1 /*
2 * Copyright (C) 2016 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 #include "system/camera_metadata.h"
18 #include "system/graphics-base-v1.0.h"
19 #include "system/graphics-base-v1.1.h"
20 #define LOG_TAG "CameraProviderManager"
21 #define ATRACE_TAG ATRACE_TAG_CAMERA
22 //#define LOG_NDEBUG 0
23
24 #include "CameraProviderManager.h"
25
26 #include "config/SharedSessionConfigReader.h"
27
28 #include <aidl/android/hardware/camera/device/ICameraDevice.h>
29
30 #include <algorithm>
31 #include <chrono>
32 #include "common/DepthPhotoProcessor.h"
33 #include "hidl/HidlProviderInfo.h"
34 #include "aidl/AidlProviderInfo.h"
35 #include <dlfcn.h>
36 #include <future>
37 #include <inttypes.h>
38 #include <android_companion_virtualdevice_build_flags.h>
39 #include <android/binder_libbinder.h>
40 #include <android/binder_manager.h>
41 #include <android/hidl/manager/1.2/IServiceManager.h>
42 #include <hidl/ServiceManagement.h>
43 #include <com_android_internal_camera_flags.h>
44 #include <com_android_window_flags.h>
45 #include <functional>
46 #include <camera_metadata_hidden.h>
47 #include <android-base/parseint.h>
48 #include <android-base/logging.h>
49 #include <cutils/properties.h>
50 #include <hwbinder/IPCThreadState.h>
51 #include <utils/Trace.h>
52 #include <ui/PublicFormat.h>
53 #include <camera/StringUtils.h>
54
55 #include "api2/HeicCompositeStream.h"
56 #include "device3/ZoomRatioMapper.h"
57 #include "utils/Utils.h"
58
59 namespace android {
60
61 using namespace ::android::hardware::camera;
62 using namespace ::android::camera3;
63 using android::hardware::camera::common::V1_0::Status;
64 using namespace camera3::SessionConfigurationUtils;
65 using std::literals::chrono_literals::operator""s;
66 using hardware::camera2::utils::CameraIdAndSessionConfiguration;
67 using hardware::camera2::params::OutputConfiguration;
68
69 namespace flags = com::android::internal::camera::flags;
70 namespace vd_flags = android::companion::virtualdevice::flags;
71 namespace wm_flags = com::android::window::flags;
72
73 namespace {
74 const bool kEnableLazyHal(property_get_bool("ro.camera.enableLazyHal", false));
75 const std::string kExternalProviderName = "external/0";
76 const std::string kVirtualProviderName = "virtual/0";
77 } // anonymous namespace
78
79 const float CameraProviderManager::kDepthARTolerance = .1f;
80 const bool CameraProviderManager::kFrameworkJpegRDisabled =
81 property_get_bool("ro.camera.disableJpegR", false);
82 const bool CameraProviderManager::kFrameworkHeicUltraHDRDisabled =
83 property_get_bool("ro.camera.disableHeicUltraHDR", false);
84 const bool CameraProviderManager::kFrameworkHeicAllowSWCodecs =
85 property_get_bool("ro.camera.enableSWHEVC", false);
86
87 CameraProviderManager::HidlServiceInteractionProxyImpl
88 CameraProviderManager::sHidlServiceInteractionProxy{};
89 CameraProviderManager::AidlServiceInteractionProxyImpl
90 CameraProviderManager::sAidlServiceInteractionProxy{};
91
~CameraProviderManager()92 CameraProviderManager::~CameraProviderManager() {
93 }
94
FrameworkTorchStatusToString(const TorchModeStatus & s)95 const char* FrameworkTorchStatusToString(const TorchModeStatus& s) {
96 switch (s) {
97 case TorchModeStatus::NOT_AVAILABLE:
98 return "NOT_AVAILABLE";
99 case TorchModeStatus::AVAILABLE_OFF:
100 return "AVAILABLE_OFF";
101 case TorchModeStatus::AVAILABLE_ON:
102 return "AVAILABLE_ON";
103 }
104 ALOGW("Unexpected HAL torch mode status code %d", eToI(s));
105 return "UNKNOWN_STATUS";
106 }
107
FrameworkDeviceStatusToString(const CameraDeviceStatus & s)108 const char* FrameworkDeviceStatusToString(const CameraDeviceStatus& s) {
109 switch (s) {
110 case CameraDeviceStatus::NOT_PRESENT:
111 return "NOT_PRESENT";
112 case CameraDeviceStatus::PRESENT:
113 return "PRESENT";
114 case CameraDeviceStatus::ENUMERATING:
115 return "ENUMERATING";
116 }
117 ALOGW("Unexpected HAL device status code %d", eToI(s));
118 return "UNKNOWN_STATUS";
119 }
120
121 hardware::hidl_vec<hardware::hidl_string>
listServices()122 CameraProviderManager::HidlServiceInteractionProxyImpl::listServices() {
123 hardware::hidl_vec<hardware::hidl_string> ret;
124 auto manager = hardware::defaultServiceManager1_2();
125 if (manager != nullptr) {
126 manager->listManifestByInterface(provider::V2_4::ICameraProvider::descriptor,
127 [&ret](const hardware::hidl_vec<hardware::hidl_string> ®istered) {
128 ret = registered;
129 });
130 }
131 return ret;
132 }
133
tryToInitAndAddHidlProvidersLocked(HidlServiceInteractionProxy * hidlProxy)134 status_t CameraProviderManager::tryToInitAndAddHidlProvidersLocked(
135 HidlServiceInteractionProxy *hidlProxy) {
136 mHidlServiceProxy = hidlProxy;
137 // Registering will trigger notifications for all already-known providers
138 bool success = mHidlServiceProxy->registerForNotifications(
139 /* instance name, empty means no filter */ "",
140 this);
141 if (!success) {
142 ALOGE("%s: Unable to register with hardware service manager for notifications "
143 "about camera providers", __FUNCTION__);
144 return INVALID_OPERATION;
145 }
146
147 for (const auto& instance : mHidlServiceProxy->listServices()) {
148 this->addHidlProviderLocked(instance);
149 }
150 return OK;
151 }
152
153 std::shared_ptr<aidl::android::hardware::camera::provider::ICameraProvider>
getService(const std::string & serviceName)154 CameraProviderManager::AidlServiceInteractionProxyImpl::getService(
155 const std::string& serviceName) {
156 using aidl::android::hardware::camera::provider::ICameraProvider;
157
158 AIBinder* binder = nullptr;
159 binder = AServiceManager_waitForService(serviceName.c_str());
160
161 if (binder == nullptr) {
162 ALOGE("%s: AIDL Camera provider HAL '%s' is not actually available, despite waiting "
163 "indefinitely?", __FUNCTION__, serviceName.c_str());
164 return nullptr;
165 }
166 std::shared_ptr<ICameraProvider> interface =
167 ICameraProvider::fromBinder(ndk::SpAIBinder(binder));
168
169 return interface;
170 }
171
172 std::shared_ptr<aidl::android::hardware::camera::provider::ICameraProvider>
tryGetService(const std::string & serviceName)173 CameraProviderManager::AidlServiceInteractionProxyImpl::tryGetService(
174 const std::string& serviceName) {
175 using aidl::android::hardware::camera::provider::ICameraProvider;
176
177 std::shared_ptr<ICameraProvider> interface = ICameraProvider::fromBinder(
178 ndk::SpAIBinder(AServiceManager_checkService(serviceName.c_str())));
179 if (interface == nullptr) {
180 ALOGD("%s: AIDL Camera provider HAL '%s' is not actually available", __FUNCTION__,
181 serviceName.c_str());
182 return nullptr;
183 }
184
185 return interface;
186 }
187
getFullAidlProviderName(const std::string instance)188 static std::string getFullAidlProviderName(const std::string instance) {
189 std::string aidlHalServiceDescriptor =
190 std::string(aidl::android::hardware::camera::provider::ICameraProvider::descriptor);
191 return aidlHalServiceDescriptor + "/" + instance;
192 }
193
tryToAddAidlProvidersLocked()194 status_t CameraProviderManager::tryToAddAidlProvidersLocked() {
195 const char * aidlHalServiceDescriptor =
196 aidl::android::hardware::camera::provider::ICameraProvider::descriptor;
197 auto sm = defaultServiceManager();
198 auto aidlProviders = sm->getDeclaredInstances(
199 String16(aidlHalServiceDescriptor));
200
201 if (isVirtualCameraHalEnabled()) {
202 // Virtual Camera provider is not declared in the VINTF manifest so we
203 // manually add it if the binary is present.
204 aidlProviders.push_back(String16(kVirtualProviderName.c_str()));
205 }
206
207 for (const auto &aidlInstance : aidlProviders) {
208 std::string aidlServiceName =
209 getFullAidlProviderName(toStdString(aidlInstance));
210 auto res = sm->registerForNotifications(String16(aidlServiceName.c_str()), this);
211 if (res != OK) {
212 ALOGE("%s Unable to register for notifications with AIDL service manager",
213 __FUNCTION__);
214 return res;
215 }
216 addAidlProviderLocked(aidlServiceName);
217 }
218 return OK;
219 }
220
initialize(wp<CameraProviderManager::StatusListener> listener,HidlServiceInteractionProxy * hidlProxy,AidlServiceInteractionProxy * aidlProxy)221 status_t CameraProviderManager::initialize(wp<CameraProviderManager::StatusListener> listener,
222 HidlServiceInteractionProxy* hidlProxy, AidlServiceInteractionProxy* aidlProxy) {
223 std::lock_guard<std::mutex> lock(mInterfaceMutex);
224 if (hidlProxy == nullptr) {
225 ALOGE("%s: No valid service Hidl interaction proxy provided", __FUNCTION__);
226 return BAD_VALUE;
227 }
228
229 if (aidlProxy == nullptr) {
230 ALOGE("%s: No valid service Aidl interaction proxy provided", __FUNCTION__);
231 return BAD_VALUE;
232 }
233 mAidlServiceProxy = aidlProxy;
234
235 mListener = listener;
236 mDeviceState = 0;
237 auto res = tryToInitAndAddHidlProvidersLocked(hidlProxy);
238 if (res != OK) {
239 // Logging done in called function;
240 return res;
241 }
242 res = tryToAddAidlProvidersLocked();
243
244 IPCThreadState::self()->flushCommands();
245
246 return res;
247 }
248
getCameraCount() const249 std::pair<int, int> CameraProviderManager::getCameraCount() const {
250 std::lock_guard<std::mutex> lock(mInterfaceMutex);
251 int systemCameraCount = 0;
252 int publicCameraCount = 0;
253 for (auto& provider : mProviders) {
254 for (auto &id : provider->mUniqueCameraIds) {
255 SystemCameraKind deviceKind = SystemCameraKind::PUBLIC;
256 if (getSystemCameraKindLocked(id, &deviceKind) != OK) {
257 ALOGE("%s: Invalid camera id %s, skipping", __FUNCTION__, id.c_str());
258 continue;
259 }
260 switch(deviceKind) {
261 case SystemCameraKind::PUBLIC:
262 publicCameraCount++;
263 break;
264 case SystemCameraKind::SYSTEM_ONLY_CAMERA:
265 systemCameraCount++;
266 break;
267 default:
268 break;
269 }
270 }
271 }
272 return std::make_pair(systemCameraCount, publicCameraCount);
273 }
274
getCameraDeviceIds(std::unordered_map<std::string,std::set<std::string>> * unavailablePhysicalIds) const275 std::vector<std::string> CameraProviderManager::getCameraDeviceIds(std::unordered_map<
276 std::string, std::set<std::string>>* unavailablePhysicalIds) const {
277 std::lock_guard<std::mutex> lock(mInterfaceMutex);
278 std::vector<std::string> deviceIds;
279 for (auto& provider : mProviders) {
280 for (auto& id : provider->mUniqueCameraIds) {
281 deviceIds.push_back(id);
282 if (unavailablePhysicalIds != nullptr &&
283 provider->mUnavailablePhysicalCameras.count(id) > 0) {
284 (*unavailablePhysicalIds)[id] = provider->mUnavailablePhysicalCameras.at(id);
285 }
286 }
287 }
288 return deviceIds;
289 }
290
collectDeviceIdsLocked(const std::vector<std::string> deviceIds,std::vector<std::string> & publicDeviceIds,std::vector<std::string> & systemDeviceIds) const291 void CameraProviderManager::collectDeviceIdsLocked(const std::vector<std::string> deviceIds,
292 std::vector<std::string>& publicDeviceIds,
293 std::vector<std::string>& systemDeviceIds) const {
294 for (auto &deviceId : deviceIds) {
295 SystemCameraKind deviceKind = SystemCameraKind::PUBLIC;
296 if (getSystemCameraKindLocked(deviceId, &deviceKind) != OK) {
297 ALOGE("%s: Invalid camera id %s, skipping", __FUNCTION__, deviceId.c_str());
298 continue;
299 }
300 if (deviceKind == SystemCameraKind::SYSTEM_ONLY_CAMERA) {
301 systemDeviceIds.push_back(deviceId);
302 } else {
303 publicDeviceIds.push_back(deviceId);
304 }
305 }
306 }
307
getAPI1CompatibleCameraDeviceIds() const308 std::vector<std::string> CameraProviderManager::getAPI1CompatibleCameraDeviceIds() const {
309 std::lock_guard<std::mutex> lock(mInterfaceMutex);
310 std::vector<std::string> publicDeviceIds;
311 std::vector<std::string> systemDeviceIds;
312 std::vector<std::string> deviceIds;
313 for (auto& provider : mProviders) {
314 std::vector<std::string> providerDeviceIds = provider->mUniqueAPI1CompatibleCameraIds;
315 // Secure cameras should not be exposed through camera 1 api
316 providerDeviceIds.erase(std::remove_if(providerDeviceIds.begin(), providerDeviceIds.end(),
317 [this](const std::string& s) {
318 SystemCameraKind deviceKind = SystemCameraKind::PUBLIC;
319 if (getSystemCameraKindLocked(s, &deviceKind) != OK) {
320 ALOGE("%s: Invalid camera id %s, skipping", __FUNCTION__, s.c_str());
321 return true;
322 }
323 return deviceKind == SystemCameraKind::HIDDEN_SECURE_CAMERA;}),
324 providerDeviceIds.end());
325 // API1 app doesn't handle logical and physical camera devices well. So
326 // for each camera facing, only take the first id advertised by HAL in
327 // all [logical, physical1, physical2, ...] id combos, and filter out the rest.
328 filterLogicalCameraIdsLocked(providerDeviceIds);
329 collectDeviceIdsLocked(providerDeviceIds, publicDeviceIds, systemDeviceIds);
330 }
331 auto sortFunc =
332 [](const std::string& a, const std::string& b) -> bool {
333 uint32_t aUint = 0, bUint = 0;
334 bool aIsUint = base::ParseUint(a, &aUint);
335 bool bIsUint = base::ParseUint(b, &bUint);
336
337 // Uint device IDs first
338 if (aIsUint && bIsUint) {
339 return aUint < bUint;
340 } else if (aIsUint) {
341 return true;
342 } else if (bIsUint) {
343 return false;
344 }
345 // Simple string compare if both id are not uint
346 return a < b;
347 };
348 // We put device ids for system cameras at the end since they will be pared
349 // off for processes not having system camera permissions.
350 std::sort(publicDeviceIds.begin(), publicDeviceIds.end(), sortFunc);
351 std::sort(systemDeviceIds.begin(), systemDeviceIds.end(), sortFunc);
352 deviceIds.insert(deviceIds.end(), publicDeviceIds.begin(), publicDeviceIds.end());
353 deviceIds.insert(deviceIds.end(), systemDeviceIds.begin(), systemDeviceIds.end());
354 return deviceIds;
355 }
356
isValidDeviceLocked(const std::string & id,uint16_t majorVersion,IPCTransport transport) const357 bool CameraProviderManager::isValidDeviceLocked(const std::string &id, uint16_t majorVersion,
358 IPCTransport transport) const {
359 for (auto& provider : mProviders) {
360 IPCTransport providerTransport = provider->getIPCTransport();
361 for (auto& deviceInfo : provider->mDevices) {
362 if (deviceInfo->mId == id && deviceInfo->mVersion.get_major() == majorVersion &&
363 transport == providerTransport) {
364 return true;
365 }
366 }
367 }
368 return false;
369 }
370
hasFlashUnit(const std::string & id) const371 bool CameraProviderManager::hasFlashUnit(const std::string &id) const {
372 std::lock_guard<std::mutex> lock(mInterfaceMutex);
373
374 auto deviceInfo = findDeviceInfoLocked(id);
375 if (deviceInfo == nullptr) return false;
376
377 return deviceInfo->hasFlashUnit();
378 }
379
supportNativeZoomRatio(const std::string & id) const380 bool CameraProviderManager::supportNativeZoomRatio(const std::string &id) const {
381 std::lock_guard<std::mutex> lock(mInterfaceMutex);
382
383 auto deviceInfo = findDeviceInfoLocked(id);
384 if (deviceInfo == nullptr) return false;
385
386 return deviceInfo->supportNativeZoomRatio();
387 }
388
isCompositeJpegRDisabled(const std::string & id) const389 bool CameraProviderManager::isCompositeJpegRDisabled(const std::string &id) const {
390 std::lock_guard<std::mutex> lock(mInterfaceMutex);
391 return isCompositeJpegRDisabledLocked(id);
392 }
393
isCompositeJpegRDisabledLocked(const std::string & id) const394 bool CameraProviderManager::isCompositeJpegRDisabledLocked(const std::string &id) const {
395 auto deviceInfo = findDeviceInfoLocked(id);
396 if (deviceInfo == nullptr) return false;
397
398 return deviceInfo->isCompositeJpegRDisabled();
399 }
400
isCompositeHeicDisabled(const std::string & id) const401 bool CameraProviderManager::isCompositeHeicDisabled(const std::string &id) const {
402 std::lock_guard<std::mutex> lock(mInterfaceMutex);
403 return isCompositeHeicDisabledLocked(id);
404 }
405
isCompositeHeicDisabledLocked(const std::string & id) const406 bool CameraProviderManager::isCompositeHeicDisabledLocked(const std::string &id) const {
407 auto deviceInfo = findDeviceInfoLocked(id);
408 if (deviceInfo == nullptr) return false;
409
410 return deviceInfo->isCompositeHeicDisabled();
411 }
412
isCompositeHeicUltraHDRDisabled(const std::string & id) const413 bool CameraProviderManager::isCompositeHeicUltraHDRDisabled(const std::string &id) const {
414 std::lock_guard<std::mutex> lock(mInterfaceMutex);
415 return isCompositeHeicUltraHDRDisabledLocked(id);
416 }
417
isCompositeHeicUltraHDRDisabledLocked(const std::string & id) const418 bool CameraProviderManager::isCompositeHeicUltraHDRDisabledLocked(const std::string &id) const {
419 auto deviceInfo = findDeviceInfoLocked(id);
420 if (deviceInfo == nullptr) return false;
421
422 return deviceInfo->isCompositeHeicUltraHDRDisabled();
423 }
424
getResourceCost(const std::string & id,CameraResourceCost * cost) const425 status_t CameraProviderManager::getResourceCost(const std::string &id,
426 CameraResourceCost* cost) const {
427 std::lock_guard<std::mutex> lock(mInterfaceMutex);
428
429 auto deviceInfo = findDeviceInfoLocked(id);
430 if (deviceInfo == nullptr) return NAME_NOT_FOUND;
431
432 *cost = deviceInfo->mResourceCost;
433 return OK;
434 }
435
getCameraInfo(const std::string & id,int rotationOverride,int * portraitRotation,hardware::CameraInfo * info) const436 status_t CameraProviderManager::getCameraInfo(const std::string &id,
437 int rotationOverride, int *portraitRotation,
438 hardware::CameraInfo* info) const {
439 std::lock_guard<std::mutex> lock(mInterfaceMutex);
440
441 auto deviceInfo = findDeviceInfoLocked(id);
442 if (deviceInfo == nullptr) return NAME_NOT_FOUND;
443
444 return deviceInfo->getCameraInfo(rotationOverride, portraitRotation, info);
445 }
446
isSessionConfigurationSupported(const std::string & id,const SessionConfiguration & configuration,bool overrideForPerfClass,bool checkSessionParams,bool * status) const447 status_t CameraProviderManager::isSessionConfigurationSupported(const std::string& id,
448 const SessionConfiguration &configuration, bool overrideForPerfClass,
449 bool checkSessionParams, bool *status /*out*/) const {
450 std::lock_guard<std::mutex> lock(mInterfaceMutex);
451 auto deviceInfo = findDeviceInfoLocked(id);
452 if (deviceInfo == nullptr) {
453 return NAME_NOT_FOUND;
454 }
455
456 metadataGetter getMetadata = [this](const std::string &id,
457 bool overrideForPerfClass) {
458 CameraMetadata metadata;
459 this->getCameraCharacteristicsLocked(id, overrideForPerfClass,
460 &metadata,
461 hardware::ICameraService::ROTATION_OVERRIDE_NONE);
462 return metadata;
463 };
464 return deviceInfo->isSessionConfigurationSupported(configuration,
465 overrideForPerfClass, getMetadata, checkSessionParams, status);
466 }
467
createDefaultRequest(const std::string & cameraId,camera_request_template_t templateId,CameraMetadata * metadata) const468 status_t CameraProviderManager::createDefaultRequest(const std::string& cameraId,
469 camera_request_template_t templateId,
470 CameraMetadata* metadata) const {
471 ATRACE_CALL();
472 if (templateId <= 0 || templateId >= CAMERA_TEMPLATE_COUNT) {
473 return BAD_VALUE;
474 }
475
476 std::lock_guard<std::mutex> lock(mInterfaceMutex);
477 auto deviceInfo = findDeviceInfoLocked(cameraId);
478 if (deviceInfo == nullptr) {
479 return NAME_NOT_FOUND;
480 }
481
482 status_t res = deviceInfo->createDefaultRequest(templateId,
483 metadata);
484
485 if (res == BAD_VALUE) {
486 ALOGI("%s: template %d is not supported on this camera device",
487 __FUNCTION__, templateId);
488 return res;
489 } else if (res != OK) {
490 ALOGE("Unable to construct request template %d: %s (%d)",
491 templateId, strerror(-res), res);
492 return res;
493 }
494
495 return OK;
496 }
497
getSessionCharacteristics(const std::string & id,const SessionConfiguration & configuration,bool overrideForPerfClass,int rotationOverride,CameraMetadata * sessionCharacteristics) const498 status_t CameraProviderManager::getSessionCharacteristics(
499 const std::string& id, const SessionConfiguration& configuration, bool overrideForPerfClass,
500 int rotationOverride, CameraMetadata* sessionCharacteristics /*out*/) const {
501 std::lock_guard<std::mutex> lock(mInterfaceMutex);
502 auto deviceInfo = findDeviceInfoLocked(id);
503 if (deviceInfo == nullptr) {
504 return NAME_NOT_FOUND;
505 }
506
507 metadataGetter getMetadata = [this, rotationOverride](const std::string& id,
508 bool overrideForPerfClass) {
509 CameraMetadata metadata;
510 status_t ret = this->getCameraCharacteristicsLocked(id, overrideForPerfClass, &metadata,
511 rotationOverride);
512 if (ret != OK) {
513 ALOGE("%s: Could not get CameraCharacteristics for device %s", __FUNCTION__,
514 id.c_str());
515 }
516 return metadata;
517 };
518
519 return deviceInfo->getSessionCharacteristics(configuration,
520 overrideForPerfClass, getMetadata, sessionCharacteristics);
521 }
522
getCameraIdIPCTransport(const std::string & id,IPCTransport * providerTransport) const523 status_t CameraProviderManager::getCameraIdIPCTransport(const std::string &id,
524 IPCTransport *providerTransport) const {
525 std::lock_guard<std::mutex> lock(mInterfaceMutex);
526 auto deviceInfo = findDeviceInfoLocked(id);
527 if (deviceInfo == nullptr) {
528 return NAME_NOT_FOUND;
529 }
530 sp<ProviderInfo> parentProvider = deviceInfo->mParentProvider.promote();
531 if (parentProvider == nullptr) {
532 return DEAD_OBJECT;
533 }
534 *providerTransport = parentProvider->getIPCTransport();
535 return OK;
536 }
537
getCameraCharacteristics(const std::string & id,bool overrideForPerfClass,CameraMetadata * characteristics,int rotationOverride) const538 status_t CameraProviderManager::getCameraCharacteristics(const std::string &id,
539 bool overrideForPerfClass, CameraMetadata* characteristics,
540 int rotationOverride) const {
541 std::lock_guard<std::mutex> lock(mInterfaceMutex);
542 return getCameraCharacteristicsLocked(id, overrideForPerfClass, characteristics,
543 rotationOverride);
544 }
545
getHighestSupportedVersion(const std::string & id,hardware::hidl_version * v,IPCTransport * transport)546 status_t CameraProviderManager::getHighestSupportedVersion(const std::string &id,
547 hardware::hidl_version *v, IPCTransport *transport) {
548 if (v == nullptr || transport == nullptr) {
549 return BAD_VALUE;
550 }
551 std::lock_guard<std::mutex> lock(mInterfaceMutex);
552
553 hardware::hidl_version maxVersion{0,0};
554 bool found = false;
555 IPCTransport providerTransport = IPCTransport::INVALID;
556 for (auto& provider : mProviders) {
557 for (auto& deviceInfo : provider->mDevices) {
558 if (deviceInfo->mId == id) {
559 if (deviceInfo->mVersion > maxVersion) {
560 maxVersion = deviceInfo->mVersion;
561 providerTransport = provider->getIPCTransport();
562 found = true;
563 }
564 }
565 }
566 }
567 if (!found || providerTransport == IPCTransport::INVALID) {
568 return NAME_NOT_FOUND;
569 }
570 *v = maxVersion;
571 *transport = providerTransport;
572 return OK;
573 }
574
getTorchStrengthLevel(const std::string & id,int32_t * torchStrength)575 status_t CameraProviderManager::getTorchStrengthLevel(const std::string &id,
576 int32_t* torchStrength /*out*/) {
577 std::lock_guard<std::mutex> lock(mInterfaceMutex);
578
579 auto deviceInfo = findDeviceInfoLocked(id);
580 if (deviceInfo == nullptr) return NAME_NOT_FOUND;
581
582 return deviceInfo->getTorchStrengthLevel(torchStrength);
583 }
584
turnOnTorchWithStrengthLevel(const std::string & id,int32_t torchStrength)585 status_t CameraProviderManager::turnOnTorchWithStrengthLevel(const std::string &id,
586 int32_t torchStrength) {
587 std::lock_guard<std::mutex> lock(mInterfaceMutex);
588
589 auto deviceInfo = findDeviceInfoLocked(id);
590 if (deviceInfo == nullptr) return NAME_NOT_FOUND;
591
592 return deviceInfo->turnOnTorchWithStrengthLevel(torchStrength);
593 }
594
shouldSkipTorchStrengthUpdate(const std::string & id,int32_t torchStrength) const595 bool CameraProviderManager::shouldSkipTorchStrengthUpdate(const std::string &id,
596 int32_t torchStrength) const {
597 std::lock_guard<std::mutex> lock(mInterfaceMutex);
598
599 auto deviceInfo = findDeviceInfoLocked(id);
600 if (deviceInfo == nullptr) return NAME_NOT_FOUND;
601
602 if (deviceInfo->mTorchStrengthLevel == torchStrength) {
603 ALOGV("%s: Skipping torch strength level updates prev_level: %d, new_level: %d",
604 __FUNCTION__, deviceInfo->mTorchStrengthLevel, torchStrength);
605 return true;
606 }
607 return false;
608 }
609
getTorchDefaultStrengthLevel(const std::string & id) const610 int32_t CameraProviderManager::getTorchDefaultStrengthLevel(const std::string &id) const {
611 std::lock_guard<std::mutex> lock(mInterfaceMutex);
612
613 auto deviceInfo = findDeviceInfoLocked(id);
614 if (deviceInfo == nullptr) return NAME_NOT_FOUND;
615
616 return deviceInfo->mTorchDefaultStrengthLevel;
617 }
618
supportSetTorchMode(const std::string & id) const619 bool CameraProviderManager::supportSetTorchMode(const std::string &id) const {
620 std::lock_guard<std::mutex> lock(mInterfaceMutex);
621 for (auto& provider : mProviders) {
622 for (auto& deviceInfo : provider->mDevices) {
623 if (deviceInfo->mId == id) {
624 return provider->mSetTorchModeSupported;
625 }
626 }
627 }
628 return false;
629 }
630
631 template <class ProviderInfoType, class HalCameraProviderType>
setTorchModeT(sp<ProviderInfo> & parentProvider,std::shared_ptr<HalCameraProvider> * halCameraProvider)632 status_t CameraProviderManager::setTorchModeT(sp<ProviderInfo> &parentProvider,
633 std::shared_ptr<HalCameraProvider> *halCameraProvider) {
634 if (halCameraProvider == nullptr) {
635 return BAD_VALUE;
636 }
637 ProviderInfoType *idlProviderInfo = static_cast<ProviderInfoType *>(parentProvider.get());
638 auto idlInterface = idlProviderInfo->startProviderInterface();
639 if (idlInterface == nullptr) {
640 return DEAD_OBJECT;
641 }
642 *halCameraProvider =
643 std::make_shared<HalCameraProviderType>(idlInterface, idlInterface->descriptor);
644 return OK;
645 }
646
setTorchMode(const std::string & id,bool enabled)647 status_t CameraProviderManager::setTorchMode(const std::string &id, bool enabled) {
648 std::lock_guard<std::mutex> lock(mInterfaceMutex);
649
650 auto deviceInfo = findDeviceInfoLocked(id);
651 if (deviceInfo == nullptr) return NAME_NOT_FOUND;
652
653 // Pass the camera ID to start interface so that it will save it to the map of ICameraProviders
654 // that are currently in use.
655 sp<ProviderInfo> parentProvider = deviceInfo->mParentProvider.promote();
656 if (parentProvider == nullptr) {
657 return DEAD_OBJECT;
658 }
659 std::shared_ptr<HalCameraProvider> halCameraProvider = nullptr;
660 IPCTransport providerTransport = parentProvider->getIPCTransport();
661 status_t res = OK;
662 if (providerTransport == IPCTransport::HIDL) {
663 res = setTorchModeT<HidlProviderInfo, HidlHalCameraProvider>(parentProvider,
664 &halCameraProvider);
665 if (res != OK) {
666 return res;
667 }
668 } else if (providerTransport == IPCTransport::AIDL) {
669 res = setTorchModeT<AidlProviderInfo, AidlHalCameraProvider>(parentProvider,
670 &halCameraProvider);
671 if (res != OK) {
672 return res;
673 }
674 } else {
675 ALOGE("%s Invalid provider transport", __FUNCTION__);
676 return INVALID_OPERATION;
677 }
678 saveRef(DeviceMode::TORCH, deviceInfo->mId, halCameraProvider);
679
680 return deviceInfo->setTorchMode(enabled);
681 }
682
setUpVendorTags()683 status_t CameraProviderManager::setUpVendorTags() {
684 sp<VendorTagDescriptorCache> tagCache = new VendorTagDescriptorCache();
685
686 for (auto& provider : mProviders) {
687 tagCache->addVendorDescriptor(provider->mProviderTagid, provider->mVendorTagDescriptor);
688 }
689
690 VendorTagDescriptorCache::setAsGlobalVendorTagCache(tagCache);
691
692 return OK;
693 }
694
startExternalLazyProvider() const695 sp<CameraProviderManager::ProviderInfo> CameraProviderManager::startExternalLazyProvider() const {
696 std::lock_guard<std::mutex> providerLock(mProviderLifecycleLock);
697 std::lock_guard<std::mutex> lock(mInterfaceMutex);
698
699 for (const auto& providerInfo : mProviders) {
700 if (providerInfo->isExternalLazyHAL()) {
701 if (!providerInfo->successfullyStartedProviderInterface()) {
702 return nullptr;
703 } else {
704 return providerInfo;
705 }
706 }
707 }
708 return nullptr;
709 }
710
notifyUsbDeviceEvent(int32_t eventId,const std::string & usbDeviceId)711 status_t CameraProviderManager::notifyUsbDeviceEvent(int32_t eventId,
712 const std::string& usbDeviceId) {
713 if (!kEnableLazyHal) {
714 return OK;
715 }
716
717 ALOGV("notifySystemEvent: %d usbDeviceId : %s", eventId, usbDeviceId.c_str());
718
719 if (eventId == android::hardware::ICameraService::EVENT_USB_DEVICE_ATTACHED) {
720 sp<ProviderInfo> externalProvider = startExternalLazyProvider();
721 if (externalProvider != nullptr) {
722 auto usbDevices = mExternalUsbDevicesForProvider.first;
723 usbDevices.push_back(usbDeviceId);
724 mExternalUsbDevicesForProvider = {usbDevices, externalProvider};
725 }
726 } else if (eventId
727 == android::hardware::ICameraService::EVENT_USB_DEVICE_DETACHED) {
728 usbDeviceDetached(usbDeviceId);
729 }
730
731 return OK;
732 }
733
usbDeviceDetached(const std::string & usbDeviceId)734 status_t CameraProviderManager::usbDeviceDetached(const std::string &usbDeviceId) {
735 std::lock_guard<std::mutex> providerLock(mProviderLifecycleLock);
736 std::lock_guard<std::mutex> interfaceLock(mInterfaceMutex);
737
738 auto usbDevices = mExternalUsbDevicesForProvider.first;
739 auto foundId = std::find(usbDevices.begin(), usbDevices.end(), usbDeviceId);
740 if (foundId != usbDevices.end()) {
741 sp<ProviderInfo> providerInfo = mExternalUsbDevicesForProvider.second;
742 if (providerInfo == nullptr) {
743 ALOGE("%s No valid external provider for USB device: %s",
744 __FUNCTION__,
745 usbDeviceId.c_str());
746 mExternalUsbDevicesForProvider = {std::vector<std::string>(), nullptr};
747 return DEAD_OBJECT;
748 } else {
749 mInterfaceMutex.unlock();
750 providerInfo->removeAllDevices();
751 mInterfaceMutex.lock();
752 mExternalUsbDevicesForProvider = {std::vector<std::string>(), nullptr};
753 }
754 } else {
755 return DEAD_OBJECT;
756 }
757 return OK;
758 }
759
notifyDeviceStateChange(int64_t newState)760 status_t CameraProviderManager::notifyDeviceStateChange(int64_t newState) {
761 std::lock_guard<std::mutex> lock(mInterfaceMutex);
762 mDeviceState = newState;
763 status_t res = OK;
764 // Make a copy of mProviders because we unlock mInterfaceMutex temporarily
765 // within the loop. It's possible that during the time mInterfaceMutex is
766 // unlocked, mProviders has changed.
767 auto providers = mProviders;
768 for (auto& provider : providers) {
769 ALOGV("%s: Notifying %s for new state 0x%" PRIx64,
770 __FUNCTION__, provider->mProviderName.c_str(), newState);
771 // b/199240726 Camera providers can for example try to add/remove
772 // camera devices as part of the state change notification. Holding
773 // 'mInterfaceMutex' while calling 'notifyDeviceStateChange' can
774 // result in a recursive deadlock.
775 mInterfaceMutex.unlock();
776 status_t singleRes = provider->notifyDeviceStateChange(mDeviceState);
777 mInterfaceMutex.lock();
778 if (singleRes != OK) {
779 ALOGE("%s: Unable to notify provider %s about device state change",
780 __FUNCTION__,
781 provider->mProviderName.c_str());
782 res = singleRes;
783 // continue to do the rest of the providers instead of returning now
784 }
785 provider->notifyDeviceInfoStateChangeLocked(mDeviceState);
786 }
787 return res;
788 }
789
openAidlSession(const std::string & id,const std::shared_ptr<aidl::android::hardware::camera::device::ICameraDeviceCallback> & callback,std::shared_ptr<aidl::android::hardware::camera::device::ICameraDeviceSession> * session)790 status_t CameraProviderManager::openAidlSession(const std::string &id,
791 const std::shared_ptr<
792 aidl::android::hardware::camera::device::ICameraDeviceCallback>& callback,
793 /*out*/
794 std::shared_ptr<aidl::android::hardware::camera::device::ICameraDeviceSession> *session) {
795
796 std::lock_guard<std::mutex> lock(mInterfaceMutex);
797
798 auto deviceInfo = findDeviceInfoLocked(id);
799 if (deviceInfo == nullptr) return NAME_NOT_FOUND;
800
801 auto *aidlDeviceInfo3 = static_cast<AidlProviderInfo::AidlDeviceInfo3*>(deviceInfo);
802 sp<ProviderInfo> parentProvider = deviceInfo->mParentProvider.promote();
803 if (parentProvider == nullptr) {
804 return DEAD_OBJECT;
805 }
806 auto provider =
807 static_cast<AidlProviderInfo *>(parentProvider.get())->startProviderInterface();
808 if (provider == nullptr) {
809 return DEAD_OBJECT;
810 }
811 std::shared_ptr<HalCameraProvider> halCameraProvider =
812 std::make_shared<AidlHalCameraProvider>(provider, provider->descriptor);
813 saveRef(DeviceMode::CAMERA, id, halCameraProvider);
814
815 auto interface = aidlDeviceInfo3->startDeviceInterface();
816 if (interface == nullptr) {
817 removeRef(DeviceMode::CAMERA, id);
818 return DEAD_OBJECT;
819 }
820
821 auto ret = interface->open(callback, session);
822 if (!ret.isOk()) {
823 removeRef(DeviceMode::CAMERA, id);
824 ALOGE("%s: Transaction error opening a session for camera device %s: %s",
825 __FUNCTION__, id.c_str(), ret.getMessage());
826 return AidlProviderInfo::mapToStatusT(ret);
827 }
828 return OK;
829 }
830
openAidlInjectionSession(const std::string & id,const std::shared_ptr<aidl::android::hardware::camera::device::ICameraDeviceCallback> & callback,std::shared_ptr<aidl::android::hardware::camera::device::ICameraInjectionSession> * session)831 status_t CameraProviderManager::openAidlInjectionSession(const std::string &id,
832 const std::shared_ptr<
833 aidl::android::hardware::camera::device::ICameraDeviceCallback>& callback,
834 /*out*/
835 std::shared_ptr<
836 aidl::android::hardware::camera::device::ICameraInjectionSession> *session) {
837
838 std::lock_guard<std::mutex> lock(mInterfaceMutex);
839
840 auto deviceInfo = findDeviceInfoLocked(id);
841 if (deviceInfo == nullptr) return NAME_NOT_FOUND;
842
843 auto *aidlDeviceInfo3 = static_cast<AidlProviderInfo::AidlDeviceInfo3*>(deviceInfo);
844 sp<ProviderInfo> parentProvider = deviceInfo->mParentProvider.promote();
845 if (parentProvider == nullptr) {
846 return DEAD_OBJECT;
847 }
848 auto provider =
849 static_cast<AidlProviderInfo *>(parentProvider.get())->startProviderInterface();
850 if (provider == nullptr) {
851 return DEAD_OBJECT;
852 }
853 std::shared_ptr<HalCameraProvider> halCameraProvider =
854 std::make_shared<AidlHalCameraProvider>(provider, provider->descriptor);
855 saveRef(DeviceMode::CAMERA, id, halCameraProvider);
856
857 auto interface = aidlDeviceInfo3->startDeviceInterface();
858 if (interface == nullptr) {
859 return DEAD_OBJECT;
860 }
861
862 auto ret = interface->openInjectionSession(callback, session);
863 if (!ret.isOk()) {
864 removeRef(DeviceMode::CAMERA, id);
865 ALOGE("%s: Transaction error opening a session for camera device %s: %s",
866 __FUNCTION__, id.c_str(), ret.getMessage());
867 return DEAD_OBJECT;
868 }
869 return OK;
870 }
871
openHidlSession(const std::string & id,const sp<device::V3_2::ICameraDeviceCallback> & callback,sp<device::V3_2::ICameraDeviceSession> * session)872 status_t CameraProviderManager::openHidlSession(const std::string &id,
873 const sp<device::V3_2::ICameraDeviceCallback>& callback,
874 /*out*/
875 sp<device::V3_2::ICameraDeviceSession> *session) {
876
877 std::lock_guard<std::mutex> lock(mInterfaceMutex);
878
879 auto deviceInfo = findDeviceInfoLocked(id);
880 if (deviceInfo == nullptr) return NAME_NOT_FOUND;
881
882 auto *hidlDeviceInfo3 = static_cast<HidlProviderInfo::HidlDeviceInfo3*>(deviceInfo);
883 sp<ProviderInfo> parentProvider = deviceInfo->mParentProvider.promote();
884 if (parentProvider == nullptr) {
885 return DEAD_OBJECT;
886 }
887 const sp<provider::V2_4::ICameraProvider> provider =
888 static_cast<HidlProviderInfo *>(parentProvider.get())->startProviderInterface();
889 if (provider == nullptr) {
890 return DEAD_OBJECT;
891 }
892 std::shared_ptr<HalCameraProvider> halCameraProvider =
893 std::make_shared<HidlHalCameraProvider>(provider, provider->descriptor);
894 saveRef(DeviceMode::CAMERA, id, halCameraProvider);
895
896 Status status;
897 hardware::Return<void> ret;
898 auto interface = hidlDeviceInfo3->startDeviceInterface();
899 if (interface == nullptr) {
900 return DEAD_OBJECT;
901 }
902
903 ret = interface->open(callback, [&status, &session]
904 (Status s, const sp<device::V3_2::ICameraDeviceSession>& cameraSession) {
905 status = s;
906 if (status == Status::OK) {
907 *session = cameraSession;
908 }
909 });
910 if (!ret.isOk()) {
911 removeRef(DeviceMode::CAMERA, id);
912 ALOGE("%s: Transaction error opening a session for camera device %s: %s",
913 __FUNCTION__, id.c_str(), ret.description().c_str());
914 return DEAD_OBJECT;
915 }
916 return HidlProviderInfo::mapToStatusT(status);
917 }
918
saveRef(DeviceMode usageType,const std::string & cameraId,std::shared_ptr<HalCameraProvider> provider)919 void CameraProviderManager::saveRef(DeviceMode usageType, const std::string &cameraId,
920 std::shared_ptr<HalCameraProvider> provider) {
921 if (!kEnableLazyHal) {
922 return;
923 }
924 ALOGV("Saving camera provider %s for camera device %s", provider->mDescriptor.c_str(),
925 cameraId.c_str());
926 std::lock_guard<std::mutex> lock(mProviderInterfaceMapLock);
927 std::unordered_map<std::string, std::shared_ptr<HalCameraProvider>> *primaryMap, *alternateMap;
928 if (usageType == DeviceMode::TORCH) {
929 primaryMap = &mTorchProviderByCameraId;
930 alternateMap = &mCameraProviderByCameraId;
931 } else {
932 primaryMap = &mCameraProviderByCameraId;
933 alternateMap = &mTorchProviderByCameraId;
934 }
935
936 (*primaryMap)[cameraId] = provider;
937 auto search = alternateMap->find(cameraId);
938 if (search != alternateMap->end()) {
939 ALOGW("%s: Camera device %s is using both torch mode and camera mode simultaneously. "
940 "That should not be possible", __FUNCTION__, cameraId.c_str());
941 }
942 ALOGV("%s: Camera device %s connected", __FUNCTION__, cameraId.c_str());
943 }
944
removeRef(DeviceMode usageType,const std::string & cameraId)945 void CameraProviderManager::removeRef(DeviceMode usageType, const std::string &cameraId) {
946 if (!kEnableLazyHal) {
947 return;
948 }
949 ALOGV("Removing camera device %s", cameraId.c_str());
950 std::unordered_map<std::string, std::shared_ptr<HalCameraProvider>> *providerMap;
951 if (usageType == DeviceMode::TORCH) {
952 providerMap = &mTorchProviderByCameraId;
953 } else {
954 providerMap = &mCameraProviderByCameraId;
955 }
956 std::lock_guard<std::mutex> lock(mProviderInterfaceMapLock);
957 auto search = providerMap->find(cameraId);
958 if (search != providerMap->end()) {
959 // Drop the reference to this ICameraProvider. This is safe to do immediately (without an
960 // added delay) because hwservicemanager guarantees to hold the reference for at least five
961 // more seconds. We depend on this behavior so that if the provider is unreferenced and
962 // then referenced again quickly, we do not let the HAL exit and then need to immediately
963 // restart it. An example when this could happen is switching from a front-facing to a
964 // rear-facing camera. If the HAL were to exit during the camera switch, the camera could
965 // appear janky to the user.
966 providerMap->erase(cameraId);
967 IPCThreadState::self()->flushCommands();
968 } else {
969 ALOGE("%s: Asked to remove reference for camera %s, but no reference to it was found. This "
970 "could mean removeRef was called twice for the same camera ID.", __FUNCTION__,
971 cameraId.c_str());
972 }
973 }
974
975 // We ignore sp<IBinder> param here since we need std::shared_ptr<...> which
976 // will be retrieved through the ndk api through addAidlProviderLocked ->
977 // tryToInitializeAidlProvider.
onServiceRegistration(const String16 & name,const sp<IBinder> &)978 void CameraProviderManager::onServiceRegistration(const String16 &name, const sp<IBinder>&) {
979 status_t res = OK;
980 std::lock_guard<std::mutex> providerLock(mProviderLifecycleLock);
981 {
982 std::lock_guard<std::mutex> lock(mInterfaceMutex);
983
984 res = addAidlProviderLocked(toStdString(name));
985 }
986
987 sp<StatusListener> listener = getStatusListener();
988 if (nullptr != listener.get() && res == OK) {
989 listener->onNewProviderRegistered();
990 }
991
992 IPCThreadState::self()->flushCommands();
993 }
994
onRegistration(const hardware::hidl_string &,const hardware::hidl_string & name,bool preexisting)995 hardware::Return<void> CameraProviderManager::onRegistration(
996 const hardware::hidl_string& /*fqName*/,
997 const hardware::hidl_string& name,
998 bool preexisting) {
999 status_t res = OK;
1000 std::lock_guard<std::mutex> providerLock(mProviderLifecycleLock);
1001 {
1002 std::lock_guard<std::mutex> lock(mInterfaceMutex);
1003
1004 res = addHidlProviderLocked(name, preexisting);
1005 }
1006
1007 sp<StatusListener> listener = getStatusListener();
1008 if (nullptr != listener.get() && res == OK) {
1009 listener->onNewProviderRegistered();
1010 }
1011
1012 IPCThreadState::self()->flushCommands();
1013
1014 return hardware::Return<void>();
1015 }
1016
dump(int fd,const Vector<String16> & args)1017 status_t CameraProviderManager::dump(int fd, const Vector<String16>& args) {
1018 std::lock_guard<std::mutex> lock(mInterfaceMutex);
1019
1020 for (auto& provider : mProviders) {
1021 provider->dump(fd, args);
1022 }
1023 return OK;
1024 }
1025
initializeProviderInfoCommon(const std::vector<std::string> & devices)1026 void CameraProviderManager::ProviderInfo::initializeProviderInfoCommon(
1027 const std::vector<std::string> &devices) {
1028 for (auto& device : devices) {
1029 std::string id;
1030 status_t res = addDevice(device, CameraDeviceStatus::PRESENT, &id);
1031 if (res != OK) {
1032 ALOGE("%s: Unable to enumerate camera device '%s': %s (%d)",
1033 __FUNCTION__, device.c_str(), strerror(-res), res);
1034 continue;
1035 }
1036 }
1037
1038 ALOGI("Camera provider %s ready with %zu camera devices",
1039 mProviderName.c_str(), mDevices.size());
1040
1041 // Process cached status callbacks
1042 {
1043 std::lock_guard<std::mutex> lock(mInitLock);
1044
1045 for (auto& statusInfo : mCachedStatus) {
1046 std::string id, physicalId;
1047 if (statusInfo.isPhysicalCameraStatus) {
1048 physicalCameraDeviceStatusChangeLocked(&id, &physicalId,
1049 statusInfo.cameraId, statusInfo.physicalCameraId, statusInfo.status);
1050 } else {
1051 cameraDeviceStatusChangeLocked(&id, statusInfo.cameraId, statusInfo.status);
1052 }
1053 }
1054 mCachedStatus.clear();
1055
1056 mInitialized = true;
1057 }
1058 }
1059
findDeviceInfoLocked(const std::string & id) const1060 CameraProviderManager::ProviderInfo::DeviceInfo* CameraProviderManager::findDeviceInfoLocked(
1061 const std::string& id) const {
1062 for (auto& provider : mProviders) {
1063 using hardware::hidl_version;
1064 IPCTransport transport = provider->getIPCTransport();
1065 // AIDL min version starts at major: 1 minor: 1
1066 hidl_version minVersion =
1067 (transport == IPCTransport::HIDL) ? hidl_version{3, 2} : hidl_version{1, 1} ;
1068 hidl_version maxVersion =
1069 (transport == IPCTransport::HIDL) ? hidl_version{3, 7} : hidl_version{1000, 0};
1070
1071 for (auto& deviceInfo : provider->mDevices) {
1072 if (deviceInfo->mId == id &&
1073 minVersion <= deviceInfo->mVersion && maxVersion >= deviceInfo->mVersion) {
1074 return deviceInfo.get();
1075 }
1076 }
1077 }
1078 return nullptr;
1079 }
1080
getProviderTagIdLocked(const std::string & id) const1081 metadata_vendor_id_t CameraProviderManager::getProviderTagIdLocked(
1082 const std::string& id) const {
1083 metadata_vendor_id_t ret = CAMERA_METADATA_INVALID_VENDOR_ID;
1084
1085 std::lock_guard<std::mutex> lock(mInterfaceMutex);
1086 for (auto& provider : mProviders) {
1087 for (auto& deviceInfo : provider->mDevices) {
1088 if (deviceInfo->mId == id) {
1089 return provider->mProviderTagid;
1090 }
1091 }
1092 }
1093
1094 return ret;
1095 }
1096
queryPhysicalCameraIds()1097 void CameraProviderManager::ProviderInfo::DeviceInfo3::queryPhysicalCameraIds() {
1098 camera_metadata_entry_t entryCap;
1099
1100 entryCap = mCameraCharacteristics.find(ANDROID_REQUEST_AVAILABLE_CAPABILITIES);
1101 for (size_t i = 0; i < entryCap.count; ++i) {
1102 uint8_t capability = entryCap.data.u8[i];
1103 if (capability == ANDROID_REQUEST_AVAILABLE_CAPABILITIES_LOGICAL_MULTI_CAMERA) {
1104 mIsLogicalCamera = true;
1105 break;
1106 }
1107 }
1108 if (!mIsLogicalCamera) {
1109 return;
1110 }
1111
1112 camera_metadata_entry_t entryIds = mCameraCharacteristics.find(
1113 ANDROID_LOGICAL_MULTI_CAMERA_PHYSICAL_IDS);
1114 const uint8_t* ids = entryIds.data.u8;
1115 size_t start = 0;
1116 for (size_t i = 0; i < entryIds.count; ++i) {
1117 if (ids[i] == '\0') {
1118 if (start != i) {
1119 mPhysicalIds.push_back((const char*)ids+start);
1120 }
1121 start = i+1;
1122 }
1123 }
1124 }
1125
getSystemCameraKind()1126 SystemCameraKind CameraProviderManager::ProviderInfo::DeviceInfo3::getSystemCameraKind() {
1127 camera_metadata_entry_t entryCap;
1128 entryCap = mCameraCharacteristics.find(ANDROID_REQUEST_AVAILABLE_CAPABILITIES);
1129 if (entryCap.count == 1 &&
1130 entryCap.data.u8[0] == ANDROID_REQUEST_AVAILABLE_CAPABILITIES_SECURE_IMAGE_DATA) {
1131 return SystemCameraKind::HIDDEN_SECURE_CAMERA;
1132 }
1133
1134 // Go through the capabilities and check if it has
1135 // ANDROID_REQUEST_AVAILABLE_CAPABILITIES_SYSTEM_CAMERA
1136 for (size_t i = 0; i < entryCap.count; ++i) {
1137 uint8_t capability = entryCap.data.u8[i];
1138 if (capability == ANDROID_REQUEST_AVAILABLE_CAPABILITIES_SYSTEM_CAMERA) {
1139 return SystemCameraKind::SYSTEM_ONLY_CAMERA;
1140 }
1141 }
1142 return SystemCameraKind::PUBLIC;
1143 }
1144
getSupportedSizes(const CameraMetadata & ch,uint32_t tag,android_pixel_format_t format,std::vector<std::tuple<size_t,size_t>> * sizes)1145 void CameraProviderManager::ProviderInfo::DeviceInfo3::getSupportedSizes(
1146 const CameraMetadata& ch, uint32_t tag, android_pixel_format_t format,
1147 std::vector<std::tuple<size_t, size_t>> *sizes/*out*/) {
1148 if (sizes == nullptr) {
1149 return;
1150 }
1151
1152 auto scalerDims = ch.find(tag);
1153 if (scalerDims.count > 0) {
1154 // Scaler entry contains 4 elements (format, width, height, type)
1155 for (size_t i = 0; i < scalerDims.count; i += 4) {
1156 if ((scalerDims.data.i32[i] == format) &&
1157 (scalerDims.data.i32[i+3] ==
1158 ANDROID_SCALER_AVAILABLE_STREAM_CONFIGURATIONS_OUTPUT)) {
1159 sizes->push_back(std::make_tuple(scalerDims.data.i32[i+1],
1160 scalerDims.data.i32[i+2]));
1161 }
1162 }
1163 }
1164 }
1165
getSupportedDurations(const CameraMetadata & ch,uint32_t tag,android_pixel_format_t format,const std::vector<std::tuple<size_t,size_t>> & sizes,std::vector<int64_t> * durations)1166 void CameraProviderManager::ProviderInfo::DeviceInfo3::getSupportedDurations(
1167 const CameraMetadata& ch, uint32_t tag, android_pixel_format_t format,
1168 const std::vector<std::tuple<size_t, size_t>>& sizes,
1169 std::vector<int64_t> *durations/*out*/) {
1170 if (durations == nullptr) {
1171 return;
1172 }
1173
1174 auto availableDurations = ch.find(tag);
1175 if (availableDurations.count > 0) {
1176 // Duration entry contains 4 elements (format, width, height, duration)
1177 for (const auto& size : sizes) {
1178 int64_t width = std::get<0>(size);
1179 int64_t height = std::get<1>(size);
1180 for (size_t i = 0; i < availableDurations.count; i += 4) {
1181 if ((availableDurations.data.i64[i] == format) &&
1182 (availableDurations.data.i64[i+1] == width) &&
1183 (availableDurations.data.i64[i+2] == height)) {
1184 durations->push_back(availableDurations.data.i64[i+3]);
1185 break;
1186 }
1187 }
1188 }
1189 }
1190 }
1191
getSupportedDynamicDepthDurations(const std::vector<int64_t> & depthDurations,const std::vector<int64_t> & blobDurations,std::vector<int64_t> * dynamicDepthDurations)1192 void CameraProviderManager::ProviderInfo::DeviceInfo3::getSupportedDynamicDepthDurations(
1193 const std::vector<int64_t>& depthDurations, const std::vector<int64_t>& blobDurations,
1194 std::vector<int64_t> *dynamicDepthDurations /*out*/) {
1195 if ((dynamicDepthDurations == nullptr) || (depthDurations.size() != blobDurations.size())) {
1196 return;
1197 }
1198
1199 // Unfortunately there is no direct way to calculate the dynamic depth stream duration.
1200 // Processing time on camera service side can vary greatly depending on multiple
1201 // variables which are not under our control. Make a guesstimate by taking the maximum
1202 // corresponding duration value from depth and blob.
1203 auto depthDuration = depthDurations.begin();
1204 auto blobDuration = blobDurations.begin();
1205 dynamicDepthDurations->reserve(depthDurations.size());
1206 while ((depthDuration != depthDurations.end()) && (blobDuration != blobDurations.end())) {
1207 dynamicDepthDurations->push_back(std::max(*depthDuration, *blobDuration));
1208 depthDuration++; blobDuration++;
1209 }
1210 }
1211
getSupportedDynamicDepthSizes(const std::vector<std::tuple<size_t,size_t>> & blobSizes,const std::vector<std::tuple<size_t,size_t>> & depthSizes,std::vector<std::tuple<size_t,size_t>> * dynamicDepthSizes,std::vector<std::tuple<size_t,size_t>> * internalDepthSizes)1212 void CameraProviderManager::ProviderInfo::DeviceInfo3::getSupportedDynamicDepthSizes(
1213 const std::vector<std::tuple<size_t, size_t>>& blobSizes,
1214 const std::vector<std::tuple<size_t, size_t>>& depthSizes,
1215 std::vector<std::tuple<size_t, size_t>> *dynamicDepthSizes /*out*/,
1216 std::vector<std::tuple<size_t, size_t>> *internalDepthSizes /*out*/) {
1217 if (dynamicDepthSizes == nullptr || internalDepthSizes == nullptr) {
1218 return;
1219 }
1220
1221 // The dynamic depth spec. does not mention how close the AR ratio should be.
1222 // Try using something appropriate.
1223 float ARTolerance = kDepthARTolerance;
1224
1225 for (const auto& blobSize : blobSizes) {
1226 float jpegAR = static_cast<float> (std::get<0>(blobSize)) /
1227 static_cast<float>(std::get<1>(blobSize));
1228 bool found = false;
1229 for (const auto& depthSize : depthSizes) {
1230 if (depthSize == blobSize) {
1231 internalDepthSizes->push_back(depthSize);
1232 found = true;
1233 break;
1234 } else {
1235 float depthAR = static_cast<float> (std::get<0>(depthSize)) /
1236 static_cast<float>(std::get<1>(depthSize));
1237 if (std::fabs(jpegAR - depthAR) <= ARTolerance) {
1238 internalDepthSizes->push_back(depthSize);
1239 found = true;
1240 break;
1241 }
1242 }
1243 }
1244
1245 if (found) {
1246 dynamicDepthSizes->push_back(blobSize);
1247 }
1248 }
1249 }
1250
isConcurrentDynamicRangeCaptureSupported(const CameraMetadata & deviceInfo,int64_t profile,int64_t concurrentProfile)1251 bool CameraProviderManager::isConcurrentDynamicRangeCaptureSupported(
1252 const CameraMetadata& deviceInfo, int64_t profile, int64_t concurrentProfile) {
1253 auto entry = deviceInfo.find(ANDROID_REQUEST_AVAILABLE_CAPABILITIES);
1254 if (entry.count == 0) {
1255 return false;
1256 }
1257
1258 const auto it = std::find(entry.data.u8, entry.data.u8 + entry.count,
1259 ANDROID_REQUEST_AVAILABLE_CAPABILITIES_DYNAMIC_RANGE_TEN_BIT);
1260 if (it == entry.data.u8 + entry.count) {
1261 return false;
1262 }
1263
1264 entry = deviceInfo.find(ANDROID_REQUEST_AVAILABLE_DYNAMIC_RANGE_PROFILES_MAP);
1265 if (entry.count == 0 || ((entry.count % 3) != 0)) {
1266 return false;
1267 }
1268
1269 for (size_t i = 0; i < entry.count; i += 3) {
1270 if (entry.data.i64[i] == profile) {
1271 if ((entry.data.i64[i+1] == 0) || (entry.data.i64[i+1] & concurrentProfile)) {
1272 return true;
1273 }
1274 }
1275 }
1276
1277 return false;
1278 }
1279
deriveHeicUltraHDRTags(bool maxResolution)1280 status_t CameraProviderManager::ProviderInfo::DeviceInfo3::deriveHeicUltraHDRTags(
1281 bool maxResolution) {
1282 if (!flags::camera_heif_gainmap() || kFrameworkHeicUltraHDRDisabled ||
1283 mCompositeHeicUltraHDRDisabled ||
1284 !camera3::HeicCompositeStream::isInMemoryTempFileSupported()) {
1285 return OK;
1286 }
1287
1288 const int32_t scalerSizesTag =
1289 SessionConfigurationUtils::getAppropriateModeTag(
1290 ANDROID_SCALER_AVAILABLE_STREAM_CONFIGURATIONS, maxResolution);
1291 const int32_t scalerMinFrameDurationsTag = SessionConfigurationUtils::getAppropriateModeTag(
1292 ANDROID_SCALER_AVAILABLE_MIN_FRAME_DURATIONS, maxResolution);
1293 const int32_t scalerStallDurationsTag =
1294 SessionConfigurationUtils::getAppropriateModeTag(
1295 ANDROID_SCALER_AVAILABLE_STALL_DURATIONS, maxResolution);
1296
1297 const int32_t heicUltraHDRSizesTag =
1298 SessionConfigurationUtils::getAppropriateModeTag(
1299 ANDROID_HEIC_AVAILABLE_HEIC_ULTRA_HDR_STREAM_CONFIGURATIONS, maxResolution);
1300 const int32_t heicUltraHDRStallDurationsTag =
1301 SessionConfigurationUtils::getAppropriateModeTag(
1302 ANDROID_HEIC_AVAILABLE_HEIC_ULTRA_HDR_STALL_DURATIONS, maxResolution);
1303 const int32_t heicUltraHDRFrameDurationsTag =
1304 SessionConfigurationUtils::getAppropriateModeTag(
1305 ANDROID_HEIC_AVAILABLE_HEIC_ULTRA_HDR_MIN_FRAME_DURATIONS, maxResolution);
1306
1307 auto& c = mCameraCharacteristics;
1308 std::vector<std::tuple<size_t, size_t>> supportedP010Sizes, filteredSizes;
1309 auto capabilities = c.find(ANDROID_REQUEST_AVAILABLE_CAPABILITIES);
1310 if (capabilities.count == 0) {
1311 ALOGE("%s: Supported camera capabilities is empty!", __FUNCTION__);
1312 return BAD_VALUE;
1313 }
1314
1315 auto end = capabilities.data.u8 + capabilities.count;
1316 bool isTenBitOutputSupported = std::find(capabilities.data.u8, end,
1317 ANDROID_REQUEST_AVAILABLE_CAPABILITIES_DYNAMIC_RANGE_TEN_BIT) != end;
1318 if (!isTenBitOutputSupported) {
1319 // No 10-bit support, nothing more to do.
1320 return OK;
1321 }
1322
1323 getSupportedSizes(c, scalerSizesTag,
1324 static_cast<android_pixel_format_t>(HAL_PIXEL_FORMAT_YCBCR_P010), &supportedP010Sizes);
1325 auto it = supportedP010Sizes.begin();
1326 if (supportedP010Sizes.empty()) {
1327 // Nothing to do in this case.
1328 return OK;
1329 }
1330
1331 std::vector<int32_t> heicUltraHDREntries;
1332 int64_t stall = 0;
1333 bool useHeic = false;
1334 bool useGrid = false;
1335 for (const auto& it : supportedP010Sizes) {
1336 int32_t width = std::get<0>(it);
1337 int32_t height = std::get<1>(it);
1338 int32_t gainmapWidth = std::get<0>(it) / HeicCompositeStream::kGainmapScale;
1339 int32_t gainmapHeight = std::get<1>(it) / HeicCompositeStream::kGainmapScale;
1340 // Support gainmap sizes that are sufficiently aligned so CPU specific copy
1341 // optimizations can be utilized without side effects.
1342 if (((gainmapWidth % 64) == 0) && ((gainmapHeight % 2) == 0) &&
1343 camera3::HeicCompositeStream::isSizeSupportedByHeifEncoder(width, height,
1344 &useHeic, &useGrid, &stall, nullptr /*hevcName*/,
1345 kFrameworkHeicAllowSWCodecs) &&
1346 camera3::HeicCompositeStream::isSizeSupportedByHeifEncoder(gainmapWidth,
1347 gainmapHeight, &useHeic, &useGrid, &stall, nullptr /*hevcName*/,
1348 kFrameworkHeicAllowSWCodecs)) {
1349 int32_t entry[4] = {HAL_PIXEL_FORMAT_BLOB, static_cast<int32_t> (std::get<0>(it)),
1350 static_cast<int32_t> (std::get<1>(it)),
1351 ANDROID_HEIC_AVAILABLE_HEIC_ULTRA_HDR_STREAM_CONFIGURATIONS_OUTPUT };
1352 heicUltraHDREntries.insert(heicUltraHDREntries.end(), entry, entry + 4);
1353 filteredSizes.push_back(it);
1354 }
1355 }
1356
1357 std::vector<int64_t> heicUltraHDRMinDurations, heicUltraHDRStallDurations;
1358 auto ret = deriveBlobDurationEntries(c, maxResolution, filteredSizes,
1359 &heicUltraHDRStallDurations, &heicUltraHDRMinDurations);
1360 if (ret != OK) {
1361 return ret;
1362 }
1363
1364 return insertStreamConfigTags(heicUltraHDRSizesTag, heicUltraHDRFrameDurationsTag,
1365 heicUltraHDRStallDurationsTag, heicUltraHDREntries,
1366 heicUltraHDRMinDurations, heicUltraHDRStallDurations, &c);
1367 }
1368
insertStreamConfigTags(int32_t sizeTag,int32_t minFrameDurationTag,int32_t stallDurationTag,const std::vector<int32_t> & sizeEntries,const std::vector<int64_t> & minFrameDurationEntries,const std::vector<int64_t> & stallDurationEntries,CameraMetadata * c)1369 status_t CameraProviderManager::ProviderInfo::DeviceInfo3::insertStreamConfigTags(
1370 int32_t sizeTag, int32_t minFrameDurationTag, int32_t stallDurationTag,
1371 const std::vector<int32_t>& sizeEntries,
1372 const std::vector<int64_t>& minFrameDurationEntries,
1373 const std::vector<int64_t>& stallDurationEntries, CameraMetadata* c /*out*/) {
1374 std::vector<int32_t> supportedChTags;
1375 auto chTags = c->find(ANDROID_REQUEST_AVAILABLE_CHARACTERISTICS_KEYS);
1376 if (chTags.count == 0) {
1377 ALOGE("%s: No supported camera characteristics keys!", __FUNCTION__);
1378 return BAD_VALUE;
1379 }
1380 supportedChTags.reserve(chTags.count + 3);
1381 supportedChTags.insert(supportedChTags.end(), chTags.data.i32, chTags.data.i32 + chTags.count);
1382 supportedChTags.push_back(sizeTag);
1383 supportedChTags.push_back(minFrameDurationTag);
1384 supportedChTags.push_back(stallDurationTag);
1385 c->update(sizeTag, sizeEntries.data(), sizeEntries.size());
1386 c->update(minFrameDurationTag, minFrameDurationEntries.data(), minFrameDurationEntries.size());
1387 c->update(stallDurationTag, stallDurationEntries.data(), stallDurationEntries.size());
1388 c->update(ANDROID_REQUEST_AVAILABLE_CHARACTERISTICS_KEYS, supportedChTags.data(),
1389 supportedChTags.size());
1390
1391 return OK;
1392 }
1393
deriveBlobDurationEntries(const CameraMetadata & c,bool maxResolution,const std::vector<std::tuple<size_t,size_t>> & filteredSizes,std::vector<int64_t> * filteredStallDurations,std::vector<int64_t> * filteredMinDurations)1394 status_t CameraProviderManager::ProviderInfo::DeviceInfo3::deriveBlobDurationEntries(
1395 const CameraMetadata& c, bool maxResolution,
1396 const std::vector<std::tuple<size_t, size_t>>& filteredSizes,
1397 std::vector<int64_t>* filteredStallDurations /*out*/,
1398 std::vector<int64_t>* filteredMinDurations /*out*/) {
1399 std::vector<int64_t> blobMinDurations, blobStallDurations;
1400 const int32_t scalerMinFrameDurationsTag = SessionConfigurationUtils::getAppropriateModeTag(
1401 ANDROID_SCALER_AVAILABLE_MIN_FRAME_DURATIONS, maxResolution);
1402 const int32_t scalerStallDurationsTag = SessionConfigurationUtils::getAppropriateModeTag(
1403 ANDROID_SCALER_AVAILABLE_STALL_DURATIONS, maxResolution);
1404 // We use the jpeg stall and min frame durations to approximate the respective Heic UltraHDR
1405 // durations.
1406 getSupportedDurations(c, scalerMinFrameDurationsTag, HAL_PIXEL_FORMAT_BLOB, filteredSizes,
1407 &blobMinDurations);
1408 getSupportedDurations(c, scalerStallDurationsTag, HAL_PIXEL_FORMAT_BLOB, filteredSizes,
1409 &blobStallDurations);
1410 if (blobStallDurations.empty() || blobMinDurations.empty() ||
1411 filteredSizes.size() != blobMinDurations.size() ||
1412 blobMinDurations.size() != blobStallDurations.size()) {
1413 ALOGE("%s: Unexpected number of available blob durations! %zu vs. %zu with "
1414 "filteredSizes size: %zu",
1415 __FUNCTION__, blobMinDurations.size(), blobStallDurations.size(),
1416 filteredSizes.size());
1417 return BAD_VALUE;
1418 }
1419
1420 auto itDuration = blobMinDurations.begin();
1421 auto itSize = filteredSizes.begin();
1422 while (itDuration != blobMinDurations.end()) {
1423 int64_t entry[4] = {HAL_PIXEL_FORMAT_BLOB, static_cast<int32_t>(std::get<0>(*itSize)),
1424 static_cast<int32_t>(std::get<1>(*itSize)), *itDuration};
1425 filteredMinDurations->insert(filteredMinDurations->end(), entry, entry + 4);
1426 itDuration++;
1427 itSize++;
1428 }
1429
1430 itDuration = blobStallDurations.begin();
1431 itSize = filteredSizes.begin();
1432 while (itDuration != blobStallDurations.end()) {
1433 int64_t entry[4] = {HAL_PIXEL_FORMAT_BLOB, static_cast<int32_t>(std::get<0>(*itSize)),
1434 static_cast<int32_t>(std::get<1>(*itSize)), *itDuration};
1435 filteredStallDurations->insert(filteredStallDurations->end(), entry, entry + 4);
1436 itDuration++;
1437 itSize++;
1438 }
1439
1440 return OK;
1441 }
1442
deriveJpegRTags(bool maxResolution)1443 status_t CameraProviderManager::ProviderInfo::DeviceInfo3::deriveJpegRTags(bool maxResolution) {
1444 if (kFrameworkJpegRDisabled || mCompositeJpegRDisabled) {
1445 return OK;
1446 }
1447
1448 const int32_t scalerSizesTag =
1449 SessionConfigurationUtils::getAppropriateModeTag(
1450 ANDROID_SCALER_AVAILABLE_STREAM_CONFIGURATIONS, maxResolution);
1451 const int32_t scalerMinFrameDurationsTag = SessionConfigurationUtils::getAppropriateModeTag(
1452 ANDROID_SCALER_AVAILABLE_MIN_FRAME_DURATIONS, maxResolution);
1453 const int32_t scalerStallDurationsTag =
1454 SessionConfigurationUtils::getAppropriateModeTag(
1455 ANDROID_SCALER_AVAILABLE_STALL_DURATIONS, maxResolution);
1456
1457 const int32_t jpegRSizesTag =
1458 SessionConfigurationUtils::getAppropriateModeTag(
1459 ANDROID_JPEGR_AVAILABLE_JPEG_R_STREAM_CONFIGURATIONS, maxResolution);
1460 const int32_t jpegRStallDurationsTag =
1461 SessionConfigurationUtils::getAppropriateModeTag(
1462 ANDROID_JPEGR_AVAILABLE_JPEG_R_STALL_DURATIONS, maxResolution);
1463 const int32_t jpegRMinFrameDurationsTag =
1464 SessionConfigurationUtils::getAppropriateModeTag(
1465 ANDROID_JPEGR_AVAILABLE_JPEG_R_MIN_FRAME_DURATIONS, maxResolution);
1466
1467 auto& c = mCameraCharacteristics;
1468 std::vector<std::tuple<size_t, size_t>> supportedP010Sizes, supportedBlobSizes;
1469 auto capabilities = c.find(ANDROID_REQUEST_AVAILABLE_CAPABILITIES);
1470 if (capabilities.count == 0) {
1471 ALOGE("%s: Supported camera capabilities is empty!", __FUNCTION__);
1472 return BAD_VALUE;
1473 }
1474
1475 auto end = capabilities.data.u8 + capabilities.count;
1476 bool isTenBitOutputSupported = std::find(capabilities.data.u8, end,
1477 ANDROID_REQUEST_AVAILABLE_CAPABILITIES_DYNAMIC_RANGE_TEN_BIT) != end;
1478 if (!isTenBitOutputSupported) {
1479 // No 10-bit support, nothing more to do.
1480 return OK;
1481 }
1482
1483 if (!isConcurrentDynamicRangeCaptureSupported(c,
1484 ANDROID_REQUEST_AVAILABLE_DYNAMIC_RANGE_PROFILES_MAP_HLG10,
1485 ANDROID_REQUEST_AVAILABLE_DYNAMIC_RANGE_PROFILES_MAP_STANDARD) &&
1486 !property_get_bool("ro.camera.enableCompositeAPI0JpegR", false)) {
1487 // API0, P010 only Jpeg/R support is meant to be used only as a reference due to possible
1488 // impact on quality and performance.
1489 // This data path will be turned off by default and individual device builds must enable
1490 // 'ro.camera.enableCompositeAPI0JpegR' in order to experiment using it.
1491 mCompositeJpegRDisabled = true;
1492 return OK;
1493 }
1494
1495 getSupportedSizes(c, scalerSizesTag,
1496 static_cast<android_pixel_format_t>(HAL_PIXEL_FORMAT_BLOB), &supportedBlobSizes);
1497 getSupportedSizes(c, scalerSizesTag,
1498 static_cast<android_pixel_format_t>(HAL_PIXEL_FORMAT_YCBCR_P010), &supportedP010Sizes);
1499 auto it = supportedP010Sizes.begin();
1500 while (it != supportedP010Sizes.end()) {
1501 if (std::find(supportedBlobSizes.begin(), supportedBlobSizes.end(), *it) ==
1502 supportedBlobSizes.end()) {
1503 it = supportedP010Sizes.erase(it);
1504 } else {
1505 it++;
1506 }
1507 }
1508 if (supportedP010Sizes.empty()) {
1509 // Nothing to do in this case.
1510 return OK;
1511 }
1512
1513 std::vector<int32_t> jpegREntries;
1514 for (const auto& it : supportedP010Sizes) {
1515 int32_t entry[4] = {HAL_PIXEL_FORMAT_BLOB, static_cast<int32_t> (std::get<0>(it)),
1516 static_cast<int32_t> (std::get<1>(it)),
1517 ANDROID_JPEGR_AVAILABLE_JPEG_R_STREAM_CONFIGURATIONS_OUTPUT };
1518 jpegREntries.insert(jpegREntries.end(), entry, entry + 4);
1519 }
1520
1521 std::vector<int64_t> jpegRMinDurations, jpegRStallDurations;
1522 auto ret = deriveBlobDurationEntries(c, maxResolution, supportedP010Sizes, &jpegRStallDurations,
1523 &jpegRMinDurations);
1524 if (ret != OK) {
1525 return ret;
1526 }
1527
1528 ret = insertStreamConfigTags(jpegRSizesTag, jpegRMinFrameDurationsTag, jpegRStallDurationsTag,
1529 jpegREntries, jpegRMinDurations, jpegRStallDurations, &c);
1530 if (ret != OK) {
1531 return ret;
1532 }
1533
1534 auto colorSpaces = c.find(ANDROID_REQUEST_AVAILABLE_COLOR_SPACE_PROFILES_MAP);
1535 if (colorSpaces.count > 0 && !maxResolution) {
1536 bool displayP3Support = false;
1537 int64_t dynamicRange = ANDROID_REQUEST_AVAILABLE_DYNAMIC_RANGE_PROFILES_MAP_STANDARD;
1538 for (size_t i = 0; i < colorSpaces.count; i += 3) {
1539 auto colorSpace = colorSpaces.data.i64[i];
1540 auto format = colorSpaces.data.i64[i+1];
1541 bool formatMatch = (format == static_cast<int64_t>(PublicFormat::JPEG)) ||
1542 (format == static_cast<int64_t>(PublicFormat::UNKNOWN));
1543 bool colorSpaceMatch =
1544 colorSpace == ANDROID_REQUEST_AVAILABLE_COLOR_SPACE_PROFILES_MAP_DISPLAY_P3;
1545 if (formatMatch && colorSpaceMatch) {
1546 displayP3Support = true;
1547 }
1548
1549 // Jpeg/R will support the same dynamic range profiles as P010
1550 if (format == static_cast<int64_t>(PublicFormat::YCBCR_P010)) {
1551 dynamicRange |= colorSpaces.data.i64[i+2];
1552 }
1553 }
1554 if (displayP3Support) {
1555 std::vector<int64_t> supportedColorSpaces;
1556 // Jpeg/R must support the default system as well ase display P3 color space
1557 supportedColorSpaces.reserve(colorSpaces.count + 3*2);
1558 supportedColorSpaces.insert(supportedColorSpaces.end(), colorSpaces.data.i64,
1559 colorSpaces.data.i64 + colorSpaces.count);
1560
1561 supportedColorSpaces.push_back(static_cast<int64_t>(
1562 ANDROID_REQUEST_AVAILABLE_COLOR_SPACE_PROFILES_MAP_SRGB));
1563 supportedColorSpaces.push_back(static_cast<int64_t>(PublicFormat::JPEG_R));
1564 supportedColorSpaces.push_back(dynamicRange);
1565
1566 supportedColorSpaces.push_back(static_cast<int64_t>(
1567 ANDROID_REQUEST_AVAILABLE_COLOR_SPACE_PROFILES_MAP_DISPLAY_P3));
1568 supportedColorSpaces.push_back(static_cast<int64_t>(PublicFormat::JPEG_R));
1569 supportedColorSpaces.push_back(dynamicRange);
1570 c.update(ANDROID_REQUEST_AVAILABLE_COLOR_SPACE_PROFILES_MAP,
1571 supportedColorSpaces.data(), supportedColorSpaces.size());
1572 }
1573 }
1574
1575 return OK;
1576 }
1577
addDynamicDepthTags(bool maxResolution)1578 status_t CameraProviderManager::ProviderInfo::DeviceInfo3::addDynamicDepthTags(
1579 bool maxResolution) {
1580 const int32_t depthExclTag = ANDROID_DEPTH_DEPTH_IS_EXCLUSIVE;
1581
1582 const int32_t scalerSizesTag =
1583 SessionConfigurationUtils::getAppropriateModeTag(
1584 ANDROID_SCALER_AVAILABLE_STREAM_CONFIGURATIONS, maxResolution);
1585 const int32_t scalerMinFrameDurationsTag =
1586 ANDROID_SCALER_AVAILABLE_MIN_FRAME_DURATIONS;
1587 const int32_t scalerStallDurationsTag =
1588 SessionConfigurationUtils::getAppropriateModeTag(
1589 ANDROID_SCALER_AVAILABLE_STALL_DURATIONS, maxResolution);
1590
1591 const int32_t depthSizesTag =
1592 SessionConfigurationUtils::getAppropriateModeTag(
1593 ANDROID_DEPTH_AVAILABLE_DEPTH_STREAM_CONFIGURATIONS, maxResolution);
1594 const int32_t depthStallDurationsTag =
1595 SessionConfigurationUtils::getAppropriateModeTag(
1596 ANDROID_DEPTH_AVAILABLE_DEPTH_STALL_DURATIONS, maxResolution);
1597 const int32_t depthMinFrameDurationsTag =
1598 SessionConfigurationUtils::getAppropriateModeTag(
1599 ANDROID_DEPTH_AVAILABLE_DEPTH_MIN_FRAME_DURATIONS, maxResolution);
1600
1601 const int32_t dynamicDepthSizesTag =
1602 SessionConfigurationUtils::getAppropriateModeTag(
1603 ANDROID_DEPTH_AVAILABLE_DYNAMIC_DEPTH_STREAM_CONFIGURATIONS, maxResolution);
1604 const int32_t dynamicDepthStallDurationsTag =
1605 SessionConfigurationUtils::getAppropriateModeTag(
1606 ANDROID_DEPTH_AVAILABLE_DYNAMIC_DEPTH_STALL_DURATIONS, maxResolution);
1607 const int32_t dynamicDepthMinFrameDurationsTag =
1608 SessionConfigurationUtils::getAppropriateModeTag(
1609 ANDROID_DEPTH_AVAILABLE_DYNAMIC_DEPTH_MIN_FRAME_DURATIONS, maxResolution);
1610
1611 auto& c = mCameraCharacteristics;
1612 std::vector<std::tuple<size_t, size_t>> supportedBlobSizes, supportedDepthSizes,
1613 supportedDynamicDepthSizes, internalDepthSizes;
1614 auto chTags = c.find(ANDROID_REQUEST_AVAILABLE_CHARACTERISTICS_KEYS);
1615 if (chTags.count == 0) {
1616 ALOGE("%s: Supported camera characteristics is empty!", __FUNCTION__);
1617 return BAD_VALUE;
1618 }
1619
1620 bool isDepthExclusivePresent = std::find(chTags.data.i32, chTags.data.i32 + chTags.count,
1621 depthExclTag) != (chTags.data.i32 + chTags.count);
1622 bool isDepthSizePresent = std::find(chTags.data.i32, chTags.data.i32 + chTags.count,
1623 depthSizesTag) != (chTags.data.i32 + chTags.count);
1624 if (!(isDepthExclusivePresent && isDepthSizePresent)) {
1625 // No depth support, nothing more to do.
1626 return OK;
1627 }
1628
1629 auto depthExclusiveEntry = c.find(depthExclTag);
1630 if (depthExclusiveEntry.count > 0) {
1631 if (depthExclusiveEntry.data.u8[0] != ANDROID_DEPTH_DEPTH_IS_EXCLUSIVE_FALSE) {
1632 // Depth support is exclusive, nothing more to do.
1633 return OK;
1634 }
1635 } else {
1636 ALOGE("%s: Advertised depth exclusive tag but value is not present!", __FUNCTION__);
1637 return BAD_VALUE;
1638 }
1639
1640 getSupportedSizes(c, scalerSizesTag, HAL_PIXEL_FORMAT_BLOB,
1641 &supportedBlobSizes);
1642 getSupportedSizes(c, depthSizesTag, HAL_PIXEL_FORMAT_Y16, &supportedDepthSizes);
1643 if (supportedBlobSizes.empty() || supportedDepthSizes.empty()) {
1644 // Nothing to do in this case.
1645 return OK;
1646 }
1647
1648 getSupportedDynamicDepthSizes(supportedBlobSizes, supportedDepthSizes,
1649 &supportedDynamicDepthSizes, &internalDepthSizes);
1650 if (supportedDynamicDepthSizes.empty()) {
1651 // Nothing more to do.
1652 return OK;
1653 }
1654
1655 std::vector<int32_t> dynamicDepthEntries;
1656 for (const auto& it : supportedDynamicDepthSizes) {
1657 int32_t entry[4] = {HAL_PIXEL_FORMAT_BLOB, static_cast<int32_t> (std::get<0>(it)),
1658 static_cast<int32_t> (std::get<1>(it)),
1659 ANDROID_SCALER_AVAILABLE_STREAM_CONFIGURATIONS_OUTPUT };
1660 dynamicDepthEntries.insert(dynamicDepthEntries.end(), entry, entry + 4);
1661 }
1662
1663 std::vector<int64_t> depthMinDurations, depthStallDurations;
1664 std::vector<int64_t> blobMinDurations, blobStallDurations;
1665 std::vector<int64_t> dynamicDepthMinDurations, dynamicDepthStallDurations;
1666
1667 getSupportedDurations(c, depthMinFrameDurationsTag, HAL_PIXEL_FORMAT_Y16, internalDepthSizes,
1668 &depthMinDurations);
1669 getSupportedDurations(c, scalerMinFrameDurationsTag, HAL_PIXEL_FORMAT_BLOB,
1670 supportedDynamicDepthSizes, &blobMinDurations);
1671 if (blobMinDurations.empty() || depthMinDurations.empty() ||
1672 (depthMinDurations.size() != blobMinDurations.size())) {
1673 ALOGE("%s: Unexpected number of available depth min durations! %zu vs. %zu",
1674 __FUNCTION__, depthMinDurations.size(), blobMinDurations.size());
1675 return BAD_VALUE;
1676 }
1677
1678 getSupportedDurations(c, depthStallDurationsTag, HAL_PIXEL_FORMAT_Y16, internalDepthSizes,
1679 &depthStallDurations);
1680 getSupportedDurations(c, scalerStallDurationsTag, HAL_PIXEL_FORMAT_BLOB,
1681 supportedDynamicDepthSizes, &blobStallDurations);
1682 if (blobStallDurations.empty() || depthStallDurations.empty() ||
1683 (depthStallDurations.size() != blobStallDurations.size())) {
1684 ALOGE("%s: Unexpected number of available depth stall durations! %zu vs. %zu",
1685 __FUNCTION__, depthStallDurations.size(), blobStallDurations.size());
1686 return BAD_VALUE;
1687 }
1688
1689 getSupportedDynamicDepthDurations(depthMinDurations, blobMinDurations,
1690 &dynamicDepthMinDurations);
1691 getSupportedDynamicDepthDurations(depthStallDurations, blobStallDurations,
1692 &dynamicDepthStallDurations);
1693 if (dynamicDepthMinDurations.empty() || dynamicDepthStallDurations.empty() ||
1694 (dynamicDepthMinDurations.size() != dynamicDepthStallDurations.size())) {
1695 ALOGE("%s: Unexpected number of dynamic depth stall/min durations! %zu vs. %zu",
1696 __FUNCTION__, dynamicDepthMinDurations.size(), dynamicDepthStallDurations.size());
1697 return BAD_VALUE;
1698 }
1699
1700 std::vector<int64_t> dynamicDepthMinDurationEntries;
1701 auto itDuration = dynamicDepthMinDurations.begin();
1702 auto itSize = supportedDynamicDepthSizes.begin();
1703 while (itDuration != dynamicDepthMinDurations.end()) {
1704 int64_t entry[4] = {HAL_PIXEL_FORMAT_BLOB, static_cast<int32_t> (std::get<0>(*itSize)),
1705 static_cast<int32_t> (std::get<1>(*itSize)), *itDuration};
1706 dynamicDepthMinDurationEntries.insert(dynamicDepthMinDurationEntries.end(), entry,
1707 entry + 4);
1708 itDuration++; itSize++;
1709 }
1710
1711 std::vector<int64_t> dynamicDepthStallDurationEntries;
1712 itDuration = dynamicDepthStallDurations.begin();
1713 itSize = supportedDynamicDepthSizes.begin();
1714 while (itDuration != dynamicDepthStallDurations.end()) {
1715 int64_t entry[4] = {HAL_PIXEL_FORMAT_BLOB, static_cast<int32_t> (std::get<0>(*itSize)),
1716 static_cast<int32_t> (std::get<1>(*itSize)), *itDuration};
1717 dynamicDepthStallDurationEntries.insert(dynamicDepthStallDurationEntries.end(), entry,
1718 entry + 4);
1719 itDuration++; itSize++;
1720 }
1721
1722 std::vector<int32_t> supportedChTags;
1723 supportedChTags.reserve(chTags.count + 3);
1724 supportedChTags.insert(supportedChTags.end(), chTags.data.i32,
1725 chTags.data.i32 + chTags.count);
1726 supportedChTags.push_back(dynamicDepthSizesTag);
1727 supportedChTags.push_back(dynamicDepthMinFrameDurationsTag);
1728 supportedChTags.push_back(dynamicDepthStallDurationsTag);
1729 c.update(dynamicDepthSizesTag, dynamicDepthEntries.data(), dynamicDepthEntries.size());
1730 c.update(dynamicDepthMinFrameDurationsTag, dynamicDepthMinDurationEntries.data(),
1731 dynamicDepthMinDurationEntries.size());
1732 c.update(dynamicDepthStallDurationsTag, dynamicDepthStallDurationEntries.data(),
1733 dynamicDepthStallDurationEntries.size());
1734 c.update(ANDROID_REQUEST_AVAILABLE_CHARACTERISTICS_KEYS, supportedChTags.data(),
1735 supportedChTags.size());
1736
1737 return OK;
1738 }
1739
fixupTorchStrengthTags()1740 status_t CameraProviderManager::ProviderInfo::DeviceInfo3::fixupTorchStrengthTags() {
1741 status_t res = OK;
1742 auto& c = mCameraCharacteristics;
1743 auto flashInfoStrengthDefaultLevelEntry = c.find(ANDROID_FLASH_INFO_STRENGTH_DEFAULT_LEVEL);
1744 if (flashInfoStrengthDefaultLevelEntry.count == 0) {
1745 int32_t flashInfoStrengthDefaultLevel = 1;
1746 res = c.update(ANDROID_FLASH_INFO_STRENGTH_DEFAULT_LEVEL,
1747 &flashInfoStrengthDefaultLevel, 1);
1748 if (res != OK) {
1749 ALOGE("%s: Failed to update ANDROID_FLASH_INFO_STRENGTH_DEFAULT_LEVEL: %s (%d)",
1750 __FUNCTION__,strerror(-res), res);
1751 return res;
1752 }
1753 }
1754 auto flashInfoStrengthMaximumLevelEntry = c.find(ANDROID_FLASH_INFO_STRENGTH_MAXIMUM_LEVEL);
1755 if (flashInfoStrengthMaximumLevelEntry.count == 0) {
1756 int32_t flashInfoStrengthMaximumLevel = 1;
1757 res = c.update(ANDROID_FLASH_INFO_STRENGTH_MAXIMUM_LEVEL,
1758 &flashInfoStrengthMaximumLevel, 1);
1759 if (res != OK) {
1760 ALOGE("%s: Failed to update ANDROID_FLASH_INFO_STRENGTH_MAXIMUM_LEVEL: %s (%d)",
1761 __FUNCTION__,strerror(-res), res);
1762 return res;
1763 }
1764 }
1765 return res;
1766 }
1767
1768
fixupManualFlashStrengthControlTags(CameraMetadata & ch)1769 status_t CameraProviderManager::ProviderInfo::DeviceInfo3::fixupManualFlashStrengthControlTags(
1770 CameraMetadata& ch) {
1771 status_t res = OK;
1772 auto flashSingleStrengthMaxLevelEntry = ch.find(ANDROID_FLASH_SINGLE_STRENGTH_MAX_LEVEL);
1773 if (flashSingleStrengthMaxLevelEntry.count == 0) {
1774 int32_t flashSingleStrengthMaxLevel = 1;
1775 res = ch.update(ANDROID_FLASH_SINGLE_STRENGTH_MAX_LEVEL,
1776 &flashSingleStrengthMaxLevel, 1);
1777 if (res != OK) {
1778 ALOGE("%s: Failed to update ANDROID_FLASH_SINGLE_STRENGTH_MAX_LEVEL: %s (%d)",
1779 __FUNCTION__,strerror(-res), res);
1780 return res;
1781 }
1782 }
1783 auto flashSingleStrengthDefaultLevelEntry = ch.find(
1784 ANDROID_FLASH_SINGLE_STRENGTH_DEFAULT_LEVEL);
1785 if (flashSingleStrengthDefaultLevelEntry.count == 0) {
1786 int32_t flashSingleStrengthDefaultLevel = 1;
1787 res = ch.update(ANDROID_FLASH_SINGLE_STRENGTH_DEFAULT_LEVEL,
1788 &flashSingleStrengthDefaultLevel, 1);
1789 if (res != OK) {
1790 ALOGE("%s: Failed to update ANDROID_FLASH_SINGLE_STRENGTH_DEFAULT_LEVEL: %s (%d)",
1791 __FUNCTION__,strerror(-res), res);
1792 return res;
1793 }
1794 }
1795 auto flashTorchStrengthMaxLevelEntry = ch.find(ANDROID_FLASH_TORCH_STRENGTH_MAX_LEVEL);
1796 if (flashTorchStrengthMaxLevelEntry.count == 0) {
1797 int32_t flashTorchStrengthMaxLevel = 1;
1798 res = ch.update(ANDROID_FLASH_TORCH_STRENGTH_MAX_LEVEL,
1799 &flashTorchStrengthMaxLevel, 1);
1800 if (res != OK) {
1801 ALOGE("%s: Failed to update ANDROID_FLASH_TORCH_STRENGTH_MAX_LEVEL: %s (%d)",
1802 __FUNCTION__,strerror(-res), res);
1803 return res;
1804 }
1805 }
1806 auto flashTorchStrengthDefaultLevelEntry = ch.find(ANDROID_FLASH_TORCH_STRENGTH_DEFAULT_LEVEL);
1807 if (flashTorchStrengthDefaultLevelEntry.count == 0) {
1808 int32_t flashTorchStrengthDefaultLevel = 1;
1809 res = ch.update(ANDROID_FLASH_TORCH_STRENGTH_DEFAULT_LEVEL,
1810 &flashTorchStrengthDefaultLevel, 1);
1811 if (res != OK) {
1812 ALOGE("%s: Failed to update ANDROID_FLASH_TORCH_STRENGTH_DEFAULT_LEVEL: %s (%d)",
1813 __FUNCTION__,strerror(-res), res);
1814 return res;
1815 }
1816 }
1817 return res;
1818 }
1819
fixupMonochromeTags()1820 status_t CameraProviderManager::ProviderInfo::DeviceInfo3::fixupMonochromeTags() {
1821 status_t res = OK;
1822 auto& c = mCameraCharacteristics;
1823 sp<ProviderInfo> parentProvider = mParentProvider.promote();
1824 if (parentProvider == nullptr) {
1825 return DEAD_OBJECT;
1826 }
1827 IPCTransport ipcTransport = parentProvider->getIPCTransport();
1828 // Override static metadata for MONOCHROME camera with older device version
1829 if (ipcTransport == IPCTransport::HIDL &&
1830 (mVersion.get_major() == 3 && mVersion.get_minor() < 5)) {
1831 camera_metadata_entry cap = c.find(ANDROID_REQUEST_AVAILABLE_CAPABILITIES);
1832 for (size_t i = 0; i < cap.count; i++) {
1833 if (cap.data.u8[i] == ANDROID_REQUEST_AVAILABLE_CAPABILITIES_MONOCHROME) {
1834 // ANDROID_SENSOR_INFO_COLOR_FILTER_ARRANGEMENT
1835 uint8_t cfa = ANDROID_SENSOR_INFO_COLOR_FILTER_ARRANGEMENT_MONO;
1836 res = c.update(ANDROID_SENSOR_INFO_COLOR_FILTER_ARRANGEMENT, &cfa, 1);
1837 if (res != OK) {
1838 ALOGE("%s: Failed to update COLOR_FILTER_ARRANGEMENT: %s (%d)",
1839 __FUNCTION__, strerror(-res), res);
1840 return res;
1841 }
1842
1843 // ANDROID_REQUEST_AVAILABLE_CHARACTERISTICS_KEYS
1844 const std::vector<uint32_t> sKeys = {
1845 ANDROID_SENSOR_REFERENCE_ILLUMINANT1,
1846 ANDROID_SENSOR_REFERENCE_ILLUMINANT2,
1847 ANDROID_SENSOR_CALIBRATION_TRANSFORM1,
1848 ANDROID_SENSOR_CALIBRATION_TRANSFORM2,
1849 ANDROID_SENSOR_COLOR_TRANSFORM1,
1850 ANDROID_SENSOR_COLOR_TRANSFORM2,
1851 ANDROID_SENSOR_FORWARD_MATRIX1,
1852 ANDROID_SENSOR_FORWARD_MATRIX2,
1853 };
1854 res = removeAvailableKeys(c, sKeys,
1855 ANDROID_REQUEST_AVAILABLE_CHARACTERISTICS_KEYS);
1856 if (res != OK) {
1857 ALOGE("%s: Failed to update REQUEST_AVAILABLE_CHARACTERISTICS_KEYS: %s (%d)",
1858 __FUNCTION__, strerror(-res), res);
1859 return res;
1860 }
1861
1862 // ANDROID_REQUEST_AVAILABLE_REQUEST_KEYS
1863 const std::vector<uint32_t> reqKeys = {
1864 ANDROID_COLOR_CORRECTION_MODE,
1865 ANDROID_COLOR_CORRECTION_TRANSFORM,
1866 ANDROID_COLOR_CORRECTION_GAINS,
1867 };
1868 res = removeAvailableKeys(c, reqKeys, ANDROID_REQUEST_AVAILABLE_REQUEST_KEYS);
1869 if (res != OK) {
1870 ALOGE("%s: Failed to update REQUEST_AVAILABLE_REQUEST_KEYS: %s (%d)",
1871 __FUNCTION__, strerror(-res), res);
1872 return res;
1873 }
1874
1875 // ANDROID_REQUEST_AVAILABLE_RESULT_KEYS
1876 const std::vector<uint32_t> resKeys = {
1877 ANDROID_SENSOR_GREEN_SPLIT,
1878 ANDROID_SENSOR_NEUTRAL_COLOR_POINT,
1879 ANDROID_COLOR_CORRECTION_MODE,
1880 ANDROID_COLOR_CORRECTION_TRANSFORM,
1881 ANDROID_COLOR_CORRECTION_GAINS,
1882 };
1883 res = removeAvailableKeys(c, resKeys, ANDROID_REQUEST_AVAILABLE_RESULT_KEYS);
1884 if (res != OK) {
1885 ALOGE("%s: Failed to update REQUEST_AVAILABLE_RESULT_KEYS: %s (%d)",
1886 __FUNCTION__, strerror(-res), res);
1887 return res;
1888 }
1889
1890 // ANDROID_SENSOR_BLACK_LEVEL_PATTERN
1891 camera_metadata_entry blEntry = c.find(ANDROID_SENSOR_BLACK_LEVEL_PATTERN);
1892 for (size_t j = 1; j < blEntry.count; j++) {
1893 blEntry.data.i32[j] = blEntry.data.i32[0];
1894 }
1895 }
1896 }
1897 }
1898 return res;
1899 }
1900
addRotateCropTags()1901 status_t CameraProviderManager::ProviderInfo::DeviceInfo3::addRotateCropTags() {
1902 status_t res = OK;
1903 auto& c = mCameraCharacteristics;
1904
1905 auto availableRotateCropEntry = c.find(ANDROID_SCALER_AVAILABLE_ROTATE_AND_CROP_MODES);
1906 if (availableRotateCropEntry.count == 0) {
1907 uint8_t defaultAvailableRotateCropEntry = ANDROID_SCALER_ROTATE_AND_CROP_NONE;
1908 res = c.update(ANDROID_SCALER_AVAILABLE_ROTATE_AND_CROP_MODES,
1909 &defaultAvailableRotateCropEntry, 1);
1910 }
1911 return res;
1912 }
1913
addAutoframingTags()1914 status_t CameraProviderManager::ProviderInfo::DeviceInfo3::addAutoframingTags() {
1915 status_t res = OK;
1916 auto& c = mCameraCharacteristics;
1917
1918 auto availableAutoframingEntry = c.find(ANDROID_CONTROL_AUTOFRAMING_AVAILABLE);
1919 if (availableAutoframingEntry.count == 0) {
1920 uint8_t defaultAutoframingEntry = ANDROID_CONTROL_AUTOFRAMING_AVAILABLE_FALSE;
1921 res = c.update(ANDROID_CONTROL_AUTOFRAMING_AVAILABLE,
1922 &defaultAutoframingEntry, 1);
1923 }
1924 return res;
1925 }
1926
addAePriorityModeTags()1927 status_t CameraProviderManager::ProviderInfo::DeviceInfo3::addAePriorityModeTags() {
1928 status_t res = OK;
1929 auto& c = mCameraCharacteristics;
1930
1931 auto entry = c.find(ANDROID_CONTROL_AE_AVAILABLE_PRIORITY_MODES);
1932 if (entry.count != 0) {
1933 return res;
1934 }
1935
1936 std::vector<int32_t> supportedChTags;
1937 auto chTags = c.find(ANDROID_REQUEST_AVAILABLE_CHARACTERISTICS_KEYS);
1938 if (chTags.count == 0) {
1939 ALOGE("%s: No supported camera characteristics keys!", __FUNCTION__);
1940 return BAD_VALUE;
1941 }
1942
1943 std::vector<uint8_t> aePriorityAvailableModes = {
1944 ANDROID_CONTROL_AE_PRIORITY_MODE_OFF };
1945 supportedChTags.reserve(chTags.count + 1);
1946 supportedChTags.insert(supportedChTags.end(), chTags.data.i32,
1947 chTags.data.i32 + chTags.count);
1948 supportedChTags.push_back(ANDROID_CONTROL_AE_AVAILABLE_PRIORITY_MODES);
1949 c.update(ANDROID_CONTROL_AE_AVAILABLE_PRIORITY_MODES,
1950 aePriorityAvailableModes.data(), aePriorityAvailableModes.size());
1951 c.update(ANDROID_REQUEST_AVAILABLE_CHARACTERISTICS_KEYS, supportedChTags.data(),
1952 supportedChTags.size());
1953
1954 return res;
1955 }
1956
addPreCorrectionActiveArraySize()1957 status_t CameraProviderManager::ProviderInfo::DeviceInfo3::addPreCorrectionActiveArraySize() {
1958 status_t res = OK;
1959 auto& c = mCameraCharacteristics;
1960
1961 auto activeArraySize = c.find(ANDROID_SENSOR_INFO_ACTIVE_ARRAY_SIZE);
1962 auto preCorrectionActiveArraySize = c.find(
1963 ANDROID_SENSOR_INFO_PRE_CORRECTION_ACTIVE_ARRAY_SIZE);
1964 if (activeArraySize.count == 4 && preCorrectionActiveArraySize.count == 0) {
1965 std::vector<int32_t> preCorrectionArray(
1966 activeArraySize.data.i32, activeArraySize.data.i32+4);
1967 res = c.update(ANDROID_SENSOR_INFO_PRE_CORRECTION_ACTIVE_ARRAY_SIZE,
1968 preCorrectionArray.data(), 4);
1969 if (res != OK) {
1970 ALOGE("%s: Failed to add ANDROID_SENSOR_INFO_PRE_CORRECTION_ACTIVE_ARRAY_SIZE: %s(%d)",
1971 __FUNCTION__, strerror(-res), res);
1972 return res;
1973 }
1974 } else {
1975 return res;
1976 }
1977
1978 auto charTags = c.find(ANDROID_REQUEST_AVAILABLE_CHARACTERISTICS_KEYS);
1979 bool hasPreCorrectionActiveArraySize = std::find(charTags.data.i32,
1980 charTags.data.i32 + charTags.count,
1981 ANDROID_SENSOR_INFO_PRE_CORRECTION_ACTIVE_ARRAY_SIZE) !=
1982 (charTags.data.i32 + charTags.count);
1983 if (!hasPreCorrectionActiveArraySize) {
1984 std::vector<int32_t> supportedCharTags;
1985 supportedCharTags.reserve(charTags.count + 1);
1986 supportedCharTags.insert(supportedCharTags.end(), charTags.data.i32,
1987 charTags.data.i32 + charTags.count);
1988 supportedCharTags.push_back(ANDROID_SENSOR_INFO_PRE_CORRECTION_ACTIVE_ARRAY_SIZE);
1989
1990 res = c.update(ANDROID_REQUEST_AVAILABLE_CHARACTERISTICS_KEYS, supportedCharTags.data(),
1991 supportedCharTags.size());
1992 if (res != OK) {
1993 ALOGE("%s: Failed to update ANDROID_REQUEST_AVAILABLE_CHARACTERISTICS_KEYS: %s(%d)",
1994 __FUNCTION__, strerror(-res), res);
1995 return res;
1996 }
1997 }
1998
1999 return res;
2000 }
2001
addReadoutTimestampTag(bool readoutTimestampSupported)2002 status_t CameraProviderManager::ProviderInfo::DeviceInfo3::addReadoutTimestampTag(
2003 bool readoutTimestampSupported) {
2004 status_t res = OK;
2005 auto& c = mCameraCharacteristics;
2006
2007 auto entry = c.find(ANDROID_SENSOR_READOUT_TIMESTAMP);
2008 if (entry.count == 0) {
2009 uint8_t defaultReadoutTimestamp = readoutTimestampSupported ?
2010 ANDROID_SENSOR_READOUT_TIMESTAMP_HARDWARE :
2011 ANDROID_SENSOR_READOUT_TIMESTAMP_NOT_SUPPORTED;
2012 res = c.update(ANDROID_SENSOR_READOUT_TIMESTAMP, &defaultReadoutTimestamp, 1);
2013 }
2014
2015 return res;
2016 }
2017
addColorCorrectionAvailableModesTag(CameraMetadata & c)2018 status_t CameraProviderManager::ProviderInfo::DeviceInfo3::addColorCorrectionAvailableModesTag(
2019 CameraMetadata& c) {
2020 status_t res = OK;
2021
2022 // The COLOR_CORRECTION_AVAILABLE_MODES key advertises the
2023 // supported color correction modes. Previously, if color correction was
2024 // supported (COLOR_CORRECTION_MODE was not null), it was assumed
2025 // that all existing options, TRANSFORM_MATRIX, FAST, and HIGH_QUALITY, were supported.
2026 // However, a new optional mode, CCT, has been introduced. To indicate
2027 // whether CCT is supported, the camera device must now explicitly list all
2028 // available modes using the COLOR_CORRECTION_AVAILABLE_MODES key.
2029 // If the camera device doesn't set COLOR_CORRECTION_AVAILABLE_MODES,
2030 // this code falls back to checking for the COLOR_CORRECTION_MODE key.
2031 // If present, this adds the required supported modes TRANSFORM_MATRIX,
2032 // FAST, HIGH_QUALITY.
2033 auto entry = c.find(ANDROID_COLOR_CORRECTION_AVAILABLE_MODES);
2034 if (entry.count != 0) {
2035 return res;
2036 }
2037
2038 auto reqKeys = c.find(ANDROID_REQUEST_AVAILABLE_REQUEST_KEYS);
2039 if (reqKeys.count == 0) {
2040 ALOGE("%s: No supported camera request keys!", __FUNCTION__);
2041 return BAD_VALUE;
2042 }
2043
2044 bool colorCorrectionModeAvailable = false;
2045 for (size_t i = 0; i < reqKeys.count; i++) {
2046 if (reqKeys.data.i32[i] == ANDROID_COLOR_CORRECTION_MODE) {
2047 colorCorrectionModeAvailable = true;
2048 break;
2049 }
2050 }
2051
2052 if (!colorCorrectionModeAvailable) {
2053 return res;
2054 }
2055
2056 std::vector<int32_t> supportedChTags;
2057 auto chTags = c.find(ANDROID_REQUEST_AVAILABLE_CHARACTERISTICS_KEYS);
2058 if (chTags.count == 0) {
2059 ALOGE("%s: No supported camera characteristics keys!", __FUNCTION__);
2060 return BAD_VALUE;
2061 }
2062
2063 std::vector<uint8_t> colorCorrectionAvailableModes = {
2064 ANDROID_COLOR_CORRECTION_MODE_TRANSFORM_MATRIX,
2065 ANDROID_COLOR_CORRECTION_MODE_FAST,
2066 ANDROID_COLOR_CORRECTION_MODE_HIGH_QUALITY };
2067 supportedChTags.reserve(chTags.count + 1);
2068 supportedChTags.insert(supportedChTags.end(), chTags.data.i32,
2069 chTags.data.i32 + chTags.count);
2070 supportedChTags.push_back(ANDROID_COLOR_CORRECTION_AVAILABLE_MODES);
2071 c.update(ANDROID_COLOR_CORRECTION_AVAILABLE_MODES,
2072 colorCorrectionAvailableModes.data(), colorCorrectionAvailableModes.size());
2073 c.update(ANDROID_REQUEST_AVAILABLE_CHARACTERISTICS_KEYS, supportedChTags.data(),
2074 supportedChTags.size());
2075
2076 return res;
2077 }
2078
addSessionConfigQueryVersionTag()2079 status_t CameraProviderManager::ProviderInfo::DeviceInfo3::addSessionConfigQueryVersionTag() {
2080 sp<ProviderInfo> parentProvider = mParentProvider.promote();
2081 if (parentProvider == nullptr) {
2082 return DEAD_OBJECT;
2083 }
2084
2085 int versionCode = ANDROID_INFO_SESSION_CONFIGURATION_QUERY_VERSION_UPSIDE_DOWN_CAKE;
2086 IPCTransport ipcTransport = parentProvider->getIPCTransport();
2087 auto& c = mCameraCharacteristics;
2088 status_t res = OK;
2089 if (ipcTransport != IPCTransport::AIDL) {
2090 res = c.update(ANDROID_INFO_SESSION_CONFIGURATION_QUERY_VERSION, &versionCode, 1);
2091 mSessionConfigQueryVersion = versionCode;
2092 return res;
2093 }
2094
2095 int deviceVersion = HARDWARE_DEVICE_API_VERSION(mVersion.get_major(), mVersion.get_minor());
2096 if (deviceVersion == CAMERA_DEVICE_API_VERSION_1_3) {
2097 versionCode = ANDROID_INFO_SESSION_CONFIGURATION_QUERY_VERSION_VANILLA_ICE_CREAM;
2098 if (flags::feature_combination_baklava() && getVNDKVersion() > 35) {
2099 versionCode = ANDROID_INFO_SESSION_CONFIGURATION_QUERY_VERSION_BAKLAVA;
2100 }
2101 }
2102 res = c.update(ANDROID_INFO_SESSION_CONFIGURATION_QUERY_VERSION, &versionCode, 1);
2103 mSessionConfigQueryVersion = versionCode;
2104 return res;
2105 }
2106
isAutomotiveDevice()2107 bool CameraProviderManager::ProviderInfo::DeviceInfo3::isAutomotiveDevice() {
2108 // Checks the property ro.hardware.type and returns true if it is
2109 // automotive.
2110 char value[PROPERTY_VALUE_MAX] = {0};
2111 property_get("ro.hardware.type", value, "");
2112 return strncmp(value, "automotive", PROPERTY_VALUE_MAX) == 0;
2113 }
2114
addSharedSessionConfigurationTags(const std::string & cameraId)2115 status_t CameraProviderManager::ProviderInfo::DeviceInfo3::addSharedSessionConfigurationTags(
2116 const std::string &cameraId) {
2117 status_t res = OK;
2118 if (flags::camera_multi_client()) {
2119 SharedSessionConfigReader configReader;
2120 ErrorCode status =
2121 configReader.parseSharedSessionConfig(
2122 (std::string(SHARED_SESSION_FILE_PATH)
2123 + std::string(SHARED_SESSION_FILE_NAME)).c_str());
2124 if (status != 0) {
2125 ALOGE("%s: failed to initialize SharedSessionConfigReader with ErrorCode %s",
2126 __FUNCTION__, SharedSessionConfigUtils::toString(status));
2127 return BAD_VALUE;
2128 }
2129 const int32_t sharedColorSpaceTag = ANDROID_SHARED_SESSION_COLOR_SPACE;
2130 const int32_t sharedOutputConfigurationsTag = ANDROID_SHARED_SESSION_OUTPUT_CONFIGURATIONS;
2131 auto& c = mCameraCharacteristics;
2132 int32_t colorSpace = ANDROID_REQUEST_AVAILABLE_COLOR_SPACE_PROFILES_MAP_UNSPECIFIED;
2133
2134 status = configReader.getColorSpace(&colorSpace);
2135 if (status != 0) {
2136 ALOGE("%s: failed to get color space from config reader with ErrorCode %s",
2137 __FUNCTION__, SharedSessionConfigUtils::toString(status));
2138 return BAD_VALUE;
2139 }
2140
2141 res = c.update(sharedColorSpaceTag, &colorSpace, 1);
2142 if (res != OK) {
2143 ALOGE("%s: failed to update sharedColorSpaceTag with error %d", __FUNCTION__, res);
2144 return res;
2145 }
2146
2147 std::vector<SharedSessionConfigReader::SharedSessionConfig> outputConfigurations;
2148 status = configReader.getAvailableSharedSessionConfigs(cameraId.c_str(),
2149 &outputConfigurations);
2150 if (status != 0) {
2151 ALOGE("%s: failed to get output configurations from config reader with ErrorCode %s",
2152 __FUNCTION__, SharedSessionConfigUtils::toString(status));
2153 return BAD_VALUE;
2154 }
2155
2156 std::vector<int64_t> sharedOutputConfigEntries;
2157
2158 for (auto outputConfig : outputConfigurations) {
2159 sharedOutputConfigEntries.push_back(outputConfig.surfaceType);
2160 sharedOutputConfigEntries.push_back(outputConfig.width);
2161 sharedOutputConfigEntries.push_back(outputConfig.height);
2162 sharedOutputConfigEntries.push_back(outputConfig.format);
2163 sharedOutputConfigEntries.push_back(outputConfig.mirrorMode);
2164 sharedOutputConfigEntries.push_back(outputConfig.useReadoutTimestamp);
2165 sharedOutputConfigEntries.push_back(outputConfig.timestampBase);
2166 sharedOutputConfigEntries.push_back(outputConfig.dataSpace);
2167 sharedOutputConfigEntries.push_back(outputConfig.usage);
2168 sharedOutputConfigEntries.push_back(outputConfig.streamUseCase);
2169 if (strcmp(outputConfig.physicalCameraId.c_str(), "")) {
2170 sharedOutputConfigEntries.push_back(outputConfig.physicalCameraId.length());
2171 for (char c : outputConfig.physicalCameraId) {
2172 sharedOutputConfigEntries.push_back(c);
2173 }
2174 } else {
2175 sharedOutputConfigEntries.push_back(/* physical camera id len */ 0);
2176 }
2177 }
2178
2179 res = c.update(sharedOutputConfigurationsTag, sharedOutputConfigEntries.data(),
2180 sharedOutputConfigEntries.size());
2181 }
2182 return res;
2183 }
2184
removeAvailableKeys(CameraMetadata & c,const std::vector<uint32_t> & keys,uint32_t keyTag)2185 status_t CameraProviderManager::ProviderInfo::DeviceInfo3::removeAvailableKeys(
2186 CameraMetadata& c, const std::vector<uint32_t>& keys, uint32_t keyTag) {
2187 status_t res = OK;
2188
2189 camera_metadata_entry keysEntry = c.find(keyTag);
2190 if (keysEntry.count == 0) {
2191 ALOGE("%s: Failed to find tag %u: %s (%d)", __FUNCTION__, keyTag, strerror(-res), res);
2192 return res;
2193 }
2194 std::vector<int32_t> vKeys;
2195 vKeys.reserve(keysEntry.count);
2196 for (size_t i = 0; i < keysEntry.count; i++) {
2197 if (std::find(keys.begin(), keys.end(), keysEntry.data.i32[i]) == keys.end()) {
2198 vKeys.push_back(keysEntry.data.i32[i]);
2199 }
2200 }
2201 res = c.update(keyTag, vKeys.data(), vKeys.size());
2202 return res;
2203 }
2204
fillHeicStreamCombinations(std::vector<int32_t> * outputs,std::vector<int64_t> * durations,std::vector<int64_t> * stallDurations,const camera_metadata_entry & halStreamConfigs,const camera_metadata_entry & halStreamDurations)2205 status_t CameraProviderManager::ProviderInfo::DeviceInfo3::fillHeicStreamCombinations(
2206 std::vector<int32_t>* outputs,
2207 std::vector<int64_t>* durations,
2208 std::vector<int64_t>* stallDurations,
2209 const camera_metadata_entry& halStreamConfigs,
2210 const camera_metadata_entry& halStreamDurations) {
2211 if (outputs == nullptr || durations == nullptr || stallDurations == nullptr) {
2212 return BAD_VALUE;
2213 }
2214
2215 static bool supportInMemoryTempFile =
2216 camera3::HeicCompositeStream::isInMemoryTempFileSupported();
2217 if (!supportInMemoryTempFile) {
2218 ALOGI("%s: No HEIC support due to absence of in memory temp file support",
2219 __FUNCTION__);
2220 return OK;
2221 }
2222
2223 for (size_t i = 0; i < halStreamConfigs.count; i += 4) {
2224 int32_t format = halStreamConfigs.data.i32[i];
2225 // Only IMPLEMENTATION_DEFINED and YUV_888 can be used to generate HEIC
2226 // image.
2227 if (format != HAL_PIXEL_FORMAT_IMPLEMENTATION_DEFINED &&
2228 format != HAL_PIXEL_FORMAT_YCBCR_420_888) {
2229 continue;
2230 }
2231
2232 bool sizeAvail = false;
2233 for (size_t j = 0; j < outputs->size(); j+= 4) {
2234 if ((*outputs)[j+1] == halStreamConfigs.data.i32[i+1] &&
2235 (*outputs)[j+2] == halStreamConfigs.data.i32[i+2]) {
2236 sizeAvail = true;
2237 break;
2238 }
2239 }
2240 if (sizeAvail) continue;
2241
2242 int64_t stall = 0;
2243 bool useHeic = false;
2244 bool useGrid = false;
2245 if (camera3::HeicCompositeStream::isSizeSupportedByHeifEncoder(
2246 halStreamConfigs.data.i32[i+1], halStreamConfigs.data.i32[i+2],
2247 &useHeic, &useGrid, &stall, nullptr /*hevcName*/, kFrameworkHeicAllowSWCodecs)) {
2248 if (useGrid != (format == HAL_PIXEL_FORMAT_YCBCR_420_888)) {
2249 continue;
2250 }
2251
2252 // HEIC configuration
2253 int32_t config[] = {HAL_PIXEL_FORMAT_BLOB, halStreamConfigs.data.i32[i+1],
2254 halStreamConfigs.data.i32[i+2], 0 /*isInput*/};
2255 outputs->insert(outputs->end(), config, config + 4);
2256
2257 // HEIC minFrameDuration
2258 for (size_t j = 0; j < halStreamDurations.count; j += 4) {
2259 if (halStreamDurations.data.i64[j] == format &&
2260 halStreamDurations.data.i64[j+1] == halStreamConfigs.data.i32[i+1] &&
2261 halStreamDurations.data.i64[j+2] == halStreamConfigs.data.i32[i+2]) {
2262 int64_t duration[] = {HAL_PIXEL_FORMAT_BLOB, halStreamConfigs.data.i32[i+1],
2263 halStreamConfigs.data.i32[i+2], halStreamDurations.data.i64[j+3]};
2264 durations->insert(durations->end(), duration, duration+4);
2265 break;
2266 }
2267 }
2268
2269 // HEIC stallDuration
2270 int64_t stallDuration[] = {HAL_PIXEL_FORMAT_BLOB, halStreamConfigs.data.i32[i+1],
2271 halStreamConfigs.data.i32[i+2], stall};
2272 stallDurations->insert(stallDurations->end(), stallDuration, stallDuration+4);
2273 }
2274 }
2275 return OK;
2276 }
2277
deriveHeicTags(bool maxResolution)2278 status_t CameraProviderManager::ProviderInfo::DeviceInfo3::deriveHeicTags(bool maxResolution) {
2279 if (mCompositeHeicDisabled) {
2280 return OK;
2281 }
2282
2283 int32_t scalerStreamSizesTag =
2284 SessionConfigurationUtils::getAppropriateModeTag(
2285 ANDROID_SCALER_AVAILABLE_STREAM_CONFIGURATIONS, maxResolution);
2286 int32_t scalerMinFrameDurationsTag =
2287 SessionConfigurationUtils::getAppropriateModeTag(
2288 ANDROID_SCALER_AVAILABLE_MIN_FRAME_DURATIONS, maxResolution);
2289
2290 int32_t heicStreamSizesTag =
2291 SessionConfigurationUtils::getAppropriateModeTag(
2292 ANDROID_HEIC_AVAILABLE_HEIC_STREAM_CONFIGURATIONS, maxResolution);
2293 int32_t heicMinFrameDurationsTag =
2294 SessionConfigurationUtils::getAppropriateModeTag(
2295 ANDROID_HEIC_AVAILABLE_HEIC_MIN_FRAME_DURATIONS, maxResolution);
2296 int32_t heicStallDurationsTag =
2297 SessionConfigurationUtils::getAppropriateModeTag(
2298 ANDROID_HEIC_AVAILABLE_HEIC_STALL_DURATIONS, maxResolution);
2299
2300 auto& c = mCameraCharacteristics;
2301
2302 camera_metadata_entry halHeicSupport = c.find(ANDROID_HEIC_INFO_SUPPORTED);
2303 if (halHeicSupport.count > 1) {
2304 ALOGE("%s: Invalid entry count %zu for ANDROID_HEIC_INFO_SUPPORTED",
2305 __FUNCTION__, halHeicSupport.count);
2306 return BAD_VALUE;
2307 } else if (halHeicSupport.count == 0 ||
2308 halHeicSupport.data.u8[0] == ANDROID_HEIC_INFO_SUPPORTED_FALSE) {
2309 // Camera HAL doesn't support mandatory stream combinations for HEIC.
2310 return OK;
2311 }
2312
2313 camera_metadata_entry maxJpegAppsSegments =
2314 c.find(ANDROID_HEIC_INFO_MAX_JPEG_APP_SEGMENTS_COUNT);
2315 if (maxJpegAppsSegments.count != 1 || maxJpegAppsSegments.data.u8[0] == 0 ||
2316 maxJpegAppsSegments.data.u8[0] > 16) {
2317 ALOGE("%s: ANDROID_HEIC_INFO_MAX_JPEG_APP_SEGMENTS_COUNT must be within [1, 16]",
2318 __FUNCTION__);
2319 return BAD_VALUE;
2320 }
2321
2322 // Populate HEIC output configurations and its related min frame duration
2323 // and stall duration.
2324 std::vector<int32_t> heicOutputs;
2325 std::vector<int64_t> heicDurations;
2326 std::vector<int64_t> heicStallDurations;
2327
2328 camera_metadata_entry halStreamConfigs = c.find(scalerStreamSizesTag);
2329 camera_metadata_entry minFrameDurations = c.find(scalerMinFrameDurationsTag);
2330
2331 status_t res = fillHeicStreamCombinations(&heicOutputs, &heicDurations, &heicStallDurations,
2332 halStreamConfigs, minFrameDurations);
2333 if (res != OK) {
2334 ALOGE("%s: Failed to fill HEIC stream combinations: %s (%d)", __FUNCTION__,
2335 strerror(-res), res);
2336 return res;
2337 }
2338
2339 c.update(heicStreamSizesTag, heicOutputs.data(), heicOutputs.size());
2340 c.update(heicMinFrameDurationsTag, heicDurations.data(), heicDurations.size());
2341 c.update(heicStallDurationsTag, heicStallDurations.data(), heicStallDurations.size());
2342
2343 return OK;
2344 }
2345
isLogicalCameraLocked(const std::string & id,std::vector<std::string> * physicalCameraIds)2346 bool CameraProviderManager::isLogicalCameraLocked(const std::string& id,
2347 std::vector<std::string>* physicalCameraIds) {
2348 auto deviceInfo = findDeviceInfoLocked(id);
2349 if (deviceInfo == nullptr) return false;
2350
2351 if (deviceInfo->mIsLogicalCamera && physicalCameraIds != nullptr) {
2352 *physicalCameraIds = deviceInfo->mPhysicalIds;
2353 }
2354 return deviceInfo->mIsLogicalCamera;
2355 }
2356
isLogicalCamera(const std::string & id,std::vector<std::string> * physicalCameraIds)2357 bool CameraProviderManager::isLogicalCamera(const std::string& id,
2358 std::vector<std::string>* physicalCameraIds) {
2359 std::lock_guard<std::mutex> lock(mInterfaceMutex);
2360 return isLogicalCameraLocked(id, physicalCameraIds);
2361 }
2362
getSystemCameraKind(const std::string & id,SystemCameraKind * kind) const2363 status_t CameraProviderManager::getSystemCameraKind(const std::string& id,
2364 SystemCameraKind *kind) const {
2365 std::lock_guard<std::mutex> lock(mInterfaceMutex);
2366 return getSystemCameraKindLocked(id, kind);
2367 }
2368
getSystemCameraKindLocked(const std::string & id,SystemCameraKind * kind) const2369 status_t CameraProviderManager::getSystemCameraKindLocked(const std::string& id,
2370 SystemCameraKind *kind) const {
2371 auto deviceInfo = findDeviceInfoLocked(id);
2372 if (deviceInfo != nullptr) {
2373 *kind = deviceInfo->mSystemCameraKind;
2374 return OK;
2375 }
2376 // If this is a hidden physical camera, we should return what kind of
2377 // camera the enclosing logical camera is.
2378 auto isHiddenAndParent = isHiddenPhysicalCameraInternal(id);
2379 if (isHiddenAndParent.first) {
2380 LOG_ALWAYS_FATAL_IF(id == isHiddenAndParent.second->mId,
2381 "%s: hidden physical camera id %s and enclosing logical camera id %s are the same",
2382 __FUNCTION__, id.c_str(), isHiddenAndParent.second->mId.c_str());
2383 return getSystemCameraKindLocked(isHiddenAndParent.second->mId, kind);
2384 }
2385 // Neither a hidden physical camera nor a logical camera
2386 return NAME_NOT_FOUND;
2387 }
2388
isHiddenPhysicalCamera(const std::string & cameraId) const2389 bool CameraProviderManager::isHiddenPhysicalCamera(const std::string& cameraId) const {
2390 std::lock_guard<std::mutex> lock(mInterfaceMutex);
2391 return isHiddenPhysicalCameraInternal(cameraId).first;
2392 }
2393
filterSmallJpegSizes(const std::string & cameraId)2394 status_t CameraProviderManager::filterSmallJpegSizes(const std::string& cameraId) {
2395 std::lock_guard<std::mutex> lock(mInterfaceMutex);
2396 for (auto& provider : mProviders) {
2397 for (auto& deviceInfo : provider->mDevices) {
2398 if (deviceInfo->mId == cameraId) {
2399 return deviceInfo->filterSmallJpegSizes();
2400 }
2401 }
2402 }
2403 return NAME_NOT_FOUND;
2404 }
2405
2406 std::pair<bool, CameraProviderManager::ProviderInfo::DeviceInfo *>
isHiddenPhysicalCameraInternal(const std::string & cameraId) const2407 CameraProviderManager::isHiddenPhysicalCameraInternal(const std::string& cameraId) const {
2408 auto falseRet = std::make_pair(false, nullptr);
2409 for (auto& provider : mProviders) {
2410 for (auto& deviceInfo : provider->mDevices) {
2411 if (deviceInfo->mId == cameraId) {
2412 // cameraId is found in public camera IDs advertised by the
2413 // provider.
2414 return falseRet;
2415 }
2416 }
2417 }
2418
2419 for (auto& provider : mProviders) {
2420 IPCTransport transport = provider->getIPCTransport();
2421 for (auto& deviceInfo : provider->mDevices) {
2422 std::vector<std::string> physicalIds;
2423 if (deviceInfo->mIsLogicalCamera) {
2424 if (std::find(deviceInfo->mPhysicalIds.begin(), deviceInfo->mPhysicalIds.end(),
2425 cameraId) != deviceInfo->mPhysicalIds.end()) {
2426 int deviceVersion = HARDWARE_DEVICE_API_VERSION(
2427 deviceInfo->mVersion.get_major(), deviceInfo->mVersion.get_minor());
2428 if (transport == IPCTransport::HIDL &&
2429 deviceVersion < CAMERA_DEVICE_API_VERSION_3_5) {
2430 ALOGE("%s: Wrong deviceVersion %x for hiddenPhysicalCameraId %s",
2431 __FUNCTION__, deviceVersion, cameraId.c_str());
2432 return falseRet;
2433 } else {
2434 return std::make_pair(true, deviceInfo.get());
2435 }
2436 }
2437 }
2438 }
2439 }
2440
2441 return falseRet;
2442 }
2443
tryToInitializeAidlProviderLocked(const std::string & providerName,const sp<ProviderInfo> & providerInfo)2444 status_t CameraProviderManager::tryToInitializeAidlProviderLocked(
2445 const std::string& providerName, const sp<ProviderInfo>& providerInfo) {
2446 using aidl::android::hardware::camera::provider::ICameraProvider;
2447
2448 // Only get remote instance if already running. Lazy Providers will be woken up later.
2449 std::shared_ptr<ICameraProvider> interface = mAidlServiceProxy->tryGetService(providerName);
2450
2451 if (interface == nullptr) {
2452 ALOGW("%s: AIDL Camera provider HAL '%s' is not actually available", __FUNCTION__,
2453 providerName.c_str());
2454 return BAD_VALUE;
2455 }
2456
2457 AidlProviderInfo *aidlProviderInfo = static_cast<AidlProviderInfo *>(providerInfo.get());
2458 status_t res = aidlProviderInfo->initializeAidlProvider(interface, mDeviceState);
2459
2460 if (flags::enable_hal_abort_from_cameraservicewatchdog()) {
2461 pid_t pid = 0;
2462
2463 if (AIBinder_toPlatformBinder(interface->asBinder().get())->getDebugPid(&pid) == OK
2464 && res == OK) {
2465 std::lock_guard<std::mutex> lock(mProviderPidMapLock);
2466 mProviderPidMap[providerInfo->mProviderInstance] = pid;
2467 }
2468 }
2469
2470 return res;
2471 }
2472
tryToInitializeHidlProviderLocked(const std::string & providerName,const sp<ProviderInfo> & providerInfo)2473 status_t CameraProviderManager::tryToInitializeHidlProviderLocked(
2474 const std::string& providerName, const sp<ProviderInfo>& providerInfo) {
2475 sp<provider::V2_4::ICameraProvider> interface;
2476 interface = mHidlServiceProxy->tryGetService(providerName);
2477
2478 if (interface == nullptr) {
2479 // The interface may not be started yet. In that case, this is not a
2480 // fatal error.
2481 ALOGW("%s: HIDL Camera provider HAL '%s' is not actually available", __FUNCTION__,
2482 providerName.c_str());
2483 return BAD_VALUE;
2484 }
2485
2486 HidlProviderInfo *hidlProviderInfo = static_cast<HidlProviderInfo *>(providerInfo.get());
2487 status_t res = hidlProviderInfo->initializeHidlProvider(interface, mDeviceState);
2488
2489 if (flags::enable_hal_abort_from_cameraservicewatchdog()) {
2490 pid_t pid = 0;
2491
2492 auto ret = interface->getDebugInfo([&pid](
2493 const ::android::hidl::base::V1_0::DebugInfo& info) {
2494 pid = info.pid;
2495 });
2496
2497 if (ret.isOk() && res == OK) {
2498 std::lock_guard<std::mutex> lock(mProviderPidMapLock);
2499 mProviderPidMap[providerInfo->mProviderInstance] = pid;
2500 }
2501 }
2502
2503 return res;
2504 }
2505
addAidlProviderLocked(const std::string & newProvider)2506 status_t CameraProviderManager::addAidlProviderLocked(const std::string& newProvider) {
2507 // Several camera provider instances can be temporarily present.
2508 // Defer initialization of a new instance until the older instance is properly removed.
2509 auto providerInstance = newProvider + "-" + std::to_string(mProviderInstanceId);
2510 bool providerPresent = false;
2511 bool preexisting =
2512 (mAidlProviderWithBinders.find(newProvider) != mAidlProviderWithBinders.end());
2513 using aidl::android::hardware::camera::provider::ICameraProvider;
2514
2515 // 'newProvider' has the fully qualified name of the provider service in case of AIDL.
2516 // ProviderInfo::mProviderName also has the fully qualified name - so we just compare them
2517 // here.
2518 std::string providerNameUsed = newProvider;
2519
2520 for (const auto& providerInfo : mProviders) {
2521 if (providerInfo->mProviderName == providerNameUsed) {
2522 ALOGW("%s: Camera provider HAL with name '%s' already registered",
2523 __FUNCTION__, newProvider.c_str());
2524 // Do not add new instances for lazy HAL external provider or aidl
2525 // binders previously seen.
2526 if (preexisting || providerInfo->isExternalLazyHAL()) {
2527 return ALREADY_EXISTS;
2528 } else {
2529 ALOGW("%s: The new provider instance will get initialized immediately after the"
2530 " currently present instance is removed!", __FUNCTION__);
2531 providerPresent = true;
2532 break;
2533 }
2534 }
2535 }
2536
2537 sp<AidlProviderInfo> providerInfo =
2538 new AidlProviderInfo(providerNameUsed, providerInstance, this);
2539
2540 if (!providerPresent) {
2541 status_t res = tryToInitializeAidlProviderLocked(newProvider, providerInfo);
2542 if (res != OK) {
2543 return res;
2544 }
2545 mAidlProviderWithBinders.emplace(newProvider);
2546 }
2547
2548 mProviders.push_back(providerInfo);
2549 mProviderInstanceId++;
2550
2551 return OK;
2552 }
2553
addHidlProviderLocked(const std::string & newProvider,bool preexisting)2554 status_t CameraProviderManager::addHidlProviderLocked(const std::string& newProvider,
2555 bool preexisting) {
2556 // Several camera provider instances can be temporarily present.
2557 // Defer initialization of a new instance until the older instance is properly removed.
2558 auto providerInstance = newProvider + "-" + std::to_string(mProviderInstanceId);
2559 bool providerPresent = false;
2560 for (const auto& providerInfo : mProviders) {
2561 if (providerInfo->mProviderName == newProvider) {
2562 ALOGW("%s: Camera provider HAL with name '%s' already registered",
2563 __FUNCTION__, newProvider.c_str());
2564 // Do not add new instances for lazy HAL external provider
2565 if (preexisting || providerInfo->isExternalLazyHAL()) {
2566 return ALREADY_EXISTS;
2567 } else {
2568 ALOGW("%s: The new provider instance will get initialized immediately after the"
2569 " currently present instance is removed!", __FUNCTION__);
2570 providerPresent = true;
2571 break;
2572 }
2573 }
2574 }
2575
2576 sp<HidlProviderInfo> providerInfo = new HidlProviderInfo(newProvider, providerInstance, this);
2577 if (!providerPresent) {
2578 status_t res = tryToInitializeHidlProviderLocked(newProvider, providerInfo);
2579 if (res != OK) {
2580 return res;
2581 }
2582 }
2583
2584 mProviders.push_back(providerInfo);
2585 mProviderInstanceId++;
2586
2587 return OK;
2588 }
2589
removeProvider(const std::string & provider)2590 status_t CameraProviderManager::removeProvider(const std::string& provider) {
2591 std::lock_guard<std::mutex> providerLock(mProviderLifecycleLock);
2592 std::unique_lock<std::mutex> lock(mInterfaceMutex);
2593 std::vector<std::string> removedDeviceIds;
2594 status_t res = NAME_NOT_FOUND;
2595 std::string removedProviderName;
2596 for (auto it = mProviders.begin(); it != mProviders.end(); it++) {
2597 if ((*it)->mProviderInstance == provider) {
2598 removedDeviceIds.reserve((*it)->mDevices.size());
2599 for (auto& deviceInfo : (*it)->mDevices) {
2600 removedDeviceIds.push_back(deviceInfo->mId);
2601 }
2602 removedProviderName = (*it)->mProviderName;
2603 mProviders.erase(it);
2604 res = OK;
2605 break;
2606 }
2607 }
2608 if (res != OK) {
2609 ALOGW("%s: Camera provider HAL with name '%s' is not registered", __FUNCTION__,
2610 provider.c_str());
2611 } else {
2612 if (flags::enable_hal_abort_from_cameraservicewatchdog()) {
2613 {
2614 std::lock_guard<std::mutex> pidLock(mProviderPidMapLock);
2615 mProviderPidMap.erase(provider);
2616 }
2617 }
2618
2619 // Check if there are any newer camera instances from the same provider and try to
2620 // initialize.
2621 for (const auto& providerInfo : mProviders) {
2622 if (providerInfo->mProviderName == removedProviderName) {
2623 IPCTransport providerTransport = providerInfo->getIPCTransport();
2624 switch(providerTransport) {
2625 case IPCTransport::HIDL:
2626 return tryToInitializeHidlProviderLocked(removedProviderName, providerInfo);
2627 case IPCTransport::AIDL:
2628 return tryToInitializeAidlProviderLocked(removedProviderName,
2629 providerInfo);
2630 default:
2631 ALOGE("%s Unsupported Transport %d", __FUNCTION__, eToI(providerTransport));
2632 }
2633 }
2634 }
2635
2636 // Inform camera service of loss of presence for all the devices from this provider,
2637 // without lock held for reentrancy
2638 sp<StatusListener> listener = getStatusListener();
2639 if (listener != nullptr) {
2640 lock.unlock();
2641 for (auto& id : removedDeviceIds) {
2642 listener->onDeviceStatusChanged(id, CameraDeviceStatus::NOT_PRESENT);
2643 }
2644 lock.lock();
2645 }
2646
2647 }
2648 return res;
2649 }
2650
getStatusListener() const2651 sp<CameraProviderManager::StatusListener> CameraProviderManager::getStatusListener() const {
2652 return mListener.promote();
2653 }
2654 /**** Methods for ProviderInfo ****/
2655
2656
ProviderInfo(const std::string & providerName,const std::string & providerInstance,CameraProviderManager * manager)2657 CameraProviderManager::ProviderInfo::ProviderInfo(
2658 const std::string &providerName,
2659 const std::string &providerInstance,
2660 [[maybe_unused]] CameraProviderManager *manager) :
2661 mProviderName(providerName),
2662 mProviderInstance(providerInstance),
2663 mProviderTagid(generateVendorTagId(providerName)),
2664 mUniqueDeviceCount(0),
2665 mManager(manager) {
2666 }
2667
getType() const2668 const std::string& CameraProviderManager::ProviderInfo::getType() const {
2669 return mType;
2670 }
2671
addDevice(const std::string & name,CameraDeviceStatus initialStatus,std::string * parsedId)2672 status_t CameraProviderManager::ProviderInfo::addDevice(
2673 const std::string& name, CameraDeviceStatus initialStatus,
2674 /*out*/ std::string* parsedId) {
2675
2676 ALOGI("Enumerating new camera device: %s", name.c_str());
2677
2678 uint16_t major, minor;
2679 std::string type, id;
2680 IPCTransport transport = getIPCTransport();
2681
2682 status_t res = parseDeviceName(name, &major, &minor, &type, &id);
2683 if (res != OK) {
2684 return res;
2685 }
2686
2687 if (type != mType) {
2688 ALOGE("%s: Device type %s does not match provider type %s", __FUNCTION__,
2689 type.c_str(), mType.c_str());
2690 return BAD_VALUE;
2691 }
2692 if (mManager->isValidDeviceLocked(id, major, transport)) {
2693 ALOGE("%s: Device %s: ID %s is already in use for device major version %d", __FUNCTION__,
2694 name.c_str(), id.c_str(), major);
2695 return BAD_VALUE;
2696 }
2697
2698 std::unique_ptr<DeviceInfo> deviceInfo;
2699 switch (transport) {
2700 case IPCTransport::HIDL:
2701 switch (major) {
2702 case 3:
2703 break;
2704 default:
2705 ALOGE("%s: Device %s: Unsupported HIDL device HAL major version %d:",
2706 __FUNCTION__, name.c_str(), major);
2707 return BAD_VALUE;
2708 }
2709 break;
2710 case IPCTransport::AIDL:
2711 if (major != 1) {
2712 ALOGE("%s: Device %s: Unsupported AIDL device HAL major version %d:", __FUNCTION__,
2713 name.c_str(), major);
2714 return BAD_VALUE;
2715 }
2716 break;
2717 default:
2718 ALOGE("%s Invalid transport %d", __FUNCTION__, eToI(transport));
2719 return BAD_VALUE;
2720 }
2721
2722 deviceInfo = initializeDeviceInfo(name, mProviderTagid, id, minor);
2723 if (deviceInfo == nullptr) return BAD_VALUE;
2724 deviceInfo->notifyDeviceStateChange(getDeviceState());
2725 deviceInfo->mStatus = initialStatus;
2726 bool isAPI1Compatible = deviceInfo->isAPI1Compatible();
2727
2728 mDevices.push_back(std::move(deviceInfo));
2729
2730 mUniqueCameraIds.insert(id);
2731 if (isAPI1Compatible) {
2732 // addDevice can be called more than once for the same camera id if HAL
2733 // supports openLegacy.
2734 if (std::find(mUniqueAPI1CompatibleCameraIds.begin(), mUniqueAPI1CompatibleCameraIds.end(),
2735 id) == mUniqueAPI1CompatibleCameraIds.end()) {
2736 mUniqueAPI1CompatibleCameraIds.push_back(id);
2737 }
2738 }
2739
2740 if (parsedId != nullptr) {
2741 *parsedId = id;
2742 }
2743 return OK;
2744 }
2745
removeDevice(const std::string & id)2746 void CameraProviderManager::ProviderInfo::removeDevice(const std::string &id) {
2747 for (auto it = mDevices.begin(); it != mDevices.end(); it++) {
2748 if ((*it)->mId == id) {
2749 mUniqueCameraIds.erase(id);
2750 mUnavailablePhysicalCameras.erase(id);
2751 if ((*it)->isAPI1Compatible()) {
2752 mUniqueAPI1CompatibleCameraIds.erase(std::remove(
2753 mUniqueAPI1CompatibleCameraIds.begin(),
2754 mUniqueAPI1CompatibleCameraIds.end(), id));
2755 }
2756
2757 // Remove reference to camera provider to avoid pointer leak when
2758 // unplugging external camera while in use with lazy HALs
2759 mManager->removeRef(DeviceMode::CAMERA, id);
2760 mManager->removeRef(DeviceMode::TORCH, id);
2761
2762 mDevices.erase(it);
2763 break;
2764 }
2765 }
2766 }
2767
removeAllDevices()2768 void CameraProviderManager::ProviderInfo::removeAllDevices() {
2769 std::lock_guard<std::mutex> lock(mLock);
2770
2771 auto itDevices = mDevices.begin();
2772 while (itDevices != mDevices.end()) {
2773 std::string id = (*itDevices)->mId;
2774 std::string deviceName = (*itDevices)->mName;
2775 removeDevice(id);
2776 // device was removed, reset iterator
2777 itDevices = mDevices.begin();
2778
2779 //notify CameraService of status change
2780 sp<StatusListener> listener = mManager->getStatusListener();
2781 if (listener != nullptr) {
2782 mLock.unlock();
2783 ALOGV("%s: notify device not_present: %s",
2784 __FUNCTION__,
2785 deviceName.c_str());
2786 listener->onDeviceStatusChanged(id, CameraDeviceStatus::NOT_PRESENT);
2787 mLock.lock();
2788 }
2789 }
2790 }
2791
isExternalLazyHAL() const2792 bool CameraProviderManager::ProviderInfo::isExternalLazyHAL() const {
2793 std::string providerName = mProviderName;
2794 if (getIPCTransport() == IPCTransport::AIDL) {
2795 using aidl::android::hardware::camera::provider::ICameraProvider;
2796 providerName =
2797 mProviderName.substr(std::string(ICameraProvider::descriptor).size() + 1);
2798 }
2799 return kEnableLazyHal && (providerName == kExternalProviderName);
2800 }
2801
getProviderPids()2802 std::set<pid_t> CameraProviderManager::getProviderPids() {
2803 std::set<pid_t> pids;
2804
2805 if (flags::enable_hal_abort_from_cameraservicewatchdog()) {
2806 std::lock_guard<std::mutex> lock(mProviderPidMapLock);
2807
2808 std::transform(mProviderPidMap.begin(), mProviderPidMap.end(),
2809 std::inserter(pids, pids.begin()),
2810 [](std::pair<const std::string, pid_t>& entry) { return entry.second; });
2811 }
2812
2813 return pids;
2814 }
2815
dump(int fd,const Vector<String16> &) const2816 status_t CameraProviderManager::ProviderInfo::dump(int fd, const Vector<String16>&) const {
2817 dprintf(fd, "== Camera Provider HAL %s (v2.%d, %s) static info: %zu devices: ==\n",
2818 mProviderInstance.c_str(),
2819 mMinorVersion,
2820 mIsRemote ? "remote" : "passthrough",
2821 mDevices.size());
2822
2823 for (auto& device : mDevices) {
2824 dprintf(fd, "== Camera HAL device %s (v%d.%d) static information: ==\n", device->mName.c_str(),
2825 device->mVersion.get_major(), device->mVersion.get_minor());
2826 dprintf(fd, " Resource cost: %d\n", device->mResourceCost.resourceCost);
2827 if (device->mResourceCost.conflictingDevices.size() == 0) {
2828 dprintf(fd, " Conflicting devices: None\n");
2829 } else {
2830 dprintf(fd, " Conflicting devices:\n");
2831 for (size_t i = 0; i < device->mResourceCost.conflictingDevices.size(); i++) {
2832 dprintf(fd, " %s\n",
2833 device->mResourceCost.conflictingDevices[i].c_str());
2834 }
2835 }
2836 dprintf(fd, " API1 info:\n");
2837 dprintf(fd, " Has a flash unit: %s\n",
2838 device->hasFlashUnit() ? "true" : "false");
2839 hardware::CameraInfo info;
2840 int portraitRotation;
2841 status_t res = device->getCameraInfo(
2842 /*rotationOverride*/hardware::ICameraService::ROTATION_OVERRIDE_NONE,
2843 &portraitRotation, &info);
2844 if (res != OK) {
2845 dprintf(fd, " <Error reading camera info: %s (%d)>\n",
2846 strerror(-res), res);
2847 } else {
2848 dprintf(fd, " Facing: %s\n",
2849 info.facing == hardware::CAMERA_FACING_BACK ? "Back" : "Front");
2850 dprintf(fd, " Orientation: %d\n", info.orientation);
2851 }
2852 CameraMetadata info2;
2853 res = device->getCameraCharacteristics(true /*overrideForPerfClass*/, &info2,
2854 hardware::ICameraService::ROTATION_OVERRIDE_NONE);
2855 if (res == INVALID_OPERATION) {
2856 dprintf(fd, " API2 not directly supported\n");
2857 } else if (res != OK) {
2858 dprintf(fd, " <Error reading camera characteristics: %s (%d)>\n",
2859 strerror(-res), res);
2860 } else {
2861 dprintf(fd, " API2 camera characteristics:\n");
2862 info2.dump(fd, /*verbosity*/ 2, /*indentation*/ 4);
2863 }
2864
2865 // Dump characteristics of non-standalone physical camera
2866 if (device->mIsLogicalCamera) {
2867 for (auto& id : device->mPhysicalIds) {
2868 // Skip if physical id is an independent camera
2869 if (std::find(mProviderPublicCameraIds.begin(), mProviderPublicCameraIds.end(), id)
2870 != mProviderPublicCameraIds.end()) {
2871 continue;
2872 }
2873
2874 CameraMetadata physicalInfo;
2875 status_t status = device->getPhysicalCameraCharacteristics(id, &physicalInfo);
2876 if (status == OK) {
2877 dprintf(fd, " Physical camera %s characteristics:\n", id.c_str());
2878 physicalInfo.dump(fd, /*verbosity*/ 2, /*indentation*/ 4);
2879 }
2880 }
2881 }
2882
2883 dprintf(fd, "== Camera HAL device %s (v%d.%d) dumpState: ==\n", device->mName.c_str(),
2884 device->mVersion.get_major(), device->mVersion.get_minor());
2885 res = device->dumpState(fd);
2886 if (res != OK) {
2887 dprintf(fd, " <Error dumping device %s state: %s (%d)>\n",
2888 device->mName.c_str(), strerror(-res), res);
2889 }
2890 }
2891 return OK;
2892 }
2893
2894 std::vector<std::unordered_set<std::string>>
getConcurrentCameraIdCombinations()2895 CameraProviderManager::ProviderInfo::getConcurrentCameraIdCombinations() {
2896 std::lock_guard<std::mutex> lock(mLock);
2897 return mConcurrentCameraIdCombinations;
2898 }
2899
cameraDeviceStatusChangeInternal(const std::string & cameraDeviceName,CameraDeviceStatus newStatus)2900 void CameraProviderManager::ProviderInfo::cameraDeviceStatusChangeInternal(
2901 const std::string& cameraDeviceName, CameraDeviceStatus newStatus) {
2902 sp<StatusListener> listener;
2903 std::string id;
2904 std::lock_guard<std::mutex> lock(mInitLock);
2905 CameraDeviceStatus internalNewStatus = newStatus;
2906 if (!mInitialized) {
2907 mCachedStatus.emplace_back(false /*isPhysicalCameraStatus*/,
2908 cameraDeviceName, std::string(), internalNewStatus);
2909 return;
2910 }
2911
2912 {
2913 std::lock_guard<std::mutex> lock(mLock);
2914 if (OK != cameraDeviceStatusChangeLocked(&id, cameraDeviceName, newStatus)) {
2915 return;
2916 }
2917 listener = mManager->getStatusListener();
2918 }
2919
2920 // Call without lock held to allow reentrancy into provider manager
2921 if (listener != nullptr) {
2922 listener->onDeviceStatusChanged(id, internalNewStatus);
2923 }
2924 }
2925
cameraDeviceStatusChangeLocked(std::string * id,const std::string & cameraDeviceName,CameraDeviceStatus newStatus)2926 status_t CameraProviderManager::ProviderInfo::cameraDeviceStatusChangeLocked(
2927 std::string* id, const std::string& cameraDeviceName,
2928 CameraDeviceStatus newStatus) {
2929 bool known = false;
2930 std::string cameraId;
2931 for (auto& deviceInfo : mDevices) {
2932 if (deviceInfo->mName == cameraDeviceName) {
2933 Mutex::Autolock l(deviceInfo->mDeviceAvailableLock);
2934 ALOGI("Camera device %s status is now %s, was %s", cameraDeviceName.c_str(),
2935 FrameworkDeviceStatusToString(newStatus),
2936 FrameworkDeviceStatusToString(deviceInfo->mStatus));
2937 deviceInfo->mStatus = newStatus;
2938 // TODO: Handle device removal (NOT_PRESENT)
2939 cameraId = deviceInfo->mId;
2940 known = true;
2941 deviceInfo->mIsDeviceAvailable =
2942 (newStatus == CameraDeviceStatus::PRESENT);
2943 deviceInfo->mDeviceAvailableSignal.signal();
2944 break;
2945 }
2946 }
2947 // Previously unseen device; status must not be NOT_PRESENT
2948 if (!known) {
2949 if (newStatus == CameraDeviceStatus::NOT_PRESENT) {
2950 ALOGW("Camera provider %s says an unknown camera device %s is not present. Curious.",
2951 mProviderName.c_str(), cameraDeviceName.c_str());
2952 return BAD_VALUE;
2953 }
2954 addDevice(cameraDeviceName, newStatus, &cameraId);
2955 } else if (newStatus == CameraDeviceStatus::NOT_PRESENT) {
2956 removeDevice(cameraId);
2957 } else if (isExternalLazyHAL()) {
2958 // Do not notify CameraService for PRESENT->PRESENT (lazy HAL restart)
2959 // because NOT_AVAILABLE is set on CameraService::connect and a PRESENT
2960 // notif. would overwrite it
2961 return BAD_VALUE;
2962 }
2963
2964 if (reCacheConcurrentStreamingCameraIdsLocked() != OK) {
2965 ALOGE("%s: CameraProvider %s could not re-cache concurrent streaming camera id list ",
2966 __FUNCTION__, mProviderName.c_str());
2967 }
2968 *id = cameraId;
2969 return OK;
2970 }
2971
physicalCameraDeviceStatusChangeInternal(const std::string & cameraDeviceName,const std::string & physicalCameraDeviceName,CameraDeviceStatus newStatus)2972 void CameraProviderManager::ProviderInfo::physicalCameraDeviceStatusChangeInternal(
2973 const std::string& cameraDeviceName,
2974 const std::string& physicalCameraDeviceName,
2975 CameraDeviceStatus newStatus) {
2976 sp<StatusListener> listener;
2977 std::string id;
2978 std::string physicalId;
2979 std::lock_guard<std::mutex> lock(mInitLock);
2980 if (!mInitialized) {
2981 mCachedStatus.emplace_back(true /*isPhysicalCameraStatus*/, cameraDeviceName,
2982 physicalCameraDeviceName, newStatus);
2983 return;
2984 }
2985
2986 {
2987 std::lock_guard<std::mutex> lock(mLock);
2988
2989 if (OK != physicalCameraDeviceStatusChangeLocked(&id, &physicalId, cameraDeviceName,
2990 physicalCameraDeviceName, newStatus)) {
2991 return;
2992 }
2993
2994 listener = mManager->getStatusListener();
2995 }
2996 // Call without lock held to allow reentrancy into provider manager
2997 if (listener != nullptr) {
2998 listener->onDeviceStatusChanged(id, physicalId, newStatus);
2999 }
3000 return;
3001 }
3002
physicalCameraDeviceStatusChangeLocked(std::string * id,std::string * physicalId,const std::string & cameraDeviceName,const std::string & physicalCameraDeviceName,CameraDeviceStatus newStatus)3003 status_t CameraProviderManager::ProviderInfo::physicalCameraDeviceStatusChangeLocked(
3004 std::string* id, std::string* physicalId,
3005 const std::string& cameraDeviceName,
3006 const std::string& physicalCameraDeviceName,
3007 CameraDeviceStatus newStatus) {
3008 bool known = false;
3009 std::string cameraId;
3010 for (auto& deviceInfo : mDevices) {
3011 if (deviceInfo->mName == cameraDeviceName) {
3012 cameraId = deviceInfo->mId;
3013 if (!deviceInfo->mIsLogicalCamera) {
3014 ALOGE("%s: Invalid combination of camera id %s, physical id %s",
3015 __FUNCTION__, cameraId.c_str(), physicalCameraDeviceName.c_str());
3016 return BAD_VALUE;
3017 }
3018 if (std::find(deviceInfo->mPhysicalIds.begin(), deviceInfo->mPhysicalIds.end(),
3019 physicalCameraDeviceName) == deviceInfo->mPhysicalIds.end()) {
3020 ALOGE("%s: Invalid combination of camera id %s, physical id %s",
3021 __FUNCTION__, cameraId.c_str(), physicalCameraDeviceName.c_str());
3022 return BAD_VALUE;
3023 }
3024 ALOGI("Camera device %s physical device %s status is now %s",
3025 cameraDeviceName.c_str(), physicalCameraDeviceName.c_str(),
3026 FrameworkDeviceStatusToString(newStatus));
3027 known = true;
3028 break;
3029 }
3030 }
3031 // Previously unseen device; status must not be NOT_PRESENT
3032 if (!known) {
3033 ALOGW("Camera provider %s says an unknown camera device %s-%s is not present. Curious.",
3034 mProviderName.c_str(), cameraDeviceName.c_str(),
3035 physicalCameraDeviceName.c_str());
3036 return BAD_VALUE;
3037 }
3038
3039 if (mUnavailablePhysicalCameras.count(cameraId) == 0) {
3040 mUnavailablePhysicalCameras.emplace(cameraId, std::set<std::string>{});
3041 }
3042 if (newStatus != CameraDeviceStatus::PRESENT) {
3043 mUnavailablePhysicalCameras[cameraId].insert(physicalCameraDeviceName);
3044 } else {
3045 mUnavailablePhysicalCameras[cameraId].erase(physicalCameraDeviceName);
3046 }
3047
3048 *id = cameraId;
3049 *physicalId = physicalCameraDeviceName;
3050 return OK;
3051 }
3052
torchModeStatusChangeInternal(const std::string & cameraDeviceName,TorchModeStatus newStatus)3053 void CameraProviderManager::ProviderInfo::torchModeStatusChangeInternal(
3054 const std::string& cameraDeviceName,
3055 TorchModeStatus newStatus) {
3056 sp<StatusListener> listener;
3057 SystemCameraKind systemCameraKind = SystemCameraKind::PUBLIC;
3058 std::string id;
3059 bool known = false;
3060 {
3061 // Hold mLock for accessing mDevices
3062 std::lock_guard<std::mutex> lock(mLock);
3063 for (auto& deviceInfo : mDevices) {
3064 if (deviceInfo->mName == cameraDeviceName) {
3065 ALOGI("Camera device %s torch status is now %s", cameraDeviceName.c_str(),
3066 FrameworkTorchStatusToString(newStatus));
3067 id = deviceInfo->mId;
3068 known = true;
3069 systemCameraKind = deviceInfo->mSystemCameraKind;
3070 if (TorchModeStatus::AVAILABLE_ON != newStatus) {
3071 mManager->removeRef(CameraProviderManager::DeviceMode::TORCH, id);
3072 }
3073 break;
3074 }
3075 }
3076 if (!known) {
3077 ALOGW("Camera provider %s says an unknown camera %s now has torch status %d. Curious.",
3078 mProviderName.c_str(), cameraDeviceName.c_str(), eToI(newStatus));
3079 return;
3080 }
3081 // no lock needed since listener is set up only once during
3082 // CameraProviderManager initialization and then never changed till it is
3083 // destructed.
3084 listener = mManager->getStatusListener();
3085 }
3086 // Call without lock held to allow reentrancy into provider manager
3087 // The problem with holding mLock here is that we
3088 // might be limiting re-entrancy : CameraService::onTorchStatusChanged calls
3089 // back into CameraProviderManager which might try to hold mLock again (eg:
3090 // findDeviceInfo, which should be holding mLock while iterating through
3091 // each provider's devices).
3092 if (listener != nullptr) {
3093 listener->onTorchStatusChanged(id, newStatus, systemCameraKind);
3094 }
3095 return;
3096 }
3097
notifyDeviceInfoStateChangeLocked(int64_t newDeviceState)3098 void CameraProviderManager::ProviderInfo::notifyDeviceInfoStateChangeLocked(
3099 int64_t newDeviceState) {
3100 std::lock_guard<std::mutex> lock(mLock);
3101 for (auto it = mDevices.begin(); it != mDevices.end(); it++) {
3102 (*it)->notifyDeviceStateChange(newDeviceState);
3103 }
3104 }
3105
DeviceInfo3(const std::string & name,const metadata_vendor_id_t tagId,const std::string & id,uint16_t minorVersion,const CameraResourceCost & resourceCost,sp<ProviderInfo> parentProvider,const std::vector<std::string> & publicCameraIds)3106 CameraProviderManager::ProviderInfo::DeviceInfo3::DeviceInfo3(const std::string& name,
3107 const metadata_vendor_id_t tagId, const std::string &id,
3108 uint16_t minorVersion,
3109 const CameraResourceCost& resourceCost,
3110 sp<ProviderInfo> parentProvider,
3111 const std::vector<std::string>& publicCameraIds) :
3112 DeviceInfo(name, tagId, id,
3113 hardware::hidl_version{
3114 static_cast<uint16_t >(
3115 parentProvider->getIPCTransport() == IPCTransport::HIDL ? 3 : 1),
3116 minorVersion},
3117 publicCameraIds, resourceCost, parentProvider) { }
3118
notifyDeviceStateChange(int64_t newState)3119 void CameraProviderManager::ProviderInfo::DeviceInfo3::notifyDeviceStateChange(int64_t newState) {
3120 if (!mDeviceStateOrientationMap.empty() &&
3121 (mDeviceStateOrientationMap.find(newState) != mDeviceStateOrientationMap.end())) {
3122 mCameraCharacteristics.update(ANDROID_SENSOR_ORIENTATION,
3123 &mDeviceStateOrientationMap[newState], 1);
3124 if (mCameraCharNoPCOverride.get() != nullptr) {
3125 mCameraCharNoPCOverride->update(ANDROID_SENSOR_ORIENTATION,
3126 &mDeviceStateOrientationMap[newState], 1);
3127 }
3128 }
3129 }
3130
getCameraInfo(int rotationOverride,int * portraitRotation,hardware::CameraInfo * info) const3131 status_t CameraProviderManager::ProviderInfo::DeviceInfo3::getCameraInfo(
3132 int rotationOverride, int *portraitRotation,
3133 hardware::CameraInfo *info) const {
3134 if (info == nullptr) return BAD_VALUE;
3135
3136 bool freeform_compat_enabled = wm_flags::enable_camera_compat_for_desktop_windowing();
3137 if (!freeform_compat_enabled &&
3138 rotationOverride > hardware::ICameraService::ROTATION_OVERRIDE_OVERRIDE_TO_PORTRAIT) {
3139 ALOGW("Camera compat freeform flag disabled but rotation override is %d", rotationOverride);
3140 }
3141 camera_metadata_ro_entry facing =
3142 mCameraCharacteristics.find(ANDROID_LENS_FACING);
3143 if (facing.count == 1) {
3144 switch (facing.data.u8[0]) {
3145 case ANDROID_LENS_FACING_BACK:
3146 info->facing = hardware::CAMERA_FACING_BACK;
3147 break;
3148 case ANDROID_LENS_FACING_EXTERNAL:
3149 // Map external to front for legacy API
3150 case ANDROID_LENS_FACING_FRONT:
3151 info->facing = hardware::CAMERA_FACING_FRONT;
3152 break;
3153 }
3154 } else {
3155 ALOGE("%s: Unable to find android.lens.facing static metadata", __FUNCTION__);
3156 return NAME_NOT_FOUND;
3157 }
3158
3159 camera_metadata_ro_entry orientation =
3160 mCameraCharacteristics.find(ANDROID_SENSOR_ORIENTATION);
3161 if (orientation.count == 1) {
3162 info->orientation = orientation.data.i32[0];
3163 } else {
3164 ALOGE("%s: Unable to find android.sensor.orientation static metadata", __FUNCTION__);
3165 return NAME_NOT_FOUND;
3166 }
3167
3168 if (rotationOverride == hardware::ICameraService::ROTATION_OVERRIDE_OVERRIDE_TO_PORTRAIT
3169 && (info->orientation == 0 || info->orientation == 180)) {
3170 *portraitRotation = 90;
3171 if (info->facing == hardware::CAMERA_FACING_FRONT) {
3172 info->orientation = (360 + info->orientation - 90) % 360;
3173 } else {
3174 info->orientation = (360 + info->orientation + 90) % 360;
3175 }
3176 } else if (freeform_compat_enabled &&
3177 rotationOverride == hardware::ICameraService::ROTATION_OVERRIDE_ROTATION_ONLY
3178 && (info->orientation == 90 || info->orientation == 270)) {
3179 *portraitRotation = info->facing == hardware::CAMERA_FACING_BACK ? 90 : 270;
3180 } else {
3181 *portraitRotation = 0;
3182 }
3183
3184 return OK;
3185 }
isAPI1Compatible() const3186 bool CameraProviderManager::ProviderInfo::DeviceInfo3::isAPI1Compatible() const {
3187 // Do not advertise NIR cameras to API1 camera app.
3188 camera_metadata_ro_entry cfa = mCameraCharacteristics.find(
3189 ANDROID_SENSOR_INFO_COLOR_FILTER_ARRANGEMENT);
3190 if (cfa.count == 1 && cfa.data.u8[0] == ANDROID_SENSOR_INFO_COLOR_FILTER_ARRANGEMENT_NIR) {
3191 return false;
3192 }
3193
3194 bool isBackwardCompatible = false;
3195 camera_metadata_ro_entry_t caps = mCameraCharacteristics.find(
3196 ANDROID_REQUEST_AVAILABLE_CAPABILITIES);
3197 for (size_t i = 0; i < caps.count; i++) {
3198 if (caps.data.u8[i] ==
3199 ANDROID_REQUEST_AVAILABLE_CAPABILITIES_BACKWARD_COMPATIBLE) {
3200 isBackwardCompatible = true;
3201 break;
3202 }
3203 }
3204
3205 return isBackwardCompatible;
3206 }
3207
getCameraCharacteristics(bool overrideForPerfClass,CameraMetadata * characteristics,int rotationOverride)3208 status_t CameraProviderManager::ProviderInfo::DeviceInfo3::getCameraCharacteristics(
3209 bool overrideForPerfClass, CameraMetadata *characteristics,
3210 int rotationOverride) {
3211 if (characteristics == nullptr) return BAD_VALUE;
3212
3213 if (!overrideForPerfClass && mCameraCharNoPCOverride != nullptr) {
3214 *characteristics = *mCameraCharNoPCOverride;
3215 } else {
3216 *characteristics = mCameraCharacteristics;
3217 }
3218
3219 if (rotationOverride == hardware::ICameraService::ROTATION_OVERRIDE_OVERRIDE_TO_PORTRAIT) {
3220 const auto &lensFacingEntry = characteristics->find(ANDROID_LENS_FACING);
3221 const auto &sensorOrientationEntry = characteristics->find(ANDROID_SENSOR_ORIENTATION);
3222 uint8_t lensFacing = lensFacingEntry.data.u8[0];
3223 if (lensFacingEntry.count > 0 && sensorOrientationEntry.count > 0) {
3224 int32_t sensorOrientation = sensorOrientationEntry.data.i32[0];
3225 int32_t newSensorOrientation = sensorOrientation;
3226
3227 if (sensorOrientation == 0 || sensorOrientation == 180) {
3228 if (lensFacing == ANDROID_LENS_FACING_FRONT) {
3229 newSensorOrientation = (360 + sensorOrientation - 90) % 360;
3230 } else if (lensFacing == ANDROID_LENS_FACING_BACK) {
3231 newSensorOrientation = (360 + sensorOrientation + 90) % 360;
3232 }
3233 }
3234
3235 if (newSensorOrientation != sensorOrientation) {
3236 ALOGV("%s: Update ANDROID_SENSOR_ORIENTATION for lens facing %d "
3237 "from %d to %d", __FUNCTION__, lensFacing, sensorOrientation,
3238 newSensorOrientation);
3239 characteristics->update(ANDROID_SENSOR_ORIENTATION, &newSensorOrientation, 1);
3240 }
3241 }
3242
3243 if (characteristics->exists(ANDROID_INFO_DEVICE_STATE_ORIENTATIONS)) {
3244 ALOGV("%s: Erasing ANDROID_INFO_DEVICE_STATE_ORIENTATIONS for lens facing %d",
3245 __FUNCTION__, lensFacing);
3246 characteristics->erase(ANDROID_INFO_DEVICE_STATE_ORIENTATIONS);
3247 }
3248 }
3249
3250 return OK;
3251 }
3252
getPhysicalCameraCharacteristics(const std::string & physicalCameraId,CameraMetadata * characteristics) const3253 status_t CameraProviderManager::ProviderInfo::DeviceInfo3::getPhysicalCameraCharacteristics(
3254 const std::string& physicalCameraId, CameraMetadata *characteristics) const {
3255 if (characteristics == nullptr) return BAD_VALUE;
3256 if (mPhysicalCameraCharacteristics.find(physicalCameraId) ==
3257 mPhysicalCameraCharacteristics.end()) {
3258 return NAME_NOT_FOUND;
3259 }
3260
3261 *characteristics = mPhysicalCameraCharacteristics.at(physicalCameraId);
3262 return OK;
3263 }
3264
filterSmallJpegSizes()3265 status_t CameraProviderManager::ProviderInfo::DeviceInfo3::filterSmallJpegSizes() {
3266 int32_t thresholdW = SessionConfigurationUtils::PERF_CLASS_JPEG_THRESH_W;
3267 int32_t thresholdH = SessionConfigurationUtils::PERF_CLASS_JPEG_THRESH_H;
3268
3269 if (mCameraCharNoPCOverride != nullptr) return OK;
3270
3271 mCameraCharNoPCOverride = std::make_unique<CameraMetadata>(mCameraCharacteristics);
3272
3273 // Remove small JPEG sizes from available stream configurations
3274 size_t largeJpegCount = 0;
3275 std::vector<int32_t> newStreamConfigs;
3276 camera_metadata_entry streamConfigs =
3277 mCameraCharacteristics.find(ANDROID_SCALER_AVAILABLE_STREAM_CONFIGURATIONS);
3278 for (size_t i = 0; i < streamConfigs.count; i += 4) {
3279 if ((streamConfigs.data.i32[i] == HAL_PIXEL_FORMAT_BLOB) && (streamConfigs.data.i32[i+3] ==
3280 ANDROID_SCALER_AVAILABLE_STREAM_CONFIGURATIONS_OUTPUT)) {
3281 if (streamConfigs.data.i32[i+1] * streamConfigs.data.i32[i+2] <
3282 thresholdW * thresholdH) {
3283 continue;
3284 } else {
3285 largeJpegCount ++;
3286 }
3287 }
3288 newStreamConfigs.insert(newStreamConfigs.end(), streamConfigs.data.i32 + i,
3289 streamConfigs.data.i32 + i + 4);
3290 }
3291 if (newStreamConfigs.size() == 0 || largeJpegCount == 0) {
3292 return BAD_VALUE;
3293 }
3294
3295 // Remove small JPEG sizes from available min frame durations
3296 largeJpegCount = 0;
3297 std::vector<int64_t> newMinDurations;
3298 camera_metadata_entry minDurations =
3299 mCameraCharacteristics.find(ANDROID_SCALER_AVAILABLE_MIN_FRAME_DURATIONS);
3300 for (size_t i = 0; i < minDurations.count; i += 4) {
3301 if (minDurations.data.i64[i] == HAL_PIXEL_FORMAT_BLOB) {
3302 if ((int32_t)minDurations.data.i64[i+1] * (int32_t)minDurations.data.i64[i+2] <
3303 thresholdW * thresholdH) {
3304 continue;
3305 } else {
3306 largeJpegCount++;
3307 }
3308 }
3309 newMinDurations.insert(newMinDurations.end(), minDurations.data.i64 + i,
3310 minDurations.data.i64 + i + 4);
3311 }
3312 if (newMinDurations.size() == 0 || largeJpegCount == 0) {
3313 return BAD_VALUE;
3314 }
3315
3316 // Remove small JPEG sizes from available stall durations
3317 largeJpegCount = 0;
3318 std::vector<int64_t> newStallDurations;
3319 camera_metadata_entry stallDurations =
3320 mCameraCharacteristics.find(ANDROID_SCALER_AVAILABLE_STALL_DURATIONS);
3321 for (size_t i = 0; i < stallDurations.count; i += 4) {
3322 if (stallDurations.data.i64[i] == HAL_PIXEL_FORMAT_BLOB) {
3323 if ((int32_t)stallDurations.data.i64[i+1] * (int32_t)stallDurations.data.i64[i+2] <
3324 thresholdW * thresholdH) {
3325 continue;
3326 } else {
3327 largeJpegCount++;
3328 }
3329 }
3330 newStallDurations.insert(newStallDurations.end(), stallDurations.data.i64 + i,
3331 stallDurations.data.i64 + i + 4);
3332 }
3333 if (newStallDurations.size() == 0 || largeJpegCount == 0) {
3334 return BAD_VALUE;
3335 }
3336
3337 mCameraCharacteristics.update(ANDROID_SCALER_AVAILABLE_STREAM_CONFIGURATIONS,
3338 newStreamConfigs.data(), newStreamConfigs.size());
3339 mCameraCharacteristics.update(ANDROID_SCALER_AVAILABLE_MIN_FRAME_DURATIONS,
3340 newMinDurations.data(), newMinDurations.size());
3341 mCameraCharacteristics.update(ANDROID_SCALER_AVAILABLE_STALL_DURATIONS,
3342 newStallDurations.data(), newStallDurations.size());
3343
3344 // Re-generate metadata tags that have dependencies on BLOB sizes
3345 auto res = addDynamicDepthTags();
3346 if (OK != res) {
3347 ALOGE("%s: Failed to append dynamic depth tags: %s (%d)", __FUNCTION__,
3348 strerror(-res), res);
3349 // Allow filtering of small JPEG sizes to succeed even if dynamic depth
3350 // tags fail to generate.
3351 }
3352
3353 return OK;
3354 }
3355
parseProviderName(const std::string & name,std::string * type,uint32_t * id)3356 status_t CameraProviderManager::ProviderInfo::parseProviderName(const std::string& name,
3357 std::string *type, uint32_t *id) {
3358 // Format must be "<type>/<id>"
3359 #define ERROR_MSG_PREFIX "%s: Invalid provider name '%s'. " \
3360 "Should match '<type>/<id>' - "
3361
3362 if (!type || !id) return INVALID_OPERATION;
3363
3364 std::string::size_type slashIdx = name.find('/');
3365 if (slashIdx == std::string::npos || slashIdx == name.size() - 1) {
3366 ALOGE(ERROR_MSG_PREFIX
3367 "does not have / separator between type and id",
3368 __FUNCTION__, name.c_str());
3369 return BAD_VALUE;
3370 }
3371
3372 std::string typeVal = name.substr(0, slashIdx);
3373
3374 char *endPtr;
3375 errno = 0;
3376 long idVal = strtol(name.c_str() + slashIdx + 1, &endPtr, 10);
3377 if (errno != 0) {
3378 ALOGE(ERROR_MSG_PREFIX
3379 "cannot parse provider id as an integer: %s (%d)",
3380 __FUNCTION__, name.c_str(), strerror(errno), errno);
3381 return BAD_VALUE;
3382 }
3383 if (endPtr != name.c_str() + name.size()) {
3384 ALOGE(ERROR_MSG_PREFIX
3385 "provider id has unexpected length",
3386 __FUNCTION__, name.c_str());
3387 return BAD_VALUE;
3388 }
3389 if (idVal < 0) {
3390 ALOGE(ERROR_MSG_PREFIX
3391 "id is negative: %ld",
3392 __FUNCTION__, name.c_str(), idVal);
3393 return BAD_VALUE;
3394 }
3395
3396 #undef ERROR_MSG_PREFIX
3397
3398 *type = typeVal;
3399 *id = static_cast<uint32_t>(idVal);
3400
3401 return OK;
3402 }
3403
generateVendorTagId(const std::string & name)3404 metadata_vendor_id_t CameraProviderManager::ProviderInfo::generateVendorTagId(
3405 const std::string &name) {
3406 metadata_vendor_id_t ret = std::hash<std::string> {} (name);
3407 // CAMERA_METADATA_INVALID_VENDOR_ID is not a valid hash value
3408 if (CAMERA_METADATA_INVALID_VENDOR_ID == ret) {
3409 ret = 0;
3410 }
3411
3412 return ret;
3413 }
3414
parseDeviceName(const std::string & name,uint16_t * major,uint16_t * minor,std::string * type,std::string * id)3415 status_t CameraProviderManager::ProviderInfo::parseDeviceName(const std::string& name,
3416 uint16_t *major, uint16_t *minor, std::string *type, std::string *id) {
3417
3418 // Format must be "device@<major>.<minor>/<type>/<id>"
3419
3420 #define ERROR_MSG_PREFIX "%s: Invalid device name '%s'. " \
3421 "Should match 'device@<major>.<minor>/<type>/<id>' - "
3422
3423 if (!major || !minor || !type || !id) return INVALID_OPERATION;
3424
3425 // Verify starting prefix
3426 const char expectedPrefix[] = "device@";
3427
3428 if (name.find(expectedPrefix) != 0) {
3429 ALOGE(ERROR_MSG_PREFIX
3430 "does not start with '%s'",
3431 __FUNCTION__, name.c_str(), expectedPrefix);
3432 return BAD_VALUE;
3433 }
3434
3435 // Extract major/minor versions
3436 constexpr std::string::size_type atIdx = sizeof(expectedPrefix) - 2;
3437 std::string::size_type dotIdx = name.find('.', atIdx);
3438 if (dotIdx == std::string::npos) {
3439 ALOGE(ERROR_MSG_PREFIX
3440 "does not have @<major>. version section",
3441 __FUNCTION__, name.c_str());
3442 return BAD_VALUE;
3443 }
3444 std::string::size_type typeSlashIdx = name.find('/', dotIdx);
3445 if (typeSlashIdx == std::string::npos) {
3446 ALOGE(ERROR_MSG_PREFIX
3447 "does not have .<minor>/ version section",
3448 __FUNCTION__, name.c_str());
3449 return BAD_VALUE;
3450 }
3451
3452 char *endPtr;
3453 errno = 0;
3454 long majorVal = strtol(name.c_str() + atIdx + 1, &endPtr, 10);
3455 if (errno != 0) {
3456 ALOGE(ERROR_MSG_PREFIX
3457 "cannot parse major version: %s (%d)",
3458 __FUNCTION__, name.c_str(), strerror(errno), errno);
3459 return BAD_VALUE;
3460 }
3461 if (endPtr != name.c_str() + dotIdx) {
3462 ALOGE(ERROR_MSG_PREFIX
3463 "major version has unexpected length",
3464 __FUNCTION__, name.c_str());
3465 return BAD_VALUE;
3466 }
3467 long minorVal = strtol(name.c_str() + dotIdx + 1, &endPtr, 10);
3468 if (errno != 0) {
3469 ALOGE(ERROR_MSG_PREFIX
3470 "cannot parse minor version: %s (%d)",
3471 __FUNCTION__, name.c_str(), strerror(errno), errno);
3472 return BAD_VALUE;
3473 }
3474 if (endPtr != name.c_str() + typeSlashIdx) {
3475 ALOGE(ERROR_MSG_PREFIX
3476 "minor version has unexpected length",
3477 __FUNCTION__, name.c_str());
3478 return BAD_VALUE;
3479 }
3480 if (majorVal < 0 || majorVal > UINT16_MAX || minorVal < 0 || minorVal > UINT16_MAX) {
3481 ALOGE(ERROR_MSG_PREFIX
3482 "major/minor version is out of range of uint16_t: %ld.%ld",
3483 __FUNCTION__, name.c_str(), majorVal, minorVal);
3484 return BAD_VALUE;
3485 }
3486
3487 // Extract type and id
3488
3489 std::string::size_type instanceSlashIdx = name.find('/', typeSlashIdx + 1);
3490 if (instanceSlashIdx == std::string::npos) {
3491 ALOGE(ERROR_MSG_PREFIX
3492 "does not have /<type>/ component",
3493 __FUNCTION__, name.c_str());
3494 return BAD_VALUE;
3495 }
3496 std::string typeVal = name.substr(typeSlashIdx + 1, instanceSlashIdx - typeSlashIdx - 1);
3497
3498 if (instanceSlashIdx == name.size() - 1) {
3499 ALOGE(ERROR_MSG_PREFIX
3500 "does not have an /<id> component",
3501 __FUNCTION__, name.c_str());
3502 return BAD_VALUE;
3503 }
3504 std::string idVal = name.substr(instanceSlashIdx + 1);
3505
3506 #undef ERROR_MSG_PREFIX
3507
3508 *major = static_cast<uint16_t>(majorVal);
3509 *minor = static_cast<uint16_t>(minorVal);
3510 *type = typeVal;
3511 *id = idVal;
3512
3513 return OK;
3514 }
3515
~ProviderInfo()3516 CameraProviderManager::ProviderInfo::~ProviderInfo() {
3517 // Destruction of ProviderInfo is only supposed to happen when the respective
3518 // CameraProvider interface dies, so do not unregister callbacks.
3519 }
3520
3521 // Expects to have mInterfaceMutex locked
3522 std::vector<std::unordered_set<std::string>>
getConcurrentCameraIds() const3523 CameraProviderManager::getConcurrentCameraIds() const {
3524 std::vector<std::unordered_set<std::string>> deviceIdCombinations;
3525 std::lock_guard<std::mutex> lock(mInterfaceMutex);
3526 for (auto &provider : mProviders) {
3527 for (auto &combinations : provider->getConcurrentCameraIdCombinations()) {
3528 deviceIdCombinations.push_back(combinations);
3529 }
3530 }
3531 return deviceIdCombinations;
3532 }
3533
3534 // Checks if the containing vector of sets has any set that contains all of the
3535 // camera ids in cameraIdsAndSessionConfigs.
checkIfSetContainsAll(const std::vector<CameraIdAndSessionConfiguration> & cameraIdsAndSessionConfigs,const std::vector<std::unordered_set<std::string>> & containingSets)3536 static bool checkIfSetContainsAll(
3537 const std::vector<CameraIdAndSessionConfiguration> &cameraIdsAndSessionConfigs,
3538 const std::vector<std::unordered_set<std::string>> &containingSets) {
3539 for (auto &containingSet : containingSets) {
3540 bool didHaveAll = true;
3541 for (auto &cameraIdAndSessionConfig : cameraIdsAndSessionConfigs) {
3542 if (containingSet.find(cameraIdAndSessionConfig.mCameraId) == containingSet.end()) {
3543 // a camera id doesn't belong to this set, keep looking in other
3544 // sets
3545 didHaveAll = false;
3546 break;
3547 }
3548 }
3549 if (didHaveAll) {
3550 // found a set that has all camera ids, lets return;
3551 return true;
3552 }
3553 }
3554 return false;
3555 }
3556
isConcurrentSessionConfigurationSupported(const std::vector<CameraIdAndSessionConfiguration> & cameraIdsAndSessionConfigs,const std::set<std::string> & perfClassPrimaryCameraIds,int targetSdkVersion,bool * isSupported)3557 status_t CameraProviderManager::isConcurrentSessionConfigurationSupported(
3558 const std::vector<CameraIdAndSessionConfiguration> &cameraIdsAndSessionConfigs,
3559 const std::set<std::string>& perfClassPrimaryCameraIds,
3560 int targetSdkVersion, bool *isSupported) {
3561 std::lock_guard<std::mutex> lock(mInterfaceMutex);
3562 // Check if all the devices are a subset of devices advertised by the
3563 // same provider through getConcurrentStreamingCameraIds()
3564 // TODO: we should also do a findDeviceInfoLocked here ?
3565 for (auto &provider : mProviders) {
3566 if (checkIfSetContainsAll(cameraIdsAndSessionConfigs,
3567 provider->getConcurrentCameraIdCombinations())) {
3568 return provider->isConcurrentSessionConfigurationSupported(
3569 cameraIdsAndSessionConfigs, perfClassPrimaryCameraIds, targetSdkVersion,
3570 isSupported);
3571 }
3572 }
3573 *isSupported = false;
3574 //The set of camera devices were not found
3575 return INVALID_OPERATION;
3576 }
3577
getCameraCharacteristicsLocked(const std::string & id,bool overrideForPerfClass,CameraMetadata * characteristics,int rotationOverride) const3578 status_t CameraProviderManager::getCameraCharacteristicsLocked(const std::string &id,
3579 bool overrideForPerfClass, CameraMetadata* characteristics,
3580 int rotationOverride) const {
3581 auto deviceInfo = findDeviceInfoLocked(id);
3582 if (deviceInfo != nullptr) {
3583 return deviceInfo->getCameraCharacteristics(overrideForPerfClass, characteristics,
3584 rotationOverride);
3585 }
3586
3587 // Find hidden physical camera characteristics
3588 for (auto& provider : mProviders) {
3589 for (auto& deviceInfo : provider->mDevices) {
3590 status_t res = deviceInfo->getPhysicalCameraCharacteristics(id, characteristics);
3591 if (res != NAME_NOT_FOUND) return res;
3592 }
3593 }
3594
3595 return NAME_NOT_FOUND;
3596 }
3597
filterLogicalCameraIdsLocked(std::vector<std::string> & deviceIds) const3598 void CameraProviderManager::filterLogicalCameraIdsLocked(
3599 std::vector<std::string>& deviceIds) const
3600 {
3601 // Map between camera facing and camera IDs related to logical camera.
3602 std::map<int, std::unordered_set<std::string>> idCombos;
3603
3604 // Collect all logical and its underlying physical camera IDs for each
3605 // facing.
3606 for (auto& deviceId : deviceIds) {
3607 auto deviceInfo = findDeviceInfoLocked(deviceId);
3608 if (deviceInfo == nullptr) continue;
3609
3610 if (!deviceInfo->mIsLogicalCamera) {
3611 continue;
3612 }
3613
3614 // combo contains the ids of a logical camera and its physical cameras
3615 std::vector<std::string> combo = deviceInfo->mPhysicalIds;
3616 combo.push_back(deviceId);
3617
3618 hardware::CameraInfo info;
3619 int portraitRotation;
3620 status_t res = deviceInfo->getCameraInfo(
3621 /*rotationOverride*/hardware::ICameraService::ROTATION_OVERRIDE_NONE,
3622 &portraitRotation, &info);
3623 if (res != OK) {
3624 ALOGE("%s: Error reading camera info: %s (%d)", __FUNCTION__, strerror(-res), res);
3625 continue;
3626 }
3627 idCombos[info.facing].insert(combo.begin(), combo.end());
3628 }
3629
3630 // Only expose one camera ID per facing for all logical and underlying
3631 // physical camera IDs.
3632 for (auto& r : idCombos) {
3633 auto& removedIds = r.second;
3634 for (auto& id : deviceIds) {
3635 auto foundId = std::find(removedIds.begin(), removedIds.end(), id);
3636 if (foundId == removedIds.end()) {
3637 continue;
3638 }
3639
3640 removedIds.erase(foundId);
3641 break;
3642 }
3643 deviceIds.erase(std::remove_if(deviceIds.begin(), deviceIds.end(),
3644 [&removedIds](const std::string& s) {
3645 return removedIds.find(s) != removedIds.end();}),
3646 deviceIds.end());
3647 }
3648 }
3649
isVirtualCameraHalEnabled()3650 bool CameraProviderManager::isVirtualCameraHalEnabled() {
3651 return vd_flags::virtual_camera_service_build_flag();
3652 }
3653
3654 } // namespace android
3655