1 /*
2 * Copyright (C) 2012 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 /**
18 * Project HWC 2.0 Design
19 */
20 #define ATRACE_TAG (ATRACE_TAG_GRAPHICS | ATRACE_TAG_HAL)
21 #include <utils/Errors.h>
22 #include <sync/sync.h>
23 #include <sys/mman.h>
24 #include <cutils/properties.h>
25 #include "ExynosMPP.h"
26 #include "ExynosResourceRestriction.h"
27 #include <hardware/hwcomposer_defs.h>
28 #include <math.h>
29 #include "VendorGraphicBuffer.h"
30 #include "ExynosHWCDebug.h"
31 #include "ExynosDisplay.h"
32 #include "ExynosVirtualDisplay.h"
33 #include "ExynosLayer.h"
34 #include "ExynosHWCHelper.h"
35 #include "exynos_sync.h"
36 #include "ExynosResourceManager.h"
37
38 /**
39 * ExynosMPP implementation
40 *
41 * Abstraction class for HW Resource
42 */
43
44 using namespace android;
45 using namespace vendor::graphics;
46 using namespace SOC_VERSION;
47
48 int ExynosMPP::mainDisplayWidth = 0;
49 int ExynosMPP::mainDisplayHeight = 0;
50 extern struct exynos_hwc_control exynosHWCControl;
51
52 std::unordered_map<tdm_attr_t, TDMInfo_t> HWAttrs = {
53 {TDM_ATTR_SRAM_AMOUNT, {String8("SRAM"), LS_DPUF}},
54 {TDM_ATTR_AFBC, {String8("AFBC"), LS_DPUF}},
55 {TDM_ATTR_SBWC, {String8("SBWC"), LS_DPUF}},
56 {TDM_ATTR_ITP, {String8("CSC"), LS_DPUF}},
57 {TDM_ATTR_ROT_90, {String8("ROT"), LS_DPUF}},
58 {TDM_ATTR_SCALE, {String8("SCALE"), LS_DPUF}},
59 {TDM_ATTR_WCG, {String8("WCG"), LS_DPUF_AXI}},
60 };
61
dumpExynosMPPImgInfo(uint32_t type,exynos_mpp_img_info & imgInfo)62 void dumpExynosMPPImgInfo(uint32_t type, exynos_mpp_img_info &imgInfo)
63 {
64 HDEBUGLOGD(type, "\tbuffer: %p, bufferType: %d",
65 imgInfo.bufferHandle, imgInfo.bufferType);
66 }
67
exynosMPPSourceComp(const ExynosMPPSource * l,const ExynosMPPSource * r)68 bool exynosMPPSourceComp(const ExynosMPPSource* l, const ExynosMPPSource* r)
69 {
70 if (l == NULL || r == NULL) {
71 HWC_LOGE(NULL,"exynosMPP compare error");
72 return 0;
73 }
74 return (l->mSrcImg.zOrder < r->mSrcImg.zOrder);
75 }
76
dump(const restriction_size_t & restrictionSize,String8 & result)77 void dump(const restriction_size_t &restrictionSize, String8 &result) {
78 result.appendFormat(" maxDownScale = %u, maxUpscale = %u\n", restrictionSize.maxDownScale,
79 restrictionSize.maxUpScale);
80 result.appendFormat(" maxFullWidth = %u, maxFullHeight = %u\n", restrictionSize.maxFullWidth,
81 restrictionSize.maxFullHeight);
82 result.appendFormat(" minFullWidth = %u, minFullHeight = %u\n", restrictionSize.minFullWidth,
83 restrictionSize.minFullHeight);
84 result.appendFormat(" fullWidthAlign = %u, fullHeightAlign = %u\n",
85 restrictionSize.fullWidthAlign, restrictionSize.fullHeightAlign);
86 result.appendFormat(" maxCropWidth = %u, maxCropHeight = %u\n", restrictionSize.maxCropWidth,
87 restrictionSize.maxCropHeight);
88 result.appendFormat(" minCropWidth = %u, minCropHeight = %u\n", restrictionSize.minCropWidth,
89 restrictionSize.minCropHeight);
90 result.appendFormat(" cropXAlign = %u, cropYAlign = %u\n", restrictionSize.cropXAlign,
91 restrictionSize.cropYAlign);
92 result.appendFormat(" cropWidthAlign = %u, cropHeightAlign = %u\n",
93 restrictionSize.cropWidthAlign, restrictionSize.cropHeightAlign);
94 }
95
ExynosMPPSource()96 ExynosMPPSource::ExynosMPPSource()
97 : mSourceType(MPP_SOURCE_MAX), mSource(NULL), mOtfMPP(NULL), mM2mMPP(NULL) {
98 memset(&mSrcImg, 0, sizeof(mSrcImg));
99 mSrcImg.acquireFenceFd = -1;
100 mSrcImg.releaseFenceFd = -1;
101 memset(&mDstImg, 0, sizeof(mDstImg));
102 mDstImg.acquireFenceFd = -1;
103 mDstImg.releaseFenceFd = -1;
104 memset(&mMidImg, 0, sizeof(mMidImg));
105 mMidImg.acquireFenceFd = -1;
106 mMidImg.releaseFenceFd = -1;
107
108 mHWResourceAmount.clear();
109 }
110
ExynosMPPSource(uint32_t sourceType,void * source)111 ExynosMPPSource::ExynosMPPSource(uint32_t sourceType, void *source)
112 : mSourceType(sourceType),
113 mSource(source),
114 mOtfMPP(NULL),
115 mM2mMPP(NULL)
116 {
117 memset(&mSrcImg, 0, sizeof(mSrcImg));
118 mSrcImg.acquireFenceFd = -1;
119 mSrcImg.releaseFenceFd = -1;
120 memset(&mDstImg, 0, sizeof(mDstImg));
121 mDstImg.acquireFenceFd = -1;
122 mDstImg.releaseFenceFd = -1;
123 memset(&mMidImg, 0, sizeof(mMidImg));
124 mMidImg.acquireFenceFd = -1;
125 mMidImg.releaseFenceFd = -1;
126 }
127
setExynosImage(const exynos_image & src_img,const exynos_image & dst_img)128 void ExynosMPPSource::setExynosImage(const exynos_image& src_img, const exynos_image& dst_img) {
129 mSrcImg = src_img;
130 mDstImg = dst_img;
131 }
132
setExynosMidImage(const exynos_image & mid_img)133 void ExynosMPPSource::setExynosMidImage(const exynos_image& mid_img) {
134 mMidImg = mid_img;
135 }
136
ExynosMPP(ExynosResourceManager * resourceManager,uint32_t physicalType,uint32_t logicalType,const char * name,uint32_t physicalIndex,uint32_t logicalIndex,uint32_t preAssignInfo)137 ExynosMPP::ExynosMPP(ExynosResourceManager* resourceManager,
138 uint32_t physicalType, uint32_t logicalType, const char *name,
139 uint32_t physicalIndex, uint32_t logicalIndex, uint32_t preAssignInfo)
140 : mResourceManager(resourceManager),
141 mMPPType(MPP_TYPE_NONE),
142 mPhysicalType(physicalType),
143 mLogicalType(logicalType),
144 mName(name),
145 mPhysicalIndex(physicalIndex),
146 mLogicalIndex(logicalIndex),
147 mPreAssignDisplayInfo(preAssignInfo),
148 mHWState(MPP_HW_STATE_IDLE),
149 mLastStateFenceFd(-1),
150 mAssignedState(MPP_ASSIGN_STATE_FREE),
151 mEnable(true),
152 mAssignedDisplay(NULL),
153 mMaxSrcLayerNum(1),
154 mPrevAssignedState(MPP_ASSIGN_STATE_FREE),
155 mPrevAssignedDisplayType(-1),
156 mReservedDisplay(-1),
157 mResourceManageThread(android::sp<ResourceManageThread>::make(this)),
158 mCapacity(-1),
159 mUsedCapacity(0),
160 mAllocOutBufFlag(true),
161 mFreeOutBufFlag(true),
162 mHWBusyFlag(false),
163 mCurrentDstBuf(0),
164 mPrivDstBuf(-1),
165 mNeedCompressedTarget(false),
166 mDstAllocatedSize(DST_SIZE_UNKNOWN),
167 mUseM2MSrcFence(false),
168 mAttr(0),
169 mAssignOrder(0),
170 mAXIPortId(0),
171 mHWBlockId(0),
172 mNeedSolidColorLayer(false)
173 {
174 if (mPhysicalType < MPP_DPP_NUM) {
175 mClockKhz = VPP_CLOCK;
176 mPPC = VPP_PIXEL_PER_CLOCK;
177 }
178
179 if (mPhysicalType == MPP_G2D) {
180 mClockKhz = G2D_CLOCK;
181 if (mLogicalType == MPP_LOGICAL_G2D_RGB) {
182
183 char value[256];
184 int afbc_prop;
185 property_get("ro.vendor.ddk.set.afbc", value, "0");
186 afbc_prop = atoi(value);
187 if (afbc_prop == 0)
188 mNeedCompressedTarget = false;
189 else
190 mNeedCompressedTarget = true;
191
192 mMaxSrcLayerNum = G2D_MAX_SRC_NUM;
193 } else if (mLogicalType == MPP_LOGICAL_G2D_COMBO &&
194 (mPreAssignDisplayInfo & HWC_DISPLAY_VIRTUAL_BIT)) {
195 mMaxSrcLayerNum = G2D_MAX_SRC_NUM - 1;
196 mAllocOutBufFlag = false;
197 mNeedCompressedTarget = false;
198 mUseM2MSrcFence = true;
199 }
200 /* Capacity means time(ms) that can be used for operation */
201 mCapacity = MPP_G2D_CAPACITY;
202 mAcrylicHandle = AcrylicFactory::createAcrylic("default_compositor");
203 if (mAcrylicHandle == NULL) {
204 MPP_LOGE("Fail to allocate acrylic handle");
205 abort();
206 } else {
207 MPP_LOGI("mAcrylicHandle is created: %p", mAcrylicHandle);
208 }
209 }
210
211 /* Basic feature supported flags */
212 for (const auto &feature: feature_table) {
213 if (feature.hwType == mPhysicalType)
214 mAttr = feature.attr;
215 }
216
217 if (mPhysicalType == MPP_MSC) {
218 mClockKhz = MSC_CLOCK;
219 /* To do
220 * Capacity should be set
221 */
222 mCapacity = MPP_MSC_CAPACITY;
223 mAcrylicHandle = AcrylicFactory::createAcrylic("default_scaler");
224 if (mAcrylicHandle == NULL) {
225 MPP_LOGE("Fail to allocate acrylic handle");
226 abort();
227 } else {
228 MPP_LOGI("mAcrylicHandle is created: %p", mAcrylicHandle);
229 }
230 }
231
232 if (mMaxSrcLayerNum > 1) {
233 mNeedSolidColorLayer = true;
234 mAcrylicHandle->setDefaultColor(0, 0, 0, 0);
235 }
236
237 mAssignedSources.clear();
238 resetUsedCapacity();
239
240 mResourceManageThread->mRunning = true;
241 mResourceManageThread->run("MPPThread");
242
243 memset(&mPrevFrameInfo, 0, sizeof(mPrevFrameInfo));
244 for (int i = 0; i < NUM_MPP_SRC_BUFS; i++) {
245 mPrevFrameInfo.srcInfo[i].acquireFenceFd = -1;
246 mPrevFrameInfo.srcInfo[i].releaseFenceFd = -1;
247 mPrevFrameInfo.dstInfo[i].acquireFenceFd = -1;
248 mPrevFrameInfo.dstInfo[i].releaseFenceFd = -1;
249 }
250
251 for (uint32_t i = 0; i < NUM_MPP_SRC_BUFS; i++) {
252 memset(&mSrcImgs[i], 0, sizeof(mSrcImgs[i]));
253 mSrcImgs[i].acrylicAcquireFenceFd = -1;
254 mSrcImgs[i].acrylicReleaseFenceFd = -1;
255 }
256 for (uint32_t i = 0; i < NUM_MPP_DST_BUFS(mLogicalType); i++) {
257 memset(&mDstImgs[i], 0, sizeof(mDstImgs[i]));
258 mDstImgs[i].acrylicAcquireFenceFd = -1;
259 mDstImgs[i].acrylicReleaseFenceFd = -1;
260 }
261
262 for (uint32_t i = 0; i < DISPLAY_MODE_NUM; i++)
263 {
264 mPreAssignDisplayList[i] = (preAssignInfo >> (DISPLAY_MODE_MASK_LEN * i)) & DISPLAY_MODE_MASK_BIT;
265 }
266 }
267
~ExynosMPP()268 ExynosMPP::~ExynosMPP()
269 {
270 mResourceManageThread->mRunning = false;
271 mResourceManageThread->requestExitAndWait();
272 }
273
274
ResourceManageThread(ExynosMPP * exynosMPP)275 ExynosMPP::ResourceManageThread::ResourceManageThread(ExynosMPP *exynosMPP)
276 : mExynosMPP(exynosMPP),
277 mRunning(false)
278 {
279 }
280
~ResourceManageThread()281 ExynosMPP::ResourceManageThread::~ResourceManageThread()
282 {
283 }
284
isDataspaceSupportedByMPP(struct exynos_image & src,struct exynos_image & dst)285 bool ExynosMPP::isDataspaceSupportedByMPP(struct exynos_image &src, struct exynos_image &dst)
286 {
287 uint32_t srcStandard = (src.dataSpace & HAL_DATASPACE_STANDARD_MASK);
288 uint32_t dstStandard = (dst.dataSpace & HAL_DATASPACE_STANDARD_MASK);
289 uint32_t srcTransfer = (src.dataSpace & HAL_DATASPACE_TRANSFER_MASK);
290 uint32_t dstTransfer = (dst.dataSpace & HAL_DATASPACE_TRANSFER_MASK);
291
292 /* No conversion case */
293 if ((srcStandard == dstStandard) && (srcTransfer == dstTransfer))
294 return true;
295
296 /* Unspecified conversion case */
297 if (((srcStandard == HAL_DATASPACE_STANDARD_UNSPECIFIED) ||
298 (dstStandard == HAL_DATASPACE_STANDARD_UNSPECIFIED)) &&
299 ((srcTransfer == HAL_DATASPACE_TRANSFER_UNSPECIFIED) ||
300 (dstTransfer == HAL_DATASPACE_TRANSFER_UNSPECIFIED)))
301 return true;
302
303 /* WCG support check */
304 /* 'Src is not HDR' and 'src,dst has differenct dataspace' means WCG case */
305 /* Some MPPs are only support HDR but WCG */
306 if (!hasHdrInfo(src) && ((mAttr & MPP_ATTR_WCG) == 0))
307 return false;
308
309 /* Standard support check */
310 auto standard_it = dataspace_standard_map.find(srcStandard);
311 if ((standard_it == dataspace_standard_map.end()) ||
312 ((mAttr & standard_it->second) == 0))
313 return false;
314
315 /* Transfer support check */
316 auto transfer_it = dataspace_transfer_map.find(srcTransfer);
317 if ((transfer_it == dataspace_transfer_map.end()) ||
318 ((mAttr & transfer_it->second) == 0))
319 return false;
320
321 return checkCSCRestriction(src, dst);
322 }
323
isSupportedHDR(struct exynos_image & src,struct exynos_image & dst)324 bool ExynosMPP::isSupportedHDR(struct exynos_image &src, struct exynos_image &dst)
325 {
326
327 uint32_t srcStandard = (src.dataSpace & HAL_DATASPACE_STANDARD_MASK);
328 uint32_t dstStandard = (dst.dataSpace & HAL_DATASPACE_STANDARD_MASK);
329 uint32_t srcTransfer = (src.dataSpace & HAL_DATASPACE_TRANSFER_MASK);
330 uint32_t dstTransfer = (dst.dataSpace & HAL_DATASPACE_TRANSFER_MASK);
331
332 if (hasHdr10Plus(src) || hasHdrInfo(src) ) {
333 if (mAttr & MPP_ATTR_HDR10PLUS)
334 return true;
335 else if ((srcStandard == dstStandard) && (srcTransfer == dstTransfer))
336 return true;
337 else if ((mLogicalType == MPP_LOGICAL_G2D_COMBO) && (mPreAssignDisplayInfo & HWC_DISPLAY_VIRTUAL_BIT))
338 return true;
339 else
340 return false;
341 }
342 return true;
343 }
344
isSupportedHStrideCrop(struct exynos_image __unused & src)345 bool ExynosMPP::isSupportedHStrideCrop(struct exynos_image __unused &src)
346 {
347 return true;
348 }
349
isSupportedBlend(struct exynos_image & src)350 bool ExynosMPP::isSupportedBlend(struct exynos_image &src)
351 {
352 switch(src.blending) {
353 case HWC2_BLEND_MODE_NONE:
354 case HWC2_BLEND_MODE_PREMULTIPLIED:
355 case HWC2_BLEND_MODE_COVERAGE:
356 return true;
357 default:
358 return false;
359 }
360 }
361
checkRotationCondition(struct exynos_image & src)362 bool ExynosMPP::checkRotationCondition(struct exynos_image &src)
363 {
364 /* Check only DPP types */
365 if (mPhysicalType >= MPP_DPP_NUM)
366 return true;
367
368 /* If DPP has their own restriction, implmemnt module codes */
369 if (mAttr & MPP_ATTR_ROT_90) {
370 if (isFormatYUV420(src.format) == true)
371 return true;
372 }
373
374 /* Other DPPs */
375 if ((src.transform & HAL_TRANSFORM_ROT_90) == 0)
376 {
377 if ((src.compressionInfo.type == COMP_TYPE_AFBC) && (src.transform != 0)) return false;
378 return true;
379 } else {
380 return false;
381 }
382
383 return true;
384 }
385
isSupportedTransform(struct exynos_image & src)386 bool ExynosMPP::isSupportedTransform(struct exynos_image &src)
387 {
388 if (src.transform == 0) return true;
389
390 /* If MPP need to check additional condition,
391 * implement checkRotationCondition function to check it */
392 /* For example, DPP need to check custom conditons */
393 if (!checkRotationCondition(src))
394 return false;
395
396 for(auto transform_map : transform_map_table) {
397 if (src.transform & transform_map.hal_tr) {
398 if (!(mAttr & transform_map.hwc_tr))
399 return false;
400 }
401 }
402
403 return true;
404 }
405
isSupportedCompression(struct exynos_image & src)406 bool ExynosMPP::isSupportedCompression(struct exynos_image &src)
407 {
408 if (src.compressionInfo.type == COMP_TYPE_AFBC) {
409 if (mAttr & MPP_ATTR_AFBC)
410 return true;
411 else
412 return false;
413 }
414
415 return true;
416 }
417
isSupportedCapability(ExynosDisplay & display,struct exynos_image & src)418 bool ExynosMPP::isSupportedCapability(ExynosDisplay &display, struct exynos_image &src)
419 {
420 if (display.mType != HWC_DISPLAY_EXTERNAL)
421 return true;
422
423 if (!(mAttr & MPP_ATTR_USE_CAPA))
424 return true;
425
426 if (mResourceManager->hasHdrLayer || mResourceManager->hasDrmLayer) {
427 if (getDrmMode(src.usageFlags) != NO_DRM)
428 return true;
429 else if (hasHdrInfo(src))
430 return true;
431 else
432 return false;
433 }
434
435 return true;
436 }
437
isSupportedDRM(struct exynos_image & src)438 bool ExynosMPP::isSupportedDRM(struct exynos_image &src)
439 {
440 if (getDrmMode(src.usageFlags) == NO_DRM)
441 return true;
442
443 if (mLogicalType == MPP_LOGICAL_G2D_RGB)
444 return false;
445
446 return true;
447 }
448
checkCSCRestriction(struct exynos_image & src,struct exynos_image & dst)449 bool ExynosMPP::checkCSCRestriction(struct exynos_image &src, struct exynos_image &dst)
450 {
451 return true;
452 }
453
isDimLayerSupported()454 bool ExynosMPP::isDimLayerSupported()
455 {
456 if (mAttr & MPP_ATTR_DIM)
457 return true;
458
459 return false;
460 }
461
isSrcFormatSupported(struct exynos_image & src)462 bool ExynosMPP::isSrcFormatSupported(struct exynos_image &src)
463 {
464 if (mLogicalType == MPP_LOGICAL_G2D_YUV) {
465 /* Support YUV layer and HDR RGB layer */
466 if (isFormatRgb(src.format) && (hasHdrInfo(src) == false))
467 return false;
468 }
469 if ((mLogicalType == MPP_LOGICAL_G2D_RGB) &&
470 isFormatYUV(src.format))
471 return false;
472 if ((mLogicalType == MPP_LOGICAL_MSC_YUV) &&
473 isFormatRgb(src.format)) {
474 return false;
475 }
476
477 if (mResourceManager == NULL) return false;
478
479 for (uint32_t i = 0 ; i < mResourceManager->mFormatRestrictionCnt; i++) {
480 if ((mResourceManager->mFormatRestrictions[i].hwType == mPhysicalType) &&
481 ((mResourceManager->mFormatRestrictions[i].nodeType == NODE_NONE) ||
482 (mResourceManager->mFormatRestrictions[i].nodeType == NODE_SRC)) &&
483 (mResourceManager->mFormatRestrictions[i].format == src.format))
484 return true;
485 }
486
487 return false;
488 }
489
isDstFormatSupported(struct exynos_image & dst)490 bool ExynosMPP::isDstFormatSupported(struct exynos_image &dst)
491 {
492
493 for (uint32_t i = 0 ; i < mResourceManager->mFormatRestrictionCnt; i++) {
494 if ((mResourceManager->mFormatRestrictions[i].hwType == mPhysicalType) &&
495 ((mResourceManager->mFormatRestrictions[i].nodeType == NODE_NONE) ||
496 (mResourceManager->mFormatRestrictions[i].nodeType == NODE_DST)) &&
497 (mResourceManager->mFormatRestrictions[i].format == dst.format))
498 return true;
499 }
500
501 return false;
502 }
503
getMaxUpscale(const struct exynos_image & src,const struct exynos_image __unused & dst) const504 uint32_t ExynosMPP::getMaxUpscale(const struct exynos_image &src,
505 const struct exynos_image __unused &dst) const {
506 uint32_t idx = getRestrictionClassification(src);
507 return mSrcSizeRestrictions[idx].maxUpScale;
508 }
509
checkDownscaleCap(const float resolution,const float displayRatio_V) const510 bool ExynosMPP::checkDownscaleCap(const float resolution, const float displayRatio_V) const {
511 if (mPhysicalType >= MPP_DPP_NUM) return true;
512
513 return float(mClockKhz) >= ((resolution * VPP_RESOL_MARGIN) / (mPPC * displayRatio_V));
514 }
515
getDownscaleRestriction(const struct exynos_image & src,const struct exynos_image &) const516 uint32_t ExynosMPP::getDownscaleRestriction(const struct exynos_image &src,
517 const struct exynos_image & /*dst*/) const {
518 auto idx = getRestrictionClassification(src);
519 return mDstSizeRestrictions[idx].maxDownScale;
520 }
521
getMaxDownscale(const ExynosDisplay & display,const struct exynos_image & src,const struct exynos_image & dst) const522 uint32_t ExynosMPP::getMaxDownscale(const ExynosDisplay &display, const struct exynos_image &src,
523 const struct exynos_image &dst) const {
524 uint32_t maxDownscale = getDownscaleRestriction(src, dst);
525
526 if (maxDownscale <= 1) {
527 return maxDownscale;
528 }
529
530 if (mPhysicalType < MPP_DPP_NUM) {
531 float resolution = float(src.w) * float(src.h) * display.getBtsRefreshRate() / 1000;
532 if (!checkDownscaleCap(resolution, float(dst.h) / float(display.mYres))) {
533 return 1;
534 }
535 }
536
537 return maxDownscale;
538 }
539
getSrcXOffsetAlign(struct exynos_image & src)540 uint32_t ExynosMPP::getSrcXOffsetAlign(struct exynos_image &src)
541 {
542 /* Refer module(ExynosMPPModule) for chip specific restrictions */
543 uint32_t idx = getRestrictionClassification(src);
544 if ((mPhysicalType == MPP_MSC) &&
545 ((src.format == HAL_PIXEL_FORMAT_EXYNOS_YCbCr_420_SPN_S10B) ||
546 (src.format == HAL_PIXEL_FORMAT_EXYNOS_YCbCr_420_SP_M_S10B))) {
547 return 16;
548 }
549 return mSrcSizeRestrictions[idx].cropXAlign;
550 }
getSrcXOffsetAlign(uint32_t idx)551 uint32_t ExynosMPP::getSrcXOffsetAlign(uint32_t idx)
552 {
553 if (idx >= RESTRICTION_MAX)
554 {
555 MPP_LOGE("invalid idx: %d", idx);
556 return 16;
557 }
558 return mSrcSizeRestrictions[idx].cropXAlign;
559 }
getSrcYOffsetAlign(struct exynos_image & src)560 uint32_t ExynosMPP::getSrcYOffsetAlign(struct exynos_image &src)
561 {
562 uint32_t idx = getRestrictionClassification(src);
563 return mSrcSizeRestrictions[idx].cropYAlign;
564 }
getSrcYOffsetAlign(uint32_t idx)565 uint32_t ExynosMPP::getSrcYOffsetAlign(uint32_t idx)
566 {
567 if (idx >= RESTRICTION_MAX)
568 {
569 MPP_LOGE("invalid idx: %d", idx);
570 return 16;
571 }
572 return mSrcSizeRestrictions[idx].cropYAlign;
573 }
getSrcWidthAlign(struct exynos_image & src)574 uint32_t ExynosMPP::getSrcWidthAlign(struct exynos_image &src)
575 {
576 uint32_t idx = getRestrictionClassification(src);
577 return mSrcSizeRestrictions[idx].fullWidthAlign;
578 }
getSrcHeightAlign(struct exynos_image & src)579 uint32_t ExynosMPP::getSrcHeightAlign(struct exynos_image &src)
580 {
581 uint32_t idx = getRestrictionClassification(src);
582 return mSrcSizeRestrictions[idx].fullHeightAlign;
583 }
getSrcMaxWidth(struct exynos_image & src)584 uint32_t ExynosMPP::getSrcMaxWidth(struct exynos_image &src)
585 {
586 if (isFormatYUV(src.format))
587 return 4096;
588
589 uint32_t idx = getRestrictionClassification(src);
590 return mSrcSizeRestrictions[idx].maxFullWidth;
591 }
getSrcMaxHeight(struct exynos_image & src)592 uint32_t ExynosMPP::getSrcMaxHeight(struct exynos_image &src)
593 {
594 if (isFormatYUV(src.format))
595 return 4096;
596
597 uint32_t idx = getRestrictionClassification(src);
598 return mSrcSizeRestrictions[idx].maxFullHeight;
599 }
getSrcMinWidth(struct exynos_image & src)600 uint32_t ExynosMPP::getSrcMinWidth(struct exynos_image &src)
601 {
602 uint32_t idx = getRestrictionClassification(src);
603 return mSrcSizeRestrictions[idx].minFullWidth;
604 }
getSrcMinWidth(uint32_t idx)605 uint32_t ExynosMPP::getSrcMinWidth(uint32_t idx)
606 {
607 if (idx >= RESTRICTION_MAX)
608 {
609 MPP_LOGE("invalid idx: %d", idx);
610 return 16;
611 }
612 return mSrcSizeRestrictions[idx].minFullWidth;
613 }
getSrcMinHeight(struct exynos_image & src)614 uint32_t ExynosMPP::getSrcMinHeight(struct exynos_image &src)
615 {
616 uint32_t idx = getRestrictionClassification(src);
617 return mSrcSizeRestrictions[idx].minFullHeight;
618 }
getSrcMinHeight(uint32_t idx)619 uint32_t ExynosMPP::getSrcMinHeight(uint32_t idx)
620 {
621 if (idx >= RESTRICTION_MAX)
622 {
623 MPP_LOGE("invalid idx: %d", idx);
624 return 16;
625 }
626 return mSrcSizeRestrictions[idx].minFullHeight;
627 }
getSrcMaxCropWidth(struct exynos_image & src)628 uint32_t ExynosMPP::getSrcMaxCropWidth(struct exynos_image &src)
629 {
630 uint32_t idx = getRestrictionClassification(src);
631 return mSrcSizeRestrictions[idx].maxCropWidth;
632 }
getSrcMaxCropHeight(struct exynos_image & src)633 uint32_t ExynosMPP::getSrcMaxCropHeight(struct exynos_image &src)
634 {
635 if ((mMPPType == MPP_TYPE_OTF) &&
636 (src.transform & HAL_TRANSFORM_ROT_90))
637 return 2160;
638
639 uint32_t idx = getRestrictionClassification(src);
640 return mSrcSizeRestrictions[idx].maxCropHeight;
641 }
getSrcMaxCropSize(struct exynos_image & src)642 uint32_t ExynosMPP::getSrcMaxCropSize(struct exynos_image &src)
643 {
644 return (getSrcMaxCropWidth(src) * getSrcMaxCropHeight(src));
645 }
getSrcMinCropWidth(struct exynos_image & src)646 uint32_t ExynosMPP::getSrcMinCropWidth(struct exynos_image &src)
647 {
648 if (((src.format == HAL_PIXEL_FORMAT_EXYNOS_YCbCr_420_SPN_S10B) ||
649 (src.format == HAL_PIXEL_FORMAT_EXYNOS_YCbCr_420_SP_M_S10B)) &&
650 (mPhysicalType == MPP_G2D))
651 return 2;
652 uint32_t idx = getRestrictionClassification(src);
653 return mSrcSizeRestrictions[idx].minCropWidth;
654 }
getSrcMinCropHeight(struct exynos_image & src)655 uint32_t ExynosMPP::getSrcMinCropHeight(struct exynos_image &src)
656 {
657 if (((src.format == HAL_PIXEL_FORMAT_EXYNOS_YCbCr_420_SPN_S10B) ||
658 (src.format == HAL_PIXEL_FORMAT_EXYNOS_YCbCr_420_SP_M_S10B)) &&
659 (mPhysicalType == MPP_G2D))
660 return 2;
661 uint32_t idx = getRestrictionClassification(src);
662 return mSrcSizeRestrictions[idx].minCropHeight;
663 }
getSrcCropWidthAlign(const struct exynos_image & src) const664 uint32_t ExynosMPP::getSrcCropWidthAlign(const struct exynos_image &src) const {
665 if (((src.format == HAL_PIXEL_FORMAT_EXYNOS_YCbCr_420_SPN_S10B) ||
666 (src.format == HAL_PIXEL_FORMAT_EXYNOS_YCbCr_420_SP_M_S10B)) &&
667 (mPhysicalType == MPP_G2D))
668 return 2;
669 uint32_t idx = getRestrictionClassification(src);
670 return mSrcSizeRestrictions[idx].cropWidthAlign;
671 }
672
673 /* This is used for only otfMPP */
getSrcCropWidthAlign(uint32_t idx) const674 uint32_t ExynosMPP::getSrcCropWidthAlign(uint32_t idx) const {
675 if (idx >= RESTRICTION_MAX)
676 {
677 MPP_LOGE("invalid idx: %d", idx);
678 return 16;
679 }
680 return mSrcSizeRestrictions[idx].cropWidthAlign;
681 }
getSrcCropHeightAlign(const struct exynos_image & src) const682 uint32_t ExynosMPP::getSrcCropHeightAlign(const struct exynos_image &src) const {
683 if (((src.format == HAL_PIXEL_FORMAT_EXYNOS_YCbCr_420_SPN_S10B) ||
684 (src.format == HAL_PIXEL_FORMAT_EXYNOS_YCbCr_420_SP_M_S10B)) &&
685 (mPhysicalType == MPP_G2D))
686 return 2;
687
688 uint32_t idx = getRestrictionClassification(src);
689 return mSrcSizeRestrictions[idx].cropHeightAlign;
690 }
691
692 /* This is used for only otfMPP */
getSrcCropHeightAlign(uint32_t idx) const693 uint32_t ExynosMPP::getSrcCropHeightAlign(uint32_t idx) const {
694 if (idx >= RESTRICTION_MAX)
695 {
696 MPP_LOGE("invalid idx: %d", idx);
697 return 16;
698 }
699 return mSrcSizeRestrictions[idx].cropHeightAlign;
700 }
getDstMaxWidth(struct exynos_image & dst)701 uint32_t ExynosMPP::getDstMaxWidth(struct exynos_image &dst)
702 {
703 uint32_t idx = getRestrictionClassification(dst);
704 return mDstSizeRestrictions[idx].maxCropWidth;
705 }
getDstMaxHeight(struct exynos_image & dst)706 uint32_t ExynosMPP::getDstMaxHeight(struct exynos_image &dst)
707 {
708 uint32_t idx = getRestrictionClassification(dst);
709 return mDstSizeRestrictions[idx].maxCropHeight;
710 }
getDstMinWidth(struct exynos_image & dst)711 uint32_t ExynosMPP::getDstMinWidth(struct exynos_image &dst)
712 {
713 if (((dst.format == HAL_PIXEL_FORMAT_EXYNOS_YCbCr_420_SPN_S10B) ||
714 (dst.format == HAL_PIXEL_FORMAT_EXYNOS_YCbCr_420_SP_M_S10B)) &&
715 (mPhysicalType == MPP_G2D))
716 return 64;
717
718 if ((mNeedSolidColorLayer == false) && mNeedCompressedTarget)
719 return 16;
720
721 if ((mPhysicalType == MPP_G2D) && (mNeedSolidColorLayer == false) &&
722 isFormatSBWC(dst.format))
723 return 32;
724
725 uint32_t idx = getRestrictionClassification(dst);
726 return mDstSizeRestrictions[idx].minCropWidth;
727 }
getDstMinHeight(struct exynos_image & dst)728 uint32_t ExynosMPP::getDstMinHeight(struct exynos_image &dst)
729 {
730 if ((mNeedSolidColorLayer == false) && mNeedCompressedTarget)
731 return 16;
732
733 if ((mPhysicalType == MPP_G2D) && (mNeedSolidColorLayer == false) &&
734 isFormatSBWC(dst.format))
735 return 8;
736
737 uint32_t idx = getRestrictionClassification(dst);
738 return mDstSizeRestrictions[idx].minCropHeight;
739 }
getDstWidthAlign(const struct exynos_image & dst) const740 uint32_t ExynosMPP::getDstWidthAlign(const struct exynos_image &dst) const {
741 if (((dst.format == HAL_PIXEL_FORMAT_EXYNOS_YCbCr_420_SPN_S10B) ||
742 (dst.format == HAL_PIXEL_FORMAT_EXYNOS_YCbCr_420_SP_M_S10B)) &&
743 (mPhysicalType == MPP_G2D))
744 return 64;
745
746 if ((mNeedSolidColorLayer == false) && mNeedCompressedTarget)
747 return 16;
748
749 if ((mPhysicalType == MPP_G2D) && (mNeedSolidColorLayer == false) &&
750 isFormatSBWC(dst.format))
751 return 32;
752
753 uint32_t idx = getRestrictionClassification(dst);
754 return mDstSizeRestrictions[idx].cropWidthAlign;
755 }
getDstHeightAlign(const struct exynos_image & dst) const756 uint32_t ExynosMPP::getDstHeightAlign(const struct exynos_image &dst) const {
757 if ((mNeedSolidColorLayer == false) && mNeedCompressedTarget)
758 return 16;
759
760 if ((mPhysicalType == MPP_G2D) && (mNeedSolidColorLayer == false) &&
761 isFormatSBWC(dst.format))
762 return 8;
763
764 uint32_t idx = getRestrictionClassification(dst);
765 return mDstSizeRestrictions[idx].cropHeightAlign;
766 }
getDstXOffsetAlign(struct exynos_image & dst)767 uint32_t ExynosMPP::getDstXOffsetAlign(struct exynos_image &dst)
768 {
769 if ((mNeedSolidColorLayer == false) && mNeedCompressedTarget)
770 return 16;
771
772 if ((mPhysicalType == MPP_G2D) && (mNeedSolidColorLayer == false) &&
773 isFormatSBWC(dst.format))
774 return 32;
775
776 uint32_t idx = getRestrictionClassification(dst);
777 return mDstSizeRestrictions[idx].cropXAlign;
778 }
getDstYOffsetAlign(struct exynos_image & dst)779 uint32_t ExynosMPP::getDstYOffsetAlign(struct exynos_image &dst)
780 {
781 if ((mNeedSolidColorLayer == false) && mNeedCompressedTarget)
782 return 16;
783
784 if ((mPhysicalType == MPP_G2D) && (mNeedSolidColorLayer == false) &&
785 isFormatSBWC(dst.format))
786 return 8;
787
788 uint32_t idx = getRestrictionClassification(dst);
789 return mDstSizeRestrictions[idx].cropYAlign;
790 }
getOutBufAlign()791 uint32_t ExynosMPP::getOutBufAlign()
792 {
793 if (mNeedCompressedTarget)
794 return 16;
795 else
796 return 1;
797 }
798
isSupportLayerColorTransform(struct exynos_image & src,struct exynos_image __unused & dst)799 int32_t ExynosMPP::isSupportLayerColorTransform(
800 struct exynos_image &src, struct exynos_image __unused &dst)
801 {
802 if (src.needColorTransform == false)
803 return true;
804
805 if (mAttr & MPP_ATTR_LAYER_TRANSFORM)
806 return true;
807
808 return false;
809 }
810
threadLoop()811 bool ExynosMPP::ResourceManageThread::threadLoop()
812 {
813 if (mExynosMPP == NULL)
814 return false;
815
816 ALOGI("%s threadLoop is started", mExynosMPP->mName.string());
817 while(mRunning) {
818 Mutex::Autolock lock(mMutex);
819 while((mFreedBuffers.size() == 0) &&
820 (mStateFences.size() == 0)) {
821 mCondition.wait(mMutex);
822 }
823
824 if ((mExynosMPP->mHWState == MPP_HW_STATE_RUNNING) &&
825 (mStateFences.size() != 0)) {
826 if (checkStateFences()) {
827 mExynosMPP->mHWState = MPP_HW_STATE_IDLE;
828 }
829 } else {
830 if ((mStateFences.size() != 0) &&
831 (mExynosMPP->mHWState != MPP_HW_STATE_RUNNING)) {
832 ALOGW("%s, mHWState(%d) but mStateFences size(%zu)",
833 mExynosMPP->mName.string(), mExynosMPP->mHWState,
834 mStateFences.size());
835 checkStateFences();
836 }
837 }
838
839 if (mFreedBuffers.size() != 0) {
840 freeBuffers();
841 }
842 }
843 return true;
844 }
845
freeBuffers()846 void ExynosMPP::ResourceManageThread::freeBuffers()
847 {
848 VendorGraphicBufferAllocator& gAllocator(VendorGraphicBufferAllocator::get());
849 android::List<exynos_mpp_img_info >::iterator it;
850 android::List<exynos_mpp_img_info >::iterator end;
851 it = mFreedBuffers.begin();
852 end = mFreedBuffers.end();
853
854 uint32_t freebufNum = 0;
855 while (it != end) {
856 exynos_mpp_img_info freeBuffer = (exynos_mpp_img_info)(*it);
857 HDEBUGLOGD(eDebugMPP|eDebugFence|eDebugBuf, "freebufNum: %d, buffer: %p", freebufNum, freeBuffer.bufferHandle);
858 dumpExynosMPPImgInfo(eDebugMPP|eDebugFence|eDebugBuf, freeBuffer);
859 if (fence_valid(freeBuffer.acrylicAcquireFenceFd)) {
860 if (sync_wait(freeBuffer.acrylicAcquireFenceFd, 1000) < 0)
861 HWC_LOGE(NULL, "%s:: acquire fence sync_wait error", mExynosMPP->mName.string());
862 freeBuffer.acrylicAcquireFenceFd =
863 fence_close(freeBuffer.acrylicAcquireFenceFd, mExynosMPP->mAssignedDisplay,
864 FENCE_TYPE_SRC_ACQUIRE, FENCE_IP_ALL);
865 }
866 if (fence_valid(freeBuffer.acrylicReleaseFenceFd)) {
867 if (sync_wait(freeBuffer.acrylicReleaseFenceFd, 1000) < 0)
868 HWC_LOGE(NULL, "%s:: release fence sync_wait error", mExynosMPP->mName.string());
869 freeBuffer.acrylicReleaseFenceFd =
870 fence_close(freeBuffer.acrylicReleaseFenceFd, mExynosMPP->mAssignedDisplay,
871 FENCE_TYPE_SRC_RELEASE, FENCE_IP_ALL);
872 }
873 gAllocator.free(freeBuffer.bufferHandle);
874 it = mFreedBuffers.erase(it);
875 }
876 }
877
checkStateFences()878 bool ExynosMPP::ResourceManageThread::checkStateFences()
879 {
880 bool ret = true;
881 android::List<int >::iterator it;
882 android::List<int >::iterator end;
883
884 it = mStateFences.begin();
885 end = mStateFences.end();
886 uint32_t waitFenceNum = 0;
887 while (it != end) {
888 int fence = (int)(*it);
889 HDEBUGLOGD(eDebugMPP|eDebugFence, "%d wait fence: %d", waitFenceNum, fence);
890 waitFenceNum++;
891 if (fence_valid(fence)) {
892 if (sync_wait(fence, 5000) < 0) {
893 HWC_LOGE(NULL, "%s::[%s][%d] sync_wait(%d) error(%s)", __func__,
894 mExynosMPP->mName.string(), mExynosMPP->mLogicalIndex, fence, strerror(errno));
895 ret = false;
896 }
897 fence = fence_close(fence, mExynosMPP->mAssignedDisplay,
898 FENCE_TYPE_ALL, FENCE_IP_ALL);
899 }
900 it = mStateFences.erase(it);
901 }
902 return ret;
903 }
904
addFreedBuffer(exynos_mpp_img_info freedBuffer)905 void ExynosMPP::ResourceManageThread::addFreedBuffer(exynos_mpp_img_info freedBuffer)
906 {
907 android::Mutex::Autolock lock(mMutex);
908 mFreedBuffers.push_back(freedBuffer);
909 mCondition.signal();
910 }
911
addStateFence(int fence)912 void ExynosMPP::ResourceManageThread::addStateFence(int fence)
913 {
914 Mutex::Autolock lock(mMutex);
915 HDEBUGLOGD(eDebugMPP|eDebugFence, "wait fence is added: %d", fence);
916 mStateFences.push_back(fence);
917 mCondition.signal();
918 }
919
920 /**
921 * @param w
922 * @param h
923 * @param color
924 * @param usage
925 * @return int32_t
926 */
allocOutBuf(uint32_t w,uint32_t h,uint32_t format,uint64_t usage,uint32_t index)927 int32_t ExynosMPP::allocOutBuf(uint32_t w, uint32_t h, uint32_t format, uint64_t usage, uint32_t index) {
928 ATRACE_CALL();
929 uint32_t dstStride = 0;
930
931 MPP_LOGD(eDebugMPP|eDebugBuf, "index: %d++++++++", index);
932
933 if (index >= NUM_MPP_DST_BUFS(mLogicalType)) {
934 return -EINVAL;
935 }
936
937 exynos_mpp_img_info freeDstBuf = mDstImgs[index];
938 MPP_LOGD(eDebugMPP|eDebugBuf, "mDstImg[%d] is reallocated", index);
939 dumpExynosMPPImgInfo(eDebugMPP, mDstImgs[index]);
940
941 uint64_t allocUsage = getBufferUsage(usage);
942 if (!needCompressDstBuf()) {
943 allocUsage |= VendorGraphicBufferUsage::NO_AFBC;
944 }
945 buffer_handle_t dstBuffer;
946
947 MPP_LOGD(eDebugMPP|eDebugBuf, "\tw: %d, h: %d, format: 0x%8x, previousBuffer: %p, allocUsage: 0x%" PRIx64 ", usage: 0x%" PRIx64 "",
948 w, h, format, freeDstBuf.bufferHandle, allocUsage, usage);
949
950 status_t error = NO_ERROR;
951
952 {
953 ATRACE_CALL();
954
955 VendorGraphicBufferAllocator& gAllocator(VendorGraphicBufferAllocator::get());
956 error = gAllocator.allocate(w, h, format, 1, allocUsage, &dstBuffer, &dstStride, "HWC");
957 }
958
959 if ((error != NO_ERROR) || (dstBuffer == NULL)) {
960 MPP_LOGE("failed to allocate destination buffer(%dx%d): %d", w, h, error);
961 return -EINVAL;
962 }
963
964 memset(&mDstImgs[index], 0, sizeof(mDstImgs[index]));
965
966 mDstImgs[index].acrylicAcquireFenceFd = -1;
967 mDstImgs[index].acrylicReleaseFenceFd = -1;
968 mDstImgs[index].bufferHandle = dstBuffer;
969 mDstImgs[index].bufferType = getBufferType(usage);
970 mDstImgs[index].format = format;
971
972 MPP_LOGD(eDebugMPP|eDebugBuf, "free outbuf[%d] %p", index, freeDstBuf.bufferHandle);
973
974 if (freeDstBuf.bufferHandle != NULL) {
975 freeOutBuf(freeDstBuf);
976 } else {
977 if (mAssignedDisplay != NULL) {
978 freeDstBuf.acrylicAcquireFenceFd = fence_close(freeDstBuf.acrylicAcquireFenceFd,
979 mAssignedDisplay, FENCE_TYPE_SRC_ACQUIRE, FENCE_IP_G2D);
980 freeDstBuf.acrylicReleaseFenceFd = fence_close(freeDstBuf.acrylicReleaseFenceFd,
981 mAssignedDisplay, FENCE_TYPE_SRC_RELEASE, FENCE_IP_G2D);
982 }
983 }
984
985 MPP_LOGD(eDebugMPP|eDebugBuf, "dstBuffer(%p)-----------", dstBuffer);
986
987 return NO_ERROR;
988 }
989
990 /**
991 * @param outbuf
992 * @return int32_t
993 */
setOutBuf(buffer_handle_t outbuf,int32_t fence)994 int32_t ExynosMPP::setOutBuf(buffer_handle_t outbuf, int32_t fence) {
995 mDstImgs[mCurrentDstBuf].bufferHandle = NULL;
996 if (outbuf != NULL) {
997 mDstImgs[mCurrentDstBuf].bufferHandle = outbuf;
998 mDstImgs[mCurrentDstBuf].format =
999 VendorGraphicBufferMeta::get_format(mDstImgs[mCurrentDstBuf].bufferHandle);
1000 }
1001 setDstAcquireFence(fence);
1002 return NO_ERROR;
1003 }
1004
1005 /**
1006 * @param dst
1007 * @return int32_t
1008 */
freeOutBuf(struct exynos_mpp_img_info dst)1009 int32_t ExynosMPP::freeOutBuf(struct exynos_mpp_img_info dst) {
1010 mResourceManageThread->addFreedBuffer(dst);
1011 dst.bufferHandle = NULL;
1012 return NO_ERROR;
1013 }
1014
getBufferType(uint64_t usage)1015 uint32_t ExynosMPP::getBufferType(uint64_t usage)
1016 {
1017 if (getDrmMode(usage) == SECURE_DRM)
1018 return MPP_BUFFER_SECURE_DRM;
1019 else if (getDrmMode(usage) == NORMAL_DRM)
1020 return MPP_BUFFER_NORMAL_DRM;
1021 else {
1022 if (exynosHWCControl.dumpMidBuf)
1023 return MPP_BUFFER_DUMP;
1024 else
1025 return MPP_BUFFER_NORMAL;
1026 }
1027 }
1028
getBufferType(const buffer_handle_t handle)1029 uint32_t ExynosMPP::getBufferType(const buffer_handle_t handle)
1030 {
1031 uint64_t usage = VendorGraphicBufferMeta::get_usage(handle);
1032
1033 return getBufferType(usage);
1034 }
1035
getBufferUsage(uint64_t usage)1036 uint64_t ExynosMPP::getBufferUsage(uint64_t usage)
1037 {
1038 uint64_t allocUsage = 0;
1039 if (getBufferType(usage) == MPP_BUFFER_DUMP) {
1040 allocUsage = BufferUsage::CPU_READ_OFTEN |
1041 BufferUsage::CPU_WRITE_OFTEN;
1042 } else {
1043 allocUsage = BufferUsage::CPU_READ_NEVER |
1044 BufferUsage::CPU_WRITE_NEVER |
1045 VendorGraphicBufferUsage::NOZEROED |
1046 BufferUsage::COMPOSER_OVERLAY;
1047 }
1048
1049 if (getDrmMode(usage) == SECURE_DRM) {
1050 allocUsage |= BufferUsage::PROTECTED;
1051 allocUsage &= ~VendorGraphicBufferUsage::PRIVATE_NONSECURE;
1052 } else if (getDrmMode(usage) == NORMAL_DRM) {
1053 allocUsage |= BufferUsage::PROTECTED;
1054 allocUsage |= VendorGraphicBufferUsage::PRIVATE_NONSECURE;
1055 }
1056
1057 return allocUsage;
1058 }
1059
needCompressDstBuf() const1060 bool ExynosMPP::needCompressDstBuf() const {
1061 return (mMaxSrcLayerNum > 1) && mNeedCompressedTarget;
1062 }
1063
needDstBufRealloc(struct exynos_image & dst,uint32_t index)1064 bool ExynosMPP::needDstBufRealloc(struct exynos_image &dst, uint32_t index)
1065 {
1066 MPP_LOGD(eDebugMPP|eDebugBuf, "index: %d++++++++", index);
1067
1068 if (index >= NUM_MPP_DST_BUFS(mLogicalType)) {
1069 MPP_LOGE("%s:: index(%d) is not valid", __func__, index);
1070 return false;
1071 }
1072 buffer_handle_t dst_handle = NULL;
1073 if (mDstImgs[index].bufferHandle != NULL)
1074 dst_handle = mDstImgs[index].bufferHandle;
1075
1076 if (dst_handle == NULL) {
1077 MPP_LOGD(eDebugMPP|eDebugBuf, "\tDstImag[%d] handle is NULL", index);
1078 return true;
1079 }
1080
1081 int32_t assignedDisplay = -1;
1082 if (mAssignedDisplay != NULL) {
1083 assignedDisplay = mAssignedDisplay->mType;
1084 } else {
1085 MPP_LOGE("%s:: mpp is not assigned", __func__);
1086 return false;
1087 }
1088
1089 VendorGraphicBufferMeta gmeta(dst_handle);
1090
1091 uint32_t prevAssignedBufferNum =
1092 getBufferNumOfFormat(gmeta.format, getCompressionType(dst_handle));
1093 uint32_t assignedBufferNum = getBufferNumOfFormat(dst.format, getCompressionType(dst_handle));
1094
1095 MPP_LOGD(eDebugMPP | eDebugBuf, "\tdst_handle(%p) afbc (%u) sbwc (%u) lossy (%u)", dst_handle,
1096 isAFBCCompressed(dst_handle), isFormatSBWC(gmeta.format), isFormatLossy(gmeta.format));
1097 MPP_LOGD(eDebugMPP | eDebugBuf,
1098 "\tAssignedDisplay[%d, %d] format[0x%8x, 0x%8x], bufferType[%d, %d], bufferNum[%d, "
1099 "%d] "
1100 "usageFlags: 0x%" PRIx64 ", need comp_type 0x%x lossy %u",
1101 mPrevAssignedDisplayType, assignedDisplay, gmeta.format, dst.format,
1102 mDstImgs[index].bufferType, getBufferType(dst.usageFlags), prevAssignedBufferNum,
1103 assignedBufferNum, dst.usageFlags, dst.compressionInfo.type,
1104 isFormatLossy(dst.format));
1105
1106 bool realloc = (mPrevAssignedDisplayType != assignedDisplay) ||
1107 (prevAssignedBufferNum < assignedBufferNum) ||
1108 (formatToBpp(gmeta.format) < formatToBpp(dst.format)) ||
1109 ((gmeta.stride * gmeta.vstride) < (int)(dst.fullWidth * dst.fullHeight)) ||
1110 (mDstImgs[index].bufferType != getBufferType(dst.usageFlags)) ||
1111 (isAFBCCompressed(dst_handle) != (dst.compressionInfo.type == COMP_TYPE_AFBC)) ||
1112 (isFormatSBWC(gmeta.format) != isFormatSBWC(dst.format)) ||
1113 (isFormatLossy(gmeta.format) != isFormatLossy(dst.format));
1114
1115 MPP_LOGD(eDebugMPP|eDebugBuf, "realloc: %d--------", realloc);
1116 return realloc;
1117 }
1118
canUsePrevFrame()1119 bool ExynosMPP::canUsePrevFrame()
1120 {
1121 if ((mAssignedDisplay && !mAssignedDisplay->mDisplayControl.skipM2mProcessing) ||
1122 !exynosHWCControl.skipM2mProcessing)
1123 return false;
1124
1125 /* virtual display always require composition */
1126 if (mAllocOutBufFlag == false)
1127 return false;
1128
1129 if (mPrevFrameInfo.srcNum != mAssignedSources.size())
1130 return false;
1131
1132 for (uint32_t i = 0; i < mPrevFrameInfo.srcNum; i++) {
1133 if ((mPrevFrameInfo.srcInfo[i].bufferHandle != mAssignedSources[i]->mSrcImg.bufferHandle) ||
1134 (mPrevFrameInfo.srcInfo[i].x != mAssignedSources[i]->mSrcImg.x) ||
1135 (mPrevFrameInfo.srcInfo[i].y != mAssignedSources[i]->mSrcImg.y) ||
1136 (mPrevFrameInfo.srcInfo[i].w != mAssignedSources[i]->mSrcImg.w) ||
1137 (mPrevFrameInfo.srcInfo[i].h != mAssignedSources[i]->mSrcImg.h) ||
1138 (mPrevFrameInfo.srcInfo[i].format != mAssignedSources[i]->mSrcImg.format) ||
1139 (mPrevFrameInfo.srcInfo[i].usageFlags != mAssignedSources[i]->mSrcImg.usageFlags) ||
1140 (mPrevFrameInfo.srcInfo[i].dataSpace != mAssignedSources[i]->mSrcImg.dataSpace) ||
1141 (mPrevFrameInfo.srcInfo[i].blending != mAssignedSources[i]->mSrcImg.blending) ||
1142 (mPrevFrameInfo.srcInfo[i].transform != mAssignedSources[i]->mSrcImg.transform) ||
1143 (mPrevFrameInfo.srcInfo[i].compressionInfo.type !=
1144 mAssignedSources[i]->mSrcImg.compressionInfo.type) ||
1145 (mPrevFrameInfo.srcInfo[i].planeAlpha != mAssignedSources[i]->mSrcImg.planeAlpha) ||
1146 (mPrevFrameInfo.dstInfo[i].x != mAssignedSources[i]->mMidImg.x) ||
1147 (mPrevFrameInfo.dstInfo[i].y != mAssignedSources[i]->mMidImg.y) ||
1148 (mPrevFrameInfo.dstInfo[i].w != mAssignedSources[i]->mMidImg.w) ||
1149 (mPrevFrameInfo.dstInfo[i].h != mAssignedSources[i]->mMidImg.h) ||
1150 (mPrevFrameInfo.dstInfo[i].format != mAssignedSources[i]->mMidImg.format))
1151 return false;
1152 }
1153
1154 int32_t prevDstIndex = (mCurrentDstBuf + NUM_MPP_DST_BUFS(mLogicalType) - 1)% NUM_MPP_DST_BUFS(mLogicalType);
1155 if (mDstImgs[prevDstIndex].bufferHandle == NULL)
1156 return false;
1157
1158 return true;
1159 }
1160
setupLayer(exynos_mpp_img_info * srcImgInfo,struct exynos_image & src,struct exynos_image & dst)1161 int32_t ExynosMPP::setupLayer(exynos_mpp_img_info *srcImgInfo, struct exynos_image &src, struct exynos_image &dst)
1162 {
1163 int ret = NO_ERROR;
1164
1165 if (srcImgInfo->mppLayer == NULL) {
1166 if ((srcImgInfo->mppLayer = mAcrylicHandle->createLayer()) == NULL)
1167 {
1168 MPP_LOGE("%s:: Fail to create layer", __func__);
1169 return -EINVAL;
1170 }
1171 }
1172
1173 if (src.bufferHandle == NULL) {
1174 MPP_LOGE("%s:: Invalid source handle", __func__);
1175 return -EINVAL;
1176 }
1177
1178 buffer_handle_t srcHandle = NULL;
1179 if (src.bufferHandle != NULL)
1180 srcHandle = src.bufferHandle;
1181
1182 VendorGraphicBufferMeta gmeta(srcHandle);
1183 int bufFds[MAX_HW2D_PLANES];
1184 size_t bufLength[MAX_HW2D_PLANES];
1185 uint32_t attribute = 0;
1186 uint32_t bufferNum = getBufferNumOfFormat(gmeta.format, getCompressionType(srcHandle));
1187 android_dataspace_t dataspace = src.dataSpace;
1188 if (dataspace == HAL_DATASPACE_UNKNOWN)
1189 {
1190 if (isFormatRgb(gmeta.format))
1191 dataspace = HAL_DATASPACE_V0_SRGB;
1192 else
1193 dataspace = HAL_DATASPACE_V0_BT601_625;
1194 }
1195
1196 if (bufferNum == 0)
1197 {
1198 MPP_LOGE("%s:: Fail to get bufferNum(%d), format(0x%8x, afbc %d)", __func__, bufferNum,
1199 gmeta.format, isAFBCCompressed(srcHandle));
1200 return -EINVAL;
1201 }
1202 bufFds[0] = gmeta.fd;
1203 bufFds[1] = gmeta.fd1;
1204 bufFds[2] = gmeta.fd2;
1205 if (getBufLength(srcHandle, MAX_HW2D_PLANES, bufLength, gmeta.format, src.fullWidth, src.fullHeight) != NO_ERROR) {
1206 MPP_LOGE("%s:: invalid bufferLength(%zu, %zu, %zu), format(0x%8x)", __func__,
1207 bufLength[0], bufLength[1], bufLength[2], gmeta.format);
1208 return -EINVAL;
1209 }
1210
1211 /* HDR process */
1212 if (hasHdrInfo(src)) {
1213 unsigned int max = (src.metaParcel.sHdrStaticInfo.sType1.mMaxDisplayLuminance/10000);
1214 unsigned int min = src.metaParcel.sHdrStaticInfo.sType1.mMinDisplayLuminance;
1215
1216 srcImgInfo->mppLayer->setMasterDisplayLuminance(min,max);
1217 MPP_LOGD(eDebugMPP, "HWC2: G2D luminance min %d, max %d", min, max);
1218 MPP_LOGD(eDebugMPP|eDebugFence, "G2D getting HDR source!");
1219
1220 srcImgInfo->mppLayer->setLayerHDR(true);
1221 } else
1222 srcImgInfo->mppLayer->setLayerHDR(false);
1223
1224 /* Transfer MetaData */
1225 if (src.hasMetaParcel) {
1226 srcImgInfo->mppLayer->setLayerData(&src.metaParcel, sizeof(src.metaParcel));
1227 }
1228
1229 srcImgInfo->bufferType = getBufferType(srcHandle);
1230 if (srcImgInfo->bufferType == MPP_BUFFER_SECURE_DRM)
1231 attribute |= AcrylicCanvas::ATTR_PROTECTED;
1232 /*Change AFBC attribute on the basis of the modifier*/
1233 if (src.compressionInfo.type == COMP_TYPE_AFBC) {
1234 if ((src.compressionInfo.modifier & AFBC_FORMAT_MOD_BLOCK_SIZE_MASK) ==
1235 AFBC_FORMAT_MOD_BLOCK_SIZE_32x8) {
1236 attribute |= AcrylicCanvas::ATTR_COMPRESSED_WIDEBLK;
1237 } else {
1238 attribute |= AcrylicCanvas::ATTR_COMPRESSED;
1239 }
1240 }
1241
1242 srcImgInfo->bufferHandle = srcHandle;
1243 srcImgInfo->acrylicAcquireFenceFd =
1244 hwcCheckFenceDebug(mAssignedDisplay, FENCE_TYPE_SRC_ACQUIRE, FENCE_IP_G2D, src.acquireFenceFd);
1245
1246 MPP_LOGD(eDebugMPP|eDebugFence, "source configuration:");
1247 MPP_LOGD(eDebugMPP, "\tImageDimension[%d, %d], ImageType[0x%8x, 0x%8x]",
1248 src.fullWidth, src.fullHeight,
1249 gmeta.format, dataspace);
1250 MPP_LOGD(eDebugMPP|eDebugFence, "\tImageBuffer handle: %p, fds[%d, %d, %d], bufLength[%zu, %zu, %zu], bufferNum: %d, acquireFence: %d, attribute: %d",
1251 srcHandle, bufFds[0], bufFds[1], bufFds[2], bufLength[0], bufLength[1], bufLength[2],
1252 bufferNum, srcImgInfo->acrylicAcquireFenceFd, attribute);
1253 MPP_LOGD(eDebugMPP, "\tsrc_rect[%d, %d, %d, %d], dst_rect[%d, %d, %d, %d], transform(0x%4x)",
1254 (int)src.x, (int)src.y, (int)(src.x + src.w), (int)(src.y + src.h),
1255 (int)dst.x, (int)dst.y, (int)(dst.x + dst.w), (int)(dst.y + dst.h), src.transform);
1256
1257 srcImgInfo->mppLayer->setImageDimension(src.fullWidth, src.fullHeight);
1258
1259 if (gmeta.format == HAL_PIXEL_FORMAT_EXYNOS_YCbCr_420_SP_M_PRIV) {
1260 srcImgInfo->mppLayer->setImageType(HAL_PIXEL_FORMAT_EXYNOS_YCbCr_420_SP_M, dataspace);
1261 } else {
1262 srcImgInfo->mppLayer->setImageType(gmeta.format, dataspace);
1263 }
1264
1265 if (mPhysicalType == MPP_G2D) {
1266 setFenceName(srcImgInfo->acrylicAcquireFenceFd, FENCE_G2D_SRC_LAYER);
1267 setFenceInfo(srcImgInfo->acrylicAcquireFenceFd, mAssignedDisplay, FENCE_TYPE_SRC_ACQUIRE,
1268 FENCE_IP_G2D, HwcFenceDirection::TO);
1269 } else if (mPhysicalType == MPP_MSC) {
1270 setFenceName(srcImgInfo->acrylicAcquireFenceFd, FENCE_MSC_SRC_LAYER);
1271 setFenceInfo(srcImgInfo->acrylicAcquireFenceFd, mAssignedDisplay, FENCE_TYPE_SRC_ACQUIRE,
1272 FENCE_IP_MSC, HwcFenceDirection::TO);
1273 } else {
1274 MPP_LOGE("%s:: invalid mPhysicalType(%d)", __func__, mPhysicalType);
1275 }
1276
1277 srcImgInfo->mppLayer->setImageBuffer(bufFds, bufLength, bufferNum,
1278 srcImgInfo->acrylicAcquireFenceFd, attribute);
1279
1280 if (mMaxSrcLayerNum > 1) {
1281 srcImgInfo->mppLayer->setCompositMode(src.blending, (uint8_t)(255 * src.planeAlpha), src.zOrder);
1282 } else {
1283 srcImgInfo->mppLayer->setCompositMode(src.blending, 255, src.zOrder);
1284 }
1285
1286 hwc_rect_t src_rect = {(int)src.x, (int)src.y, (int)(src.x + src.w), (int)(src.y + src.h)};
1287 hwc_rect_t dst_rect = {(int)dst.x, (int)dst.y, (int)(dst.x + dst.w), (int)(dst.y + dst.h)};
1288
1289 if ((mAssignedDisplay != NULL) &&
1290 ((mAssignedDisplay->mType == HWC_DISPLAY_VIRTUAL) ||
1291 (mAssignedDisplay->mType == HWC_DISPLAY_EXTERNAL)))
1292 srcImgInfo->mppLayer->setCompositArea(src_rect, dst_rect, src.transform, AcrylicLayer::ATTR_NORESAMPLING);
1293 else {
1294 if(isFormatYUV(src.format))
1295 srcImgInfo->mppLayer->setCompositArea(src_rect, dst_rect, src.transform, AcrylicLayer::ATTR_NORESAMPLING);
1296 else
1297 srcImgInfo->mppLayer->setCompositArea(src_rect, dst_rect, src.transform);
1298 }
1299
1300 srcImgInfo->acrylicAcquireFenceFd = -1;
1301 srcImgInfo->format = gmeta.format;
1302
1303 if (gmeta.format == HAL_PIXEL_FORMAT_EXYNOS_YCbCr_420_SP_M_PRIV) {
1304 srcImgInfo->format = HAL_PIXEL_FORMAT_EXYNOS_YCbCr_420_SP_M;
1305 }
1306
1307 return ret;
1308 }
1309
getDstMetaInfo(android_dataspace_t dstDataspace)1310 dstMetaInfo_t ExynosMPP::getDstMetaInfo(android_dataspace_t dstDataspace)
1311 {
1312 dstMetaInfo_t metaInfo;
1313
1314 if ((mAssignedSources.size() <= 1) &&
1315 (mAssignedSources[0]->mSrcImg.dataSpace == dstDataspace)) {
1316 metaInfo.minLuminance =
1317 (uint16_t)mAssignedSources[0]->mSrcImg.metaParcel.sHdrStaticInfo.sType1.mMinDisplayLuminance;
1318 metaInfo.maxLuminance =
1319 (uint16_t)(mAssignedSources[0]->mSrcImg.metaParcel.sHdrStaticInfo.sType1.mMaxDisplayLuminance/10000);
1320 } else {
1321 // minLuminance: 0.0001nit unit, maxLuminance: 1nit unit
1322 metaInfo.minLuminance = (uint16_t)(mAssignedDisplay->mMinLuminance * 10000);
1323 metaInfo.maxLuminance = (uint16_t)mAssignedDisplay->mMaxLuminance;
1324 }
1325
1326 return metaInfo;
1327 }
1328
setupDst(exynos_mpp_img_info * dstImgInfo)1329 int32_t ExynosMPP::setupDst(exynos_mpp_img_info *dstImgInfo)
1330 {
1331 int ret = NO_ERROR;
1332 bool isComposition = (mMaxSrcLayerNum > 1);
1333 buffer_handle_t dstHandle = dstImgInfo->bufferHandle;
1334 int bufFds[MAX_HW2D_PLANES];
1335 size_t bufLength[MAX_HW2D_PLANES];
1336 uint32_t attribute = 0;
1337 uint32_t bufferNum = getBufferNumOfFormat(dstImgInfo->format, getCompressionType(dstHandle));
1338 if (bufferNum == 0)
1339 {
1340 MPP_LOGE("%s:: Fail to get bufferNum(%d), format(0x%8x, afbc %d)", __func__, bufferNum,
1341 dstImgInfo->format, isAFBCCompressed(dstHandle));
1342 return -EINVAL;
1343 }
1344
1345 android_dataspace_t dataspace = HAL_DATASPACE_UNKNOWN;
1346 VendorGraphicBufferMeta gmeta(dstHandle);
1347
1348 if (isComposition) {
1349 if (isFormatRgb(dstImgInfo->format)) {
1350 if ((mAssignedDisplay != NULL) &&
1351 (mAssignedDisplay->mColorMode != HAL_COLOR_MODE_NATIVE))
1352 dataspace = colorModeToDataspace(mAssignedDisplay->mColorMode);
1353 } else {
1354 dataspace =
1355 (android_dataspace)(HAL_DATASPACE_STANDARD_BT709 | HAL_DATASPACE_TRANSFER_GAMMA2_2 | HAL_DATASPACE_RANGE_LIMITED);
1356 }
1357 } else {
1358 dataspace = mAssignedSources[0]->mMidImg.dataSpace;
1359 }
1360
1361 if (dataspace == HAL_DATASPACE_UNKNOWN)
1362 {
1363 if (isFormatRgb(dstImgInfo->format))
1364 dataspace = HAL_DATASPACE_V0_SRGB;
1365 else
1366 dataspace = HAL_DATASPACE_V0_BT601_625;
1367 }
1368
1369 bufFds[0] = gmeta.fd;
1370 bufFds[1] = gmeta.fd1;
1371 bufFds[2] = gmeta.fd2;
1372 if (getBufLength(dstHandle, MAX_HW2D_PLANES, bufLength, dstImgInfo->format,
1373 gmeta.stride, gmeta.vstride) != NO_ERROR) {
1374 MPP_LOGE("%s:: invalid bufferLength(%zu, %zu, %zu), format(0x%8x)", __func__,
1375 bufLength[0], bufLength[1], bufLength[2], dstImgInfo->format);
1376 return -EINVAL;
1377 }
1378
1379 dstImgInfo->bufferType = getBufferType(dstHandle);
1380 if (dstImgInfo->bufferType == MPP_BUFFER_SECURE_DRM)
1381 attribute |= AcrylicCanvas::ATTR_PROTECTED;
1382
1383 if (mAssignedDisplay != NULL) {
1384 mAcrylicHandle->setCanvasDimension(pixel_align(mAssignedDisplay->mXres, G2D_JUSTIFIED_DST_ALIGN),
1385 pixel_align(mAssignedDisplay->mYres, G2D_JUSTIFIED_DST_ALIGN));
1386 }
1387
1388 /* setup dst */
1389 if (needCompressDstBuf()) {
1390 attribute |= AcrylicCanvas::ATTR_COMPRESSED;
1391 }
1392
1393 if (mPhysicalType == MPP_G2D) {
1394 setFenceName(dstImgInfo->acrylicAcquireFenceFd, FENCE_G2D_DST_DPP);
1395 /* Might be closed next frame */
1396 setFenceInfo(dstImgInfo->acrylicAcquireFenceFd, mAssignedDisplay, FENCE_TYPE_DST_ACQUIRE,
1397 FENCE_IP_G2D, HwcFenceDirection::TO);
1398 } else if (mPhysicalType == MPP_MSC) {
1399 setFenceName(dstImgInfo->acrylicAcquireFenceFd, FENCE_MSC_DST_DPP);
1400 /* Might be closed next frame */
1401 setFenceInfo(dstImgInfo->acrylicAcquireFenceFd, mAssignedDisplay, FENCE_TYPE_DST_ACQUIRE,
1402 FENCE_IP_MSC, HwcFenceDirection::TO);
1403 } else {
1404 MPP_LOGE("%s:: invalid mPhysicalType(%d)", __func__, mPhysicalType);
1405 }
1406
1407 mAcrylicHandle->setCanvasImageType(dstImgInfo->format, dataspace);
1408
1409 if ((mLogicalType == MPP_LOGICAL_G2D_COMBO) &&
1410 (mAssignedDisplay != NULL) &&
1411 (mAssignedDisplay->mType == HWC_DISPLAY_VIRTUAL) &&
1412 (((ExynosVirtualDisplay *)mAssignedDisplay)->mIsWFDState == (int)LLWFD)) {
1413 mAcrylicHandle->setCanvasImageType(HAL_PIXEL_FORMAT_EXYNOS_YCbCr_420_SPN, dataspace);
1414 dstImgInfo->acrylicAcquireFenceFd = fence_close(dstImgInfo->acrylicAcquireFenceFd,
1415 mAssignedDisplay, FENCE_TYPE_SRC_ACQUIRE, FENCE_IP_G2D);
1416 mAcrylicHandle->setCanvasBuffer(bufFds, bufLength, bufferNum,
1417 dstImgInfo->acrylicAcquireFenceFd, attribute);
1418 mAcrylicHandle->setCanvasOTF(attribute);
1419 }
1420 else {
1421 dstImgInfo->acrylicAcquireFenceFd =
1422 hwcCheckFenceDebug(mAssignedDisplay, FENCE_TYPE_DST_ACQUIRE, FENCE_IP_G2D, dstImgInfo->acrylicAcquireFenceFd);
1423 mAcrylicHandle->setCanvasBuffer(bufFds, bufLength, bufferNum,
1424 dstImgInfo->acrylicAcquireFenceFd, attribute);
1425 }
1426
1427 dstMetaInfo_t metaInfo = getDstMetaInfo(dataspace);
1428 if ((mAssignedDisplay != NULL) &&
1429 (mAssignedDisplay->mType != HWC_DISPLAY_VIRTUAL)) {
1430 mAcrylicHandle->setTargetDisplayLuminance(metaInfo.minLuminance, metaInfo.maxLuminance);
1431 }
1432
1433 MPP_LOGD(eDebugMPP|eDebugFence, "destination configuration:");
1434 MPP_LOGD(eDebugMPP, "\tImageDimension[%d, %d], ImageType[0x%8x, %d], target luminance[%d, %d]",
1435 gmeta.stride, gmeta.vstride,
1436 dstImgInfo->format, dataspace, metaInfo.minLuminance, metaInfo.maxLuminance);
1437 MPP_LOGD(eDebugMPP|eDebugFence, "\tImageBuffer handle: %p, fds[%d, %d, %d], bufLength[%zu, %zu, %zu], bufferNum: %d, acquireFence: %d, attribute: %d",
1438 dstHandle, bufFds[0], bufFds[1], bufFds[2], bufLength[0], bufLength[1], bufLength[2],
1439 bufferNum, dstImgInfo->acrylicAcquireFenceFd, attribute);
1440
1441
1442 dstImgInfo->acrylicAcquireFenceFd = -1;
1443 dstImgInfo->dataspace = dataspace;
1444
1445 return ret;
1446 }
1447
doPostProcessingInternal()1448 int32_t ExynosMPP::doPostProcessingInternal()
1449 {
1450 ATRACE_CALL();
1451 int ret = NO_ERROR;
1452 size_t sourceNum = mAssignedSources.size();
1453
1454 if (mAcrylicHandle == NULL) {
1455 MPP_LOGE("%s:: mAcrylicHandle is NULL", __func__);
1456 return -EINVAL;
1457 }
1458
1459 /* setup source layers */
1460 for(size_t i = 0; i < sourceNum; i++) {
1461 MPP_LOGD(eDebugMPP|eDebugFence, "Setup [%zu] source: %p", i, mAssignedSources[i]);
1462 if ((ret = setupLayer(&mSrcImgs[i], mAssignedSources[i]->mSrcImg, mAssignedSources[i]->mMidImg)) != NO_ERROR) {
1463 MPP_LOGE("%s:: fail to setupLayer[%zu], ret %d",
1464 __func__, i, ret);
1465 return ret;
1466 }
1467 }
1468
1469 if ((ret = setColorConversionInfo()) != NO_ERROR) {
1470 MPP_LOGE("%s:: fail to setColorConversionInfo ret %d",
1471 __func__, ret);
1472 return ret;
1473 }
1474
1475 if (mPrevFrameInfo.srcNum > sourceNum) {
1476 MPP_LOGD(eDebugMPP, "prev sourceNum(%d), current sourceNum(%zu)",
1477 mPrevFrameInfo.srcNum, sourceNum);
1478 for (size_t i = sourceNum; i < mPrevFrameInfo.srcNum; i++)
1479 {
1480 MPP_LOGD(eDebugMPP, "Remove mSrcImgs[%zu], %p", i, mSrcImgs[i].mppLayer);
1481 if (mSrcImgs[i].mppLayer != NULL) {
1482 delete mSrcImgs[i].mppLayer;
1483 mSrcImgs[i].mppLayer = NULL;
1484 }
1485 }
1486 }
1487
1488 if (mAcrylicHandle->layerCount() != mAssignedSources.size()) {
1489 MPP_LOGE("Different layer number, acrylic layers(%d), assigned size(%zu)",
1490 mAcrylicHandle->layerCount(), mAssignedSources.size());
1491 return -EINVAL;
1492 }
1493 MPP_LOGD(eDebugFence, "setupDst ++ mDstImgs[%d] acrylicAcquireFenceFd(%d)",
1494 mCurrentDstBuf, mDstImgs[mCurrentDstBuf].acrylicAcquireFenceFd);
1495
1496 setupDst(&mDstImgs[mCurrentDstBuf]);
1497
1498 MPP_LOGD(eDebugFence, "setupDst -- mDstImgs[%d] acrylicAcquireFenceFd(%d) closed",
1499 mCurrentDstBuf, mDstImgs[mCurrentDstBuf].acrylicAcquireFenceFd);
1500
1501
1502 int usingFenceCnt = 1;
1503 bool acrylicReturn = true;
1504
1505 #ifndef DISABLE_FENCE
1506 if (mUseM2MSrcFence)
1507 usingFenceCnt = sourceNum + 1; // Get and Use src + dst fence
1508 else
1509 usingFenceCnt = 1; // Get and Use only dst fence
1510 int *releaseFences = new int[usingFenceCnt];
1511 int dstBufIdx = usingFenceCnt - 1;
1512 #else
1513 usingFenceCnt = 0; // Get and Use no fences
1514 int dstBufIdx = 0;
1515 int *releaseFences = NULL;
1516 #endif
1517
1518 acrylicReturn = mAcrylicHandle->execute(releaseFences, usingFenceCnt);
1519
1520 if (acrylicReturn == false) {
1521 MPP_LOGE("%s:: fail to excute compositor", __func__);
1522 for(size_t i = 0; i < sourceNum; i++) {
1523 mSrcImgs[i].acrylicReleaseFenceFd = -1;
1524 MPP_LOGE("src[%zu]: ImageDimension[%d, %d], src_rect[%d, %d, %d, %d], dst_rect[%d, %d, %d, %d], transform(0x%4x)",
1525 i,
1526 mAssignedSources[i]->mSrcImg.fullWidth, mAssignedSources[i]->mSrcImg.fullHeight,
1527 mAssignedSources[i]->mSrcImg.x, mAssignedSources[i]->mSrcImg.y,
1528 mAssignedSources[i]->mSrcImg.x + mAssignedSources[i]->mSrcImg.w,
1529 mAssignedSources[i]->mSrcImg.y + mAssignedSources[i]->mSrcImg.h,
1530 mAssignedSources[i]->mMidImg.x, mAssignedSources[i]->mMidImg.y,
1531 mAssignedSources[i]->mMidImg.x + mAssignedSources[i]->mMidImg.w,
1532 mAssignedSources[i]->mMidImg.y + mAssignedSources[i]->mMidImg.h,
1533 mAssignedSources[i]->mSrcImg.transform);
1534 }
1535 mDstImgs[mCurrentDstBuf].acrylicReleaseFenceFd = -1;
1536 ret = -EPERM;
1537 } else {
1538
1539 // set fence informations from acryl
1540 if (mPhysicalType == MPP_G2D) {
1541 setFenceInfo(releaseFences[dstBufIdx], mAssignedDisplay, FENCE_TYPE_DST_ACQUIRE,
1542 FENCE_IP_G2D, HwcFenceDirection::FROM);
1543 if (usingFenceCnt > 1) {
1544 for(size_t i = 0; i < sourceNum; i++) {
1545 // TODO DPU release fence is tranferred to m2mMPP's source layer fence
1546 setFenceInfo(releaseFences[i], mAssignedDisplay, FENCE_TYPE_SRC_RELEASE,
1547 FENCE_IP_G2D, HwcFenceDirection::FROM);
1548 }
1549 }
1550 } else if (mPhysicalType == MPP_MSC) {
1551 setFenceInfo(releaseFences[dstBufIdx], mAssignedDisplay, FENCE_TYPE_DST_ACQUIRE,
1552 FENCE_IP_MSC, HwcFenceDirection::FROM);
1553 if (usingFenceCnt > 1) {
1554 for(size_t i = 0; i < sourceNum; i++) {
1555 // TODO DPU release fence is tranferred to m2mMPP's source layer fence
1556 setFenceInfo(releaseFences[i], mAssignedDisplay, FENCE_TYPE_SRC_RELEASE,
1557 FENCE_IP_MSC, HwcFenceDirection::FROM);
1558 }
1559 }
1560 } else {
1561 MPP_LOGE("%s:: invalid mPhysicalType(%d)", __func__, mPhysicalType);
1562 }
1563
1564 if ((mLogicalType == MPP_LOGICAL_G2D_COMBO) &&
1565 (mAssignedDisplay != NULL) &&
1566 (mAssignedDisplay->mType == HWC_DISPLAY_VIRTUAL)) {
1567 if (((ExynosVirtualDisplay *)mAssignedDisplay)->mIsWFDState == (int)LLWFD) {
1568 if (usingFenceCnt != 0) // Use no fences
1569 releaseFences[dstBufIdx] = fence_close(releaseFences[dstBufIdx],
1570 mAssignedDisplay, FENCE_TYPE_SRC_RELEASE, FENCE_IP_G2D); // Close dst buf's fence
1571 }
1572 if (mUseM2MSrcFence) {
1573 if (((ExynosVirtualDisplay *)mAssignedDisplay)->mIsWFDState != (int)GOOGLEWFD) {
1574 for (size_t i = 0; i < sourceNum; i++)
1575 releaseFences[i] = fence_close(releaseFences[i],
1576 mAssignedDisplay, FENCE_TYPE_SRC_RELEASE, FENCE_IP_G2D);
1577 }
1578 }
1579 }
1580
1581 if (usingFenceCnt == 0) { // Use no fences
1582 for(size_t i = 0; i < sourceNum; i++) {
1583 mSrcImgs[i].acrylicReleaseFenceFd = -1;
1584 }
1585 mDstImgs[mCurrentDstBuf].acrylicReleaseFenceFd = -1;
1586 } else {
1587 for(size_t i = 0; i < sourceNum; i++) {
1588 if (mUseM2MSrcFence)
1589 mSrcImgs[i].acrylicReleaseFenceFd =
1590 hwcCheckFenceDebug(mAssignedDisplay, FENCE_TYPE_SRC_RELEASE, FENCE_IP_G2D, releaseFences[i]);
1591 else
1592 mSrcImgs[i].acrylicReleaseFenceFd = -1;
1593 MPP_LOGD(eDebugFence, "mSrcImgs[%zu] acrylicReleaseFenceFd: %d",
1594 i, mSrcImgs[i].acrylicReleaseFenceFd);
1595 }
1596
1597 if (mDstImgs[mCurrentDstBuf].acrylicReleaseFenceFd >= 0) {
1598 MPP_LOGE("mDstImgs[%d].acrylicReleaseFenceFd(%d) is not initialized",
1599 mCurrentDstBuf,
1600 mDstImgs[mCurrentDstBuf].acrylicReleaseFenceFd);
1601 }
1602
1603 if (mPhysicalType == MPP_G2D)
1604 mDstImgs[mCurrentDstBuf].acrylicReleaseFenceFd =
1605 hwcCheckFenceDebug(mAssignedDisplay, FENCE_TYPE_DST_RELEASE, FENCE_IP_G2D, releaseFences[dstBufIdx]);
1606 else if (mPhysicalType == MPP_MSC)
1607 mDstImgs[mCurrentDstBuf].acrylicReleaseFenceFd =
1608 hwcCheckFenceDebug(mAssignedDisplay, FENCE_TYPE_DST_RELEASE, FENCE_IP_MSC, releaseFences[dstBufIdx]);
1609
1610 MPP_LOGD(eDebugFence, "mDstImgs[%d] acrylicReleaseFenceFd: %d , releaseFences[%d]",
1611 mCurrentDstBuf, mDstImgs[mCurrentDstBuf].acrylicReleaseFenceFd, dstBufIdx);
1612 }
1613
1614 if (exynosHWCControl.dumpMidBuf) {
1615 ALOGI("dump image");
1616 exynosHWCControl.dumpMidBuf = false;
1617 if ((mDstImgs[mCurrentDstBuf].acrylicReleaseFenceFd > 0) &&
1618 (sync_wait(mDstImgs[mCurrentDstBuf].acrylicReleaseFenceFd, 1000) < 0)) {
1619 ALOGE("%s:: fence sync_wait error to dump image", __func__);
1620 } else {
1621 buffer_handle_t dstHandle = mDstImgs[mCurrentDstBuf].bufferHandle;
1622 VendorGraphicBufferMeta gmeta(dstHandle);
1623
1624 ALOGI("dump image fw: %d, fh:%d, size: %d", gmeta.stride, gmeta.vstride, gmeta.size);
1625 FILE *fp;
1626 fp = fopen(MPP_DUMP_PATH,"ab");
1627
1628 if (fp) {
1629 void *temp = mmap(0, gmeta.size, PROT_READ|PROT_WRITE, MAP_SHARED, gmeta.fd, 0);
1630 if (temp) {
1631 ALOGI("write...%p", temp);
1632 int write_size = fwrite(temp, gmeta.size, 1, fp);
1633 if (write_size < 0) {
1634 ALOGI("write error: %s", strerror(errno));
1635 } else {
1636 ALOGI("write size: %d", write_size);
1637 }
1638 munmap(temp, gmeta.size);
1639 } else {
1640 ALOGE("mmap is NULL %s", strerror(errno));
1641 }
1642 fclose(fp);
1643 } else {
1644 ALOGE("open fail %s", strerror(errno));
1645 }
1646 }
1647 }
1648 }
1649
1650 #ifndef DISABLE_FENCE
1651 delete [] releaseFences;
1652 #endif
1653
1654 return ret;
1655 }
1656
canSkipProcessing()1657 bool ExynosMPP::canSkipProcessing()
1658 {
1659 if ((mAssignedDisplay == NULL) || (mAssignedSources.size() == 0))
1660 return true;
1661 ExynosMPPSource *source = mAssignedSources[0];
1662 exynos_image dst = source->mMidImg;
1663 if ((mLogicalType == MPP_LOGICAL_G2D_RGB) ||
1664 (mLogicalType == MPP_LOGICAL_G2D_COMBO)) {
1665 dst = mAssignedDisplay->mExynosCompositionInfo.mDstImg;
1666 }
1667 return ((needDstBufRealloc(dst, mCurrentDstBuf) == false) & canUsePrevFrame());
1668
1669 }
1670
1671 /**
1672 * @param src
1673 * @param dst
1674 * @return int32_t releaseFenceFd of src buffer
1675 */
doPostProcessing(struct exynos_image & src,struct exynos_image & dst)1676 int32_t ExynosMPP::doPostProcessing(struct exynos_image &src, struct exynos_image &dst)
1677 {
1678 ATRACE_CALL();
1679 MPP_LOGD(eDebugMPP, "total assigned sources (%zu)++++++++", mAssignedSources.size());
1680
1681 int ret = NO_ERROR;
1682 bool realloc = false;
1683 if (mAssignedSources.size() == 0) {
1684 MPP_LOGE("Assigned source size(%zu) is not valid",
1685 mAssignedSources.size());
1686 ret = -EINVAL;
1687 goto save_frame_info;
1688 }
1689
1690 // Check whether destination buffer allocation is required
1691 if (mAllocOutBufFlag) {
1692 if ((realloc = needDstBufRealloc(dst, mCurrentDstBuf)) == true) {
1693 // allocate mDstImgs[mCurrentDstBuf]
1694 uint32_t bufAlign = getOutBufAlign();
1695 bool isComposition = (mMaxSrcLayerNum > 1);
1696 if (isComposition)
1697 dst.format = DEFAULT_MPP_DST_FORMAT;
1698
1699 uint32_t allocFormat = dst.format;
1700 if (mFreeOutBufFlag == false)
1701 allocFormat = DEFAULT_MPP_DST_FORMAT;
1702
1703 if ((allocFormat == HAL_PIXEL_FORMAT_RGBA_1010102) ||
1704 (allocFormat == HAL_PIXEL_FORMAT_GOOGLE_NV12_SP_10B) ||
1705 (allocFormat == HAL_PIXEL_FORMAT_YCBCR_P010))
1706 allocFormat = DEFAULT_MPP_DST_FORMAT;
1707
1708 ret = allocOutBuf(ALIGN_UP(mAssignedDisplay->mXres, bufAlign),
1709 ALIGN_UP(mAssignedDisplay->mYres, bufAlign),
1710 allocFormat, dst.usageFlags, mCurrentDstBuf);
1711 }
1712 if (ret < 0) {
1713 MPP_LOGE("%s:: fail to allocate dst buffer[%d]", __func__, mCurrentDstBuf);
1714 goto save_frame_info;
1715 }
1716 if (mDstImgs[mCurrentDstBuf].format != dst.format) {
1717 MPP_LOGD(eDebugMPP, "dst format is changed (%d -> %d)",
1718 mDstImgs[mCurrentDstBuf].format, dst.format);
1719 mDstImgs[mCurrentDstBuf].format = dst.format;
1720 }
1721 }
1722
1723 if ((realloc == false) && canUsePrevFrame()) {
1724 mCurrentDstBuf = (mCurrentDstBuf + NUM_MPP_DST_BUFS(mLogicalType) - 1)% NUM_MPP_DST_BUFS(mLogicalType);
1725 MPP_LOGD(eDebugMPP|eDebugFence, "Reuse previous frame, dstImg[%d]", mCurrentDstBuf);
1726 for (uint32_t i = 0; i < mAssignedSources.size(); i++) {
1727 mAssignedSources[i]->mSrcImg.acquireFenceFd =
1728 fence_close(mAssignedSources[i]->mSrcImg.acquireFenceFd,
1729 mAssignedDisplay, FENCE_TYPE_SRC_ACQUIRE, FENCE_IP_G2D);
1730 }
1731 goto save_frame_info;
1732 }
1733
1734 /* G2D or sclaer case */
1735 if ((ret = doPostProcessingInternal()) < 0) {
1736 MPP_LOGE("%s:: fail to post processing, ret %d",
1737 __func__, ret);
1738 goto save_frame_info;
1739 }
1740
1741 save_frame_info:
1742 /* Save current frame information for next frame*/
1743 mPrevAssignedDisplayType = mAssignedDisplay->mType;
1744 mPrevFrameInfo.srcNum = (uint32_t)mAssignedSources.size();
1745 for (uint32_t i = 0; i < mPrevFrameInfo.srcNum; i++) {
1746 mPrevFrameInfo.srcInfo[i] = mAssignedSources[i]->mSrcImg;
1747 mPrevFrameInfo.dstInfo[i] = mAssignedSources[i]->mMidImg;
1748 }
1749
1750 MPP_LOGD(eDebugMPP, "mPrevAssignedState: %d, mPrevAssignedDisplayType: %d--------------",
1751 mAssignedState, mAssignedDisplay->mType);
1752
1753 return ret;
1754 }
1755
1756 /*
1757 * This function should be called after doPostProcessing()
1758 * because doPostProcessing() sets
1759 * mSrcImgs[].mppImg.releaseFenceFd
1760 */
getSrcReleaseFence(uint32_t srcIndex)1761 int32_t ExynosMPP::getSrcReleaseFence(uint32_t srcIndex)
1762 {
1763 if (srcIndex >= NUM_MPP_SRC_BUFS)
1764 return -EINVAL;
1765
1766 return mSrcImgs[srcIndex].acrylicReleaseFenceFd;
1767
1768 return -EINVAL;
1769 }
1770
resetSrcReleaseFence()1771 int32_t ExynosMPP::resetSrcReleaseFence()
1772 {
1773 MPP_LOGD(eDebugFence, "");
1774 for (uint32_t i = 0; i < mAssignedSources.size(); i++) {
1775 mSrcImgs[i].acrylicReleaseFenceFd = -1;
1776 }
1777 return NO_ERROR;
1778 }
1779
getDstImageInfo(exynos_image * img)1780 int32_t ExynosMPP::getDstImageInfo(exynos_image *img)
1781 {
1782 if ((mCurrentDstBuf < 0) || (mCurrentDstBuf >= NUM_MPP_DST_BUFS(mLogicalType)) ||
1783 (mAssignedDisplay == NULL)) {
1784 MPP_LOGE("mCurrentDstBuf(%d), mAssignedDisplay(%p)", mCurrentDstBuf, mAssignedDisplay);
1785 return -EINVAL;
1786 }
1787
1788 memset(img, 0, sizeof(exynos_image));
1789 img->acquireFenceFd = -1;
1790 img->releaseFenceFd = -1;
1791
1792 if (needCompressDstBuf()) {
1793 img->compressionInfo.type = COMP_TYPE_AFBC;
1794 img->compressionInfo.modifier = AFBC_FORMAT_MOD_BLOCK_SIZE_16x16;
1795 }
1796
1797 if (mDstImgs[mCurrentDstBuf].bufferHandle == NULL) {
1798 img->acquireFenceFd = -1;
1799 img->releaseFenceFd = -1;
1800 return -EFAULT;
1801 } else {
1802 img->bufferHandle = mDstImgs[mCurrentDstBuf].bufferHandle;
1803 img->compressionInfo = getCompressionInfo(img->bufferHandle);
1804 VendorGraphicBufferMeta gmeta(img->bufferHandle);
1805 img->fullWidth = gmeta.stride;
1806 img->fullHeight = gmeta.vstride;
1807 if ((mLogicalType == MPP_LOGICAL_G2D_RGB) ||
1808 (mLogicalType == MPP_LOGICAL_G2D_COMBO)) {
1809 if (mAssignedSources.size() == 1) {
1810 img->x = mAssignedSources[0]->mDstImg.x;
1811 img->y = mAssignedSources[0]->mDstImg.y;
1812 img->w = mAssignedSources[0]->mDstImg.w;
1813 img->h = mAssignedSources[0]->mDstImg.h;
1814 } else {
1815 img->x = 0;
1816 img->y = 0;
1817 img->w = mAssignedDisplay->mXres;
1818 img->h = mAssignedDisplay->mXres;
1819 }
1820 } else {
1821 img->x = mAssignedSources[0]->mMidImg.x;
1822 img->y = mAssignedSources[0]->mMidImg.y;
1823 img->w = mAssignedSources[0]->mMidImg.w;
1824 img->h = mAssignedSources[0]->mMidImg.h;
1825 img->needColorTransform =
1826 mAssignedSources[0]->mMidImg.needColorTransform;
1827 }
1828
1829 img->format = mDstImgs[mCurrentDstBuf].format;
1830 MPP_LOGD(eDebugFence, "get dstBuf[%d] accquireFence(%d)", mCurrentDstBuf,
1831 mDstImgs[mCurrentDstBuf].acrylicAcquireFenceFd);
1832 img->acquireFenceFd = mDstImgs[mCurrentDstBuf].acrylicAcquireFenceFd;
1833 img->releaseFenceFd = mDstImgs[mCurrentDstBuf].acrylicReleaseFenceFd;
1834 img->dataSpace = mDstImgs[mCurrentDstBuf].dataspace;
1835 }
1836 return NO_ERROR;
1837 }
1838
1839 /*
1840 * This function should be called after getDstReleaseFence()
1841 * by ExynosDisplay
1842 */
setDstAcquireFence(int acquireFence)1843 int32_t ExynosMPP::setDstAcquireFence(int acquireFence)
1844 {
1845
1846 int dstBufIndex = 0;
1847
1848 dstBufIndex = mPrivDstBuf;
1849
1850 if (mPrivDstBuf == mCurrentDstBuf)
1851 MPP_LOGD(eDebugFence|eDebugMPP,
1852 "M2MMPP : same buffer was reused idx %d, %d",mPrivDstBuf, mCurrentDstBuf);
1853
1854 if (dstBufIndex < 0 || dstBufIndex >= NUM_MPP_DST_BUFS(mLogicalType)) {
1855 // TODO fence_close..
1856 acquireFence = fence_close(acquireFence, mAssignedDisplay, FENCE_TYPE_DST_ACQUIRE, FENCE_IP_ALL);
1857 mPrivDstBuf = mCurrentDstBuf;
1858 return -EINVAL;
1859 }
1860
1861 if (acquireFence < 0) {
1862 mPrivDstBuf = mCurrentDstBuf;
1863 return -EINVAL;
1864 }
1865
1866 if (mDstImgs[dstBufIndex].acrylicAcquireFenceFd >= 0) {
1867 MPP_LOGD(eDebugFence,"mDstImgs[%d].acrylicAcquireFenceFd: %d is closed", dstBufIndex,
1868 mDstImgs[dstBufIndex].acrylicAcquireFenceFd);
1869 fence_close(mDstImgs[dstBufIndex].acrylicAcquireFenceFd, mAssignedDisplay,
1870 FENCE_TYPE_DST_ACQUIRE, FENCE_IP_ALL);
1871 }
1872 if (mPhysicalType == MPP_MSC)
1873 mDstImgs[dstBufIndex].acrylicAcquireFenceFd =
1874 hwcCheckFenceDebug(mAssignedDisplay, FENCE_TYPE_DST_ACQUIRE, FENCE_IP_MSC, acquireFence);
1875 else
1876 mDstImgs[dstBufIndex].acrylicAcquireFenceFd =
1877 hwcCheckFenceDebug(mAssignedDisplay, FENCE_TYPE_DST_ACQUIRE, FENCE_IP_G2D, acquireFence);
1878
1879 MPP_LOGD(eDebugFence,"->mDstImgs[%d].acrylicAcquireFenceFd: %d", dstBufIndex,
1880 mDstImgs[dstBufIndex].acrylicAcquireFenceFd);
1881
1882 mPrivDstBuf = mCurrentDstBuf;
1883
1884 return NO_ERROR;
1885 }
1886
resetDstReleaseFence()1887 int32_t ExynosMPP::resetDstReleaseFence()
1888 {
1889 MPP_LOGD(eDebugFence, "");
1890
1891 if (mCurrentDstBuf < 0 || mCurrentDstBuf >= NUM_MPP_DST_BUFS(mLogicalType))
1892 return -EINVAL;
1893
1894 mDstImgs[mCurrentDstBuf].acrylicReleaseFenceFd = -1;
1895
1896 return NO_ERROR;
1897 }
1898
requestHWStateChange(uint32_t state)1899 int32_t ExynosMPP::requestHWStateChange(uint32_t state)
1900 {
1901 MPP_LOGD(eDebugMPP|eDebugFence|eDebugBuf, "state: %d", state);
1902 /* Set HW state to running */
1903 if (mHWState == state) {
1904 if ((mPhysicalType == MPP_G2D) && (state == MPP_HW_STATE_IDLE) && (mHWBusyFlag == false)) {
1905 int ret = NO_ERROR;
1906 if ((ret = prioritize(-1)) != NO_ERROR)
1907 MPP_LOGI("prioritize (%d) will be applied on next work", ret);
1908 }
1909 return NO_ERROR;
1910 }
1911
1912 if (state == MPP_HW_STATE_RUNNING) {
1913 mHWState = MPP_HW_STATE_RUNNING;
1914 } else if (state == MPP_HW_STATE_IDLE) {
1915 if (mLastStateFenceFd >= 0) {
1916 mResourceManageThread->addStateFence(mLastStateFenceFd);
1917 } else {
1918 mHWState = MPP_HW_STATE_IDLE;
1919 }
1920
1921 mLastStateFenceFd = -1;
1922
1923 if ((mPhysicalType == MPP_G2D) && (mHWBusyFlag == false)) {
1924 int ret = NO_ERROR;
1925 if ((ret = prioritize(-1)) != NO_ERROR)
1926 MPP_LOGI("prioritize (%d) is not applied on next work", ret);
1927 }
1928
1929 /* Free all of output buffers */
1930 if (mMPPType == MPP_TYPE_M2M) {
1931 for(uint32_t i = 0; i < NUM_MPP_DST_BUFS(mLogicalType); i++) {
1932 exynos_mpp_img_info freeDstBuf = mDstImgs[i];
1933 memset(&mDstImgs[i], 0, sizeof(mDstImgs[i]));
1934 mDstImgs[i].acrylicAcquireFenceFd = freeDstBuf.acrylicAcquireFenceFd;
1935 mDstImgs[i].acrylicReleaseFenceFd = freeDstBuf.acrylicReleaseFenceFd;
1936 freeDstBuf.acrylicAcquireFenceFd = -1;
1937 freeDstBuf.acrylicReleaseFenceFd = -1;
1938
1939 if (mFreeOutBufFlag == true) {
1940 MPP_LOGD(eDebugMPP|eDebugFence|eDebugBuf, "free outbuf[%d] %p",
1941 i, freeDstBuf.bufferHandle);
1942 if (freeDstBuf.bufferHandle != NULL && mAllocOutBufFlag) {
1943 freeOutBuf(freeDstBuf);
1944 }
1945 } else {
1946 mDstImgs[i].bufferHandle = freeDstBuf.bufferHandle;
1947 mDstImgs[i].bufferType = freeDstBuf.bufferType;
1948 }
1949 }
1950 }
1951
1952 for (uint32_t i = 0; i < NUM_MPP_SRC_BUFS; i++)
1953 {
1954 if (mSrcImgs[i].mppLayer != NULL) {
1955 delete mSrcImgs[i].mppLayer;
1956 mSrcImgs[i].mppLayer = NULL;
1957 }
1958 }
1959 memset(&mPrevFrameInfo, 0, sizeof(mPrevFrameInfo));
1960 for (int i = 0; i < NUM_MPP_SRC_BUFS; i++) {
1961 mPrevFrameInfo.srcInfo[i].acquireFenceFd = -1;
1962 mPrevFrameInfo.srcInfo[i].releaseFenceFd = -1;
1963 mPrevFrameInfo.dstInfo[i].acquireFenceFd = -1;
1964 mPrevFrameInfo.dstInfo[i].releaseFenceFd = -1;
1965 }
1966 }
1967
1968 return NO_ERROR;
1969 }
1970
setHWStateFence(int32_t fence)1971 int32_t ExynosMPP::setHWStateFence(int32_t fence)
1972 {
1973 MPP_LOGD(eDebugFence, "Update HWState fence, Close(%d), set(%d)",
1974 mLastStateFenceFd, fence);
1975 mLastStateFenceFd = fence;
1976
1977 return NO_ERROR;
1978 }
1979
1980 /**
1981 * @param ..
1982 * @return int32_t
1983 */
setupRestriction()1984 int32_t ExynosMPP::setupRestriction() {
1985
1986 MPP_LOGD(eDebugMPP, "mPhysicalType(%d)", mPhysicalType);
1987
1988 for (uint32_t i = 0; i < RESTRICTION_MAX; i++) {
1989 const restriction_size_element *restriction_size_table = mResourceManager->mSizeRestrictions[i];
1990 for (uint32_t j = 0; j < mResourceManager->mSizeRestrictionCnt[i]; j++) {
1991 if (restriction_size_table[j].key.hwType == mPhysicalType) {
1992 if ((restriction_size_table[j].key.nodeType == NODE_SRC) ||
1993 (restriction_size_table[j].key.nodeType == NODE_NONE)) {
1994 memcpy(&mSrcSizeRestrictions[i], &restriction_size_table[j].sizeRestriction,
1995 sizeof(mSrcSizeRestrictions[i]));
1996 MPP_LOGD(eDebugMPP, "\tSet mSrcSizeRestrictions[%d], "
1997 "[%d, %d, %d, %d, %d, %d, %d, %d, %d, %d, %d, %d, %d, %d, %d, %d]",
1998 i, mSrcSizeRestrictions[i].maxDownScale, mSrcSizeRestrictions[i].maxUpScale,
1999 mSrcSizeRestrictions[i].maxFullWidth, mSrcSizeRestrictions[i].maxFullHeight,
2000 mSrcSizeRestrictions[i].minFullWidth, mSrcSizeRestrictions[i].minFullHeight,
2001 mSrcSizeRestrictions[i].fullWidthAlign, mSrcSizeRestrictions[i].fullHeightAlign,
2002 mSrcSizeRestrictions[i].maxCropWidth, mSrcSizeRestrictions[i].maxCropHeight,
2003 mSrcSizeRestrictions[i].minCropWidth, mSrcSizeRestrictions[i].minCropHeight,
2004 mSrcSizeRestrictions[i].cropXAlign, mSrcSizeRestrictions[i].cropYAlign,
2005 mSrcSizeRestrictions[i].cropWidthAlign, mSrcSizeRestrictions[i].cropHeightAlign);
2006
2007 }
2008 if ((restriction_size_table[j].key.nodeType == NODE_DST) ||
2009 (restriction_size_table[j].key.nodeType == NODE_NONE)) {
2010 memcpy(&mDstSizeRestrictions[i], &restriction_size_table[j].sizeRestriction,
2011 sizeof(mDstSizeRestrictions[i]));
2012 MPP_LOGD(eDebugMPP, "\tSet mDstSizeRestrictions[%d], "
2013 "[%d, %d, %d, %d, %d, %d, %d, %d, %d, %d, %d, %d, %d, %d, %d, %d]",
2014 i, mDstSizeRestrictions[i].maxDownScale, mDstSizeRestrictions[i].maxUpScale,
2015 mDstSizeRestrictions[i].maxFullWidth, mDstSizeRestrictions[i].maxFullHeight,
2016 mDstSizeRestrictions[i].minFullWidth, mDstSizeRestrictions[i].minFullHeight,
2017 mDstSizeRestrictions[i].fullWidthAlign, mDstSizeRestrictions[i].fullHeightAlign,
2018 mDstSizeRestrictions[i].maxCropWidth, mDstSizeRestrictions[i].maxCropHeight,
2019 mDstSizeRestrictions[i].minCropWidth, mDstSizeRestrictions[i].minCropHeight,
2020 mDstSizeRestrictions[i].cropXAlign, mDstSizeRestrictions[i].cropYAlign,
2021 mDstSizeRestrictions[i].cropWidthAlign, mDstSizeRestrictions[i].cropHeightAlign);
2022 }
2023 }
2024 }
2025 }
2026
2027 return NO_ERROR;
2028 }
2029
isSupported(ExynosDisplay & display,struct exynos_image & src,struct exynos_image & dst)2030 int64_t ExynosMPP::isSupported(ExynosDisplay &display, struct exynos_image &src, struct exynos_image &dst)
2031 {
2032 uint32_t maxSrcWidth = getSrcMaxWidth(src);
2033 uint32_t maxSrcHeight = getSrcMaxHeight(src);
2034 uint32_t minSrcWidth = getSrcMinWidth(src);
2035 uint32_t minSrcHeight = getSrcMinHeight(src);
2036 uint32_t srcWidthAlign = getSrcWidthAlign(src);
2037 uint32_t srcHeightAlign = getSrcHeightAlign(src);
2038
2039 uint32_t maxSrcCropWidth = getSrcMaxCropWidth(src);
2040 uint32_t maxSrcCropHeight = getSrcMaxCropHeight(src);
2041 uint32_t maxSrcCropSize = getSrcMaxCropSize(src);
2042 uint32_t minSrcCropWidth = getSrcMinCropWidth(src);
2043 uint32_t minSrcCropHeight = getSrcMinCropHeight(src);
2044 uint32_t srcCropWidthAlign = getSrcCropWidthAlign(src);
2045 uint32_t srcCropHeightAlign = getSrcCropHeightAlign(src);
2046 uint32_t srcXOffsetAlign = getSrcXOffsetAlign(src);
2047 uint32_t srcYOffsetAlign = getSrcYOffsetAlign(src);
2048
2049 uint32_t maxDstWidth = getDstMaxWidth(dst);
2050 uint32_t maxDstHeight = getDstMaxHeight(dst);
2051 uint32_t minDstWidth = getDstMinWidth(dst);
2052 uint32_t minDstHeight = getDstMinHeight(dst);
2053 uint32_t dstWidthAlign = getDstWidthAlign(dst);
2054 uint32_t dstHeightAlign = getDstHeightAlign(dst);
2055 uint32_t dstXOffsetAlign = getDstXOffsetAlign(dst);
2056 uint32_t dstYOffsetAlign = getDstYOffsetAlign(dst);
2057
2058 uint32_t maxDownscale = getMaxDownscale(display, src, dst);
2059 uint32_t maxUpscale = getMaxUpscale(src, dst);
2060
2061 exynos_image rot_dst = dst;
2062 bool isPerpendicular = !!(src.transform & HAL_TRANSFORM_ROT_90);
2063 if (isPerpendicular) {
2064 rot_dst.w = dst.h;
2065 rot_dst.h = dst.w;
2066 }
2067
2068 if (dst.w > maxDstWidth)
2069 return -eMPPExeedMaxDstWidth;
2070 else if (dst.h > maxDstHeight)
2071 return -eMPPExeedMaxDstHeight;
2072 else if (dst.w < minDstWidth)
2073 return -eMPPExeedMinDstWidth;
2074 else if (dst.h < minDstHeight)
2075 return -eMPPExeedMinDstHeight;
2076 else if (src.isDimLayer()) { // Dim layer
2077 if (isDimLayerSupported()) {
2078 return NO_ERROR;
2079 } else {
2080 return -eMPPUnsupportedDIMLayer;
2081 }
2082 }
2083 if (!isSupportedCapability(display, src))
2084 return -eMPPSaveCapability;
2085 else if (!isSrcFormatSupported(src))
2086 return -eMPPUnsupportedFormat;
2087 else if (!isDstFormatSupported(dst))
2088 return -eMPPUnsupportedFormat;
2089 else if (!isDataspaceSupportedByMPP(src, dst))
2090 return -eMPPUnsupportedCSC;
2091 else if (!isSupportedHDR(src, dst))
2092 return -eMPPUnsupportedDynamicMeta;
2093 else if (!isSupportedBlend(src))
2094 return -eMPPUnsupportedBlending;
2095 else if (!isSupportedTransform(src))
2096 return -eMPPUnsupportedRotation;
2097 else if (src.fullWidth < minSrcWidth)
2098 return -eMPPExeedMinSrcWidth;
2099 else if (src.fullHeight < minSrcHeight)
2100 return -eMPPExeedMinSrcHeight;
2101 else if (src.w < minSrcCropWidth)
2102 return -eMPPExeedSrcWCropMin;
2103 else if (src.h < minSrcCropHeight)
2104 return -eMPPExeedSrcHCropMin;
2105 else if ((dst.w % dstWidthAlign != 0) || (dst.h % dstHeightAlign != 0))
2106 return -eMPPNotAlignedDstSize;
2107 else if (src.w > rot_dst.w * maxDownscale)
2108 return -eMPPExeedMaxDownScale;
2109 else if (rot_dst.w > src.w * maxUpscale)
2110 return -eMPPExeedMaxUpScale;
2111 else if (src.h > rot_dst.h * maxDownscale)
2112 return -eMPPExeedMaxDownScale;
2113 else if (rot_dst.h > src.h * maxUpscale)
2114 return -eMPPExeedMaxUpScale;
2115 else if (!isSupportedDRM(src))
2116 return -eMPPUnsupportedDRM;
2117 else if (!isSupportedHStrideCrop(src))
2118 return -eMPPStrideCrop;
2119 else if (src.fullWidth > maxSrcWidth)
2120 return -eMPPExceedHStrideMaximum;
2121 else if (src.fullWidth % srcWidthAlign != 0)
2122 return -eMPPNotAlignedHStride;
2123
2124 if ((src.w * src.h) > maxSrcCropSize)
2125 return -eMPPExeedSrcCropMax;
2126
2127 if (getDrmMode(src.usageFlags) == NO_DRM) {
2128 if (src.fullHeight > maxSrcHeight)
2129 return -eMPPExceedVStrideMaximum;
2130 else if (src.fullHeight % srcHeightAlign != 0)
2131 return -eMPPNotAlignedVStride;
2132 else if (src.w > maxSrcCropWidth)
2133 return -eMPPExeedSrcWCropMax;
2134 else if (src.h > maxSrcCropHeight)
2135 return -eMPPExeedSrcHCropMax;
2136 else if ((src.w % srcCropWidthAlign != 0) || (src.h % srcCropHeightAlign != 0))
2137 return -eMPPNotAlignedCrop;
2138 else if ((src.x % srcXOffsetAlign != 0) || (src.y % srcYOffsetAlign != 0))
2139 return -eMPPNotAlignedOffset;
2140 }
2141
2142 if ((dst.x % dstXOffsetAlign != 0) || (dst.y % dstYOffsetAlign != 0))
2143 return -eMPPNotAlignedOffset;
2144
2145 if (!isSupportedCompression(src))
2146 return -eMPPUnsupportedCompression;
2147
2148 if (!isSupportLayerColorTransform(src,dst))
2149 return -eMPPUnsupportedColorTransform;
2150
2151 return NO_ERROR;
2152 }
2153
resetMPP()2154 int32_t ExynosMPP::resetMPP()
2155 {
2156 mAssignedState = MPP_ASSIGN_STATE_FREE;
2157 mAssignedDisplay = NULL;
2158 mAssignedSources.clear();
2159 resetUsedCapacity();
2160 mReservedDisplay = -1;
2161 mHWBusyFlag = false;
2162
2163 return NO_ERROR;
2164 }
2165
resetAssignedState()2166 int32_t ExynosMPP::resetAssignedState()
2167 {
2168 for (int i = (int)mAssignedSources.size(); i-- > 0;) {
2169 ExynosMPPSource *mppSource = mAssignedSources[i];
2170 if (mppSource->mOtfMPP == this) {
2171 mppSource->mOtfMPP = NULL;
2172 }
2173 if (mppSource->mM2mMPP == this) {
2174 mppSource->mM2mMPP = NULL;
2175 }
2176 mAssignedSources.removeItemsAt(i);
2177 }
2178
2179 /* Keep status if mAssignedState is MPP_ASSIGN_STATE_RESERVED */
2180 if ((mAssignedState & MPP_ASSIGN_STATE_ASSIGNED) &&
2181 (mAssignedSources.size() == 0)) {
2182 mAssignedState &= ~MPP_ASSIGN_STATE_ASSIGNED;
2183 mAssignedDisplay = NULL;
2184 }
2185
2186 /* All mpp source are removed, reset capacity information */
2187 resetUsedCapacity();
2188
2189 return NO_ERROR;
2190 }
2191
resetAssignedState(ExynosMPPSource * mppSource)2192 int32_t ExynosMPP::resetAssignedState(ExynosMPPSource *mppSource)
2193 {
2194 bool needUpdateCapacity = false;
2195 for (int i = (int)mAssignedSources.size(); i-- > 0;) {
2196 ExynosMPPSource *source = mAssignedSources[i];
2197 if (source == mppSource) {
2198 if (mppSource->mM2mMPP == this) {
2199 mppSource->mM2mMPP = NULL;
2200 }
2201 /* Update information for used capacity */
2202 /* This should be called before mAssignedSources.removeItemsAt(mppSource) */
2203 needUpdateCapacity = removeCapacity(mppSource);
2204
2205 mAssignedSources.removeItemsAt(i);
2206
2207 if (needUpdateCapacity)
2208 updateUsedCapacity();
2209
2210 break;
2211 }
2212 }
2213
2214 /* Keep status if mAssignedState is MPP_ASSIGN_STATE_RESERVED */
2215 if ((mAssignedState & MPP_ASSIGN_STATE_ASSIGNED) &&
2216 (mAssignedSources.size() == 0)) {
2217 mAssignedState &= ~MPP_ASSIGN_STATE_ASSIGNED;
2218 mAssignedDisplay = NULL;
2219 }
2220
2221 return NO_ERROR;
2222 }
2223
reserveMPP(int32_t displayId)2224 int32_t ExynosMPP::reserveMPP(int32_t displayId)
2225 {
2226 mAssignedState |= MPP_ASSIGN_STATE_RESERVED;
2227 mReservedDisplay = displayId;
2228
2229 return NO_ERROR;
2230 }
2231
assignMPP(ExynosDisplay * display,ExynosMPPSource * mppSource)2232 int32_t ExynosMPP::assignMPP(ExynosDisplay *display, ExynosMPPSource* mppSource)
2233 {
2234 mAssignedState |= MPP_ASSIGN_STATE_ASSIGNED;
2235
2236 if (mMPPType == MPP_TYPE_OTF)
2237 mppSource->mOtfMPP = this;
2238 else if (mMPPType == MPP_TYPE_M2M)
2239 mppSource->mM2mMPP = this;
2240 else {
2241 MPP_LOGE("%s:: Invalid mppType(%d)", __func__, mMPPType);
2242 return -EINVAL;
2243 }
2244
2245 mAssignedDisplay = display;
2246
2247 /* Update information for used capacity */
2248 /* This should be called before mAssignedSources.add(mppSource) */
2249 bool needUpdateCapacity = addCapacity(mppSource);
2250
2251 mAssignedSources.add(mppSource);
2252
2253 MPP_LOGD(eDebugCapacity|eDebugMPP, "\tassigned to source(%p) type(%d), mAssignedSources(%zu)",
2254 mppSource, mppSource->mSourceType,
2255 mAssignedSources.size());
2256
2257 if (needUpdateCapacity)
2258 updateUsedCapacity();
2259
2260 if (mMaxSrcLayerNum > 1) {
2261 std::sort(mAssignedSources.begin(), mAssignedSources.end(), exynosMPPSourceComp);
2262 }
2263
2264 return NO_ERROR;
2265 }
2266
getSrcMaxBlendingNum(struct exynos_image __unused & src,struct exynos_image __unused & dst)2267 uint32_t ExynosMPP::getSrcMaxBlendingNum(struct exynos_image __unused &src, struct exynos_image __unused &dst)
2268 {
2269 uint32_t maxSrcLayerNum = mMaxSrcLayerNum;
2270 return maxSrcLayerNum;
2271 }
2272
getAssignedSourceNum()2273 uint32_t ExynosMPP::getAssignedSourceNum()
2274 {
2275 return mAssignedSources.size();
2276 }
2277
2278 /* Based on multi-resolution support */
setDstAllocSize(uint32_t width,uint32_t height)2279 void ExynosMPP::setDstAllocSize(uint32_t width, uint32_t height)
2280 {
2281 switch(width) {
2282 case 720:
2283 mDstAllocatedSize = ((height >= 1480) ? DST_SIZE_HD_PLUS : DST_SIZE_HD);
2284 break;
2285 case 1080:
2286 mDstAllocatedSize = ((height >= 2220) ? DST_SIZE_FHD_PLUS : DST_SIZE_FHD);
2287 break;
2288 case 1440:
2289 mDstAllocatedSize = ((height >= 2960) ? DST_SIZE_WQHD_PLUS : DST_SIZE_WQHD);
2290 break;
2291 default:
2292 mDstAllocatedSize = DST_SIZE_UNKNOWN;
2293 break;
2294 }
2295 }
2296
getDstAllocSize()2297 dst_alloc_buf_size_t ExynosMPP::getDstAllocSize()
2298 {
2299 return mDstAllocatedSize;
2300 }
2301
needPreAllocation()2302 bool ExynosMPP::needPreAllocation()
2303 {
2304 bool ret = false;
2305
2306 if ((mLogicalType == MPP_LOGICAL_G2D_RGB) &&
2307 (mPreAssignDisplayList[mResourceManager->mDevice->mDisplayMode] == HWC_DISPLAY_PRIMARY_BIT))
2308 ret = true;
2309
2310 return ret;
2311 }
2312
isAssignableState(ExynosDisplay * display,struct exynos_image & src,struct exynos_image & dst)2313 bool ExynosMPP::isAssignableState(ExynosDisplay *display, struct exynos_image &src, struct exynos_image &dst)
2314 {
2315 bool isAssignable = false;
2316
2317 if (mAssignedState == MPP_ASSIGN_STATE_FREE) {
2318 if (mHWState == MPP_HW_STATE_IDLE)
2319 isAssignable = true;
2320 else {
2321 if ((mPrevAssignedDisplayType < 0) ||
2322 ((uint32_t)mPrevAssignedDisplayType == display->mType))
2323 isAssignable = true;
2324 else
2325 isAssignable = false;
2326 }
2327 }
2328
2329 if ((mAssignedState & MPP_ASSIGN_STATE_ASSIGNED) && (mAssignedState & MPP_ASSIGN_STATE_RESERVED))
2330 {
2331 if (mReservedDisplay == (int32_t)display->getId()) {
2332 if (mAssignedSources.size() < getSrcMaxBlendingNum(src, dst))
2333 isAssignable = true;
2334 else
2335 isAssignable = false;
2336 } else {
2337 isAssignable = false;
2338 }
2339 } else if ((mAssignedState & MPP_ASSIGN_STATE_ASSIGNED) && !(mAssignedState & MPP_ASSIGN_STATE_RESERVED)) {
2340 if (mAssignedSources.size() < getSrcMaxBlendingNum(src, dst))
2341 isAssignable = true;
2342 else
2343 isAssignable = false;
2344 } else if (mAssignedState & MPP_ASSIGN_STATE_RESERVED) {
2345 if (mReservedDisplay == (int32_t)display->getId())
2346 isAssignable = true;
2347 else
2348 isAssignable = false;
2349 }
2350
2351 MPP_LOGD(eDebugMPP, "\tisAssignableState(%d), assigned size(%zu), getSrcMaxBlendingNum(%d)",
2352 isAssignable, mAssignedSources.size(), getSrcMaxBlendingNum(src, dst));
2353 return isAssignable;
2354 }
2355
isAssignable(ExynosDisplay * display,struct exynos_image & src,struct exynos_image & dst,float totalUsedCapacity)2356 bool ExynosMPP::isAssignable(ExynosDisplay *display, struct exynos_image &src,
2357 struct exynos_image &dst, float totalUsedCapacity)
2358 {
2359 bool isAssignable = isAssignableState(display, src, dst);
2360 return (isAssignable && hasEnoughCapa(display, src, dst, totalUsedCapacity));
2361 }
2362
hasEnoughCapa(ExynosDisplay * display,struct exynos_image & src,struct exynos_image & dst,float totalUsedCapacity)2363 bool ExynosMPP::hasEnoughCapa(ExynosDisplay *display, struct exynos_image &src,
2364 struct exynos_image &dst, float totalUsedCapacity)
2365 {
2366 if (mCapacity == -1)
2367 return true;
2368
2369 MPP_LOGD(eDebugCapacity | eDebugMPP, "totalUsedCapacity(%f), mUsedCapacity(%f)",
2370 totalUsedCapacity, mUsedCapacity);
2371
2372 /* mUsedCapacity should be re-calculated including src, dst passed as parameters*/
2373 totalUsedCapacity -= mUsedCapacity;
2374
2375 float requiredCapacity = getRequiredCapacity(display, src, dst);
2376
2377 MPP_LOGD(eDebugCapacity | eDebugMPP, "mCapacity(%f), usedCapacity(%f), RequiredCapacity(%f)",
2378 mCapacity, totalUsedCapacity, requiredCapacity);
2379
2380 if (mCapacity >= (totalUsedCapacity + requiredCapacity))
2381 return true;
2382 else if (isCapacityExceptionCondition(totalUsedCapacity, requiredCapacity, src))
2383 return true;
2384 else
2385 return false;
2386 }
2387
isCapacityExceptionCondition(float totalUsedCapacity,float requiredCapacity,struct exynos_image & src)2388 bool ExynosMPP::isCapacityExceptionCondition(float totalUsedCapacity, float requiredCapacity,
2389 struct exynos_image &src)
2390 {
2391 if ((hasHdrInfo(src) && (totalUsedCapacity == 0) &&
2392 (requiredCapacity < (mCapacity * MPP_HDR_MARGIN)))) {
2393 return true;
2394 } else {
2395 return false;
2396 }
2397 }
2398
getPPCIndex(const struct exynos_image & src,const struct exynos_image & dst,uint32_t & formatIndex,uint32_t & rotIndex,uint32_t & scaleIndex,const struct exynos_image & criteria)2399 void ExynosMPP::getPPCIndex(const struct exynos_image &src,
2400 const struct exynos_image &dst,
2401 uint32_t &formatIndex, uint32_t &rotIndex, uint32_t &scaleIndex,
2402 const struct exynos_image &criteria)
2403 {
2404 formatIndex = 0;
2405 rotIndex = 0;
2406 scaleIndex = 0;
2407
2408 /* Compare SBWC, AFBC and 10bitYUV420 first! because can be overlapped with other format */
2409 if (isFormatSBWC(criteria.format) && hasPPC(mPhysicalType, PPC_FORMAT_SBWC, PPC_ROT_NO))
2410 formatIndex = PPC_FORMAT_SBWC;
2411 else if (src.compressionInfo.type == COMP_TYPE_AFBC) {
2412 if ((isFormatRgb(criteria.format)) && hasPPC(mPhysicalType, PPC_FORMAT_AFBC_RGB, PPC_ROT_NO))
2413 formatIndex = PPC_FORMAT_AFBC_RGB;
2414 else if ((isFormatYUV(criteria.format)) && hasPPC(mPhysicalType, PPC_FORMAT_AFBC_YUV, PPC_ROT_NO))
2415 formatIndex = PPC_FORMAT_AFBC_YUV;
2416 else {
2417 formatIndex = PPC_FORMAT_RGB32;
2418 MPP_LOGW("%s:: AFBC PPC is not existed. Use default PPC", __func__);
2419 }
2420 } else if (isFormatP010(criteria.format) && hasPPC(mPhysicalType, PPC_FORMAT_P010, PPC_ROT_NO))
2421 formatIndex = PPC_FORMAT_P010;
2422 else if (isFormatYUV420(criteria.format) && hasPPC(mPhysicalType, PPC_FORMAT_YUV420, PPC_ROT_NO))
2423 formatIndex = PPC_FORMAT_YUV420;
2424 else if (isFormatYUV422(criteria.format) && hasPPC(mPhysicalType, PPC_FORMAT_YUV422, PPC_ROT_NO))
2425 formatIndex = PPC_FORMAT_YUV422;
2426 else
2427 formatIndex = PPC_FORMAT_RGB32;
2428
2429 if (((criteria.transform & HAL_TRANSFORM_ROT_90) != 0) ||
2430 (mRotatedSrcCropBW > 0))
2431 rotIndex = PPC_ROT;
2432 else
2433 rotIndex = PPC_ROT_NO;
2434
2435 uint32_t srcResolution = src.w * src.h;
2436 uint32_t dstResolution = dst.w * dst.h;
2437
2438 if (mPhysicalType == MPP_G2D) {
2439 if (srcResolution == dstResolution) {
2440 scaleIndex = PPC_SCALE_NO;
2441 } else if (dstResolution > srcResolution) {
2442 /* scale up case */
2443 if (dstResolution >= (srcResolution * 4))
2444 scaleIndex = PPC_SCALE_UP_4_;
2445 else
2446 scaleIndex = PPC_SCALE_UP_1_4;
2447 } else {
2448 /* scale down case */
2449 if ((dstResolution * 16) <= srcResolution)
2450 scaleIndex = PPC_SCALE_DOWN_16_;
2451 else if (((dstResolution * 9) <= srcResolution) &&
2452 (srcResolution < (dstResolution * 16)))
2453 scaleIndex = PPC_SCALE_DOWN_9_16;
2454 else if (((dstResolution * 4) <= srcResolution) &&
2455 (srcResolution < (dstResolution * 9)))
2456 scaleIndex = PPC_SCALE_DOWN_4_9;
2457 else
2458 scaleIndex = PPC_SCALE_DOWN_1_4;
2459 }
2460 } else scaleIndex = 0; /* MSC doesn't refer scale Index */
2461 }
2462
getPPC(const struct exynos_image & src,const struct exynos_image & dst,const struct exynos_image & criteria,const struct exynos_image * assignCheckSrc,const struct exynos_image * assignCheckDst)2463 float ExynosMPP::getPPC(const struct exynos_image &src,
2464 const struct exynos_image &dst, const struct exynos_image &criteria,
2465 const struct exynos_image *assignCheckSrc,
2466 const struct exynos_image *assignCheckDst)
2467 {
2468 float PPC = 0;
2469 uint32_t formatIndex = 0;
2470 uint32_t rotIndex = 0;
2471 uint32_t scaleIndex = 0;
2472
2473 getPPCIndex(src, dst, formatIndex, rotIndex, scaleIndex, criteria);
2474
2475 if ((rotIndex == PPC_ROT_NO) && (assignCheckSrc != NULL) &&
2476 ((assignCheckSrc->transform & HAL_TRANSFORM_ROT_90) != 0)) {
2477 rotIndex = PPC_ROT;
2478 }
2479
2480 if (mPhysicalType == MPP_G2D || mPhysicalType == MPP_MSC) {
2481 if (hasPPC(mPhysicalType, formatIndex, rotIndex)) {
2482 PPC = ppc_table_map.at(PPC_IDX(mPhysicalType, formatIndex, rotIndex)).ppcList[scaleIndex];
2483 }
2484 }
2485
2486 if (PPC == 0) {
2487 MPP_LOGE("%s:: mPhysicalType(%d), formatIndex(%d), rotIndex(%d), scaleIndex(%d), PPC(%f) is not valid",
2488 __func__, mPhysicalType, formatIndex, rotIndex, scaleIndex, PPC);
2489 PPC = 0.000001; /* It means can't use mPhysicalType H/W */
2490 }
2491
2492 MPP_LOGD(eDebugCapacity, "srcW(%d), srcH(%d), dstW(%d), dstH(%d), rot(%d)"
2493 "formatIndex(%d), rotIndex(%d), scaleIndex(%d), PPC(%f)",
2494 src.w, src.h, dst.w, dst.h, src.transform,
2495 formatIndex, rotIndex, scaleIndex, PPC);
2496 return PPC;
2497 }
2498
getAssignedCapacity()2499 float ExynosMPP::getAssignedCapacity()
2500 {
2501 float capacity = 0;
2502 float baseCycles = 0;
2503 uint32_t rotIndex = 0;
2504
2505 if (mPhysicalType != MPP_G2D)
2506 return 0;
2507
2508 /*
2509 * Client target is assigned to m2mMPP
2510 * even if capacity is not enough
2511 */
2512 if ((mAssignedDisplay != NULL) &&
2513 (mAssignedDisplay->mType == HWC_DISPLAY_VIRTUAL))
2514 return 0;
2515
2516
2517 for (uint32_t i = 0; i < mAssignedSources.size(); i++) {
2518 if ((mAssignedSources[i]->mSrcImg.transform & HAL_TRANSFORM_ROT_90) != 0)
2519 rotIndex = PPC_ROT;
2520 }
2521
2522 MPP_LOGD(eDebugCapacity, "Check all of assigned layers cycles");
2523 /* PPC of layers that were added before should be changed */
2524 /* Check cycles of all assigned layers again */
2525 if ((mAssignedDisplay != NULL) && (mMaxSrcLayerNum > 1)) {
2526 baseCycles += ((mAssignedDisplay->mXres * mAssignedDisplay->mYres) / G2D_BASE_PPC_COLORFILL);
2527 MPP_LOGD(eDebugCapacity, "colorfill cycles: %f, total cycles: %f",
2528 ((mAssignedDisplay->mXres * mAssignedDisplay->mYres) / G2D_BASE_PPC_COLORFILL), baseCycles);
2529 }
2530
2531 for (uint32_t i = 0; i < mAssignedSources.size(); i++) {
2532 float srcCycles = 0;
2533 uint32_t srcResolution = mAssignedSources[i]->mSrcImg.w * mAssignedSources[i]->mSrcImg.h;
2534 uint32_t dstResolution = mAssignedSources[i]->mMidImg.w * mAssignedSources[i]->mMidImg.h;
2535 uint32_t maxResolution = max(srcResolution, dstResolution);
2536 float PPC = 0;
2537
2538 if (mAssignedSources[i]->mSrcImg.layerFlags & EXYNOS_HWC_DIM_LAYER) {
2539 PPC = G2D_BASE_PPC_COLORFILL;
2540 } else {
2541 PPC = getPPC(mAssignedSources[i]->mSrcImg, mAssignedSources[i]->mMidImg, mAssignedSources[i]->mSrcImg,
2542 &mAssignedSources[i]->mSrcImg, &mAssignedSources[i]->mMidImg);
2543 }
2544 srcCycles = maxResolution/PPC;
2545
2546 /* Hdr and drm layer is exception */
2547 if ((hasHdrInfo(mAssignedSources[i]->mSrcImg) ||
2548 (getDrmMode(mAssignedSources[i]->mSrcImg.usageFlags) != NO_DRM))) {
2549 MPP_LOGD(eDebugCapacity, "Src[%d] is skipped(drm or hdr), cycles: %f, PPC: %f, srcResolution: %d, dstResolution: %d, rot(%d)",
2550 i, srcCycles, PPC, srcResolution, dstResolution, mAssignedSources[i]->mSrcImg.transform);
2551 continue;
2552 }
2553
2554 baseCycles += srcCycles;
2555
2556 MPP_LOGD(eDebugCapacity, "Src[%d] cycles: %f, total cycles: %f, PPC: %f, srcResolution: %d, dstResolution: %d, rot(%d)",
2557 i, srcCycles, baseCycles, PPC, srcResolution, dstResolution, mAssignedSources[i]->mSrcImg.transform);
2558 }
2559
2560 capacity = baseCycles / mClockKhz;
2561
2562 return capacity;
2563 }
2564
getRequiredCapacity(ExynosDisplay * display,struct exynos_image & src,struct exynos_image & dst)2565 float ExynosMPP::getRequiredCapacity(ExynosDisplay *display, struct exynos_image &src,
2566 struct exynos_image &dst)
2567 {
2568 float capacity = 0;
2569 float cycles = 0;
2570 if (mPhysicalType == MPP_G2D) {
2571 /* Initialize value with the cycles that were already assigned */
2572 float baseCycles = mUsedBaseCycles;
2573 float srcCycles = 0;
2574 uint32_t srcResolution = src.w * src.h;
2575 uint32_t dstResolution = dst.w * dst.h;
2576 uint32_t maxResolution = max(srcResolution, dstResolution);
2577 float curBaseCycles = 0;
2578 float PPC = 0;
2579
2580 if ((mAssignedSources.size() == 0) ||
2581 (mRotatedSrcCropBW != 0) ||
2582 ((mRotatedSrcCropBW == 0) &&
2583 ((src.transform & HAL_TRANSFORM_ROT_90) == 0))) {
2584 /* Just add cycles for current layer */
2585 if ((mAssignedSources.size() == 0) &&
2586 (display != NULL) && (mMaxSrcLayerNum > 1)) {
2587 curBaseCycles = ((display->mXres * display->mYres) / G2D_BASE_PPC_COLORFILL);
2588 MPP_LOGD(eDebugCapacity, "There is no assigned layer. Colorfill cycles: %f should be added",
2589 curBaseCycles);
2590 }
2591 curBaseCycles += getRequiredBaseCycles(src, dst);
2592 baseCycles += curBaseCycles;
2593 MPP_LOGD(eDebugCapacity, "mUsedBaseCycles was %f, Add base cycles %f, totalBaseCycle(%f)",
2594 mUsedBaseCycles, curBaseCycles, baseCycles);
2595 } else {
2596 /* Recalculate cycles for all of layers */
2597 baseCycles = 0;
2598 MPP_LOGD(eDebugCapacity, "Check all of assigned layers cycles");
2599 /* PPC of layers that were added before should be changed */
2600 /* Check cycles of all assigned layers again */
2601 if ((display != NULL) && (mMaxSrcLayerNum > 1)) {
2602 baseCycles += ((display->mXres * display->mYres) / G2D_BASE_PPC_COLORFILL);
2603 MPP_LOGD(eDebugCapacity, "colorfill cycles: %f, total cycles: %f",
2604 ((display->mXres * display->mYres) / G2D_BASE_PPC_COLORFILL), cycles);
2605 }
2606
2607 for (uint32_t i = 0; i < mAssignedSources.size(); i++) {
2608 float assignedSrcCycles = 0;
2609 uint32_t assignedSrcResolution = mAssignedSources[i]->mSrcImg.w * mAssignedSources[i]->mSrcImg.h;
2610 uint32_t assignedDstResolution = mAssignedSources[i]->mMidImg.w * mAssignedSources[i]->mMidImg.h;
2611 uint32_t assignedMaxResolution = max(assignedSrcResolution, assignedDstResolution);
2612 float assignedPPC = getPPC(mAssignedSources[i]->mSrcImg, mAssignedSources[i]->mMidImg,
2613 mAssignedSources[i]->mSrcImg, &src, &dst);
2614
2615 assignedSrcCycles = assignedMaxResolution/assignedPPC;
2616 baseCycles += assignedSrcCycles;
2617
2618 MPP_LOGD(eDebugCapacity, "Src[%d] cycles: %f, total cycles: %f, PPC: %f, srcResolution: %d, dstResolution: %d, rot(%d)",
2619 i, assignedSrcCycles, baseCycles, assignedPPC, assignedSrcResolution, assignedDstResolution, mAssignedSources[i]->mSrcImg.transform);
2620 }
2621
2622 PPC = getPPC(src, dst, src, &src, &dst);
2623
2624 srcCycles = maxResolution/PPC;
2625 baseCycles += srcCycles;
2626
2627 MPP_LOGD(eDebugCapacity, "check mppSource cycles: %f, total cycles: %f, PPC: %f, srcResolution: %d, dstResolution: %d, rot(%d)",
2628 srcCycles, baseCycles, PPC, srcResolution, dstResolution, src.transform);
2629 }
2630
2631 capacity = baseCycles / mClockKhz;
2632
2633 MPP_LOGD(eDebugCapacity, "baseCycles: %f, capacity: %f",
2634 baseCycles, capacity);
2635 } else if (mPhysicalType == MPP_MSC) {
2636 /* Initialize value with the capacity that were already assigned */
2637 capacity = mUsedCapacity;
2638
2639 /* Just add capacity for current layer */
2640 float srcPPC = getPPC(src, dst, src);
2641 float dstPPC = getPPC(src, dst, dst);
2642 float srcCapacity = (float((src.w * src.h))) / (mClockKhz * srcPPC);
2643 float dstCapacity = (float((dst.w * dst.h))) / (mClockKhz * dstPPC);
2644
2645 capacity += max(srcCapacity, dstCapacity);
2646
2647 }
2648
2649 return capacity;
2650 }
2651
getRequiredBaseCycles(struct exynos_image & src,struct exynos_image & dst)2652 float ExynosMPP::getRequiredBaseCycles(struct exynos_image &src, struct exynos_image &dst)
2653 {
2654 if (mPhysicalType != MPP_G2D)
2655 return 0;
2656
2657 uint32_t srcResolution = src.w * src.h;
2658 uint32_t dstResolution = dst.w * dst.h;
2659 uint32_t maxResolution = max(srcResolution, dstResolution);
2660
2661 return maxResolution/(float)getPPC(src, dst, src);
2662 }
2663
addCapacity(ExynosMPPSource * mppSource)2664 bool ExynosMPP::addCapacity(ExynosMPPSource* mppSource)
2665 {
2666 if ((mppSource == NULL) || mCapacity == -1)
2667 return false;
2668
2669 if (mPhysicalType == MPP_G2D) {
2670 bool needUpdateCapacity = true;
2671 if ((mAssignedSources.size() == 0) ||
2672 (mRotatedSrcCropBW != 0) ||
2673 ((mRotatedSrcCropBW == 0) &&
2674 ((mppSource->mSrcImg.transform & HAL_TRANSFORM_ROT_90) == 0))) {
2675 needUpdateCapacity = false;
2676 }
2677
2678 if (needUpdateCapacity)
2679 return true;
2680
2681 if ((mMaxSrcLayerNum > 1) &&
2682 (mAssignedSources.size() == 0)) {
2683 if (mAssignedDisplay != NULL) {
2684 /* This will be the first mppSource that is assigned to the ExynosMPP */
2685 /* Add capacity for background */
2686 mUsedBaseCycles += ((mAssignedDisplay->mXres * mAssignedDisplay->mYres) / G2D_BASE_PPC_COLORFILL);
2687 MPP_LOGD(eDebugCapacity, "\tcolorfill cycles: %f, total cycles: %f",
2688 ((mAssignedDisplay->mXres * mAssignedDisplay->mYres) / G2D_BASE_PPC_COLORFILL), mUsedBaseCycles);
2689 } else {
2690 MPP_LOGE("mAssignedDisplay is null");
2691 }
2692 }
2693
2694 float baseCycles = getRequiredBaseCycles(mppSource->mSrcImg, mppSource->mMidImg);
2695 mUsedBaseCycles += baseCycles;
2696
2697 uint32_t srcResolution = mppSource->mSrcImg.w * mppSource->mSrcImg.h;
2698 uint32_t dstResolution = mppSource->mMidImg.w * mppSource->mMidImg.h;
2699 if ((mppSource->mSrcImg.transform & HAL_TRANSFORM_ROT_90) == 0)
2700 mNoRotatedSrcCropBW += srcResolution;
2701 else
2702 mRotatedSrcCropBW += srcResolution;
2703
2704 mUsedCapacity = mUsedBaseCycles / mClockKhz;
2705
2706 MPP_LOGD(eDebugCapacity, "src num: %zu base cycle is added: %f, mUsedBaseCycles: %f, mUsedCapacity(%f), srcResolution: %d, dstResolution: %d, rot: %d, mNoRotatedSrcCropBW(%d), mRotatedSrcCropBW(%d)",
2707 mAssignedSources.size(),
2708 baseCycles, mUsedBaseCycles, mUsedCapacity, srcResolution, dstResolution,
2709 mppSource->mSrcImg.transform, mNoRotatedSrcCropBW, mRotatedSrcCropBW);
2710 } else if (mPhysicalType == MPP_MSC) {
2711 mUsedCapacity = getRequiredCapacity(NULL, mppSource->mSrcImg, mppSource->mMidImg);
2712 }
2713
2714 return false;
2715 }
2716
removeCapacity(ExynosMPPSource * mppSource)2717 bool ExynosMPP::removeCapacity(ExynosMPPSource* mppSource)
2718 {
2719 if ((mppSource == NULL) || (mCapacity == -1))
2720 return false;
2721
2722 if (mPhysicalType == MPP_G2D) {
2723 uint32_t srcResolution = mppSource->mSrcImg.w * mppSource->mSrcImg.h;
2724 uint32_t dstResolution = mppSource->mDstImg.w * mppSource->mDstImg.h;
2725
2726 uint32_t prevRotatedSrcCropBW = mRotatedSrcCropBW;
2727
2728 if (mppSource->mSrcImg.transform == 0)
2729 mNoRotatedSrcCropBW -= srcResolution;
2730 else
2731 mRotatedSrcCropBW -= srcResolution;
2732
2733 if ((prevRotatedSrcCropBW > 0) && (mRotatedSrcCropBW == 0))
2734 return true;
2735
2736 float baseCycles = getRequiredBaseCycles(mppSource->mSrcImg, mppSource->mMidImg);
2737 mUsedBaseCycles -= baseCycles;
2738
2739 mUsedCapacity = mUsedBaseCycles / mClockKhz;
2740
2741 MPP_LOGD(eDebugCapacity, "src num: %zu, base cycle is removed: %f, mUsedBaseCycles: %f, mUsedCapacity(%f), srcResolution: %d, dstResolution: %d, rot: %d, mNoRotatedSrcCropBW(%d), mRotatedSrcCropBW(%d)",
2742 mAssignedSources.size(),
2743 baseCycles, mUsedBaseCycles, mUsedCapacity, srcResolution, dstResolution,
2744 mppSource->mSrcImg.transform, mNoRotatedSrcCropBW, mRotatedSrcCropBW);
2745 } else if (mPhysicalType == MPP_MSC) {
2746 exynos_image &src = mppSource->mSrcImg;
2747 exynos_image &dst = mppSource->mDstImg;
2748 uint32_t srcResolution = src.w * src.h;
2749 uint32_t dstResolution = dst.w * dst.h;
2750
2751 float srcCapacity = (float)srcResolution / getPPC(src, dst, src);
2752 float dstCapacity = (float)dstResolution / getPPC(src, dst, dst);
2753
2754 mUsedCapacity -= max(srcCapacity, dstCapacity);
2755 }
2756
2757 return false;
2758 }
2759
resetUsedCapacity()2760 void ExynosMPP::resetUsedCapacity()
2761 {
2762 mUsedCapacity = 0;
2763 mUsedBaseCycles = 0;
2764 mRotatedSrcCropBW = 0;
2765 mNoRotatedSrcCropBW = 0;
2766 }
2767
updateUsedCapacity()2768 int32_t ExynosMPP::updateUsedCapacity()
2769 {
2770 int32_t ret = NO_ERROR;
2771 if (mCapacity == -1)
2772 return ret;
2773
2774 float capacity = 0;
2775 mUsedCapacity = 0;
2776
2777 mRotatedSrcCropBW = 0;
2778 mNoRotatedSrcCropBW = 0;
2779
2780 if ((mPhysicalType == MPP_G2D) &&
2781 (mAssignedDisplay != NULL) &&
2782 (mAssignedSources.size() > 0)) {
2783 float cycles = 0;
2784
2785 if (mMaxSrcLayerNum > 1) {
2786 cycles += ((mAssignedDisplay->mXres * mAssignedDisplay->mYres) / G2D_BASE_PPC_COLORFILL);
2787 MPP_LOGD(eDebugCapacity, "\tcolorfill cycles: %f, total cycles: %f",
2788 ((mAssignedDisplay->mXres * mAssignedDisplay->mYres) / G2D_BASE_PPC_COLORFILL), cycles);
2789 }
2790 for (uint32_t i = 0; i < mAssignedSources.size(); i++) {
2791 uint32_t srcResolution = mAssignedSources[i]->mSrcImg.w * mAssignedSources[i]->mSrcImg.h;
2792 if ((mAssignedSources[i]->mSrcImg.transform & HAL_TRANSFORM_ROT_90) == 0)
2793 mNoRotatedSrcCropBW += srcResolution;
2794 else
2795 mRotatedSrcCropBW += srcResolution;
2796 }
2797 MPP_LOGD(eDebugCapacity, "mNoRotatedSrcCropBW(%d), mRotatedSrcCropBW(%d)",
2798 mNoRotatedSrcCropBW, mRotatedSrcCropBW);
2799 for (uint32_t i = 0; i < mAssignedSources.size(); i++) {
2800 float srcCycles = 0;
2801 uint32_t srcResolution = mAssignedSources[i]->mSrcImg.w * mAssignedSources[i]->mSrcImg.h;
2802 uint32_t dstResolution = mAssignedSources[i]->mMidImg.w * mAssignedSources[i]->mMidImg.h;
2803 uint32_t maxResolution = max(srcResolution, dstResolution);
2804 float PPC = getPPC(mAssignedSources[i]->mSrcImg, mAssignedSources[i]->mMidImg, mAssignedSources[i]->mSrcImg);
2805 srcCycles = maxResolution/PPC;
2806 cycles += srcCycles;
2807
2808 MPP_LOGD(eDebugCapacity, "Src[%d] cycles: %f, total cycles: %f, PPC: %f, srcResolution: %d, dstResolution: %d, rot(%d)",
2809 i, srcCycles, cycles, PPC, srcResolution, dstResolution, mAssignedSources[i]->mSrcImg.transform);
2810 }
2811
2812 mUsedBaseCycles = cycles;
2813 capacity = cycles / mClockKhz;
2814
2815 mUsedCapacity = capacity;
2816
2817 }
2818 MPP_LOGD(eDebugCapacity, "assigned layer size(%zu), mUsedCapacity: %f", mAssignedSources.size(), mUsedCapacity);
2819
2820 return mUsedCapacity;
2821 }
2822
getRestrictionClassification(const struct exynos_image & img) const2823 uint32_t ExynosMPP::getRestrictionClassification(const struct exynos_image &img) const {
2824 return !!(isFormatRgb(img.format) == false);
2825 }
2826
prioritize(int priority)2827 int ExynosMPP::prioritize(int priority)
2828 {
2829 if ((mPhysicalType != MPP_G2D) ||
2830 (mAcrylicHandle == NULL)) {
2831 MPP_LOGE("invalid function call");
2832 return -1;
2833 }
2834 int ret = NO_ERROR;
2835 ret = mAcrylicHandle->prioritize(priority);
2836
2837 if ((priority > 0) && (ret == 1))
2838 {
2839 /* G2D Driver returned EBUSY */
2840 mHWBusyFlag = true;
2841 }
2842 MPP_LOGD(eDebugMPP, "set resource prioritize (%d), ret(%d), mHWBusyFlag(%d)", priority, ret, mHWBusyFlag);
2843
2844 return ret;
2845 }
2846
increaseDstBuffIndex()2847 uint32_t ExynosMPP::increaseDstBuffIndex()
2848 {
2849 if (mAllocOutBufFlag)
2850 mCurrentDstBuf = (mCurrentDstBuf + 1) % NUM_MPP_DST_BUFS(mLogicalType);
2851 return mCurrentDstBuf;
2852 }
2853
reloadResourceForHWFC()2854 void ExynosMPP::reloadResourceForHWFC()
2855 {
2856 ALOGI("reloadResourceForHWFC()");
2857 delete mAcrylicHandle;
2858 mAcrylicHandle = AcrylicFactory::createAcrylic("default_compositor");
2859 if (mAcrylicHandle == NULL) {
2860 MPP_LOGE("Fail to allocate compositor");
2861 } else {
2862 mAcrylicHandle->setDefaultColor(0, 0, 0, 0);
2863 MPP_LOGI("The resource is reloaded for HWFC: %p", mAcrylicHandle);
2864 }
2865 for (uint32_t i = 0; i < NUM_MPP_SRC_BUFS; i++)
2866 {
2867 if (mSrcImgs[i].mppLayer != NULL) {
2868 delete mSrcImgs[i].mppLayer;
2869 mSrcImgs[i].mppLayer = NULL;
2870 }
2871 }
2872 }
2873
setTargetDisplayLuminance(uint16_t min,uint16_t max)2874 void ExynosMPP::setTargetDisplayLuminance(uint16_t min, uint16_t max)
2875 {
2876 MPP_LOGD(eDebugMPP, "%s: min(%d), max(%d)", __func__, min, max);
2877 if (mAcrylicHandle == NULL) {
2878 MPP_LOGE("mAcrylicHandle is NULL");
2879 } else
2880 mAcrylicHandle->setTargetDisplayLuminance(min, max);
2881 }
2882
setTargetDisplayDevice(int device)2883 void ExynosMPP::setTargetDisplayDevice(int device)
2884 {
2885 ALOGI("%s: device(%d)", __func__, device);
2886 if (mAcrylicHandle == NULL) {
2887 MPP_LOGE("mAcrylicHandle is NULL");
2888 } else
2889 mAcrylicHandle->setTargetDisplayInfo(&device);
2890 }
2891
dump(String8 & result)2892 void ExynosMPP::dump(String8& result)
2893 {
2894 int32_t assignedDisplayType = -1;
2895 if (mAssignedDisplay != NULL)
2896 assignedDisplayType = mAssignedDisplay->mType;
2897
2898 result.appendFormat("%s: types mppType(%d), (p:%d, l:0x%2x), indexs(p:%d, l:%d), preAssignDisplay(0x%2x)\n",
2899 mName.string(), mMPPType, mPhysicalType, mLogicalType, mPhysicalIndex, mLogicalIndex, mPreAssignDisplayInfo);
2900 result.appendFormat("\tEnable: %d, HWState: %d, AssignedState: %d, assignedDisplay(%d)\n",
2901 mEnable, mHWState, mAssignedState, assignedDisplayType);
2902 result.appendFormat("\tPrevAssignedState: %d, PrevAssignedDisplayType: %d, ReservedDisplay: %d\n",
2903 mPrevAssignedState, mPrevAssignedDisplayType, mReservedDisplay);
2904 result.appendFormat("\tassinedSourceNum(%zu), Capacity(%f), CapaUsed(%f), mCurrentDstBuf(%d)\n",
2905 mAssignedSources.size(), mCapacity, mUsedCapacity, mCurrentDstBuf);
2906
2907 }
2908
closeFences()2909 void ExynosMPP::closeFences()
2910 {
2911 for (uint32_t i = 0; i < mAssignedSources.size(); i++)
2912 {
2913 mSrcImgs[i].acrylicAcquireFenceFd =
2914 fence_close(mSrcImgs[i].acrylicAcquireFenceFd, mAssignedDisplay,
2915 FENCE_TYPE_SRC_ACQUIRE, FENCE_IP_G2D);
2916 mSrcImgs[i].acrylicReleaseFenceFd =
2917 fence_close(mSrcImgs[i].acrylicReleaseFenceFd, mAssignedDisplay,
2918 FENCE_TYPE_SRC_RELEASE, FENCE_IP_G2D);
2919 }
2920
2921 mDstImgs[mCurrentDstBuf].acrylicAcquireFenceFd =
2922 fence_close(mDstImgs[mCurrentDstBuf].acrylicAcquireFenceFd, mAssignedDisplay,
2923 FENCE_TYPE_DST_ACQUIRE, FENCE_IP_G2D);
2924 mDstImgs[mCurrentDstBuf].acrylicReleaseFenceFd =
2925 fence_close(mDstImgs[mCurrentDstBuf].acrylicReleaseFenceFd, mAssignedDisplay,
2926 FENCE_TYPE_DST_RELEASE, FENCE_IP_G2D);
2927 }
2928
updateAttr()2929 void ExynosMPP::updateAttr()
2930 {
2931 MPP_LOGD(eDebugAttrSetting, "updateAttr::mPhysicalType(%d), mAttr(0x%" PRIx64 ")",
2932 mPhysicalType, mAttr);
2933
2934 if (mResourceManager == NULL) return;
2935
2936 auto iter = mResourceManager->mMPPAttrs.find(mPhysicalType);
2937 if (iter != mResourceManager->mMPPAttrs.end()) {
2938 mAttr = iter->second;
2939 MPP_LOGD(eDebugAttrSetting, "After mAttr(0x%" PRIx64 ")", mAttr);
2940 }
2941 }
2942
updatePreassignedDisplay(uint32_t fromDisplayBit,uint32_t toDisplayBit)2943 void ExynosMPP::updatePreassignedDisplay(uint32_t fromDisplayBit, uint32_t toDisplayBit)
2944 {
2945 /*
2946 * If the pre-assigned resources are required to changed,
2947 * this function will modify PreAssign table.
2948 */
2949 for (uint32_t i = 0; i < DISPLAY_MODE_NUM; i++) {
2950 if (mPreAssignDisplayList[i] == fromDisplayBit)
2951 mPreAssignDisplayList[i] = toDisplayBit;
2952 }
2953
2954 if (mPreAssignDisplayInfo == fromDisplayBit)
2955 mPreAssignDisplayInfo = toDisplayBit;
2956 }
2957