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https://github.com/KhronosGroup/OpenCL-CTS.git
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Initial open source release of OpenCL 2.0 CTS.
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test_conformance/images/clFillImage/test_fill_2D_array.cpp
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test_conformance/images/clFillImage/test_fill_2D_array.cpp
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//
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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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log_info( "Testing %d x %d x %d\n", (int)sizes[ idx ][ 0 ], (int)sizes[ idx ][ 1 ], (int)sizes[ idx ][ 2 ] );
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if ( gDebugTrace )
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log_info( " at max size %d,%d,%d\n", (int)sizes[ idx ][ 0 ], (int)sizes[ idx ][ 1 ], (int)sizes[ idx ][ 2 ] );
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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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