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1 /*
2  * Copyright (C) 2016-2018 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-SharedOuStrm"
18 #define ATRACE_TAG ATRACE_TAG_CAMERA
19 //#define LOG_NDEBUG 0
20 
21 #include "Camera3SharedOutputStream.h"
22 
23 namespace android {
24 
25 namespace camera3 {
26 
27 const size_t Camera3SharedOutputStream::kMaxOutputs;
28 
Camera3SharedOutputStream(int id,const std::vector<sp<Surface>> & surfaces,uint32_t width,uint32_t height,int format,uint64_t consumerUsage,android_dataspace dataSpace,camera_stream_rotation_t rotation,nsecs_t timestampOffset,const String8 & physicalCameraId,const std::unordered_set<int32_t> & sensorPixelModesUsed,IPCTransport transport,int setId,bool useHalBufManager,int64_t dynamicProfile,int64_t streamUseCase,bool deviceTimeBaseIsRealtime,int timestampBase,int mirrorMode,int32_t colorSpace,bool useReadoutTimestamp)29 Camera3SharedOutputStream::Camera3SharedOutputStream(int id,
30         const std::vector<sp<Surface>>& surfaces,
31         uint32_t width, uint32_t height, int format,
32         uint64_t consumerUsage, android_dataspace dataSpace,
33         camera_stream_rotation_t rotation,
34         nsecs_t timestampOffset, const String8& physicalCameraId,
35         const std::unordered_set<int32_t> &sensorPixelModesUsed, IPCTransport transport,
36         int setId, bool useHalBufManager, int64_t dynamicProfile,
37         int64_t streamUseCase, bool deviceTimeBaseIsRealtime, int timestampBase,
38         int mirrorMode, int32_t colorSpace, bool useReadoutTimestamp) :
39         Camera3OutputStream(id, CAMERA_STREAM_OUTPUT, width, height,
40                             format, dataSpace, rotation, physicalCameraId, sensorPixelModesUsed,
41                             transport, consumerUsage, timestampOffset, setId,
42                             /*isMultiResolution*/false, dynamicProfile, streamUseCase,
43                             deviceTimeBaseIsRealtime, timestampBase, mirrorMode, colorSpace,
44                             useReadoutTimestamp),
45         mUseHalBufManager(useHalBufManager) {
46     size_t consumerCount = std::min(surfaces.size(), kMaxOutputs);
47     if (surfaces.size() > consumerCount) {
48         ALOGE("%s: Trying to add more consumers than the maximum ", __func__);
49     }
50     for (size_t i = 0; i < consumerCount; i++) {
51         mSurfaceUniqueIds[i] = std::make_pair(surfaces[i], mNextUniqueSurfaceId++);
52     }
53 }
54 
~Camera3SharedOutputStream()55 Camera3SharedOutputStream::~Camera3SharedOutputStream() {
56     disconnectLocked();
57 }
58 
connectStreamSplitterLocked()59 status_t Camera3SharedOutputStream::connectStreamSplitterLocked() {
60     status_t res = OK;
61 
62     mStreamSplitter = new Camera3StreamSplitter(mUseHalBufManager);
63 
64     uint64_t usage = 0;
65     getEndpointUsage(&usage);
66 
67     std::unordered_map<size_t, sp<Surface>> initialSurfaces;
68     for (size_t i = 0; i < kMaxOutputs; i++) {
69         if (mSurfaceUniqueIds[i].first != nullptr) {
70             initialSurfaces.emplace(i, mSurfaceUniqueIds[i].first);
71         }
72     }
73 
74     res = mStreamSplitter->connect(initialSurfaces, usage, mUsage, camera_stream::max_buffers,
75             getWidth(), getHeight(), getFormat(), &mConsumer, camera_stream::dynamic_range_profile);
76     if (res != OK) {
77         ALOGE("%s: Failed to connect to stream splitter: %s(%d)",
78                 __FUNCTION__, strerror(-res), res);
79         return res;
80     }
81 
82     return res;
83 }
84 
attachBufferToSplitterLocked(ANativeWindowBuffer * anb,const std::vector<size_t> & surface_ids)85 status_t Camera3SharedOutputStream::attachBufferToSplitterLocked(
86         ANativeWindowBuffer* anb,
87         const std::vector<size_t>& surface_ids) {
88     status_t res = OK;
89 
90     // Attach the buffer to the splitter output queues. This could block if
91     // the output queue doesn't have any empty slot. So unlock during the course
92     // of attachBufferToOutputs.
93     sp<Camera3StreamSplitter> splitter = mStreamSplitter;
94     mLock.unlock();
95     res = splitter->attachBufferToOutputs(anb, surface_ids);
96     mLock.lock();
97     if (res != OK) {
98         ALOGE("%s: Stream %d: Cannot attach stream splitter buffer to outputs: %s (%d)",
99                 __FUNCTION__, mId, strerror(-res), res);
100         // Only transition to STATE_ABANDONED from STATE_CONFIGURED. (If it is STATE_PREPARING,
101         // let prepareNextBuffer handle the error.)
102         if (res == NO_INIT && mState == STATE_CONFIGURED) {
103             mState = STATE_ABANDONED;
104         }
105     }
106     return res;
107 }
108 
109 
notifyBufferReleased(ANativeWindowBuffer * anwBuffer)110 status_t Camera3SharedOutputStream::notifyBufferReleased(ANativeWindowBuffer *anwBuffer) {
111     Mutex::Autolock l(mLock);
112     status_t res = OK;
113     const sp<GraphicBuffer> buffer(static_cast<GraphicBuffer*>(anwBuffer));
114 
115     if (mStreamSplitter != nullptr) {
116         res = mStreamSplitter->notifyBufferReleased(buffer);
117     }
118 
119     return res;
120 }
121 
isConsumerConfigurationDeferred(size_t surface_id) const122 bool Camera3SharedOutputStream::isConsumerConfigurationDeferred(size_t surface_id) const {
123     Mutex::Autolock l(mLock);
124     if (surface_id >= kMaxOutputs) {
125         return true;
126     }
127 
128     return (mSurfaceUniqueIds[surface_id].first == nullptr);
129 }
130 
setConsumers(const std::vector<sp<Surface>> & surfaces)131 status_t Camera3SharedOutputStream::setConsumers(const std::vector<sp<Surface>>& surfaces) {
132     Mutex::Autolock l(mLock);
133     if (surfaces.size() == 0) {
134         ALOGE("%s: it's illegal to set zero consumer surfaces!", __FUNCTION__);
135         return INVALID_OPERATION;
136     }
137 
138     status_t ret = OK;
139     for (auto& surface : surfaces) {
140         if (surface == nullptr) {
141             ALOGE("%s: it's illegal to set a null consumer surface!", __FUNCTION__);
142             return INVALID_OPERATION;
143         }
144 
145         ssize_t id = getNextSurfaceIdLocked();
146         if (id < 0) {
147             ALOGE("%s: No surface ids available!", __func__);
148             return NO_MEMORY;
149         }
150 
151         mSurfaceUniqueIds[id] = std::make_pair(surface, mNextUniqueSurfaceId++);
152 
153         // Only call addOutput if the splitter has been connected.
154         if (mStreamSplitter != nullptr) {
155             ret = mStreamSplitter->addOutput(id, surface);
156             if (ret != OK) {
157                 ALOGE("%s: addOutput failed with error code %d", __FUNCTION__, ret);
158                 return ret;
159 
160             }
161         }
162     }
163     return ret;
164 }
165 
getBufferLocked(camera_stream_buffer * buffer,const std::vector<size_t> & surfaceIds)166 status_t Camera3SharedOutputStream::getBufferLocked(camera_stream_buffer *buffer,
167         const std::vector<size_t>& surfaceIds) {
168     ANativeWindowBuffer* anb;
169     int fenceFd = -1;
170 
171     status_t res;
172     res = getBufferLockedCommon(&anb, &fenceFd);
173     if (res != OK) {
174         return res;
175     }
176 
177     if (!mUseHalBufManager) {
178         res = attachBufferToSplitterLocked(anb, surfaceIds);
179         if (res != OK) {
180             return res;
181         }
182     }
183 
184     /**
185      * FenceFD now owned by HAL except in case of error,
186      * in which case we reassign it to acquire_fence
187      */
188     handoutBufferLocked(*buffer, &(anb->handle), /*acquireFence*/fenceFd,
189                         /*releaseFence*/-1, CAMERA_BUFFER_STATUS_OK, /*output*/true);
190 
191     return OK;
192 }
193 
queueBufferToConsumer(sp<ANativeWindow> & consumer,ANativeWindowBuffer * buffer,int anwReleaseFence,const std::vector<size_t> & uniqueSurfaceIds)194 status_t Camera3SharedOutputStream::queueBufferToConsumer(sp<ANativeWindow>& consumer,
195             ANativeWindowBuffer* buffer, int anwReleaseFence,
196             const std::vector<size_t>& uniqueSurfaceIds) {
197     status_t res = OK;
198     if (mUseHalBufManager) {
199         if (uniqueSurfaceIds.size() == 0) {
200             ALOGE("%s: uniqueSurfaceIds must not be empty!", __FUNCTION__);
201             return BAD_VALUE;
202         }
203         Mutex::Autolock l(mLock);
204         std::vector<size_t> surfaceIds;
205         for (const auto& uniqueId : uniqueSurfaceIds) {
206             bool uniqueIdFound = false;
207             for (size_t i = 0; i < kMaxOutputs; i++) {
208                 if (mSurfaceUniqueIds[i].second == uniqueId) {
209                     surfaceIds.push_back(i);
210                     uniqueIdFound = true;
211                     break;
212                 }
213             }
214             if (!uniqueIdFound) {
215                 ALOGV("%s: unknown unique surface ID %zu for stream %d: "
216                         "output might have been removed.",
217                         __FUNCTION__, uniqueId, mId);
218             }
219         }
220         res = attachBufferToSplitterLocked(buffer, surfaceIds);
221         if (res != OK) {
222             return res;
223         }
224     }
225 
226     res = consumer->queueBuffer(consumer.get(), buffer, anwReleaseFence);
227 
228     // After queuing buffer to the internal consumer queue, check whether the buffer is
229     // successfully queued to the output queues.
230     if (res == OK) {
231         res = mStreamSplitter->getOnFrameAvailableResult();
232         if (res != OK) {
233             ALOGE("%s: getOnFrameAvailable returns %d", __FUNCTION__, res);
234         }
235     } else {
236         ALOGE("%s: queueBufer failed %d", __FUNCTION__, res);
237     }
238 
239     return res;
240 }
241 
configureQueueLocked()242 status_t Camera3SharedOutputStream::configureQueueLocked() {
243     status_t res;
244 
245     if ((res = Camera3IOStreamBase::configureQueueLocked()) != OK) {
246         return res;
247     }
248 
249     res = connectStreamSplitterLocked();
250     if (res != OK) {
251         ALOGE("Cannot connect to stream splitter: %s(%d)", strerror(-res), res);
252         return res;
253     }
254 
255     res = configureConsumerQueueLocked(false/*allowPreviewRespace*/);
256     if (res != OK) {
257         ALOGE("Failed to configureConsumerQueueLocked: %s(%d)", strerror(-res), res);
258         return res;
259     }
260 
261     return OK;
262 }
263 
disconnectLocked()264 status_t Camera3SharedOutputStream::disconnectLocked() {
265     status_t res;
266     res = Camera3OutputStream::disconnectLocked();
267 
268     if (mStreamSplitter != nullptr) {
269         mStreamSplitter->disconnect();
270     }
271 
272     return res;
273 }
274 
getEndpointUsage(uint64_t * usage) const275 status_t Camera3SharedOutputStream::getEndpointUsage(uint64_t *usage) const {
276 
277     status_t res = OK;
278     uint64_t u = 0;
279 
280     if (mConsumer == nullptr) {
281         // Called before shared buffer queue is constructed.
282         *usage = getPresetConsumerUsage();
283 
284         for (size_t id = 0; id < kMaxOutputs; id++) {
285             if (mSurfaceUniqueIds[id].first != nullptr) {
286                 res = getEndpointUsageForSurface(&u, mSurfaceUniqueIds[id].first);
287                 *usage |= u;
288             }
289         }
290     } else {
291         // Called after shared buffer queue is constructed.
292         res = getEndpointUsageForSurface(&u, mConsumer);
293         *usage |= u;
294     }
295 
296     return res;
297 }
298 
getNextSurfaceIdLocked()299 ssize_t Camera3SharedOutputStream::getNextSurfaceIdLocked() {
300     ssize_t id = -1;
301     for (size_t i = 0; i < kMaxOutputs; i++) {
302         if (mSurfaceUniqueIds[i].first == nullptr) {
303             id = i;
304             break;
305         }
306     }
307 
308     return id;
309 }
310 
getSurfaceId(const sp<Surface> & surface)311 ssize_t Camera3SharedOutputStream::getSurfaceId(const sp<Surface> &surface) {
312     Mutex::Autolock l(mLock);
313     ssize_t id = -1;
314     for (size_t i = 0; i < kMaxOutputs; i++) {
315         if (mSurfaceUniqueIds[i].first == surface) {
316             id = i;
317             break;
318         }
319     }
320 
321     return id;
322 }
323 
getUniqueSurfaceIds(const std::vector<size_t> & surfaceIds,std::vector<size_t> * outUniqueIds)324 status_t Camera3SharedOutputStream::getUniqueSurfaceIds(
325         const std::vector<size_t>& surfaceIds,
326         /*out*/std::vector<size_t>* outUniqueIds) {
327     Mutex::Autolock l(mLock);
328     if (outUniqueIds == nullptr || surfaceIds.size() > kMaxOutputs) {
329         return BAD_VALUE;
330     }
331 
332     outUniqueIds->clear();
333     outUniqueIds->reserve(surfaceIds.size());
334 
335     for (const auto& surfaceId : surfaceIds) {
336         if (surfaceId >= kMaxOutputs) {
337             return BAD_VALUE;
338         }
339         outUniqueIds->push_back(mSurfaceUniqueIds[surfaceId].second);
340     }
341     return OK;
342 }
343 
revertPartialUpdateLocked(const KeyedVector<sp<Surface>,size_t> & removedSurfaces,const KeyedVector<sp<Surface>,size_t> & attachedSurfaces)344 status_t Camera3SharedOutputStream::revertPartialUpdateLocked(
345         const KeyedVector<sp<Surface>, size_t> &removedSurfaces,
346         const KeyedVector<sp<Surface>, size_t> &attachedSurfaces) {
347     status_t ret = OK;
348 
349     for (size_t i = 0; i < attachedSurfaces.size(); i++) {
350         size_t index = attachedSurfaces.valueAt(i);
351         if (mStreamSplitter != nullptr) {
352             ret = mStreamSplitter->removeOutput(index);
353             if (ret != OK) {
354                 return UNKNOWN_ERROR;
355             }
356         }
357         mSurfaceUniqueIds[index] = std::make_pair(nullptr, mNextUniqueSurfaceId++);
358     }
359 
360     for (size_t i = 0; i < removedSurfaces.size(); i++) {
361         size_t index = removedSurfaces.valueAt(i);
362         if (mStreamSplitter != nullptr) {
363             ret = mStreamSplitter->addOutput(index, removedSurfaces.keyAt(i));
364             if (ret != OK) {
365                 return UNKNOWN_ERROR;
366             }
367         }
368         mSurfaceUniqueIds[index] = std::make_pair(
369                 removedSurfaces.keyAt(i), mNextUniqueSurfaceId++);
370     }
371 
372     return ret;
373 }
374 
updateStream(const std::vector<sp<Surface>> & outputSurfaces,const std::vector<OutputStreamInfo> & outputInfo,const std::vector<size_t> & removedSurfaceIds,KeyedVector<sp<Surface>,size_t> * outputMap)375 status_t Camera3SharedOutputStream::updateStream(const std::vector<sp<Surface>> &outputSurfaces,
376         const std::vector<OutputStreamInfo> &outputInfo,
377         const std::vector<size_t> &removedSurfaceIds,
378         KeyedVector<sp<Surface>, size_t> *outputMap) {
379     status_t ret = OK;
380     Mutex::Autolock l(mLock);
381 
382     if ((outputMap == nullptr) || (outputInfo.size() != outputSurfaces.size()) ||
383             (outputSurfaces.size() > kMaxOutputs)) {
384         return BAD_VALUE;
385     }
386 
387     uint64_t usage;
388     getEndpointUsage(&usage);
389     KeyedVector<sp<Surface>, size_t> removedSurfaces;
390     //Check whether the new surfaces are compatible.
391     for (const auto &infoIt : outputInfo) {
392         bool imgReaderUsage = (infoIt.consumerUsage & GRALLOC_USAGE_SW_READ_OFTEN) ? true : false;
393         bool sizeMismatch = ((static_cast<uint32_t>(infoIt.width) != getWidth()) ||
394                                 (static_cast<uint32_t> (infoIt.height) != getHeight())) ?
395                                 true : false;
396         bool dynamicRangeMismatch = dynamic_range_profile != infoIt.dynamicRangeProfile;
397         if ((imgReaderUsage && sizeMismatch) || dynamicRangeMismatch ||
398                 (infoIt.format != getOriginalFormat() && infoIt.format != getFormat()) ||
399                 (infoIt.dataSpace != getDataSpace() &&
400                  infoIt.dataSpace != getOriginalDataSpace())) {
401             ALOGE("%s: Shared surface parameters format: 0x%x dataSpace: 0x%x dynamic range 0x%"
402                     PRIx64 " don't match source stream format: 0x%x  dataSpace: 0x%x dynamic"
403                     " range 0x%" PRIx64 , __FUNCTION__, infoIt.format, infoIt.dataSpace,
404                     infoIt.dynamicRangeProfile, getFormat(), getDataSpace(), dynamic_range_profile);
405             return BAD_VALUE;
406         }
407     }
408 
409     //First remove all absent outputs
410     for (const auto &it : removedSurfaceIds) {
411         if (mStreamSplitter != nullptr) {
412             ret = mStreamSplitter->removeOutput(it);
413             if (ret != OK) {
414                 ALOGE("%s: failed with error code %d", __FUNCTION__, ret);
415                 status_t res = revertPartialUpdateLocked(removedSurfaces, *outputMap);
416                 if (res != OK) {
417                     return res;
418                 }
419                 return ret;
420 
421             }
422         }
423         removedSurfaces.add(mSurfaceUniqueIds[it].first, it);
424         mSurfaceUniqueIds[it] = std::make_pair(nullptr, mNextUniqueSurfaceId++);
425     }
426 
427     //Next add the new outputs
428     for (const auto &it : outputSurfaces) {
429         ssize_t surfaceId = getNextSurfaceIdLocked();
430         if (surfaceId < 0) {
431             ALOGE("%s: No more available output slots!", __FUNCTION__);
432             status_t res = revertPartialUpdateLocked(removedSurfaces, *outputMap);
433             if (res != OK) {
434                 return res;
435             }
436             return NO_MEMORY;
437         }
438         if (mStreamSplitter != nullptr) {
439             ret = mStreamSplitter->addOutput(surfaceId, it);
440             if (ret != OK) {
441                 ALOGE("%s: failed with error code %d", __FUNCTION__, ret);
442                 status_t res = revertPartialUpdateLocked(removedSurfaces, *outputMap);
443                 if (res != OK) {
444                     return res;
445                 }
446                 return ret;
447             }
448         }
449         mSurfaceUniqueIds[surfaceId] = std::make_pair(it, mNextUniqueSurfaceId++);
450         outputMap->add(it, surfaceId);
451     }
452 
453     return ret;
454 }
455 
456 } // namespace camera3
457 
458 } // namespace android
459