1 /*
2 * Copyright (C) 2016 The Android Open Source Project
3 *
4 * Licensed under the Apache License, Version 2.0 (the "License");
5 * you may not use this file except in compliance with the License.
6 * You may obtain a copy of the License at
7 *
8 * http://www.apache.org/licenses/LICENSE-2.0
9 *
10 * Unless required by applicable law or agreed to in writing, software
11 * distributed under the License is distributed on an "AS IS" BASIS,
12 * WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
13 * See the License for the specific language governing permissions and
14 * limitations under the License.
15 */
16
17 #include "rsovAllocation.h"
18
19 #include "rsAllocation.h"
20 #include "rsContext.h"
21 #include "rsCppUtils.h"
22 #include "rsElement.h"
23 #include "rsType.h"
24 #include "rsovContext.h"
25 #include "rsovCore.h"
26
27 namespace android {
28 namespace renderscript {
29 namespace rsov {
30
31 namespace {
32
DeriveYUVLayout(int yuv,Allocation::Hal::DrvState * state)33 size_t DeriveYUVLayout(int yuv, Allocation::Hal::DrvState *state) {
34 // For the flexible YCbCr format, layout is initialized during call to
35 // Allocation::ioReceive. Return early and avoid clobberring any
36 // pre-existing layout.
37 if (yuv == HAL_PIXEL_FORMAT_YCbCr_420_888) {
38 return 0;
39 }
40
41 // YUV only supports basic 2d
42 // so we can stash the plane pointers in the mipmap levels.
43 size_t uvSize = 0;
44 state->lod[1].dimX = state->lod[0].dimX / 2;
45 state->lod[1].dimY = state->lod[0].dimY / 2;
46 state->lod[2].dimX = state->lod[0].dimX / 2;
47 state->lod[2].dimY = state->lod[0].dimY / 2;
48 state->yuv.shift = 1;
49 state->yuv.step = 1;
50 state->lodCount = 3;
51
52 switch (yuv) {
53 case HAL_PIXEL_FORMAT_YV12:
54 state->lod[2].stride = rsRound(state->lod[0].stride >> 1, 16);
55 state->lod[2].mallocPtr = ((uint8_t *)state->lod[0].mallocPtr) +
56 (state->lod[0].stride * state->lod[0].dimY);
57 uvSize += state->lod[2].stride * state->lod[2].dimY;
58
59 state->lod[1].stride = state->lod[2].stride;
60 state->lod[1].mallocPtr = ((uint8_t *)state->lod[2].mallocPtr) +
61 (state->lod[2].stride * state->lod[2].dimY);
62 uvSize += state->lod[1].stride * state->lod[2].dimY;
63 break;
64 case HAL_PIXEL_FORMAT_YCrCb_420_SP: // NV21
65 // state->lod[1].dimX = state->lod[0].dimX;
66 state->lod[1].stride = state->lod[0].stride;
67 state->lod[2].stride = state->lod[0].stride;
68 state->lod[2].mallocPtr = ((uint8_t *)state->lod[0].mallocPtr) +
69 (state->lod[0].stride * state->lod[0].dimY);
70 state->lod[1].mallocPtr = ((uint8_t *)state->lod[2].mallocPtr) + 1;
71 uvSize += state->lod[1].stride * state->lod[1].dimY;
72 state->yuv.step = 2;
73 break;
74 default:
75 rsAssert(0);
76 }
77
78 return uvSize;
79 }
80
81 // TODO: Dedup this with the same code under frameworks/rs/driver
AllocationBuildPointerTable(const Context * rsc,const Allocation * alloc,const Type * type,uint8_t * ptr,size_t requiredAlignment)82 size_t AllocationBuildPointerTable(const Context *rsc, const Allocation *alloc,
83 const Type *type, uint8_t *ptr,
84 size_t requiredAlignment) {
85 alloc->mHal.drvState.lod[0].dimX = type->getDimX();
86 alloc->mHal.drvState.lod[0].dimY = type->getDimY();
87 alloc->mHal.drvState.lod[0].dimZ = type->getDimZ();
88 alloc->mHal.drvState.lod[0].mallocPtr = 0;
89 // Stride needs to be aligned to a boundary defined by requiredAlignment!
90 size_t stride =
91 alloc->mHal.drvState.lod[0].dimX * type->getElementSizeBytes();
92 alloc->mHal.drvState.lod[0].stride = rsRound(stride, requiredAlignment);
93 alloc->mHal.drvState.lodCount = type->getLODCount();
94 alloc->mHal.drvState.faceCount = type->getDimFaces();
95
96 size_t offsets[Allocation::MAX_LOD];
97 memset(offsets, 0, sizeof(offsets));
98
99 size_t o = alloc->mHal.drvState.lod[0].stride *
100 rsMax(alloc->mHal.drvState.lod[0].dimY, 1u) *
101 rsMax(alloc->mHal.drvState.lod[0].dimZ, 1u);
102 if (alloc->mHal.state.yuv) {
103 o += DeriveYUVLayout(alloc->mHal.state.yuv, &alloc->mHal.drvState);
104
105 for (uint32_t ct = 1; ct < alloc->mHal.drvState.lodCount; ct++) {
106 offsets[ct] = (size_t)alloc->mHal.drvState.lod[ct].mallocPtr;
107 }
108 } else if (alloc->mHal.drvState.lodCount > 1) {
109 uint32_t tx = alloc->mHal.drvState.lod[0].dimX;
110 uint32_t ty = alloc->mHal.drvState.lod[0].dimY;
111 uint32_t tz = alloc->mHal.drvState.lod[0].dimZ;
112 for (uint32_t lod = 1; lod < alloc->mHal.drvState.lodCount; lod++) {
113 alloc->mHal.drvState.lod[lod].dimX = tx;
114 alloc->mHal.drvState.lod[lod].dimY = ty;
115 alloc->mHal.drvState.lod[lod].dimZ = tz;
116 alloc->mHal.drvState.lod[lod].stride =
117 rsRound(tx * type->getElementSizeBytes(), requiredAlignment);
118 offsets[lod] = o;
119 o += alloc->mHal.drvState.lod[lod].stride * rsMax(ty, 1u) * rsMax(tz, 1u);
120 if (tx > 1) tx >>= 1;
121 if (ty > 1) ty >>= 1;
122 if (tz > 1) tz >>= 1;
123 }
124 }
125
126 alloc->mHal.drvState.faceOffset = o;
127
128 alloc->mHal.drvState.lod[0].mallocPtr = ptr;
129 for (uint32_t lod = 1; lod < alloc->mHal.drvState.lodCount; lod++) {
130 alloc->mHal.drvState.lod[lod].mallocPtr = ptr + offsets[lod];
131 }
132
133 size_t allocSize = alloc->mHal.drvState.faceOffset;
134 if (alloc->mHal.drvState.faceCount) {
135 allocSize *= 6;
136 }
137
138 return allocSize;
139 }
140
AllocationBuildPointerTable(const Context * rsc,const Allocation * alloc,const Type * type,uint8_t * ptr)141 size_t AllocationBuildPointerTable(const Context *rsc, const Allocation *alloc,
142 const Type *type, uint8_t *ptr) {
143 return AllocationBuildPointerTable(rsc, alloc, type, ptr,
144 Allocation::kMinimumRSAlignment);
145 }
146
GetOffsetPtr(const Allocation * alloc,uint32_t xoff,uint32_t yoff,uint32_t zoff,uint32_t lod,RsAllocationCubemapFace face)147 uint8_t *GetOffsetPtr(const Allocation *alloc, uint32_t xoff, uint32_t yoff,
148 uint32_t zoff, uint32_t lod,
149 RsAllocationCubemapFace face) {
150 uint8_t *ptr = (uint8_t *)alloc->mHal.drvState.lod[lod].mallocPtr;
151 ptr += face * alloc->mHal.drvState.faceOffset;
152 ptr += zoff * alloc->mHal.drvState.lod[lod].dimY *
153 alloc->mHal.drvState.lod[lod].stride;
154 ptr += yoff * alloc->mHal.drvState.lod[lod].stride;
155 ptr += xoff * alloc->mHal.state.elementSizeBytes;
156 return ptr;
157 }
158
mip565(const Allocation * alloc,int lod,RsAllocationCubemapFace face)159 void mip565(const Allocation *alloc, int lod, RsAllocationCubemapFace face) {
160 uint32_t w = alloc->mHal.drvState.lod[lod + 1].dimX;
161 uint32_t h = alloc->mHal.drvState.lod[lod + 1].dimY;
162
163 for (uint32_t y = 0; y < h; y++) {
164 uint16_t *oPtr = (uint16_t *)GetOffsetPtr(alloc, 0, y, 0, lod + 1, face);
165 const uint16_t *i1 =
166 (uint16_t *)GetOffsetPtr(alloc, 0, 0, y * 2, lod, face);
167 const uint16_t *i2 =
168 (uint16_t *)GetOffsetPtr(alloc, 0, 0, y * 2 + 1, lod, face);
169
170 for (uint32_t x = 0; x < w; x++) {
171 *oPtr = rsBoxFilter565(i1[0], i1[1], i2[0], i2[1]);
172 oPtr++;
173 i1 += 2;
174 i2 += 2;
175 }
176 }
177 }
178
mip8888(const Allocation * alloc,int lod,RsAllocationCubemapFace face)179 void mip8888(const Allocation *alloc, int lod, RsAllocationCubemapFace face) {
180 uint32_t w = alloc->mHal.drvState.lod[lod + 1].dimX;
181 uint32_t h = alloc->mHal.drvState.lod[lod + 1].dimY;
182
183 for (uint32_t y = 0; y < h; y++) {
184 uint32_t *oPtr = (uint32_t *)GetOffsetPtr(alloc, 0, y, 0, lod + 1, face);
185 const uint32_t *i1 =
186 (uint32_t *)GetOffsetPtr(alloc, 0, y * 2, 0, lod, face);
187 const uint32_t *i2 =
188 (uint32_t *)GetOffsetPtr(alloc, 0, y * 2 + 1, 0, lod, face);
189
190 for (uint32_t x = 0; x < w; x++) {
191 *oPtr = rsBoxFilter8888(i1[0], i1[1], i2[0], i2[1]);
192 oPtr++;
193 i1 += 2;
194 i2 += 2;
195 }
196 }
197 }
198
mip8(const Allocation * alloc,int lod,RsAllocationCubemapFace face)199 void mip8(const Allocation *alloc, int lod, RsAllocationCubemapFace face) {
200 uint32_t w = alloc->mHal.drvState.lod[lod + 1].dimX;
201 uint32_t h = alloc->mHal.drvState.lod[lod + 1].dimY;
202
203 for (uint32_t y = 0; y < h; y++) {
204 uint8_t *oPtr = GetOffsetPtr(alloc, 0, y, 0, lod + 1, face);
205 const uint8_t *i1 = GetOffsetPtr(alloc, 0, y * 2, 0, lod, face);
206 const uint8_t *i2 = GetOffsetPtr(alloc, 0, y * 2 + 1, 0, lod, face);
207
208 for (uint32_t x = 0; x < w; x++) {
209 *oPtr = (uint8_t)(((uint32_t)i1[0] + i1[1] + i2[0] + i2[1]) * 0.25f);
210 oPtr++;
211 i1 += 2;
212 i2 += 2;
213 }
214 }
215 }
216
217 } // anonymous namespace
218
RSoVAllocation(RSoVContext * context,const Type * type,size_t bufferSize)219 RSoVAllocation::RSoVAllocation(RSoVContext *context, const Type *type,
220 size_t bufferSize)
221 : mBuffer(new RSoVBuffer(context, bufferSize)),
222 mType(type),
223 mWidth(type->getDimX()),
224 mHeight(type->getDimY()),
225 mDepth(type->getDimZ()) {}
226
RSoVBuffer(RSoVContext * context,size_t size)227 RSoVBuffer::RSoVBuffer(RSoVContext *context, size_t size)
228 : mRSoV(context), mDevice(context->getDevice()) {
229 InitBuffer(size);
230 }
231
~RSoVBuffer()232 RSoVBuffer::~RSoVBuffer() {
233 vkUnmapMemory(mDevice, mMem);
234 vkDestroyBuffer(mDevice, mBuf, nullptr);
235 vkFreeMemory(mDevice, mMem, nullptr);
236 }
237
InitBuffer(size_t bufferSize)238 void RSoVBuffer::InitBuffer(size_t bufferSize) {
239 VkResult res;
240
241 VkBufferCreateInfo buf_info = {
242 .sType = VK_STRUCTURE_TYPE_BUFFER_CREATE_INFO,
243 .pNext = nullptr,
244 .usage = VK_BUFFER_USAGE_STORAGE_BUFFER_BIT,
245 .size = bufferSize,
246 .queueFamilyIndexCount = 0,
247 .pQueueFamilyIndices = nullptr,
248 .sharingMode = VK_SHARING_MODE_EXCLUSIVE,
249 .flags = 0,
250 };
251 res = vkCreateBuffer(mDevice, &buf_info, nullptr, &mBuf);
252 rsAssert(res == VK_SUCCESS);
253
254 VkMemoryRequirements mem_reqs;
255 vkGetBufferMemoryRequirements(mDevice, mBuf, &mem_reqs);
256
257 VkMemoryAllocateInfo allocateInfo = {
258 .sType = VK_STRUCTURE_TYPE_MEMORY_ALLOCATE_INFO,
259 .pNext = nullptr,
260 .memoryTypeIndex = 0,
261 .allocationSize = mem_reqs.size,
262 };
263
264 bool pass;
265 pass =
266 mRSoV->MemoryTypeFromProperties(mem_reqs.memoryTypeBits,
267 VK_MEMORY_PROPERTY_HOST_VISIBLE_BIT |
268 VK_MEMORY_PROPERTY_HOST_COHERENT_BIT,
269 &allocateInfo.memoryTypeIndex);
270 rsAssert(pass);
271
272 // TODO: Make this aligned
273 res = vkAllocateMemory(mDevice, &allocateInfo, nullptr, &mMem);
274 rsAssert(res == VK_SUCCESS);
275
276 res = vkBindBufferMemory(mDevice, mBuf, mMem, 0);
277 rsAssert(res == VK_SUCCESS);
278
279 mBufferInfo.buffer = mBuf;
280 mBufferInfo.offset = 0;
281 mBufferInfo.range = bufferSize;
282
283 res = vkMapMemory(mDevice, mMem, 0, mem_reqs.size, 0, (void **)&mPtr);
284 rsAssert(res == VK_SUCCESS);
285 }
286
287 } // namespace rsov
288 } // namespace renderscript
289 } // namespace android
290
291 using android::renderscript::Allocation;
292 using android::renderscript::Context;
293 using android::renderscript::Element;
294 using android::renderscript::Type;
295 using android::renderscript::rs_allocation;
296 using android::renderscript::rsMax;
297 using namespace android::renderscript::rsov;
298
rsovAllocationInit(const Context * rsc,Allocation * alloc,bool forceZero)299 bool rsovAllocationInit(const Context *rsc, Allocation *alloc, bool forceZero) {
300 RSoVHal *hal = static_cast<RSoVHal *>(rsc->mHal.drv);
301 RSoVContext *rsov = hal->mRSoV;
302 const Type *type = alloc->getType();
303
304 // Calculate the object size.
305 size_t allocSize = AllocationBuildPointerTable(rsc, alloc, type, nullptr);
306 RSoVAllocation *rsovAlloc = new RSoVAllocation(rsov, type, allocSize);
307 alloc->mHal.drv = rsovAlloc;
308 AllocationBuildPointerTable(rsc, alloc, type,
309 (uint8_t *)rsovAlloc->getHostPtr());
310 return true;
311 }
312
rsovAllocationDestroy(const Context * rsc,Allocation * alloc)313 void rsovAllocationDestroy(const Context *rsc, Allocation *alloc) {
314 RSoVAllocation *rsovAlloc = static_cast<RSoVAllocation *>(alloc->mHal.drv);
315 delete rsovAlloc;
316 alloc->mHal.drv = nullptr;
317 }
318
rsovAllocationData1D(const Context * rsc,const Allocation * alloc,uint32_t xoff,uint32_t lod,size_t count,const void * data,size_t sizeBytes)319 void rsovAllocationData1D(const Context *rsc, const Allocation *alloc,
320 uint32_t xoff, uint32_t lod, size_t count,
321 const void *data, size_t sizeBytes) {
322 const size_t eSize = alloc->mHal.state.type->getElementSizeBytes();
323 uint8_t *ptr =
324 GetOffsetPtr(alloc, xoff, 0, 0, 0, RS_ALLOCATION_CUBEMAP_FACE_POSITIVE_X);
325 size_t size = count * eSize;
326 if (ptr != data) {
327 // Skip the copy if we are the same allocation. This can arise from
328 // our Bitmap optimization, where we share the same storage.
329 if (alloc->mHal.state.hasReferences) {
330 alloc->incRefs(data, count);
331 alloc->decRefs(ptr, count);
332 }
333 memcpy(ptr, data, size);
334 }
335 }
336
rsovAllocationData2D(const Context * rsc,const Allocation * alloc,uint32_t xoff,uint32_t yoff,uint32_t lod,RsAllocationCubemapFace face,uint32_t w,uint32_t h,const void * data,size_t sizeBytes,size_t stride)337 void rsovAllocationData2D(const Context *rsc, const Allocation *alloc,
338 uint32_t xoff, uint32_t yoff, uint32_t lod,
339 RsAllocationCubemapFace face, uint32_t w, uint32_t h,
340 const void *data, size_t sizeBytes, size_t stride) {
341 size_t eSize = alloc->mHal.state.elementSizeBytes;
342 size_t lineSize = eSize * w;
343 if (!stride) {
344 stride = lineSize;
345 }
346
347 if (alloc->mHal.drvState.lod[0].mallocPtr) {
348 const uint8_t *src = static_cast<const uint8_t *>(data);
349 uint8_t *dst = GetOffsetPtr(alloc, xoff, yoff, 0, lod, face);
350
351 for (uint32_t line = yoff; line < (yoff + h); line++) {
352 if (alloc->mHal.state.hasReferences) {
353 alloc->incRefs(src, w);
354 alloc->decRefs(dst, w);
355 }
356 memcpy(dst, src, lineSize);
357 src += stride;
358 dst += alloc->mHal.drvState.lod[lod].stride;
359 }
360 // TODO: handle YUV Allocations
361 if (alloc->mHal.state.yuv) {
362 size_t clineSize = lineSize;
363 int lod = 1;
364 int maxLod = 2;
365 if (alloc->mHal.state.yuv == HAL_PIXEL_FORMAT_YV12) {
366 maxLod = 3;
367 clineSize >>= 1;
368 } else if (alloc->mHal.state.yuv == HAL_PIXEL_FORMAT_YCrCb_420_SP) {
369 lod = 2;
370 maxLod = 3;
371 }
372
373 while (lod < maxLod) {
374 uint8_t *dst = GetOffsetPtr(alloc, xoff, yoff, 0, lod, face);
375
376 for (uint32_t line = (yoff >> 1); line < ((yoff + h) >> 1); line++) {
377 memcpy(dst, src, clineSize);
378 // When copying from an array to an Allocation, the src pointer
379 // to the array should just move by the number of bytes copied.
380 src += clineSize;
381 dst += alloc->mHal.drvState.lod[lod].stride;
382 }
383 lod++;
384 }
385 }
386 }
387 }
388
rsovAllocationData3D(const Context * rsc,const Allocation * alloc,uint32_t xoff,uint32_t yoff,uint32_t zoff,uint32_t lod,uint32_t w,uint32_t h,uint32_t d,const void * data,size_t sizeBytes,size_t stride)389 void rsovAllocationData3D(const Context *rsc, const Allocation *alloc,
390 uint32_t xoff, uint32_t yoff, uint32_t zoff,
391 uint32_t lod, uint32_t w, uint32_t h, uint32_t d,
392 const void *data, size_t sizeBytes, size_t stride) {
393 uint32_t eSize = alloc->mHal.state.elementSizeBytes;
394 uint32_t lineSize = eSize * w;
395 if (!stride) {
396 stride = lineSize;
397 }
398
399 if (alloc->mHal.drvState.lod[0].mallocPtr) {
400 const uint8_t *src = static_cast<const uint8_t *>(data);
401 for (uint32_t z = zoff; z < (d + zoff); z++) {
402 uint8_t *dst = GetOffsetPtr(alloc, xoff, yoff, z, lod,
403 RS_ALLOCATION_CUBEMAP_FACE_POSITIVE_X);
404 for (uint32_t line = yoff; line < (yoff + h); line++) {
405 if (alloc->mHal.state.hasReferences) {
406 alloc->incRefs(src, w);
407 alloc->decRefs(dst, w);
408 }
409 memcpy(dst, src, lineSize);
410 src += stride;
411 dst += alloc->mHal.drvState.lod[lod].stride;
412 }
413 }
414 }
415 }
416
rsovAllocationRead1D(const Context * rsc,const Allocation * alloc,uint32_t xoff,uint32_t lod,size_t count,void * data,size_t sizeBytes)417 void rsovAllocationRead1D(const Context *rsc, const Allocation *alloc,
418 uint32_t xoff, uint32_t lod, size_t count, void *data,
419 size_t sizeBytes) {
420 const size_t eSize = alloc->mHal.state.type->getElementSizeBytes();
421 const uint8_t *ptr =
422 GetOffsetPtr(alloc, xoff, 0, 0, 0, RS_ALLOCATION_CUBEMAP_FACE_POSITIVE_X);
423 if (data != ptr) {
424 // Skip the copy if we are the same allocation. This can arise from
425 // our Bitmap optimization, where we share the same storage.
426 memcpy(data, ptr, count * eSize);
427 }
428 }
429
rsovAllocationRead2D(const Context * rsc,const Allocation * alloc,uint32_t xoff,uint32_t yoff,uint32_t lod,RsAllocationCubemapFace face,uint32_t w,uint32_t h,void * data,size_t sizeBytes,size_t stride)430 void rsovAllocationRead2D(const Context *rsc, const Allocation *alloc,
431 uint32_t xoff, uint32_t yoff, uint32_t lod,
432 RsAllocationCubemapFace face, uint32_t w, uint32_t h,
433 void *data, size_t sizeBytes, size_t stride) {
434 size_t eSize = alloc->mHal.state.elementSizeBytes;
435 size_t lineSize = eSize * w;
436 if (!stride) {
437 stride = lineSize;
438 }
439
440 if (alloc->mHal.drvState.lod[0].mallocPtr) {
441 uint8_t *dst = static_cast<uint8_t *>(data);
442 const uint8_t *src = GetOffsetPtr(alloc, xoff, yoff, 0, lod, face);
443 if (dst == src) {
444 // Skip the copy if we are the same allocation. This can arise from
445 // our Bitmap optimization, where we share the same storage.
446 return;
447 }
448
449 for (uint32_t line = yoff; line < (yoff + h); line++) {
450 memcpy(dst, src, lineSize);
451 dst += stride;
452 src += alloc->mHal.drvState.lod[lod].stride;
453 }
454 } else {
455 ALOGE("Add code to readback from non-script memory");
456 }
457 }
458
rsovAllocationRead3D(const Context * rsc,const Allocation * alloc,uint32_t xoff,uint32_t yoff,uint32_t zoff,uint32_t lod,uint32_t w,uint32_t h,uint32_t d,void * data,size_t sizeBytes,size_t stride)459 void rsovAllocationRead3D(const Context *rsc, const Allocation *alloc,
460 uint32_t xoff, uint32_t yoff, uint32_t zoff,
461 uint32_t lod, uint32_t w, uint32_t h, uint32_t d,
462 void *data, size_t sizeBytes, size_t stride) {
463 uint32_t eSize = alloc->mHal.state.elementSizeBytes;
464 uint32_t lineSize = eSize * w;
465 if (!stride) {
466 stride = lineSize;
467 }
468
469 if (alloc->mHal.drvState.lod[0].mallocPtr) {
470 uint8_t *dst = static_cast<uint8_t *>(data);
471 for (uint32_t z = zoff; z < (d + zoff); z++) {
472 const uint8_t *src = GetOffsetPtr(alloc, xoff, yoff, z, lod,
473 RS_ALLOCATION_CUBEMAP_FACE_POSITIVE_X);
474 if (dst == src) {
475 // Skip the copy if we are the same allocation. This can arise from
476 // our Bitmap optimization, where we share the same storage.
477 return;
478 }
479
480 for (uint32_t line = yoff; line < (yoff + h); line++) {
481 memcpy(dst, src, lineSize);
482 dst += stride;
483 src += alloc->mHal.drvState.lod[lod].stride;
484 }
485 }
486 }
487 }
488
rsovAllocationLock1D(const Context * rsc,const Allocation * alloc)489 void *rsovAllocationLock1D(const Context *rsc, const Allocation *alloc) {
490 return alloc->mHal.drvState.lod[0].mallocPtr;
491 }
492
rsovAllocationUnlock1D(const Context * rsc,const Allocation * alloc)493 void rsovAllocationUnlock1D(const Context *rsc, const Allocation *alloc) {}
494
rsovAllocationData1D_alloc(const Context * rsc,const Allocation * dstAlloc,uint32_t dstXoff,uint32_t dstLod,size_t count,const Allocation * srcAlloc,uint32_t srcXoff,uint32_t srcLod)495 void rsovAllocationData1D_alloc(const Context *rsc, const Allocation *dstAlloc,
496 uint32_t dstXoff, uint32_t dstLod, size_t count,
497 const Allocation *srcAlloc, uint32_t srcXoff,
498 uint32_t srcLod) {}
499
rsovAllocationData2D_alloc_script(const Context * rsc,const Allocation * dstAlloc,uint32_t dstXoff,uint32_t dstYoff,uint32_t dstLod,RsAllocationCubemapFace dstFace,uint32_t w,uint32_t h,const Allocation * srcAlloc,uint32_t srcXoff,uint32_t srcYoff,uint32_t srcLod,RsAllocationCubemapFace srcFace)500 void rsovAllocationData2D_alloc_script(
501 const Context *rsc, const Allocation *dstAlloc, uint32_t dstXoff,
502 uint32_t dstYoff, uint32_t dstLod, RsAllocationCubemapFace dstFace,
503 uint32_t w, uint32_t h, const Allocation *srcAlloc, uint32_t srcXoff,
504 uint32_t srcYoff, uint32_t srcLod, RsAllocationCubemapFace srcFace) {
505 size_t elementSize = dstAlloc->getType()->getElementSizeBytes();
506 for (uint32_t i = 0; i < h; i++) {
507 uint8_t *dstPtr =
508 GetOffsetPtr(dstAlloc, dstXoff, dstYoff + i, 0, dstLod, dstFace);
509 uint8_t *srcPtr =
510 GetOffsetPtr(srcAlloc, srcXoff, srcYoff + i, 0, srcLod, srcFace);
511 memcpy(dstPtr, srcPtr, w * elementSize);
512 }
513 }
514
rsovAllocationData3D_alloc_script(const Context * rsc,const Allocation * dstAlloc,uint32_t dstXoff,uint32_t dstYoff,uint32_t dstZoff,uint32_t dstLod,uint32_t w,uint32_t h,uint32_t d,const Allocation * srcAlloc,uint32_t srcXoff,uint32_t srcYoff,uint32_t srcZoff,uint32_t srcLod)515 void rsovAllocationData3D_alloc_script(
516 const Context *rsc, const Allocation *dstAlloc, uint32_t dstXoff,
517 uint32_t dstYoff, uint32_t dstZoff, uint32_t dstLod, uint32_t w, uint32_t h,
518 uint32_t d, const Allocation *srcAlloc, uint32_t srcXoff, uint32_t srcYoff,
519 uint32_t srcZoff, uint32_t srcLod) {
520 uint32_t elementSize = dstAlloc->getType()->getElementSizeBytes();
521 for (uint32_t j = 0; j < d; j++) {
522 for (uint32_t i = 0; i < h; i++) {
523 uint8_t *dstPtr =
524 GetOffsetPtr(dstAlloc, dstXoff, dstYoff + i, dstZoff + j, dstLod,
525 RS_ALLOCATION_CUBEMAP_FACE_POSITIVE_X);
526 uint8_t *srcPtr =
527 GetOffsetPtr(srcAlloc, srcXoff, srcYoff + i, srcZoff + j, srcLod,
528 RS_ALLOCATION_CUBEMAP_FACE_POSITIVE_X);
529 memcpy(dstPtr, srcPtr, w * elementSize);
530 }
531 }
532 }
533
rsovAllocationData2D_alloc(const Context * rsc,const Allocation * dstAlloc,uint32_t dstXoff,uint32_t dstYoff,uint32_t dstLod,RsAllocationCubemapFace dstFace,uint32_t w,uint32_t h,const Allocation * srcAlloc,uint32_t srcXoff,uint32_t srcYoff,uint32_t srcLod,RsAllocationCubemapFace srcFace)534 void rsovAllocationData2D_alloc(
535 const Context *rsc, const Allocation *dstAlloc, uint32_t dstXoff,
536 uint32_t dstYoff, uint32_t dstLod, RsAllocationCubemapFace dstFace,
537 uint32_t w, uint32_t h, const Allocation *srcAlloc, uint32_t srcXoff,
538 uint32_t srcYoff, uint32_t srcLod, RsAllocationCubemapFace srcFace) {
539 if (!dstAlloc->getIsScript() && !srcAlloc->getIsScript()) {
540 rsc->setError(RS_ERROR_FATAL_DRIVER,
541 "Non-script allocation copies not "
542 "yet implemented.");
543 return;
544 }
545 rsovAllocationData2D_alloc_script(rsc, dstAlloc, dstXoff, dstYoff, dstLod,
546 dstFace, w, h, srcAlloc, srcXoff, srcYoff,
547 srcLod, srcFace);
548 }
549
rsovAllocationData3D_alloc(const Context * rsc,const Allocation * dstAlloc,uint32_t dstXoff,uint32_t dstYoff,uint32_t dstZoff,uint32_t dstLod,uint32_t w,uint32_t h,uint32_t d,const Allocation * srcAlloc,uint32_t srcXoff,uint32_t srcYoff,uint32_t srcZoff,uint32_t srcLod)550 void rsovAllocationData3D_alloc(const Context *rsc, const Allocation *dstAlloc,
551 uint32_t dstXoff, uint32_t dstYoff,
552 uint32_t dstZoff, uint32_t dstLod, uint32_t w,
553 uint32_t h, uint32_t d,
554 const Allocation *srcAlloc, uint32_t srcXoff,
555 uint32_t srcYoff, uint32_t srcZoff,
556 uint32_t srcLod) {
557 if (!dstAlloc->getIsScript() && !srcAlloc->getIsScript()) {
558 rsc->setError(RS_ERROR_FATAL_DRIVER,
559 "Non-script allocation copies not "
560 "yet implemented.");
561 return;
562 }
563 rsovAllocationData3D_alloc_script(rsc, dstAlloc, dstXoff, dstYoff, dstZoff,
564 dstLod, w, h, d, srcAlloc, srcXoff, srcYoff,
565 srcZoff, srcLod);
566 }
567
rsovAllocationAdapterOffset(const Context * rsc,const Allocation * alloc)568 void rsovAllocationAdapterOffset(const Context *rsc, const Allocation *alloc) {
569 // Get a base pointer to the new LOD
570 const Allocation *base = alloc->mHal.state.baseAlloc;
571 const Type *type = alloc->mHal.state.type;
572 if (base == nullptr) {
573 return;
574 }
575
576 const int lodBias = alloc->mHal.state.originLOD;
577 uint32_t lodCount = rsMax(alloc->mHal.drvState.lodCount, (uint32_t)1);
578 for (uint32_t lod = 0; lod < lodCount; lod++) {
579 alloc->mHal.drvState.lod[lod] = base->mHal.drvState.lod[lod + lodBias];
580 alloc->mHal.drvState.lod[lod].mallocPtr = GetOffsetPtr(
581 alloc, alloc->mHal.state.originX, alloc->mHal.state.originY,
582 alloc->mHal.state.originZ, lodBias,
583 (RsAllocationCubemapFace)alloc->mHal.state.originFace);
584 }
585 }
586
rsovAllocationAdapterInit(const Context * rsc,Allocation * alloc)587 bool rsovAllocationAdapterInit(const Context *rsc, Allocation *alloc) {
588 // TODO: may need a RSoV Allocation here
589 #if 0
590 DrvAllocation *drv = (DrvAllocation *)calloc(1, sizeof(DrvAllocation));
591 if (!drv) {
592 return false;
593 }
594 alloc->mHal.drv = drv;
595 #endif
596 // We need to build an allocation that looks like a subset of the parent
597 // allocation
598 rsovAllocationAdapterOffset(rsc, alloc);
599
600 return true;
601 }
602
rsovAllocationSyncAll(const Context * rsc,const Allocation * alloc,RsAllocationUsageType src)603 void rsovAllocationSyncAll(const Context *rsc, const Allocation *alloc,
604 RsAllocationUsageType src) {
605 // TODO: anything to do here?
606 }
607
rsovAllocationMarkDirty(const Context * rsc,const Allocation * alloc)608 void rsovAllocationMarkDirty(const Context *rsc, const Allocation *alloc) {
609 // TODO: anything to do here?
610 }
611
rsovAllocationResize(const Context * rsc,const Allocation * alloc,const Type * newType,bool zeroNew)612 void rsovAllocationResize(const Context *rsc, const Allocation *alloc,
613 const Type *newType, bool zeroNew) {
614 // TODO: implement this
615 // can this be done without copying, if the new size is greater than the
616 // original?
617 }
618
rsovAllocationGenerateMipmaps(const Context * rsc,const Allocation * alloc)619 void rsovAllocationGenerateMipmaps(const Context *rsc,
620 const Allocation *alloc) {
621 if (!alloc->mHal.drvState.lod[0].mallocPtr) {
622 return;
623 }
624 uint32_t numFaces = alloc->getType()->getDimFaces() ? 6 : 1;
625 for (uint32_t face = 0; face < numFaces; face++) {
626 for (uint32_t lod = 0; lod < (alloc->getType()->getLODCount() - 1); lod++) {
627 switch (alloc->getType()->getElement()->getSizeBits()) {
628 case 32:
629 mip8888(alloc, lod, (RsAllocationCubemapFace)face);
630 break;
631 case 16:
632 mip565(alloc, lod, (RsAllocationCubemapFace)face);
633 break;
634 case 8:
635 mip8(alloc, lod, (RsAllocationCubemapFace)face);
636 break;
637 }
638 }
639 }
640 }
641
rsovAllocationGrallocBits(const Context * rsc,Allocation * alloc)642 uint32_t rsovAllocationGrallocBits(const Context *rsc, Allocation *alloc) {
643 return 0;
644 }
645
rsovAllocationUpdateCachedObject(const Context * rsc,const Allocation * alloc,rs_allocation * obj)646 void rsovAllocationUpdateCachedObject(const Context *rsc,
647 const Allocation *alloc,
648 rs_allocation *obj) {
649 obj->p = alloc;
650 #ifdef __LP64__
651 obj->unused1 = nullptr;
652 obj->unused2 = nullptr;
653 obj->unused3 = nullptr;
654 #endif
655 }
656
rsovAllocationSetSurface(const Context * rsc,Allocation * alloc,ANativeWindow * nw)657 void rsovAllocationSetSurface(const Context *rsc, Allocation *alloc,
658 ANativeWindow *nw) {
659 // TODO: implement this
660 }
661
rsovAllocationIoSend(const Context * rsc,Allocation * alloc)662 void rsovAllocationIoSend(const Context *rsc, Allocation *alloc) {
663 // TODO: implement this
664 }
665
rsovAllocationIoReceive(const Context * rsc,Allocation * alloc)666 void rsovAllocationIoReceive(const Context *rsc, Allocation *alloc) {
667 // TODO: implement this
668 }
669
rsovAllocationElementData(const Context * rsc,const Allocation * alloc,uint32_t x,uint32_t y,uint32_t z,const void * data,uint32_t cIdx,size_t sizeBytes)670 void rsovAllocationElementData(const Context *rsc, const Allocation *alloc,
671 uint32_t x, uint32_t y, uint32_t z,
672 const void *data, uint32_t cIdx,
673 size_t sizeBytes) {
674 uint8_t *ptr =
675 GetOffsetPtr(alloc, x, y, z, 0, RS_ALLOCATION_CUBEMAP_FACE_POSITIVE_X);
676
677 const Element *e = alloc->mHal.state.type->getElement()->getField(cIdx);
678 ptr += alloc->mHal.state.type->getElement()->getFieldOffsetBytes(cIdx);
679
680 if (alloc->mHal.state.hasReferences) {
681 e->incRefs(data);
682 e->decRefs(ptr);
683 }
684
685 memcpy(ptr, data, sizeBytes);
686 }
687
rsovAllocationElementRead(const Context * rsc,const Allocation * alloc,uint32_t x,uint32_t y,uint32_t z,void * data,uint32_t cIdx,size_t sizeBytes)688 void rsovAllocationElementRead(const Context *rsc, const Allocation *alloc,
689 uint32_t x, uint32_t y, uint32_t z, void *data,
690 uint32_t cIdx, size_t sizeBytes) {
691 uint8_t *ptr =
692 GetOffsetPtr(alloc, x, y, z, 0, RS_ALLOCATION_CUBEMAP_FACE_POSITIVE_X);
693
694 const Element *e = alloc->mHal.state.type->getElement()->getField(cIdx);
695 ptr += alloc->mHal.state.type->getElement()->getFieldOffsetBytes(cIdx);
696
697 memcpy(data, ptr, sizeBytes);
698 }
699