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The maintenance of the conformance tests is moving to Github. This commit contains all the changes that have been done in Gitlab since the first public release of the conformance tests. Signed-off-by: Kevin Petit <kevin.petit@arm.com>
219 lines
9.3 KiB
C++
219 lines
9.3 KiB
C++
//
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// Copyright (c) 2017 The Khronos Group Inc.
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//
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// Licensed under the Apache License, Version 2.0 (the "License");
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// you may not use this file except in compliance with the License.
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// You may obtain a copy of the License at
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//
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// http://www.apache.org/licenses/LICENSE-2.0
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//
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// Unless required by applicable law or agreed to in writing, software
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// distributed under the License is distributed on an "AS IS" BASIS,
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// WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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// See the License for the specific language governing permissions and
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// limitations under the License.
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//
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#include "../testBase.h"
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#define MAX_ERR 0.005f
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#define MAX_HALF_LINEAR_ERR 0.3f
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extern bool gDebugTrace, gDisableOffsets, gTestSmallImages, gTestMaxImages, gEnablePitch, gTestRounding;
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extern cl_filter_mode gFilterModeToUse;
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extern cl_addressing_mode gAddressModeToUse;
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extern cl_command_queue queue;
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extern cl_context context;
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// Defined in test_fill_2D_3D.cpp
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extern int test_fill_image_generic( cl_device_id device, image_descriptor *imageInfo,
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const size_t origin[], const size_t region[], ExplicitType outputType, MTdata d );
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static int test_fill_image_2D_array( cl_device_id device, image_descriptor *imageInfo, ExplicitType outputType, MTdata d )
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{
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size_t origin[ 3 ], region[ 3 ];
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int ret = 0, retCode;
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// First, try just a full covering region
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origin[ 0 ] = origin[ 1 ] = origin[ 2 ] = 0;
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region[ 0 ] = imageInfo->width;
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region[ 1 ] = imageInfo->height;
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region[ 2 ] = imageInfo->arraySize;
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retCode = test_fill_image_generic( device, imageInfo, origin, region, outputType, d );
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if ( retCode < 0 )
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return retCode;
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else
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ret += retCode;
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// Now try a sampling of different random regions
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for ( int i = 0; i < 8; i++ )
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{
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// Pick a random size
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region[ 0 ] = ( imageInfo->width > 8 ) ? (size_t)random_in_range( 8, (int)imageInfo->width - 1, d ) : imageInfo->width;
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region[ 1 ] = ( imageInfo->height > 8 ) ? (size_t)random_in_range( 8, (int)imageInfo->height - 1, d ) : imageInfo->height;
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region[ 2 ] = ( imageInfo->arraySize > 8 ) ? (size_t)random_in_range( 8, (int)imageInfo->arraySize - 1, d ) : imageInfo->arraySize;
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// Now pick positions within valid ranges
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origin[ 0 ] = ( imageInfo->width > region[ 0 ] ) ? (size_t)random_in_range( 0, (int)( imageInfo->width - region[ 0 ] - 1 ), d ) : 0;
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origin[ 1 ] = ( imageInfo->height > region[ 1 ] ) ? (size_t)random_in_range( 0, (int)( imageInfo->height - region[ 1 ] - 1 ), d ) : 0;
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origin[ 2 ] = ( imageInfo->arraySize > region[ 2 ] ) ? (size_t)random_in_range( 0, (int)( imageInfo->arraySize - region[ 2 ] - 1 ), d ) : 0;
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// Go for it!
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retCode = test_fill_image_generic( device, imageInfo, origin, region, outputType, d );
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if ( retCode < 0 )
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return retCode;
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else
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ret += retCode;
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}
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return ret;
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}
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int test_fill_image_set_2D_array( cl_device_id device, cl_image_format *format, ExplicitType outputType )
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{
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size_t maxWidth, maxHeight, maxArraySize;
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cl_ulong maxAllocSize, memSize;
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image_descriptor imageInfo = { 0 };
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RandomSeed seed( gRandomSeed );
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const size_t rowPadding_default = 80;
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size_t rowPadding = gEnablePitch ? rowPadding_default : 0;
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size_t slicePadding = gEnablePitch ? 3 : 0;
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size_t pixelSize;
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memset(&imageInfo, 0x0, sizeof(image_descriptor));
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imageInfo.type = CL_MEM_OBJECT_IMAGE2D_ARRAY;
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imageInfo.format = format;
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pixelSize = get_pixel_size( imageInfo.format );
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int error = clGetDeviceInfo( device, CL_DEVICE_IMAGE2D_MAX_WIDTH, sizeof( maxWidth ), &maxWidth, NULL );
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error |= clGetDeviceInfo( device, CL_DEVICE_IMAGE2D_MAX_HEIGHT, sizeof( maxHeight ), &maxHeight, NULL );
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error |= clGetDeviceInfo( device, CL_DEVICE_IMAGE_MAX_ARRAY_SIZE, sizeof( maxArraySize ), &maxArraySize, NULL );
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error |= clGetDeviceInfo( device, CL_DEVICE_MAX_MEM_ALLOC_SIZE, sizeof( maxAllocSize ), &maxAllocSize, NULL );
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error |= clGetDeviceInfo( device, CL_DEVICE_GLOBAL_MEM_SIZE, sizeof( memSize ), &memSize, NULL );
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test_error( error, "Unable to get max image 2D array size from device" );
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if (memSize > (cl_ulong)SIZE_MAX) {
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memSize = (cl_ulong)SIZE_MAX;
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}
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if ( gTestSmallImages )
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{
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for ( imageInfo.width = 1; imageInfo.width < 13; imageInfo.width++ )
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{
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imageInfo.rowPitch = imageInfo.width * pixelSize + rowPadding;
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if (gEnablePitch)
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{
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rowPadding = rowPadding_default;
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do {
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rowPadding++;
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imageInfo.rowPitch = imageInfo.width * pixelSize + rowPadding;
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} while ((imageInfo.rowPitch % pixelSize) != 0);
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}
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for ( imageInfo.height = 1; imageInfo.height < 9; imageInfo.height++ )
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{
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imageInfo.slicePitch = imageInfo.rowPitch * (imageInfo.height + slicePadding);
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for ( imageInfo.arraySize = 2; imageInfo.arraySize < 9; imageInfo.arraySize++ )
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{
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if ( gDebugTrace )
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log_info( " at size %d,%d,%d\n", (int)imageInfo.width, (int)imageInfo.height, (int)imageInfo.arraySize );
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int ret = test_fill_image_2D_array( device, &imageInfo, outputType, seed );
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if ( ret )
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return -1;
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}
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}
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}
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}
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else if ( gTestMaxImages )
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{
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// Try a specific set of maximum sizes
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size_t numbeOfSizes;
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size_t sizes[100][3];
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get_max_sizes(&numbeOfSizes, 100, sizes, maxWidth, maxHeight, 1, maxArraySize, maxAllocSize, memSize, CL_MEM_OBJECT_IMAGE2D_ARRAY, imageInfo.format);
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for ( size_t idx = 0; idx < numbeOfSizes; idx++ )
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{
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imageInfo.width = sizes[ idx ][ 0 ];
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imageInfo.height = sizes[ idx ][ 1 ];
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imageInfo.arraySize = sizes[ idx ][ 2 ];
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imageInfo.rowPitch = imageInfo.width * pixelSize + rowPadding;
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if (gEnablePitch)
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{
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rowPadding = rowPadding_default;
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do {
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rowPadding++;
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imageInfo.rowPitch = imageInfo.width * pixelSize + rowPadding;
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} while ((imageInfo.rowPitch % pixelSize) != 0);
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}
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imageInfo.slicePitch = imageInfo.rowPitch * (imageInfo.height + slicePadding);
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// Loop until we get a size that a) will fit in the max alloc size and b) that an allocation of that
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// image, the result array, plus offset arrays, will fit in the global ram space
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cl_ulong size = (cl_ulong)imageInfo.slicePitch * (cl_ulong)imageInfo.arraySize * 4 * 4;
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while (size > maxAllocSize || (size * 3) > memSize) {
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if (imageInfo.arraySize == 1) {
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// arraySize cannot be 0.
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break;
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}
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imageInfo.arraySize--;
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size = (cl_ulong)imageInfo.slicePitch * (cl_ulong)imageInfo.arraySize * 4 * 4;
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}
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while (size > maxAllocSize || (size * 3) > memSize) {
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imageInfo.height--;
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imageInfo.slicePitch = imageInfo.height * imageInfo.rowPitch;
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size = (cl_ulong)imageInfo.slicePitch * (cl_ulong)imageInfo.arraySize * 4 * 4;
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}
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log_info( "Testing %d x %d x %d\n", (int)imageInfo.width, (int)imageInfo.height, (int)imageInfo.arraySize);
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if ( test_fill_image_2D_array( device, &imageInfo, outputType, seed ) )
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return -1;
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}
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}
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else
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{
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for ( int i = 0; i < NUM_IMAGE_ITERATIONS; i++ )
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{
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cl_ulong size;
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// Loop until we get a size that a) will fit in the max alloc size and b) that an allocation of that
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// image, the result array, plus offset arrays, will fit in the global ram space
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do
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{
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imageInfo.width = (size_t)random_log_in_range( 16, (int)maxWidth / 64, seed );
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imageInfo.height = (size_t)random_log_in_range( 16, (int)maxHeight / 64, seed );
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imageInfo.arraySize = (size_t)random_log_in_range( 16, (int)maxArraySize / 32,seed );
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imageInfo.rowPitch = imageInfo.width * pixelSize + rowPadding;
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if (gEnablePitch)
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{
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rowPadding = rowPadding_default;
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do {
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rowPadding++;
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imageInfo.rowPitch = imageInfo.width * pixelSize + rowPadding;
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} while ((imageInfo.rowPitch % pixelSize) != 0);
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}
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imageInfo.slicePitch = imageInfo.rowPitch * (imageInfo.height + slicePadding);
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size = (cl_ulong)imageInfo.slicePitch * (cl_ulong)imageInfo.arraySize * 4 * 4;
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} while ( size > maxAllocSize || ( size * 3 ) > memSize );
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if ( gDebugTrace )
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log_info( " at size %d,%d,%d (pitch %d,%d) out of %d,%d,%d\n", (int)imageInfo.width, (int)imageInfo.height, (int)imageInfo.arraySize, (int)imageInfo.rowPitch, (int)imageInfo.slicePitch, (int)maxWidth, (int)maxHeight, (int)maxArraySize );
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int ret = test_fill_image_2D_array( device, &imageInfo, outputType, seed );
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if ( ret )
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return -1;
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}
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}
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return 0;
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}
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