * lastFrameNumber)5049 status_t Camera3Device::RequestThread::clearRepeatingRequests(/*out*/int64_t *lastFrameNumber) {
5050 ATRACE_CALL();
5051 Mutex::Autolock l(mRequestLock);
5052 return clearRepeatingRequestsLocked(lastFrameNumber);
5053
5054 }
5055
clearRepeatingRequestsLocked(int64_t * lastFrameNumber)5056 status_t Camera3Device::RequestThread::clearRepeatingRequestsLocked(/*out*/int64_t *lastFrameNumber) {
5057 mRepeatingRequests.clear();
5058 if (lastFrameNumber != NULL) {
5059 *lastFrameNumber = mRepeatingLastFrameNumber;
5060 }
5061 mRepeatingLastFrameNumber = hardware::camera2::ICameraDeviceUser::NO_IN_FLIGHT_REPEATING_FRAMES;
5062 return OK;
5063 }
5064
clear(int64_t * lastFrameNumber)5065 status_t Camera3Device::RequestThread::clear(
5066 /*out*/int64_t *lastFrameNumber) {
5067 ATRACE_CALL();
5068 Mutex::Autolock l(mRequestLock);
5069 ALOGV("RequestThread::%s:", __FUNCTION__);
5070
5071 mRepeatingRequests.clear();
5072
5073 // Send errors for all requests pending in the request queue, including
5074 // pending repeating requests
5075 sp<NotificationListener> listener = mListener.promote();
5076 if (listener != NULL) {
5077 for (RequestList::iterator it = mRequestQueue.begin();
5078 it != mRequestQueue.end(); ++it) {
5079 // Abort the input buffers for reprocess requests.
5080 if ((*it)->mInputStream != NULL) {
5081 camera3_stream_buffer_t inputBuffer;
5082 status_t res = (*it)->mInputStream->getInputBuffer(&inputBuffer,
5083 /*respectHalLimit*/ false);
5084 if (res != OK) {
5085 ALOGW("%s: %d: couldn't get input buffer while clearing the request "
5086 "list: %s (%d)", __FUNCTION__, __LINE__, strerror(-res), res);
5087 } else {
5088 res = (*it)->mInputStream->returnInputBuffer(inputBuffer);
5089 if (res != OK) {
5090 ALOGE("%s: %d: couldn't return input buffer while clearing the request "
5091 "list: %s (%d)", __FUNCTION__, __LINE__, strerror(-res), res);
5092 }
5093 }
5094 }
5095 // Set the frame number this request would have had, if it
5096 // had been submitted; this frame number will not be reused.
5097 // The requestId and burstId fields were set when the request was
5098 // submitted originally (in convertMetadataListToRequestListLocked)
5099 (*it)->mResultExtras.frameNumber = mFrameNumber++;
5100 listener->notifyError(hardware::camera2::ICameraDeviceCallbacks::ERROR_CAMERA_REQUEST,
5101 (*it)->mResultExtras);
5102 }
5103 }
5104 mRequestQueue.clear();
5105
5106 Mutex::Autolock al(mTriggerMutex);
5107 mTriggerMap.clear();
5108 if (lastFrameNumber != NULL) {
5109 *lastFrameNumber = mRepeatingLastFrameNumber;
5110 }
5111 mRepeatingLastFrameNumber = hardware::camera2::ICameraDeviceUser::NO_IN_FLIGHT_REPEATING_FRAMES;
5112 return OK;
5113 }
5114
flush()5115 status_t Camera3Device::RequestThread::flush() {
5116 ATRACE_CALL();
5117 Mutex::Autolock l(mFlushLock);
5118
5119 return mInterface->flush();
5120 }
5121
setPaused(bool paused)5122 void Camera3Device::RequestThread::setPaused(bool paused) {
5123 ATRACE_CALL();
5124 Mutex::Autolock l(mPauseLock);
5125 mDoPause = paused;
5126 mDoPauseSignal.signal();
5127 }
5128
waitUntilRequestProcessed(int32_t requestId,nsecs_t timeout)5129 status_t Camera3Device::RequestThread::waitUntilRequestProcessed(
5130 int32_t requestId, nsecs_t timeout) {
5131 ATRACE_CALL();
5132 Mutex::Autolock l(mLatestRequestMutex);
5133 status_t res;
5134 while (mLatestRequestId != requestId) {
5135 nsecs_t startTime = systemTime();
5136
5137 res = mLatestRequestSignal.waitRelative(mLatestRequestMutex, timeout);
5138 if (res != OK) return res;
5139
5140 timeout -= (systemTime() - startTime);
5141 }
5142
5143 return OK;
5144 }
5145
requestExit()5146 void Camera3Device::RequestThread::requestExit() {
5147 // Call parent to set up shutdown
5148 Thread::requestExit();
5149 // The exit from any possible waits
5150 mDoPauseSignal.signal();
5151 mRequestSignal.signal();
5152
5153 mRequestLatency.log("ProcessCaptureRequest latency histogram");
5154 mRequestLatency.reset();
5155 }
5156
checkAndStopRepeatingRequest()5157 void Camera3Device::RequestThread::checkAndStopRepeatingRequest() {
5158 ATRACE_CALL();
5159 bool surfaceAbandoned = false;
5160 int64_t lastFrameNumber = 0;
5161 sp<NotificationListener> listener;
5162 {
5163 Mutex::Autolock l(mRequestLock);
5164 // Check all streams needed by repeating requests are still valid. Otherwise, stop
5165 // repeating requests.
5166 for (const auto& request : mRepeatingRequests) {
5167 for (const auto& s : request->mOutputStreams) {
5168 if (s->isAbandoned()) {
5169 surfaceAbandoned = true;
5170 clearRepeatingRequestsLocked(&lastFrameNumber);
5171 break;
5172 }
5173 }
5174 if (surfaceAbandoned) {
5175 break;
5176 }
5177 }
5178 listener = mListener.promote();
5179 }
5180
5181 if (listener != NULL && surfaceAbandoned) {
5182 listener->notifyRepeatingRequestError(lastFrameNumber);
5183 }
5184 }
5185
sendRequestsBatch()5186 bool Camera3Device::RequestThread::sendRequestsBatch() {
5187 ATRACE_CALL();
5188 status_t res;
5189 size_t batchSize = mNextRequests.size();
5190 std::vector<camera3_capture_request_t*> requests(batchSize);
5191 uint32_t numRequestProcessed = 0;
5192 for (size_t i = 0; i < batchSize; i++) {
5193 requests[i] = &mNextRequests.editItemAt(i).halRequest;
5194 ATRACE_ASYNC_BEGIN("frame capture", mNextRequests[i].halRequest.frame_number);
5195 }
5196
5197 res = mInterface->processBatchCaptureRequests(requests, &numRequestProcessed);
5198
5199 bool triggerRemoveFailed = false;
5200 NextRequest& triggerFailedRequest = mNextRequests.editItemAt(0);
5201 for (size_t i = 0; i < numRequestProcessed; i++) {
5202 NextRequest& nextRequest = mNextRequests.editItemAt(i);
5203 nextRequest.submitted = true;
5204
5205 updateNextRequest(nextRequest);
5206
5207 if (!triggerRemoveFailed) {
5208 // Remove any previously queued triggers (after unlock)
5209 status_t removeTriggerRes = removeTriggers(mPrevRequest);
5210 if (removeTriggerRes != OK) {
5211 triggerRemoveFailed = true;
5212 triggerFailedRequest = nextRequest;
5213 }
5214 }
5215 }
5216
5217 if (triggerRemoveFailed) {
5218 SET_ERR("RequestThread: Unable to remove triggers "
5219 "(capture request %d, HAL device: %s (%d)",
5220 triggerFailedRequest.halRequest.frame_number, strerror(-res), res);
5221 cleanUpFailedRequests(/*sendRequestError*/ false);
5222 return false;
5223 }
5224
5225 if (res != OK) {
5226 // Should only get a failure here for malformed requests or device-level
5227 // errors, so consider all errors fatal. Bad metadata failures should
5228 // come through notify.
5229 SET_ERR("RequestThread: Unable to submit capture request %d to HAL device: %s (%d)",
5230 mNextRequests[numRequestProcessed].halRequest.frame_number,
5231 strerror(-res), res);
5232 cleanUpFailedRequests(/*sendRequestError*/ false);
5233 return false;
5234 }
5235 return true;
5236 }
5237
calculateMaxExpectedDuration(const camera_metadata_t * request)5238 nsecs_t Camera3Device::RequestThread::calculateMaxExpectedDuration(const camera_metadata_t *request) {
5239 nsecs_t maxExpectedDuration = kDefaultExpectedDuration;
5240 camera_metadata_ro_entry_t e = camera_metadata_ro_entry_t();
5241 find_camera_metadata_ro_entry(request,
5242 ANDROID_CONTROL_AE_MODE,
5243 &e);
5244 if (e.count == 0) return maxExpectedDuration;
5245
5246 switch (e.data.u8[0]) {
5247 case ANDROID_CONTROL_AE_MODE_OFF:
5248 find_camera_metadata_ro_entry(request,
5249 ANDROID_SENSOR_EXPOSURE_TIME,
5250 &e);
5251 if (e.count > 0) {
5252 maxExpectedDuration = e.data.i64[0];
5253 }
5254 find_camera_metadata_ro_entry(request,
5255 ANDROID_SENSOR_FRAME_DURATION,
5256 &e);
5257 if (e.count > 0) {
5258 maxExpectedDuration = std::max(e.data.i64[0], maxExpectedDuration);
5259 }
5260 break;
5261 default:
5262 find_camera_metadata_ro_entry(request,
5263 ANDROID_CONTROL_AE_TARGET_FPS_RANGE,
5264 &e);
5265 if (e.count > 1) {
5266 maxExpectedDuration = 1e9 / e.data.u8[0];
5267 }
5268 break;
5269 }
5270
5271 return maxExpectedDuration;
5272 }
5273
skipHFRTargetFPSUpdate(int32_t tag,const camera_metadata_ro_entry_t & newEntry,const camera_metadata_entry_t & currentEntry)5274 bool Camera3Device::RequestThread::skipHFRTargetFPSUpdate(int32_t tag,
5275 const camera_metadata_ro_entry_t& newEntry, const camera_metadata_entry_t& currentEntry) {
5276 if (mConstrainedMode && (ANDROID_CONTROL_AE_TARGET_FPS_RANGE == tag) &&
5277 (newEntry.count == currentEntry.count) && (currentEntry.count == 2) &&
5278 (currentEntry.data.i32[1] == newEntry.data.i32[1])) {
5279 return true;
5280 }
5281
5282 return false;
5283 }
5284
updateNextRequest(NextRequest & nextRequest)5285 void Camera3Device::RequestThread::updateNextRequest(NextRequest& nextRequest) {
5286 // Update the latest request sent to HAL
5287 if (nextRequest.halRequest.settings != NULL) { // Don't update if they were unchanged
5288 Mutex::Autolock al(mLatestRequestMutex);
5289
5290 camera_metadata_t* cloned = clone_camera_metadata(nextRequest.halRequest.settings);
5291 mLatestRequest.acquire(cloned);
5292
5293 mLatestPhysicalRequest.clear();
5294 for (uint32_t i = 0; i < nextRequest.halRequest.num_physcam_settings; i++) {
5295 cloned = clone_camera_metadata(nextRequest.halRequest.physcam_settings[i]);
5296 mLatestPhysicalRequest.emplace(nextRequest.halRequest.physcam_id[i],
5297 CameraMetadata(cloned));
5298 }
5299
5300 sp<Camera3Device> parent = mParent.promote();
5301 if (parent != NULL) {
5302 parent->monitorMetadata(TagMonitor::REQUEST,
5303 nextRequest.halRequest.frame_number,
5304 0, mLatestRequest, mLatestPhysicalRequest);
5305 }
5306 }
5307
5308 if (nextRequest.halRequest.settings != NULL) {
5309 nextRequest.captureRequest->mSettingsList.begin()->metadata.unlock(
5310 nextRequest.halRequest.settings);
5311 }
5312
5313 cleanupPhysicalSettings(nextRequest.captureRequest, &nextRequest.halRequest);
5314 }
5315
updateSessionParameters(const CameraMetadata & settings)5316 bool Camera3Device::RequestThread::updateSessionParameters(const CameraMetadata& settings) {
5317 ATRACE_CALL();
5318 bool updatesDetected = false;
5319
5320 CameraMetadata updatedParams(mLatestSessionParams);
5321 for (auto tag : mSessionParamKeys) {
5322 camera_metadata_ro_entry entry = settings.find(tag);
5323 camera_metadata_entry lastEntry = updatedParams.find(tag);
5324
5325 if (entry.count > 0) {
5326 bool isDifferent = false;
5327 if (lastEntry.count > 0) {
5328 // Have a last value, compare to see if changed
5329 if (lastEntry.type == entry.type &&
5330 lastEntry.count == entry.count) {
5331 // Same type and count, compare values
5332 size_t bytesPerValue = camera_metadata_type_size[lastEntry.type];
5333 size_t entryBytes = bytesPerValue * lastEntry.count;
5334 int cmp = memcmp(entry.data.u8, lastEntry.data.u8, entryBytes);
5335 if (cmp != 0) {
5336 isDifferent = true;
5337 }
5338 } else {
5339 // Count or type has changed
5340 isDifferent = true;
5341 }
5342 } else {
5343 // No last entry, so always consider to be different
5344 isDifferent = true;
5345 }
5346
5347 if (isDifferent) {
5348 ALOGV("%s: Session parameter tag id %d changed", __FUNCTION__, tag);
5349 if (!skipHFRTargetFPSUpdate(tag, entry, lastEntry)) {
5350 updatesDetected = true;
5351 }
5352 updatedParams.update(entry);
5353 }
5354 } else if (lastEntry.count > 0) {
5355 // Value has been removed
5356 ALOGV("%s: Session parameter tag id %d removed", __FUNCTION__, tag);
5357 updatedParams.erase(tag);
5358 updatesDetected = true;
5359 }
5360 }
5361
5362 bool reconfigureRequired;
5363 if (updatesDetected) {
5364 reconfigureRequired = mInterface->isReconfigurationRequired(mLatestSessionParams,
5365 updatedParams);
5366 mLatestSessionParams = updatedParams;
5367 } else {
5368 reconfigureRequired = false;
5369 }
5370
5371 return reconfigureRequired;
5372 }
5373
threadLoop()5374 bool Camera3Device::RequestThread::threadLoop() {
5375 ATRACE_CALL();
5376 status_t res;
5377 // Any function called from threadLoop() must not hold mInterfaceLock since
5378 // it could lead to deadlocks (disconnect() -> hold mInterfaceMutex -> wait for request thread
5379 // to finish -> request thread waits on mInterfaceMutex) http://b/143513518
5380
5381 // Handle paused state.
5382 if (waitIfPaused()) {
5383 return true;
5384 }
5385
5386 // Wait for the next batch of requests.
5387 waitForNextRequestBatch();
5388 if (mNextRequests.size() == 0) {
5389 return true;
5390 }
5391
5392 // Get the latest request ID, if any
5393 int latestRequestId;
5394 camera_metadata_entry_t requestIdEntry = mNextRequests[mNextRequests.size() - 1].
5395 captureRequest->mSettingsList.begin()->metadata.find(ANDROID_REQUEST_ID);
5396 if (requestIdEntry.count > 0) {
5397 latestRequestId = requestIdEntry.data.i32[0];
5398 } else {
5399 ALOGW("%s: Did not have android.request.id set in the request.", __FUNCTION__);
5400 latestRequestId = NAME_NOT_FOUND;
5401 }
5402
5403 // 'mNextRequests' will at this point contain either a set of HFR batched requests
5404 // or a single request from streaming or burst. In either case the first element
5405 // should contain the latest camera settings that we need to check for any session
5406 // parameter updates.
5407 if (updateSessionParameters(mNextRequests[0].captureRequest->mSettingsList.begin()->metadata)) {
5408 res = OK;
5409
5410 //Input stream buffers are already acquired at this point so an input stream
5411 //will not be able to move to idle state unless we force it.
5412 if (mNextRequests[0].captureRequest->mInputStream != nullptr) {
5413 res = mNextRequests[0].captureRequest->mInputStream->forceToIdle();
5414 if (res != OK) {
5415 ALOGE("%s: Failed to force idle input stream: %d", __FUNCTION__, res);
5416 cleanUpFailedRequests(/*sendRequestError*/ false);
5417 return false;
5418 }
5419 }
5420
5421 if (res == OK) {
5422 sp<StatusTracker> statusTracker = mStatusTracker.promote();
5423 if (statusTracker != 0) {
5424 sp<Camera3Device> parent = mParent.promote();
5425 if (parent != nullptr) {
5426 parent->pauseStateNotify(true);
5427 }
5428
5429 statusTracker->markComponentIdle(mStatusId, Fence::NO_FENCE);
5430
5431 if (parent != nullptr) {
5432 mReconfigured |= parent->reconfigureCamera(mLatestSessionParams);
5433 }
5434
5435 statusTracker->markComponentActive(mStatusId);
5436 setPaused(false);
5437 }
5438
5439 if (mNextRequests[0].captureRequest->mInputStream != nullptr) {
5440 mNextRequests[0].captureRequest->mInputStream->restoreConfiguredState();
5441 if (res != OK) {
5442 ALOGE("%s: Failed to restore configured input stream: %d", __FUNCTION__, res);
5443 cleanUpFailedRequests(/*sendRequestError*/ false);
5444 return false;
5445 }
5446 }
5447 }
5448 }
5449
5450 // Prepare a batch of HAL requests and output buffers.
5451 res = prepareHalRequests();
5452 if (res == TIMED_OUT) {
5453 // Not a fatal error if getting output buffers time out.
5454 cleanUpFailedRequests(/*sendRequestError*/ true);
5455 // Check if any stream is abandoned.
5456 checkAndStopRepeatingRequest();
5457 return true;
5458 } else if (res != OK) {
5459 cleanUpFailedRequests(/*sendRequestError*/ false);
5460 return false;
5461 }
5462
5463 // Inform waitUntilRequestProcessed thread of a new request ID
5464 {
5465 Mutex::Autolock al(mLatestRequestMutex);
5466
5467 mLatestRequestId = latestRequestId;
5468 mLatestRequestSignal.signal();
5469 }
5470
5471 // Submit a batch of requests to HAL.
5472 // Use flush lock only when submitting multilple requests in a batch.
5473 // TODO: The problem with flush lock is flush() will be blocked by process_capture_request()
5474 // which may take a long time to finish so synchronizing flush() and
5475 // process_capture_request() defeats the purpose of cancelling requests ASAP with flush().
5476 // For now, only synchronize for high speed recording and we should figure something out for
5477 // removing the synchronization.
5478 bool useFlushLock = mNextRequests.size() > 1;
5479
5480 if (useFlushLock) {
5481 mFlushLock.lock();
5482 }
5483
5484 ALOGVV("%s: %d: submitting %zu requests in a batch.", __FUNCTION__, __LINE__,
5485 mNextRequests.size());
5486
5487 sp<Camera3Device> parent = mParent.promote();
5488 if (parent != nullptr) {
5489 parent->mRequestBufferSM.onSubmittingRequest();
5490 }
5491
5492 bool submitRequestSuccess = false;
5493 nsecs_t tRequestStart = systemTime(SYSTEM_TIME_MONOTONIC);
5494 submitRequestSuccess = sendRequestsBatch();
5495
5496 nsecs_t tRequestEnd = systemTime(SYSTEM_TIME_MONOTONIC);
5497 mRequestLatency.add(tRequestStart, tRequestEnd);
5498
5499 if (useFlushLock) {
5500 mFlushLock.unlock();
5501 }
5502
5503 // Unset as current request
5504 {
5505 Mutex::Autolock l(mRequestLock);
5506 mNextRequests.clear();
5507 }
5508
5509 return submitRequestSuccess;
5510 }
5511
prepareHalRequests()5512 status_t Camera3Device::RequestThread::prepareHalRequests() {
5513 ATRACE_CALL();
5514
5515 bool batchedRequest = mNextRequests[0].captureRequest->mBatchSize > 1;
5516 for (size_t i = 0; i < mNextRequests.size(); i++) {
5517 auto& nextRequest = mNextRequests.editItemAt(i);
5518 sp<CaptureRequest> captureRequest = nextRequest.captureRequest;
5519 camera3_capture_request_t* halRequest = &nextRequest.halRequest;
5520 Vector<camera3_stream_buffer_t>* outputBuffers = &nextRequest.outputBuffers;
5521
5522 // Prepare a request to HAL
5523 halRequest->frame_number = captureRequest->mResultExtras.frameNumber;
5524
5525 // Insert any queued triggers (before metadata is locked)
5526 status_t res = insertTriggers(captureRequest);
5527 if (res < 0) {
5528 SET_ERR("RequestThread: Unable to insert triggers "
5529 "(capture request %d, HAL device: %s (%d)",
5530 halRequest->frame_number, strerror(-res), res);
5531 return INVALID_OPERATION;
5532 }
5533
5534 int triggerCount = res;
5535 bool triggersMixedIn = (triggerCount > 0 || mPrevTriggers > 0);
5536 mPrevTriggers = triggerCount;
5537
5538 // If the request is the same as last, or we had triggers last time
5539 bool newRequest = (mPrevRequest != captureRequest || triggersMixedIn) &&
5540 // Request settings are all the same within one batch, so only treat the first
5541 // request in a batch as new
5542 !(batchedRequest && i > 0);
5543 if (newRequest) {
5544 /**
5545 * HAL workaround:
5546 * Insert a dummy trigger ID if a trigger is set but no trigger ID is
5547 */
5548 res = addDummyTriggerIds(captureRequest);
5549 if (res != OK) {
5550 SET_ERR("RequestThread: Unable to insert dummy trigger IDs "
5551 "(capture request %d, HAL device: %s (%d)",
5552 halRequest->frame_number, strerror(-res), res);
5553 return INVALID_OPERATION;
5554 }
5555
5556 {
5557 // Correct metadata regions for distortion correction if enabled
5558 sp<Camera3Device> parent = mParent.promote();
5559 if (parent != nullptr) {
5560 List<PhysicalCameraSettings>::iterator it;
5561 for (it = captureRequest->mSettingsList.begin();
5562 it != captureRequest->mSettingsList.end(); it++) {
5563 if (parent->mDistortionMappers.find(it->cameraId) ==
5564 parent->mDistortionMappers.end()) {
5565 continue;
5566 }
5567 res = parent->mDistortionMappers[it->cameraId].correctCaptureRequest(
5568 &(it->metadata));
5569 if (res != OK) {
5570 SET_ERR("RequestThread: Unable to correct capture requests "
5571 "for lens distortion for request %d: %s (%d)",
5572 halRequest->frame_number, strerror(-res), res);
5573 return INVALID_OPERATION;
5574 }
5575 }
5576 }
5577 }
5578
5579 /**
5580 * The request should be presorted so accesses in HAL
5581 * are O(logn). Sidenote, sorting a sorted metadata is nop.
5582 */
5583 captureRequest->mSettingsList.begin()->metadata.sort();
5584 halRequest->settings = captureRequest->mSettingsList.begin()->metadata.getAndLock();
5585 mPrevRequest = captureRequest;
5586 ALOGVV("%s: Request settings are NEW", __FUNCTION__);
5587
5588 IF_ALOGV() {
5589 camera_metadata_ro_entry_t e = camera_metadata_ro_entry_t();
5590 find_camera_metadata_ro_entry(
5591 halRequest->settings,
5592 ANDROID_CONTROL_AF_TRIGGER,
5593 &e
5594 );
5595 if (e.count > 0) {
5596 ALOGV("%s: Request (frame num %d) had AF trigger 0x%x",
5597 __FUNCTION__,
5598 halRequest->frame_number,
5599 e.data.u8[0]);
5600 }
5601 }
5602 } else {
5603 // leave request.settings NULL to indicate 'reuse latest given'
5604 ALOGVV("%s: Request settings are REUSED",
5605 __FUNCTION__);
5606 }
5607
5608 if (captureRequest->mSettingsList.size() > 1) {
5609 halRequest->num_physcam_settings = captureRequest->mSettingsList.size() - 1;
5610 halRequest->physcam_id = new const char* [halRequest->num_physcam_settings];
5611 if (newRequest) {
5612 halRequest->physcam_settings =
5613 new const camera_metadata* [halRequest->num_physcam_settings];
5614 } else {
5615 halRequest->physcam_settings = nullptr;
5616 }
5617 auto it = ++captureRequest->mSettingsList.begin();
5618 size_t i = 0;
5619 for (; it != captureRequest->mSettingsList.end(); it++, i++) {
5620 halRequest->physcam_id[i] = it->cameraId.c_str();
5621 if (newRequest) {
5622 it->metadata.sort();
5623 halRequest->physcam_settings[i] = it->metadata.getAndLock();
5624 }
5625 }
5626 }
5627
5628 uint32_t totalNumBuffers = 0;
5629
5630 // Fill in buffers
5631 if (captureRequest->mInputStream != NULL) {
5632 halRequest->input_buffer = &captureRequest->mInputBuffer;
5633 totalNumBuffers += 1;
5634 } else {
5635 halRequest->input_buffer = NULL;
5636 }
5637
5638 outputBuffers->insertAt(camera3_stream_buffer_t(), 0,
5639 captureRequest->mOutputStreams.size());
5640 halRequest->output_buffers = outputBuffers->array();
5641 std::set<String8> requestedPhysicalCameras;
5642
5643 sp<Camera3Device> parent = mParent.promote();
5644 if (parent == NULL) {
5645 // Should not happen, and nowhere to send errors to, so just log it
5646 CLOGE("RequestThread: Parent is gone");
5647 return INVALID_OPERATION;
5648 }
5649 nsecs_t waitDuration = kBaseGetBufferWait + parent->getExpectedInFlightDuration();
5650
5651 SurfaceMap uniqueSurfaceIdMap;
5652 for (size_t j = 0; j < captureRequest->mOutputStreams.size(); j++) {
5653 sp<Camera3OutputStreamInterface> outputStream =
5654 captureRequest->mOutputStreams.editItemAt(j);
5655 int streamId = outputStream->getId();
5656
5657 // Prepare video buffers for high speed recording on the first video request.
5658 if (mPrepareVideoStream && outputStream->isVideoStream()) {
5659 // Only try to prepare video stream on the first video request.
5660 mPrepareVideoStream = false;
5661
5662 res = outputStream->startPrepare(Camera3StreamInterface::ALLOCATE_PIPELINE_MAX,
5663 false /*blockRequest*/);
5664 while (res == NOT_ENOUGH_DATA) {
5665 res = outputStream->prepareNextBuffer();
5666 }
5667 if (res != OK) {
5668 ALOGW("%s: Preparing video buffers for high speed failed: %s (%d)",
5669 __FUNCTION__, strerror(-res), res);
5670 outputStream->cancelPrepare();
5671 }
5672 }
5673
5674 std::vector<size_t> uniqueSurfaceIds;
5675 res = outputStream->getUniqueSurfaceIds(
5676 captureRequest->mOutputSurfaces[streamId],
5677 &uniqueSurfaceIds);
5678 // INVALID_OPERATION is normal output for streams not supporting surfaceIds
5679 if (res != OK && res != INVALID_OPERATION) {
5680 ALOGE("%s: failed to query stream %d unique surface IDs",
5681 __FUNCTION__, streamId);
5682 return res;
5683 }
5684 if (res == OK) {
5685 uniqueSurfaceIdMap.insert({streamId, std::move(uniqueSurfaceIds)});
5686 }
5687
5688 if (mUseHalBufManager) {
5689 if (outputStream->isAbandoned()) {
5690 ALOGV("%s: stream %d is abandoned, skipping request", __FUNCTION__, streamId);
5691 return TIMED_OUT;
5692 }
5693 // HAL will request buffer through requestStreamBuffer API
5694 camera3_stream_buffer_t& buffer = outputBuffers->editItemAt(j);
5695 buffer.stream = outputStream->asHalStream();
5696 buffer.buffer = nullptr;
5697 buffer.status = CAMERA3_BUFFER_STATUS_OK;
5698 buffer.acquire_fence = -1;
5699 buffer.release_fence = -1;
5700 } else {
5701 res = outputStream->getBuffer(&outputBuffers->editItemAt(j),
5702 waitDuration,
5703 captureRequest->mOutputSurfaces[streamId]);
5704 if (res != OK) {
5705 // Can't get output buffer from gralloc queue - this could be due to
5706 // abandoned queue or other consumer misbehavior, so not a fatal
5707 // error
5708 ALOGV("RequestThread: Can't get output buffer, skipping request:"
5709 " %s (%d)", strerror(-res), res);
5710
5711 return TIMED_OUT;
5712 }
5713 }
5714
5715 {
5716 sp<Camera3Device> parent = mParent.promote();
5717 if (parent != nullptr) {
5718 const String8& streamCameraId = outputStream->getPhysicalCameraId();
5719 for (const auto& settings : captureRequest->mSettingsList) {
5720 if ((streamCameraId.isEmpty() &&
5721 parent->getId() == settings.cameraId.c_str()) ||
5722 streamCameraId == settings.cameraId.c_str()) {
5723 outputStream->fireBufferRequestForFrameNumber(
5724 captureRequest->mResultExtras.frameNumber,
5725 settings.metadata);
5726 }
5727 }
5728 }
5729 }
5730
5731 String8 physicalCameraId = outputStream->getPhysicalCameraId();
5732
5733 if (!physicalCameraId.isEmpty()) {
5734 // Physical stream isn't supported for input request.
5735 if (halRequest->input_buffer) {
5736 CLOGE("Physical stream is not supported for input request");
5737 return INVALID_OPERATION;
5738 }
5739 requestedPhysicalCameras.insert(physicalCameraId);
5740 }
5741 halRequest->num_output_buffers++;
5742 }
5743 totalNumBuffers += halRequest->num_output_buffers;
5744
5745 // Log request in the in-flight queue
5746 // If this request list is for constrained high speed recording (not
5747 // preview), and the current request is not the last one in the batch,
5748 // do not send callback to the app.
5749 bool hasCallback = true;
5750 if (batchedRequest && i != mNextRequests.size()-1) {
5751 hasCallback = false;
5752 }
5753 bool isStillCapture = false;
5754 bool isZslCapture = false;
5755 if (!mNextRequests[0].captureRequest->mSettingsList.begin()->metadata.isEmpty()) {
5756 camera_metadata_ro_entry_t e = camera_metadata_ro_entry_t();
5757 find_camera_metadata_ro_entry(halRequest->settings, ANDROID_CONTROL_CAPTURE_INTENT, &e);
5758 if ((e.count > 0) && (e.data.u8[0] == ANDROID_CONTROL_CAPTURE_INTENT_STILL_CAPTURE)) {
5759 isStillCapture = true;
5760 ATRACE_ASYNC_BEGIN("still capture", mNextRequests[i].halRequest.frame_number);
5761 }
5762
5763 find_camera_metadata_ro_entry(halRequest->settings, ANDROID_CONTROL_ENABLE_ZSL, &e);
5764 if ((e.count > 0) && (e.data.u8[0] == ANDROID_CONTROL_ENABLE_ZSL_TRUE)) {
5765 isZslCapture = true;
5766 }
5767 }
5768 res = parent->registerInFlight(halRequest->frame_number,
5769 totalNumBuffers, captureRequest->mResultExtras,
5770 /*hasInput*/halRequest->input_buffer != NULL,
5771 hasCallback,
5772 calculateMaxExpectedDuration(halRequest->settings),
5773 requestedPhysicalCameras, isStillCapture, isZslCapture,
5774 (mUseHalBufManager) ? uniqueSurfaceIdMap :
5775 SurfaceMap{});
5776 ALOGVV("%s: registered in flight requestId = %" PRId32 ", frameNumber = %" PRId64
5777 ", burstId = %" PRId32 ".",
5778 __FUNCTION__,
5779 captureRequest->mResultExtras.requestId, captureRequest->mResultExtras.frameNumber,
5780 captureRequest->mResultExtras.burstId);
5781 if (res != OK) {
5782 SET_ERR("RequestThread: Unable to register new in-flight request:"
5783 " %s (%d)", strerror(-res), res);
5784 return INVALID_OPERATION;
5785 }
5786 }
5787
5788 return OK;
5789 }
5790
getLatestRequest() const5791 CameraMetadata Camera3Device::RequestThread::getLatestRequest() const {
5792 ATRACE_CALL();
5793 Mutex::Autolock al(mLatestRequestMutex);
5794
5795 ALOGV("RequestThread::%s", __FUNCTION__);
5796
5797 return mLatestRequest;
5798 }
5799
isStreamPending(sp<Camera3StreamInterface> & stream)5800 bool Camera3Device::RequestThread::isStreamPending(
5801 sp<Camera3StreamInterface>& stream) {
5802 ATRACE_CALL();
5803 Mutex::Autolock l(mRequestLock);
5804
5805 for (const auto& nextRequest : mNextRequests) {
5806 if (!nextRequest.submitted) {
5807 for (const auto& s : nextRequest.captureRequest->mOutputStreams) {
5808 if (stream == s) return true;
5809 }
5810 if (stream == nextRequest.captureRequest->mInputStream) return true;
5811 }
5812 }
5813
5814 for (const auto& request : mRequestQueue) {
5815 for (const auto& s : request->mOutputStreams) {
5816 if (stream == s) return true;
5817 }
5818 if (stream == request->mInputStream) return true;
5819 }
5820
5821 for (const auto& request : mRepeatingRequests) {
5822 for (const auto& s : request->mOutputStreams) {
5823 if (stream == s) return true;
5824 }
5825 if (stream == request->mInputStream) return true;
5826 }
5827
5828 return false;
5829 }
5830
isOutputSurfacePending(int streamId,size_t surfaceId)5831 bool Camera3Device::RequestThread::isOutputSurfacePending(int streamId, size_t surfaceId) {
5832 ATRACE_CALL();
5833 Mutex::Autolock l(mRequestLock);
5834
5835 for (const auto& nextRequest : mNextRequests) {
5836 for (const auto& s : nextRequest.captureRequest->mOutputSurfaces) {
5837 if (s.first == streamId) {
5838 const auto &it = std::find(s.second.begin(), s.second.end(), surfaceId);
5839 if (it != s.second.end()) {
5840 return true;
5841 }
5842 }
5843 }
5844 }
5845
5846 for (const auto& request : mRequestQueue) {
5847 for (const auto& s : request->mOutputSurfaces) {
5848 if (s.first == streamId) {
5849 const auto &it = std::find(s.second.begin(), s.second.end(), surfaceId);
5850 if (it != s.second.end()) {
5851 return true;
5852 }
5853 }
5854 }
5855 }
5856
5857 for (const auto& request : mRepeatingRequests) {
5858 for (const auto& s : request->mOutputSurfaces) {
5859 if (s.first == streamId) {
5860 const auto &it = std::find(s.second.begin(), s.second.end(), surfaceId);
5861 if (it != s.second.end()) {
5862 return true;
5863 }
5864 }
5865 }
5866 }
5867
5868 return false;
5869 }
5870
signalPipelineDrain(const std::vector<int> & streamIds)5871 void Camera3Device::RequestThread::signalPipelineDrain(const std::vector<int>& streamIds) {
5872 if (!mUseHalBufManager) {
5873 ALOGE("%s called for camera device not supporting HAL buffer management", __FUNCTION__);
5874 return;
5875 }
5876
5877 Mutex::Autolock pl(mPauseLock);
5878 if (mPaused) {
5879 mInterface->signalPipelineDrain(streamIds);
5880 return;
5881 }
5882 // If request thread is still busy, wait until paused then notify HAL
5883 mNotifyPipelineDrain = true;
5884 mStreamIdsToBeDrained = streamIds;
5885 }
5886
getExpectedInFlightDuration()5887 nsecs_t Camera3Device::getExpectedInFlightDuration() {
5888 ATRACE_CALL();
5889 Mutex::Autolock al(mInFlightLock);
5890 return mExpectedInflightDuration > kMinInflightDuration ?
5891 mExpectedInflightDuration : kMinInflightDuration;
5892 }
5893
cleanupPhysicalSettings(sp<CaptureRequest> request,camera3_capture_request_t * halRequest)5894 void Camera3Device::RequestThread::cleanupPhysicalSettings(sp<CaptureRequest> request,
5895 camera3_capture_request_t *halRequest) {
5896 if ((request == nullptr) || (halRequest == nullptr)) {
5897 ALOGE("%s: Invalid request!", __FUNCTION__);
5898 return;
5899 }
5900
5901 if (halRequest->num_physcam_settings > 0) {
5902 if (halRequest->physcam_id != nullptr) {
5903 delete [] halRequest->physcam_id;
5904 halRequest->physcam_id = nullptr;
5905 }
5906 if (halRequest->physcam_settings != nullptr) {
5907 auto it = ++(request->mSettingsList.begin());
5908 size_t i = 0;
5909 for (; it != request->mSettingsList.end(); it++, i++) {
5910 it->metadata.unlock(halRequest->physcam_settings[i]);
5911 }
5912 delete [] halRequest->physcam_settings;
5913 halRequest->physcam_settings = nullptr;
5914 }
5915 }
5916 }
5917
cleanUpFailedRequests(bool sendRequestError)5918 void Camera3Device::RequestThread::cleanUpFailedRequests(bool sendRequestError) {
5919 if (mNextRequests.empty()) {
5920 return;
5921 }
5922
5923 for (auto& nextRequest : mNextRequests) {
5924 // Skip the ones that have been submitted successfully.
5925 if (nextRequest.submitted) {
5926 continue;
5927 }
5928
5929 sp<CaptureRequest> captureRequest = nextRequest.captureRequest;
5930 camera3_capture_request_t* halRequest = &nextRequest.halRequest;
5931 Vector<camera3_stream_buffer_t>* outputBuffers = &nextRequest.outputBuffers;
5932
5933 if (halRequest->settings != NULL) {
5934 captureRequest->mSettingsList.begin()->metadata.unlock(halRequest->settings);
5935 }
5936
5937 cleanupPhysicalSettings(captureRequest, halRequest);
5938
5939 if (captureRequest->mInputStream != NULL) {
5940 captureRequest->mInputBuffer.status = CAMERA3_BUFFER_STATUS_ERROR;
5941 captureRequest->mInputStream->returnInputBuffer(captureRequest->mInputBuffer);
5942 }
5943
5944 // No output buffer can be returned when using HAL buffer manager
5945 if (!mUseHalBufManager) {
5946 for (size_t i = 0; i < halRequest->num_output_buffers; i++) {
5947 //Buffers that failed processing could still have
5948 //valid acquire fence.
5949 int acquireFence = (*outputBuffers)[i].acquire_fence;
5950 if (0 <= acquireFence) {
5951 close(acquireFence);
5952 outputBuffers->editItemAt(i).acquire_fence = -1;
5953 }
5954 outputBuffers->editItemAt(i).status = CAMERA3_BUFFER_STATUS_ERROR;
5955 captureRequest->mOutputStreams.editItemAt(i)->returnBuffer((*outputBuffers)[i], 0,
5956 /*timestampIncreasing*/true, std::vector<size_t> (),
5957 captureRequest->mResultExtras.frameNumber);
5958 }
5959 }
5960
5961 if (sendRequestError) {
5962 Mutex::Autolock l(mRequestLock);
5963 sp<NotificationListener> listener = mListener.promote();
5964 if (listener != NULL) {
5965 listener->notifyError(
5966 hardware::camera2::ICameraDeviceCallbacks::ERROR_CAMERA_REQUEST,
5967 captureRequest->mResultExtras);
5968 }
5969 }
5970
5971 // Remove yet-to-be submitted inflight request from inflightMap
5972 {
5973 sp<Camera3Device> parent = mParent.promote();
5974 if (parent != NULL) {
5975 Mutex::Autolock l(parent->mInFlightLock);
5976 ssize_t idx = parent->mInFlightMap.indexOfKey(captureRequest->mResultExtras.frameNumber);
5977 if (idx >= 0) {
5978 ALOGV("%s: Remove inflight request from queue: frameNumber %" PRId64,
5979 __FUNCTION__, captureRequest->mResultExtras.frameNumber);
5980 parent->removeInFlightMapEntryLocked(idx);
5981 }
5982 }
5983 }
5984 }
5985
5986 Mutex::Autolock l(mRequestLock);
5987 mNextRequests.clear();
5988 }
5989
waitForNextRequestBatch()5990 void Camera3Device::RequestThread::waitForNextRequestBatch() {
5991 ATRACE_CALL();
5992 // Optimized a bit for the simple steady-state case (single repeating
5993 // request), to avoid putting that request in the queue temporarily.
5994 Mutex::Autolock l(mRequestLock);
5995
5996 assert(mNextRequests.empty());
5997
5998 NextRequest nextRequest;
5999 nextRequest.captureRequest = waitForNextRequestLocked();
6000 if (nextRequest.captureRequest == nullptr) {
6001 return;
6002 }
6003
6004 nextRequest.halRequest = camera3_capture_request_t();
6005 nextRequest.submitted = false;
6006 mNextRequests.add(nextRequest);
6007
6008 // Wait for additional requests
6009 const size_t batchSize = nextRequest.captureRequest->mBatchSize;
6010
6011 for (size_t i = 1; i < batchSize; i++) {
6012 NextRequest additionalRequest;
6013 additionalRequest.captureRequest = waitForNextRequestLocked();
6014 if (additionalRequest.captureRequest == nullptr) {
6015 break;
6016 }
6017
6018 additionalRequest.halRequest = camera3_capture_request_t();
6019 additionalRequest.submitted = false;
6020 mNextRequests.add(additionalRequest);
6021 }
6022
6023 if (mNextRequests.size() < batchSize) {
6024 ALOGE("RequestThread: only get %zu out of %zu requests. Skipping requests.",
6025 mNextRequests.size(), batchSize);
6026 cleanUpFailedRequests(/*sendRequestError*/true);
6027 }
6028
6029 return;
6030 }
6031
6032 sp<Camera3Device::CaptureRequest>
waitForNextRequestLocked()6033 Camera3Device::RequestThread::waitForNextRequestLocked() {
6034 status_t res;
6035 sp<CaptureRequest> nextRequest;
6036
6037 while (mRequestQueue.empty()) {
6038 if (!mRepeatingRequests.empty()) {
6039 // Always atomically enqueue all requests in a repeating request
6040 // list. Guarantees a complete in-sequence set of captures to
6041 // application.
6042 const RequestList &requests = mRepeatingRequests;
6043 RequestList::const_iterator firstRequest =
6044 requests.begin();
6045 nextRequest = *firstRequest;
6046 mRequestQueue.insert(mRequestQueue.end(),
6047 ++firstRequest,
6048 requests.end());
6049 // No need to wait any longer
6050
6051 mRepeatingLastFrameNumber = mFrameNumber + requests.size() - 1;
6052
6053 break;
6054 }
6055
6056 res = mRequestSignal.waitRelative(mRequestLock, kRequestTimeout);
6057
6058 if ((mRequestQueue.empty() && mRepeatingRequests.empty()) ||
6059 exitPending()) {
6060 Mutex::Autolock pl(mPauseLock);
6061 if (mPaused == false) {
6062 ALOGV("%s: RequestThread: Going idle", __FUNCTION__);
6063 mPaused = true;
6064 if (mNotifyPipelineDrain) {
6065 mInterface->signalPipelineDrain(mStreamIdsToBeDrained);
6066 mNotifyPipelineDrain = false;
6067 mStreamIdsToBeDrained.clear();
6068 }
6069 // Let the tracker know
6070 sp<StatusTracker> statusTracker = mStatusTracker.promote();
6071 if (statusTracker != 0) {
6072 statusTracker->markComponentIdle(mStatusId, Fence::NO_FENCE);
6073 }
6074 sp<Camera3Device> parent = mParent.promote();
6075 if (parent != nullptr) {
6076 parent->mRequestBufferSM.onRequestThreadPaused();
6077 }
6078 }
6079 // Stop waiting for now and let thread management happen
6080 return NULL;
6081 }
6082 }
6083
6084 if (nextRequest == NULL) {
6085 // Don't have a repeating request already in hand, so queue
6086 // must have an entry now.
6087 RequestList::iterator firstRequest =
6088 mRequestQueue.begin();
6089 nextRequest = *firstRequest;
6090 mRequestQueue.erase(firstRequest);
6091 if (mRequestQueue.empty() && !nextRequest->mRepeating) {
6092 sp<NotificationListener> listener = mListener.promote();
6093 if (listener != NULL) {
6094 listener->notifyRequestQueueEmpty();
6095 }
6096 }
6097 }
6098
6099 // In case we've been unpaused by setPaused clearing mDoPause, need to
6100 // update internal pause state (capture/setRepeatingRequest unpause
6101 // directly).
6102 Mutex::Autolock pl(mPauseLock);
6103 if (mPaused) {
6104 ALOGV("%s: RequestThread: Unpaused", __FUNCTION__);
6105 sp<StatusTracker> statusTracker = mStatusTracker.promote();
6106 if (statusTracker != 0) {
6107 statusTracker->markComponentActive(mStatusId);
6108 }
6109 }
6110 mPaused = false;
6111
6112 // Check if we've reconfigured since last time, and reset the preview
6113 // request if so. Can't use 'NULL request == repeat' across configure calls.
6114 if (mReconfigured) {
6115 mPrevRequest.clear();
6116 mReconfigured = false;
6117 }
6118
6119 if (nextRequest != NULL) {
6120 nextRequest->mResultExtras.frameNumber = mFrameNumber++;
6121 nextRequest->mResultExtras.afTriggerId = mCurrentAfTriggerId;
6122 nextRequest->mResultExtras.precaptureTriggerId = mCurrentPreCaptureTriggerId;
6123
6124 // Since RequestThread::clear() removes buffers from the input stream,
6125 // get the right buffer here before unlocking mRequestLock
6126 if (nextRequest->mInputStream != NULL) {
6127 res = nextRequest->mInputStream->getInputBuffer(&nextRequest->mInputBuffer);
6128 if (res != OK) {
6129 // Can't get input buffer from gralloc queue - this could be due to
6130 // disconnected queue or other producer misbehavior, so not a fatal
6131 // error
6132 ALOGE("%s: Can't get input buffer, skipping request:"
6133 " %s (%d)", __FUNCTION__, strerror(-res), res);
6134
6135 sp<NotificationListener> listener = mListener.promote();
6136 if (listener != NULL) {
6137 listener->notifyError(
6138 hardware::camera2::ICameraDeviceCallbacks::ERROR_CAMERA_REQUEST,
6139 nextRequest->mResultExtras);
6140 }
6141 return NULL;
6142 }
6143 }
6144 }
6145
6146 return nextRequest;
6147 }
6148
waitIfPaused()6149 bool Camera3Device::RequestThread::waitIfPaused() {
6150 ATRACE_CALL();
6151 status_t res;
6152 Mutex::Autolock l(mPauseLock);
6153 while (mDoPause) {
6154 if (mPaused == false) {
6155 mPaused = true;
6156 ALOGV("%s: RequestThread: Paused", __FUNCTION__);
6157 if (mNotifyPipelineDrain) {
6158 mInterface->signalPipelineDrain(mStreamIdsToBeDrained);
6159 mNotifyPipelineDrain = false;
6160 mStreamIdsToBeDrained.clear();
6161 }
6162 // Let the tracker know
6163 sp<StatusTracker> statusTracker = mStatusTracker.promote();
6164 if (statusTracker != 0) {
6165 statusTracker->markComponentIdle(mStatusId, Fence::NO_FENCE);
6166 }
6167 sp<Camera3Device> parent = mParent.promote();
6168 if (parent != nullptr) {
6169 parent->mRequestBufferSM.onRequestThreadPaused();
6170 }
6171 }
6172
6173 res = mDoPauseSignal.waitRelative(mPauseLock, kRequestTimeout);
6174 if (res == TIMED_OUT || exitPending()) {
6175 return true;
6176 }
6177 }
6178 // We don't set mPaused to false here, because waitForNextRequest needs
6179 // to further manage the paused state in case of starvation.
6180 return false;
6181 }
6182
unpauseForNewRequests()6183 void Camera3Device::RequestThread::unpauseForNewRequests() {
6184 ATRACE_CALL();
6185 // With work to do, mark thread as unpaused.
6186 // If paused by request (setPaused), don't resume, to avoid
6187 // extra signaling/waiting overhead to waitUntilPaused
6188 mRequestSignal.signal();
6189 Mutex::Autolock p(mPauseLock);
6190 if (!mDoPause) {
6191 ALOGV("%s: RequestThread: Going active", __FUNCTION__);
6192 if (mPaused) {
6193 sp<StatusTracker> statusTracker = mStatusTracker.promote();
6194 if (statusTracker != 0) {
6195 statusTracker->markComponentActive(mStatusId);
6196 }
6197 }
6198 mPaused = false;
6199 }
6200 }
6201
setErrorState(const char * fmt,...)6202 void Camera3Device::RequestThread::setErrorState(const char *fmt, ...) {
6203 sp<Camera3Device> parent = mParent.promote();
6204 if (parent != NULL) {
6205 va_list args;
6206 va_start(args, fmt);
6207
6208 parent->setErrorStateV(fmt, args);
6209
6210 va_end(args);
6211 }
6212 }
6213
insertTriggers(const sp<CaptureRequest> & request)6214 status_t Camera3Device::RequestThread::insertTriggers(
6215 const sp<CaptureRequest> &request) {
6216 ATRACE_CALL();
6217 Mutex::Autolock al(mTriggerMutex);
6218
6219 sp<Camera3Device> parent = mParent.promote();
6220 if (parent == NULL) {
6221 CLOGE("RequestThread: Parent is gone");
6222 return DEAD_OBJECT;
6223 }
6224
6225 CameraMetadata &metadata = request->mSettingsList.begin()->metadata;
6226 size_t count = mTriggerMap.size();
6227
6228 for (size_t i = 0; i < count; ++i) {
6229 RequestTrigger trigger = mTriggerMap.valueAt(i);
6230 uint32_t tag = trigger.metadataTag;
6231
6232 if (tag == ANDROID_CONTROL_AF_TRIGGER_ID || tag == ANDROID_CONTROL_AE_PRECAPTURE_ID) {
6233 bool isAeTrigger = (trigger.metadataTag == ANDROID_CONTROL_AE_PRECAPTURE_ID);
6234 uint32_t triggerId = static_cast<uint32_t>(trigger.entryValue);
6235 if (isAeTrigger) {
6236 request->mResultExtras.precaptureTriggerId = triggerId;
6237 mCurrentPreCaptureTriggerId = triggerId;
6238 } else {
6239 request->mResultExtras.afTriggerId = triggerId;
6240 mCurrentAfTriggerId = triggerId;
6241 }
6242 continue;
6243 }
6244
6245 camera_metadata_entry entry = metadata.find(tag);
6246
6247 if (entry.count > 0) {
6248 /**
6249 * Already has an entry for this trigger in the request.
6250 * Rewrite it with our requested trigger value.
6251 */
6252 RequestTrigger oldTrigger = trigger;
6253
6254 oldTrigger.entryValue = entry.data.u8[0];
6255
6256 mTriggerReplacedMap.add(tag, oldTrigger);
6257 } else {
6258 /**
6259 * More typical, no trigger entry, so we just add it
6260 */
6261 mTriggerRemovedMap.add(tag, trigger);
6262 }
6263
6264 status_t res;
6265
6266 switch (trigger.getTagType()) {
6267 case TYPE_BYTE: {
6268 uint8_t entryValue = static_cast<uint8_t>(trigger.entryValue);
6269 res = metadata.update(tag,
6270 &entryValue,
6271 /*count*/1);
6272 break;
6273 }
6274 case TYPE_INT32:
6275 res = metadata.update(tag,
6276 &trigger.entryValue,
6277 /*count*/1);
6278 break;
6279 default:
6280 ALOGE("%s: Type not supported: 0x%x",
6281 __FUNCTION__,
6282 trigger.getTagType());
6283 return INVALID_OPERATION;
6284 }
6285
6286 if (res != OK) {
6287 ALOGE("%s: Failed to update request metadata with trigger tag %s"
6288 ", value %d", __FUNCTION__, trigger.getTagName(),
6289 trigger.entryValue);
6290 return res;
6291 }
6292
6293 ALOGV("%s: Mixed in trigger %s, value %d", __FUNCTION__,
6294 trigger.getTagName(),
6295 trigger.entryValue);
6296 }
6297
6298 mTriggerMap.clear();
6299
6300 return count;
6301 }
6302
removeTriggers(const sp<CaptureRequest> & request)6303 status_t Camera3Device::RequestThread::removeTriggers(
6304 const sp<CaptureRequest> &request) {
6305 ATRACE_CALL();
6306 Mutex::Autolock al(mTriggerMutex);
6307
6308 CameraMetadata &metadata = request->mSettingsList.begin()->metadata;
6309
6310 /**
6311 * Replace all old entries with their old values.
6312 */
6313 for (size_t i = 0; i < mTriggerReplacedMap.size(); ++i) {
6314 RequestTrigger trigger = mTriggerReplacedMap.valueAt(i);
6315
6316 status_t res;
6317
6318 uint32_t tag = trigger.metadataTag;
6319 switch (trigger.getTagType()) {
6320 case TYPE_BYTE: {
6321 uint8_t entryValue = static_cast<uint8_t>(trigger.entryValue);
6322 res = metadata.update(tag,
6323 &entryValue,
6324 /*count*/1);
6325 break;
6326 }
6327 case TYPE_INT32:
6328 res = metadata.update(tag,
6329 &trigger.entryValue,
6330 /*count*/1);
6331 break;
6332 default:
6333 ALOGE("%s: Type not supported: 0x%x",
6334 __FUNCTION__,
6335 trigger.getTagType());
6336 return INVALID_OPERATION;
6337 }
6338
6339 if (res != OK) {
6340 ALOGE("%s: Failed to restore request metadata with trigger tag %s"
6341 ", trigger value %d", __FUNCTION__,
6342 trigger.getTagName(), trigger.entryValue);
6343 return res;
6344 }
6345 }
6346 mTriggerReplacedMap.clear();
6347
6348 /**
6349 * Remove all new entries.
6350 */
6351 for (size_t i = 0; i < mTriggerRemovedMap.size(); ++i) {
6352 RequestTrigger trigger = mTriggerRemovedMap.valueAt(i);
6353 status_t res = metadata.erase(trigger.metadataTag);
6354
6355 if (res != OK) {
6356 ALOGE("%s: Failed to erase metadata with trigger tag %s"
6357 ", trigger value %d", __FUNCTION__,
6358 trigger.getTagName(), trigger.entryValue);
6359 return res;
6360 }
6361 }
6362 mTriggerRemovedMap.clear();
6363
6364 return OK;
6365 }
6366
addDummyTriggerIds(const sp<CaptureRequest> & request)6367 status_t Camera3Device::RequestThread::addDummyTriggerIds(
6368 const sp<CaptureRequest> &request) {
6369 // Trigger ID 0 had special meaning in the HAL2 spec, so avoid it here
6370 static const int32_t dummyTriggerId = 1;
6371 status_t res;
6372
6373 CameraMetadata &metadata = request->mSettingsList.begin()->metadata;
6374
6375 // If AF trigger is active, insert a dummy AF trigger ID if none already
6376 // exists
6377 camera_metadata_entry afTrigger = metadata.find(ANDROID_CONTROL_AF_TRIGGER);
6378 camera_metadata_entry afId = metadata.find(ANDROID_CONTROL_AF_TRIGGER_ID);
6379 if (afTrigger.count > 0 &&
6380 afTrigger.data.u8[0] != ANDROID_CONTROL_AF_TRIGGER_IDLE &&
6381 afId.count == 0) {
6382 res = metadata.update(ANDROID_CONTROL_AF_TRIGGER_ID, &dummyTriggerId, 1);
6383 if (res != OK) return res;
6384 }
6385
6386 // If AE precapture trigger is active, insert a dummy precapture trigger ID
6387 // if none already exists
6388 camera_metadata_entry pcTrigger =
6389 metadata.find(ANDROID_CONTROL_AE_PRECAPTURE_TRIGGER);
6390 camera_metadata_entry pcId = metadata.find(ANDROID_CONTROL_AE_PRECAPTURE_ID);
6391 if (pcTrigger.count > 0 &&
6392 pcTrigger.data.u8[0] != ANDROID_CONTROL_AE_PRECAPTURE_TRIGGER_IDLE &&
6393 pcId.count == 0) {
6394 res = metadata.update(ANDROID_CONTROL_AE_PRECAPTURE_ID,
6395 &dummyTriggerId, 1);
6396 if (res != OK) return res;
6397 }
6398
6399 return OK;
6400 }
6401
6402 /**
6403 * PreparerThread inner class methods
6404 */
6405
PreparerThread()6406 Camera3Device::PreparerThread::PreparerThread() :
6407 Thread(/*canCallJava*/false), mListener(nullptr),
6408 mActive(false), mCancelNow(false), mCurrentMaxCount(0), mCurrentPrepareComplete(false) {
6409 }
6410
~PreparerThread()6411 Camera3Device::PreparerThread::~PreparerThread() {
6412 Thread::requestExitAndWait();
6413 if (mCurrentStream != nullptr) {
6414 mCurrentStream->cancelPrepare();
6415 ATRACE_ASYNC_END("stream prepare", mCurrentStream->getId());
6416 mCurrentStream.clear();
6417 }
6418 clear();
6419 }
6420
prepare(int maxCount,sp<Camera3StreamInterface> & stream)6421 status_t Camera3Device::PreparerThread::prepare(int maxCount, sp<Camera3StreamInterface>& stream) {
6422 ATRACE_CALL();
6423 status_t res;
6424
6425 Mutex::Autolock l(mLock);
6426 sp<NotificationListener> listener = mListener.promote();
6427
6428 res = stream->startPrepare(maxCount, true /*blockRequest*/);
6429 if (res == OK) {
6430 // No preparation needed, fire listener right off
6431 ALOGV("%s: Stream %d already prepared", __FUNCTION__, stream->getId());
6432 if (listener != NULL) {
6433 listener->notifyPrepared(stream->getId());
6434 }
6435 return OK;
6436 } else if (res != NOT_ENOUGH_DATA) {
6437 return res;
6438 }
6439
6440 // Need to prepare, start up thread if necessary
6441 if (!mActive) {
6442 // mRunning will change to false before the thread fully shuts down, so wait to be sure it
6443 // isn't running
6444 Thread::requestExitAndWait();
6445 res = Thread::run("C3PrepThread", PRIORITY_BACKGROUND);
6446 if (res != OK) {
6447 ALOGE("%s: Unable to start preparer stream: %d (%s)", __FUNCTION__, res, strerror(-res));
6448 if (listener != NULL) {
6449 listener->notifyPrepared(stream->getId());
6450 }
6451 return res;
6452 }
6453 mCancelNow = false;
6454 mActive = true;
6455 ALOGV("%s: Preparer stream started", __FUNCTION__);
6456 }
6457
6458 // queue up the work
6459 mPendingStreams.emplace(maxCount, stream);
6460 ALOGV("%s: Stream %d queued for preparing", __FUNCTION__, stream->getId());
6461
6462 return OK;
6463 }
6464
pause()6465 void Camera3Device::PreparerThread::pause() {
6466 ATRACE_CALL();
6467
6468 Mutex::Autolock l(mLock);
6469
6470 std::unordered_map<int, sp<camera3::Camera3StreamInterface> > pendingStreams;
6471 pendingStreams.insert(mPendingStreams.begin(), mPendingStreams.end());
6472 sp<camera3::Camera3StreamInterface> currentStream = mCurrentStream;
6473 int currentMaxCount = mCurrentMaxCount;
6474 mPendingStreams.clear();
6475 mCancelNow = true;
6476 while (mActive) {
6477 auto res = mThreadActiveSignal.waitRelative(mLock, kActiveTimeout);
6478 if (res == TIMED_OUT) {
6479 ALOGE("%s: Timed out waiting on prepare thread!", __FUNCTION__);
6480 return;
6481 } else if (res != OK) {
6482 ALOGE("%s: Encountered an error: %d waiting on prepare thread!", __FUNCTION__, res);
6483 return;
6484 }
6485 }
6486
6487 //Check whether the prepare thread was able to complete the current
6488 //stream. In case work is still pending emplace it along with the rest
6489 //of the streams in the pending list.
6490 if (currentStream != nullptr) {
6491 if (!mCurrentPrepareComplete) {
6492 pendingStreams.emplace(currentMaxCount, currentStream);
6493 }
6494 }
6495
6496 mPendingStreams.insert(pendingStreams.begin(), pendingStreams.end());
6497 for (const auto& it : mPendingStreams) {
6498 it.second->cancelPrepare();
6499 }
6500 }
6501
resume()6502 status_t Camera3Device::PreparerThread::resume() {
6503 ATRACE_CALL();
6504 status_t res;
6505
6506 Mutex::Autolock l(mLock);
6507 sp<NotificationListener> listener = mListener.promote();
6508
6509 if (mActive) {
6510 ALOGE("%s: Trying to resume an already active prepare thread!", __FUNCTION__);
6511 return NO_INIT;
6512 }
6513
6514 auto it = mPendingStreams.begin();
6515 for (; it != mPendingStreams.end();) {
6516 res = it->second->startPrepare(it->first, true /*blockRequest*/);
6517 if (res == OK) {
6518 if (listener != NULL) {
6519 listener->notifyPrepared(it->second->getId());
6520 }
6521 it = mPendingStreams.erase(it);
6522 } else if (res != NOT_ENOUGH_DATA) {
6523 ALOGE("%s: Unable to start preparer stream: %d (%s)", __FUNCTION__,
6524 res, strerror(-res));
6525 it = mPendingStreams.erase(it);
6526 } else {
6527 it++;
6528 }
6529 }
6530
6531 if (mPendingStreams.empty()) {
6532 return OK;
6533 }
6534
6535 res = Thread::run("C3PrepThread", PRIORITY_BACKGROUND);
6536 if (res != OK) {
6537 ALOGE("%s: Unable to start preparer stream: %d (%s)",
6538 __FUNCTION__, res, strerror(-res));
6539 return res;
6540 }
6541 mCancelNow = false;
6542 mActive = true;
6543 ALOGV("%s: Preparer stream started", __FUNCTION__);
6544
6545 return OK;
6546 }
6547
clear()6548 status_t Camera3Device::PreparerThread::clear() {
6549 ATRACE_CALL();
6550 Mutex::Autolock l(mLock);
6551
6552 for (const auto& it : mPendingStreams) {
6553 it.second->cancelPrepare();
6554 }
6555 mPendingStreams.clear();
6556 mCancelNow = true;
6557
6558 return OK;
6559 }
6560
setNotificationListener(wp<NotificationListener> listener)6561 void Camera3Device::PreparerThread::setNotificationListener(wp<NotificationListener> listener) {
6562 ATRACE_CALL();
6563 Mutex::Autolock l(mLock);
6564 mListener = listener;
6565 }
6566
threadLoop()6567 bool Camera3Device::PreparerThread::threadLoop() {
6568 status_t res;
6569 {
6570 Mutex::Autolock l(mLock);
6571 if (mCurrentStream == nullptr) {
6572 // End thread if done with work
6573 if (mPendingStreams.empty()) {
6574 ALOGV("%s: Preparer stream out of work", __FUNCTION__);
6575 // threadLoop _must not_ re-acquire mLock after it sets mActive to false; would
6576 // cause deadlock with prepare()'s requestExitAndWait triggered by !mActive.
6577 mActive = false;
6578 mThreadActiveSignal.signal();
6579 return false;
6580 }
6581
6582 // Get next stream to prepare
6583 auto it = mPendingStreams.begin();
6584 mCurrentStream = it->second;
6585 mCurrentMaxCount = it->first;
6586 mCurrentPrepareComplete = false;
6587 mPendingStreams.erase(it);
6588 ATRACE_ASYNC_BEGIN("stream prepare", mCurrentStream->getId());
6589 ALOGV("%s: Preparing stream %d", __FUNCTION__, mCurrentStream->getId());
6590 } else if (mCancelNow) {
6591 mCurrentStream->cancelPrepare();
6592 ATRACE_ASYNC_END("stream prepare", mCurrentStream->getId());
6593 ALOGV("%s: Cancelling stream %d prepare", __FUNCTION__, mCurrentStream->getId());
6594 mCurrentStream.clear();
6595 mCancelNow = false;
6596 return true;
6597 }
6598 }
6599
6600 res = mCurrentStream->prepareNextBuffer();
6601 if (res == NOT_ENOUGH_DATA) return true;
6602 if (res != OK) {
6603 // Something bad happened; try to recover by cancelling prepare and
6604 // signalling listener anyway
6605 ALOGE("%s: Stream %d returned error %d (%s) during prepare", __FUNCTION__,
6606 mCurrentStream->getId(), res, strerror(-res));
6607 mCurrentStream->cancelPrepare();
6608 }
6609
6610 // This stream has finished, notify listener
6611 Mutex::Autolock l(mLock);
6612 sp<NotificationListener> listener = mListener.promote();
6613 if (listener != NULL) {
6614 ALOGV("%s: Stream %d prepare done, signaling listener", __FUNCTION__,
6615 mCurrentStream->getId());
6616 listener->notifyPrepared(mCurrentStream->getId());
6617 }
6618
6619 ATRACE_ASYNC_END("stream prepare", mCurrentStream->getId());
6620 mCurrentStream.clear();
6621 mCurrentPrepareComplete = true;
6622
6623 return true;
6624 }
6625
initialize(sp<camera3::StatusTracker> statusTracker)6626 status_t Camera3Device::RequestBufferStateMachine::initialize(
6627 sp<camera3::StatusTracker> statusTracker) {
6628 if (statusTracker == nullptr) {
6629 ALOGE("%s: statusTracker is null", __FUNCTION__);
6630 return BAD_VALUE;
6631 }
6632
6633 std::lock_guard<std::mutex> lock(mLock);
6634 mStatusTracker = statusTracker;
6635 mRequestBufferStatusId = statusTracker->addComponent();
6636 return OK;
6637 }
6638
startRequestBuffer()6639 bool Camera3Device::RequestBufferStateMachine::startRequestBuffer() {
6640 std::lock_guard<std::mutex> lock(mLock);
6641 if (mStatus == RB_STATUS_READY || mStatus == RB_STATUS_PENDING_STOP) {
6642 mRequestBufferOngoing = true;
6643 notifyTrackerLocked(/*active*/true);
6644 return true;
6645 }
6646 return false;
6647 }
6648
endRequestBuffer()6649 void Camera3Device::RequestBufferStateMachine::endRequestBuffer() {
6650 std::lock_guard<std::mutex> lock(mLock);
6651 if (!mRequestBufferOngoing) {
6652 ALOGE("%s called without a successful startRequestBuffer call first!", __FUNCTION__);
6653 return;
6654 }
6655 mRequestBufferOngoing = false;
6656 if (mStatus == RB_STATUS_PENDING_STOP) {
6657 checkSwitchToStopLocked();
6658 }
6659 notifyTrackerLocked(/*active*/false);
6660 }
6661
onStreamsConfigured()6662 void Camera3Device::RequestBufferStateMachine::onStreamsConfigured() {
6663 std::lock_guard<std::mutex> lock(mLock);
6664 mStatus = RB_STATUS_READY;
6665 return;
6666 }
6667
onSubmittingRequest()6668 void Camera3Device::RequestBufferStateMachine::onSubmittingRequest() {
6669 std::lock_guard<std::mutex> lock(mLock);
6670 mRequestThreadPaused = false;
6671 // inflight map register actually happens in prepareHalRequest now, but it is close enough
6672 // approximation.
6673 mInflightMapEmpty = false;
6674 if (mStatus == RB_STATUS_STOPPED) {
6675 mStatus = RB_STATUS_READY;
6676 }
6677 return;
6678 }
6679
onRequestThreadPaused()6680 void Camera3Device::RequestBufferStateMachine::onRequestThreadPaused() {
6681 std::lock_guard<std::mutex> lock(mLock);
6682 mRequestThreadPaused = true;
6683 if (mStatus == RB_STATUS_PENDING_STOP) {
6684 checkSwitchToStopLocked();
6685 }
6686 return;
6687 }
6688
onInflightMapEmpty()6689 void Camera3Device::RequestBufferStateMachine::onInflightMapEmpty() {
6690 std::lock_guard<std::mutex> lock(mLock);
6691 mInflightMapEmpty = true;
6692 if (mStatus == RB_STATUS_PENDING_STOP) {
6693 checkSwitchToStopLocked();
6694 }
6695 return;
6696 }
6697
onWaitUntilIdle()6698 void Camera3Device::RequestBufferStateMachine::onWaitUntilIdle() {
6699 std::lock_guard<std::mutex> lock(mLock);
6700 if (!checkSwitchToStopLocked()) {
6701 mStatus = RB_STATUS_PENDING_STOP;
6702 }
6703 return;
6704 }
6705
notifyTrackerLocked(bool active)6706 void Camera3Device::RequestBufferStateMachine::notifyTrackerLocked(bool active) {
6707 sp<StatusTracker> statusTracker = mStatusTracker.promote();
6708 if (statusTracker != nullptr) {
6709 if (active) {
6710 statusTracker->markComponentActive(mRequestBufferStatusId);
6711 } else {
6712 statusTracker->markComponentIdle(mRequestBufferStatusId, Fence::NO_FENCE);
6713 }
6714 }
6715 }
6716
checkSwitchToStopLocked()6717 bool Camera3Device::RequestBufferStateMachine::checkSwitchToStopLocked() {
6718 if (mInflightMapEmpty && mRequestThreadPaused && !mRequestBufferOngoing) {
6719 mStatus = RB_STATUS_STOPPED;
6720 return true;
6721 }
6722 return false;
6723 }
6724
fixupMonochromeTags(const CameraMetadata & deviceInfo,CameraMetadata & resultMetadata)6725 status_t Camera3Device::fixupMonochromeTags(const CameraMetadata& deviceInfo,
6726 CameraMetadata& resultMetadata) {
6727 status_t res = OK;
6728 if (!mNeedFixupMonochromeTags) {
6729 return res;
6730 }
6731
6732 // Remove tags that are not applicable to monochrome camera.
6733 int32_t tagsToRemove[] = {
6734 ANDROID_SENSOR_GREEN_SPLIT,
6735 ANDROID_SENSOR_NEUTRAL_COLOR_POINT,
6736 ANDROID_COLOR_CORRECTION_MODE,
6737 ANDROID_COLOR_CORRECTION_TRANSFORM,
6738 ANDROID_COLOR_CORRECTION_GAINS,
6739 };
6740 for (auto tag : tagsToRemove) {
6741 res = resultMetadata.erase(tag);
6742 if (res != OK) {
6743 ALOGE("%s: Failed to remove tag %d for monochrome camera", __FUNCTION__, tag);
6744 return res;
6745 }
6746 }
6747
6748 // ANDROID_SENSOR_DYNAMIC_BLACK_LEVEL
6749 camera_metadata_entry blEntry = resultMetadata.find(ANDROID_SENSOR_DYNAMIC_BLACK_LEVEL);
6750 for (size_t i = 1; i < blEntry.count; i++) {
6751 blEntry.data.f[i] = blEntry.data.f[0];
6752 }
6753
6754 // ANDROID_SENSOR_NOISE_PROFILE
6755 camera_metadata_entry npEntry = resultMetadata.find(ANDROID_SENSOR_NOISE_PROFILE);
6756 if (npEntry.count > 0 && npEntry.count % 2 == 0) {
6757 double np[] = {npEntry.data.d[0], npEntry.data.d[1]};
6758 res = resultMetadata.update(ANDROID_SENSOR_NOISE_PROFILE, np, 2);
6759 if (res != OK) {
6760 ALOGE("%s: Failed to update SENSOR_NOISE_PROFILE: %s (%d)",
6761 __FUNCTION__, strerror(-res), res);
6762 return res;
6763 }
6764 }
6765
6766 // ANDROID_STATISTICS_LENS_SHADING_MAP
6767 camera_metadata_ro_entry lsSizeEntry = deviceInfo.find(ANDROID_LENS_INFO_SHADING_MAP_SIZE);
6768 camera_metadata_entry lsEntry = resultMetadata.find(ANDROID_STATISTICS_LENS_SHADING_MAP);
6769 if (lsSizeEntry.count == 2 && lsEntry.count > 0
6770 && (int32_t)lsEntry.count == 4 * lsSizeEntry.data.i32[0] * lsSizeEntry.data.i32[1]) {
6771 for (int32_t i = 0; i < lsSizeEntry.data.i32[0] * lsSizeEntry.data.i32[1]; i++) {
6772 lsEntry.data.f[4*i+1] = lsEntry.data.f[4*i];
6773 lsEntry.data.f[4*i+2] = lsEntry.data.f[4*i];
6774 lsEntry.data.f[4*i+3] = lsEntry.data.f[4*i];
6775 }
6776 }
6777
6778 // ANDROID_TONEMAP_CURVE_BLUE
6779 // ANDROID_TONEMAP_CURVE_GREEN
6780 // ANDROID_TONEMAP_CURVE_RED
6781 camera_metadata_entry tcbEntry = resultMetadata.find(ANDROID_TONEMAP_CURVE_BLUE);
6782 camera_metadata_entry tcgEntry = resultMetadata.find(ANDROID_TONEMAP_CURVE_GREEN);
6783 camera_metadata_entry tcrEntry = resultMetadata.find(ANDROID_TONEMAP_CURVE_RED);
6784 if (tcbEntry.count > 0
6785 && tcbEntry.count == tcgEntry.count
6786 && tcbEntry.count == tcrEntry.count) {
6787 for (size_t i = 0; i < tcbEntry.count; i++) {
6788 tcbEntry.data.f[i] = tcrEntry.data.f[i];
6789 tcgEntry.data.f[i] = tcrEntry.data.f[i];
6790 }
6791 }
6792
6793 return res;
6794 }
6795
6796 }; // namespace android
6797