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https://github.com/KhronosGroup/OpenCL-CTS.git
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skip test cases rather than fail without cl_khr_3d_image_writes (#874)
* skip test cases rather than fail without cl_khr_3d_image_writes cl_khr_3d_image_writes is required for OpenCL 2.x devices, but is not required for OpenCL 1.x or OpenCL 3.0 devices. A check for the presence of the extension on OpenCL 2.x devices already exists in test_min_max_device_version, so we don't need any failure conditions here, and can just skip tests if the extension is not supported. * clang-format changes
This commit is contained in:
@@ -16,43 +16,68 @@
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#include "../testBase.h"
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#include "../common.h"
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extern cl_filter_mode gFilterModeToUse;
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extern cl_filter_mode gFilterModeToUse;
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extern cl_addressing_mode gAddressModeToUse;
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extern int gTypesToTest;
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extern int gNormalizedModeToUse;
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extern cl_channel_type gChannelTypeToUse;
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extern cl_channel_order gChannelOrderToUse;
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extern int gTypesToTest;
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extern int gNormalizedModeToUse;
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extern cl_channel_type gChannelTypeToUse;
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extern cl_channel_order gChannelOrderToUse;
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extern bool gDebugTrace;
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extern bool gTestMipmaps;
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extern int gtestTypesToRun;
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extern int gtestTypesToRun;
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extern bool gDeviceLt20;
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extern int test_read_image_set_1D( cl_device_id device, cl_context context, cl_command_queue queue, cl_image_format *format, image_sampler_data *imageSampler,
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bool floatCoords, ExplicitType outputType );
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extern int test_read_image_set_2D( cl_device_id device, cl_context context, cl_command_queue queue, cl_image_format *format, image_sampler_data *imageSampler,
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bool floatCoords, ExplicitType outputType );
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extern int test_read_image_set_3D( cl_device_id device, cl_context context, cl_command_queue queue, cl_image_format *format, image_sampler_data *imageSampler,
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bool floatCoords, ExplicitType outputType );
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extern int test_read_image_set_1D_array( cl_device_id device, cl_context context, cl_command_queue queue, cl_image_format *format, image_sampler_data *imageSampler,
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bool floatCoords, ExplicitType outputType );
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extern int test_read_image_set_2D_array( cl_device_id device, cl_context context, cl_command_queue queue, cl_image_format *format, image_sampler_data *imageSampler,
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bool floatCoords, ExplicitType outputType );
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extern int test_read_image_set_1D(cl_device_id device, cl_context context,
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cl_command_queue queue,
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cl_image_format *format,
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image_sampler_data *imageSampler,
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bool floatCoords, ExplicitType outputType);
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extern int test_read_image_set_2D(cl_device_id device, cl_context context,
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cl_command_queue queue,
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cl_image_format *format,
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image_sampler_data *imageSampler,
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bool floatCoords, ExplicitType outputType);
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extern int test_read_image_set_3D(cl_device_id device, cl_context context,
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cl_command_queue queue,
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cl_image_format *format,
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image_sampler_data *imageSampler,
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bool floatCoords, ExplicitType outputType);
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extern int test_read_image_set_1D_array(cl_device_id device, cl_context context,
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cl_command_queue queue,
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cl_image_format *format,
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image_sampler_data *imageSampler,
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bool floatCoords,
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ExplicitType outputType);
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extern int test_read_image_set_2D_array(cl_device_id device, cl_context context,
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cl_command_queue queue,
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cl_image_format *format,
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image_sampler_data *imageSampler,
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bool floatCoords,
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ExplicitType outputType);
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int test_read_image_type( cl_device_id device, cl_context context, cl_command_queue queue, cl_image_format *format, bool floatCoords,
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image_sampler_data *imageSampler, ExplicitType outputType, cl_mem_object_type imageType )
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int test_read_image_type(cl_device_id device, cl_context context,
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cl_command_queue queue, cl_image_format *format,
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bool floatCoords, image_sampler_data *imageSampler,
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ExplicitType outputType, cl_mem_object_type imageType)
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{
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int ret = 0;
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cl_addressing_mode *addressModes = NULL;
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// The sampler-less read image functions behave exactly as the corresponding read image functions
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// described in section 6.13.14.2 that take integer coordinates and a sampler with filter mode set to
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// CLK_FILTER_NEAREST, normalized coordinates set to CLK_NORMALIZED_COORDS_FALSE and addressing mode to CLK_ADDRESS_NONE
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cl_addressing_mode addressModes_rw[] = { CL_ADDRESS_NONE, (cl_addressing_mode)-1 };
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cl_addressing_mode addressModes_ro[] = { /* CL_ADDRESS_CLAMP_NONE,*/ CL_ADDRESS_CLAMP_TO_EDGE, CL_ADDRESS_CLAMP, CL_ADDRESS_REPEAT, CL_ADDRESS_MIRRORED_REPEAT, (cl_addressing_mode)-1 };
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// The sampler-less read image functions behave exactly as the corresponding
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// read image functions described in section 6.13.14.2 that take integer
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// coordinates and a sampler with filter mode set to CLK_FILTER_NEAREST,
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// normalized coordinates set to CLK_NORMALIZED_COORDS_FALSE and addressing
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// mode to CLK_ADDRESS_NONE
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cl_addressing_mode addressModes_rw[] = { CL_ADDRESS_NONE,
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(cl_addressing_mode)-1 };
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cl_addressing_mode addressModes_ro[] = {
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/* CL_ADDRESS_CLAMP_NONE,*/ CL_ADDRESS_CLAMP_TO_EDGE, CL_ADDRESS_CLAMP,
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CL_ADDRESS_REPEAT, CL_ADDRESS_MIRRORED_REPEAT, (cl_addressing_mode)-1
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};
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if(gtestTypesToRun & kReadWriteTests)
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if (gtestTypesToRun & kReadWriteTests)
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{
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addressModes = addressModes_rw;
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}
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@@ -61,39 +86,45 @@ int test_read_image_type( cl_device_id device, cl_context context, cl_command_qu
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addressModes = addressModes_ro;
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}
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#if defined( __APPLE__ )
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#if defined(__APPLE__)
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// According to the OpenCL specification, we do not guarantee the precision
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// of operations for linear filtering on the GPU. We do not test linear
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// filtering for the CL_RGB CL_UNORM_INT_101010 image format; however, we
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// test it internally for a set of other image formats.
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if ((gDeviceType == CL_DEVICE_TYPE_GPU) &&
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(imageSampler->filter_mode == CL_FILTER_LINEAR) &&
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(format->image_channel_order == CL_RGB) &&
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(format->image_channel_data_type == CL_UNORM_INT_101010))
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if ((gDeviceType == CL_DEVICE_TYPE_GPU)
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&& (imageSampler->filter_mode == CL_FILTER_LINEAR)
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&& (format->image_channel_order == CL_RGB)
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&& (format->image_channel_data_type == CL_UNORM_INT_101010))
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{
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log_info("--- Skipping CL_RGB CL_UNORM_INT_101010 format with CL_FILTER_LINEAR on GPU.\n");
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log_info("--- Skipping CL_RGB CL_UNORM_INT_101010 format with "
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"CL_FILTER_LINEAR on GPU.\n");
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return 0;
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}
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#endif
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for( int adMode = 0; addressModes[ adMode ] != (cl_addressing_mode)-1; adMode++ )
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for (int adMode = 0; addressModes[adMode] != (cl_addressing_mode)-1;
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adMode++)
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{
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imageSampler->addressing_mode = addressModes[ adMode ];
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imageSampler->addressing_mode = addressModes[adMode];
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if( (addressModes[ adMode ] == CL_ADDRESS_REPEAT || addressModes[ adMode ] == CL_ADDRESS_MIRRORED_REPEAT) && !( imageSampler->normalized_coords ) )
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if ((addressModes[adMode] == CL_ADDRESS_REPEAT
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|| addressModes[adMode] == CL_ADDRESS_MIRRORED_REPEAT)
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&& !(imageSampler->normalized_coords))
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continue; // Repeat doesn't make sense for non-normalized coords
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// Use this run if we were told to only run a certain filter mode
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if( gAddressModeToUse != (cl_addressing_mode)-1 && imageSampler->addressing_mode != gAddressModeToUse )
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if (gAddressModeToUse != (cl_addressing_mode)-1
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&& imageSampler->addressing_mode != gAddressModeToUse)
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continue;
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/*
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Remove redundant check to see if workaround still necessary
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// Check added in because this case was leaking through causing a crash on CPU
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if( ! imageSampler->normalized_coords && imageSampler->addressing_mode == CL_ADDRESS_REPEAT )
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continue; //repeat mode requires normalized coordinates
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// Check added in because this case was leaking through causing a crash
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on CPU if( ! imageSampler->normalized_coords &&
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imageSampler->addressing_mode == CL_ADDRESS_REPEAT ) continue; //repeat
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mode requires normalized coordinates
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*/
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print_read_header( format, imageSampler, false );
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print_read_header(format, imageSampler, false);
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gTestCount++;
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@@ -101,27 +132,37 @@ int test_read_image_type( cl_device_id device, cl_context context, cl_command_qu
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switch (imageType)
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{
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case CL_MEM_OBJECT_IMAGE1D:
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retCode = test_read_image_set_1D( device, context, queue, format, imageSampler, floatCoords, outputType );
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retCode = test_read_image_set_1D(device, context, queue, format,
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imageSampler, floatCoords,
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outputType);
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break;
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case CL_MEM_OBJECT_IMAGE1D_ARRAY:
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retCode = test_read_image_set_1D_array( device, context, queue, format, imageSampler, floatCoords, outputType );
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retCode = test_read_image_set_1D_array(device, context, queue,
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format, imageSampler,
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floatCoords, outputType);
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break;
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case CL_MEM_OBJECT_IMAGE2D:
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retCode = test_read_image_set_2D( device, context, queue, format, imageSampler, floatCoords, outputType );
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retCode = test_read_image_set_2D(device, context, queue, format,
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imageSampler, floatCoords,
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outputType);
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break;
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case CL_MEM_OBJECT_IMAGE2D_ARRAY:
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retCode = test_read_image_set_2D_array( device, context, queue, format, imageSampler, floatCoords, outputType );
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retCode = test_read_image_set_2D_array(device, context, queue,
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format, imageSampler,
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floatCoords, outputType);
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break;
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case CL_MEM_OBJECT_IMAGE3D:
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retCode = test_read_image_set_3D( device, context, queue, format, imageSampler, floatCoords, outputType );
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retCode = test_read_image_set_3D(device, context, queue, format,
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imageSampler, floatCoords,
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outputType);
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break;
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}
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if( retCode != 0 )
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if (retCode != 0)
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{
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gFailCount++;
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log_error( "FAILED: " );
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print_read_header( format, imageSampler, true );
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log_info( "\n" );
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log_error("FAILED: ");
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print_read_header(format, imageSampler, true);
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log_info("\n");
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}
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ret |= retCode;
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}
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@@ -129,8 +170,12 @@ int test_read_image_type( cl_device_id device, cl_context context, cl_command_qu
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return ret;
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}
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int test_read_image_formats( cl_device_id device, cl_context context, cl_command_queue queue, cl_image_format *formatList, bool *filterFlags, unsigned int numFormats,
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image_sampler_data *imageSampler, ExplicitType outputType, cl_mem_object_type imageType )
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int test_read_image_formats(cl_device_id device, cl_context context,
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cl_command_queue queue, cl_image_format *formatList,
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bool *filterFlags, unsigned int numFormats,
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image_sampler_data *imageSampler,
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ExplicitType outputType,
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cl_mem_object_type imageType)
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{
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int ret = 0;
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bool flipFlop[2] = { false, true };
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@@ -138,41 +183,52 @@ int test_read_image_formats( cl_device_id device, cl_context context, cl_command
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// Use this run if we were told to only run a certain filter mode
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if( gFilterModeToUse != (cl_filter_mode)-1 && imageSampler->filter_mode != gFilterModeToUse )
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if (gFilterModeToUse != (cl_filter_mode)-1
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&& imageSampler->filter_mode != gFilterModeToUse)
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return 0;
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// Test normalized/non-normalized
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for( normalizedIdx = 0; normalizedIdx < 2; normalizedIdx++ )
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for (normalizedIdx = 0; normalizedIdx < 2; normalizedIdx++)
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{
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imageSampler->normalized_coords = flipFlop[ normalizedIdx ];
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if( gNormalizedModeToUse != 7 && gNormalizedModeToUse != (int)imageSampler->normalized_coords )
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imageSampler->normalized_coords = flipFlop[normalizedIdx];
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if (gNormalizedModeToUse != 7
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&& gNormalizedModeToUse != (int)imageSampler->normalized_coords)
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continue;
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for( floatCoordIdx = 0; floatCoordIdx < 2; floatCoordIdx++ )
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for (floatCoordIdx = 0; floatCoordIdx < 2; floatCoordIdx++)
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{
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// Checks added in because this case was leaking through causing a crash on CPU
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if( !flipFlop[ floatCoordIdx ] )
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if( imageSampler->filter_mode != CL_FILTER_NEAREST || // integer coords can only be used with nearest
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flipFlop[ normalizedIdx ]) // Normalized integer coords makes no sense (they'd all be zero)
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// Checks added in because this case was leaking through causing a
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// crash on CPU
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if (!flipFlop[floatCoordIdx])
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if (imageSampler->filter_mode != CL_FILTER_NEAREST
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|| // integer coords can only be used with nearest
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flipFlop[normalizedIdx]) // Normalized integer coords makes
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// no sense (they'd all be zero)
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continue;
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if( flipFlop[ floatCoordIdx ] && (gtestTypesToRun & kReadWriteTests))
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if (flipFlop[floatCoordIdx] && (gtestTypesToRun & kReadWriteTests))
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// sampler-less read in read_write tests run only integer coord
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continue;
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log_info( "read_image (%s coords, %s results) *****************************\n",
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flipFlop[ floatCoordIdx ] ? ( imageSampler->normalized_coords ? "normalized float" : "unnormalized float" ) : "integer",
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get_explicit_type_name( outputType ) );
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log_info("read_image (%s coords, %s results) "
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"*****************************\n",
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flipFlop[floatCoordIdx] ? (imageSampler->normalized_coords
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? "normalized float"
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: "unnormalized float")
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: "integer",
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get_explicit_type_name(outputType));
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for( unsigned int i = 0; i < numFormats; i++ )
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for (unsigned int i = 0; i < numFormats; i++)
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{
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if( filterFlags[i] )
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continue;
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if (filterFlags[i]) continue;
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cl_image_format &imageFormat = formatList[ i ];
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cl_image_format &imageFormat = formatList[i];
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ret |= test_read_image_type( device, context, queue, &imageFormat, flipFlop[ floatCoordIdx ], imageSampler, outputType, imageType );
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ret |=
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test_read_image_type(device, context, queue, &imageFormat,
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flipFlop[floatCoordIdx], imageSampler,
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outputType, imageType);
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}
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}
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}
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@@ -180,50 +236,65 @@ int test_read_image_formats( cl_device_id device, cl_context context, cl_command
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}
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int test_image_set( cl_device_id device, cl_context context, cl_command_queue queue, test_format_set_fn formatTestFn, cl_mem_object_type imageType )
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int test_image_set(cl_device_id device, cl_context context,
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cl_command_queue queue, test_format_set_fn formatTestFn,
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cl_mem_object_type imageType)
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{
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int ret = 0;
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static int printedFormatList = -1;
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if ( ( 0 == is_extension_available( device, "cl_khr_3d_image_writes" )) && (imageType == CL_MEM_OBJECT_IMAGE3D) && (formatTestFn == test_write_image_formats) )
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if ((imageType == CL_MEM_OBJECT_IMAGE3D)
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&& (formatTestFn == test_write_image_formats))
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{
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gFailCount++;
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log_error( "-----------------------------------------------------\n" );
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log_error( "FAILED: test writing CL_MEM_OBJECT_IMAGE3D images\n" );
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log_error( "This device does not support the mandated extension cl_khr_3d_image_writes.\n");
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log_error( "-----------------------------------------------------\n\n" );
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return -1;
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}
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if ( gTestMipmaps )
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{
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if ( 0 == is_extension_available( device, "cl_khr_mipmap_image" ))
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if (0 == is_extension_available(device, "cl_khr_3d_image_writes"))
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{
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log_info( "-----------------------------------------------------\n" );
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log_info( "This device does not support cl_khr_mipmap_image.\nSkipping mipmapped image test. \n" );
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log_info( "-----------------------------------------------------\n\n" );
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return 0;
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}
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if ( ( 0 == is_extension_available( device, "cl_khr_mipmap_image_writes" )) && (formatTestFn == test_write_image_formats))
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{
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log_info( "-----------------------------------------------------\n" );
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log_info( "This device does not support cl_khr_mipmap_image_writes.\nSkipping mipmapped image write test. \n" );
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log_info( "-----------------------------------------------------\n\n" );
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log_info("-----------------------------------------------------\n");
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log_info(
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"This device does not support "
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"cl_khr_3d_image_writes.\nSkipping 3d image write test. \n");
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log_info(
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"-----------------------------------------------------\n\n");
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return 0;
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}
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}
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int version_check = (get_device_cl_version(device) < Version(1,2));
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if (version_check != 0) {
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switch (imageType) {
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case CL_MEM_OBJECT_IMAGE1D:
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test_missing_feature(version_check, "image_1D");
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case CL_MEM_OBJECT_IMAGE1D_ARRAY:
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test_missing_feature(version_check, "image_1D_array");
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case CL_MEM_OBJECT_IMAGE2D_ARRAY:
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test_missing_feature(version_check, "image_2D_array");
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}
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if (gTestMipmaps)
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{
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if (0 == is_extension_available(device, "cl_khr_mipmap_image"))
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{
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log_info("-----------------------------------------------------\n");
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log_info("This device does not support "
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"cl_khr_mipmap_image.\nSkipping mipmapped image test. \n");
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log_info(
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"-----------------------------------------------------\n\n");
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return 0;
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}
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if ((0 == is_extension_available(device, "cl_khr_mipmap_image_writes"))
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&& (formatTestFn == test_write_image_formats))
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{
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log_info("-----------------------------------------------------\n");
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log_info("This device does not support "
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"cl_khr_mipmap_image_writes.\nSkipping mipmapped image "
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"write test. \n");
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log_info(
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"-----------------------------------------------------\n\n");
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return 0;
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}
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}
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int version_check = (get_device_cl_version(device) < Version(1, 2));
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if (version_check != 0)
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{
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switch (imageType)
|
||||
{
|
||||
case CL_MEM_OBJECT_IMAGE1D:
|
||||
test_missing_feature(version_check, "image_1D");
|
||||
case CL_MEM_OBJECT_IMAGE1D_ARRAY:
|
||||
test_missing_feature(version_check, "image_1D_array");
|
||||
case CL_MEM_OBJECT_IMAGE2D_ARRAY:
|
||||
test_missing_feature(version_check, "image_2D_array");
|
||||
}
|
||||
}
|
||||
|
||||
// Grab the list of supported image formats for integer reads
|
||||
@@ -235,9 +306,9 @@ int test_image_set( cl_device_id device, cl_context context, cl_command_queue qu
|
||||
// The flag for creating image will be set explicitly in test functions
|
||||
cl_mem_flags flags;
|
||||
const char *flagNames;
|
||||
if( formatTestFn == test_read_image_formats )
|
||||
if (formatTestFn == test_read_image_formats)
|
||||
{
|
||||
if(gtestTypesToRun & kReadTests)
|
||||
if (gtestTypesToRun & kReadTests)
|
||||
{
|
||||
flags = CL_MEM_READ_ONLY;
|
||||
flagNames = "read";
|
||||
@@ -250,7 +321,7 @@ int test_image_set( cl_device_id device, cl_context context, cl_command_queue qu
|
||||
}
|
||||
else
|
||||
{
|
||||
if(gtestTypesToRun & kWriteTests)
|
||||
if (gtestTypesToRun & kWriteTests)
|
||||
{
|
||||
flags = CL_MEM_WRITE_ONLY;
|
||||
flagNames = "write";
|
||||
@@ -262,33 +333,40 @@ int test_image_set( cl_device_id device, cl_context context, cl_command_queue qu
|
||||
}
|
||||
}
|
||||
|
||||
if( get_format_list( context, imageType, formatList, numFormats, flags ) )
|
||||
if (get_format_list(context, imageType, formatList, numFormats, flags))
|
||||
return -1;
|
||||
BufferOwningPtr<cl_image_format> formatListBuf(formatList);
|
||||
|
||||
|
||||
filterFlags = new bool[ numFormats ];
|
||||
if( filterFlags == NULL )
|
||||
filterFlags = new bool[numFormats];
|
||||
if (filterFlags == NULL)
|
||||
{
|
||||
log_error( "ERROR: Out of memory allocating filter flags list!\n" );
|
||||
log_error("ERROR: Out of memory allocating filter flags list!\n");
|
||||
return -1;
|
||||
}
|
||||
BufferOwningPtr<bool> filterFlagsBuf(filterFlags);
|
||||
memset( filterFlags, 0, sizeof( bool ) * numFormats );
|
||||
memset(filterFlags, 0, sizeof(bool) * numFormats);
|
||||
|
||||
// First time through, we'll go ahead and print the formats supported, regardless of type
|
||||
int test = imageType | (formatTestFn == test_read_image_formats ? (1 << 16) : (1 << 17));
|
||||
if( printedFormatList != test )
|
||||
// First time through, we'll go ahead and print the formats supported,
|
||||
// regardless of type
|
||||
int test = imageType
|
||||
| (formatTestFn == test_read_image_formats ? (1 << 16) : (1 << 17));
|
||||
if (printedFormatList != test)
|
||||
{
|
||||
log_info( "---- Supported %s %s formats for this device ---- \n", convert_image_type_to_string(imageType), flagNames );
|
||||
for( unsigned int f = 0; f < numFormats; f++ )
|
||||
log_info("---- Supported %s %s formats for this device ---- \n",
|
||||
convert_image_type_to_string(imageType), flagNames);
|
||||
for (unsigned int f = 0; f < numFormats; f++)
|
||||
{
|
||||
if ( IsChannelOrderSupported( formatList[ f ].image_channel_order ) && IsChannelTypeSupported( formatList[ f ].image_channel_data_type ) )
|
||||
log_info( " %-7s %-24s %d\n", GetChannelOrderName( formatList[ f ].image_channel_order ),
|
||||
GetChannelTypeName( formatList[ f ].image_channel_data_type ),
|
||||
(int)get_format_channel_count( &formatList[ f ] ) );
|
||||
if (IsChannelOrderSupported(formatList[f].image_channel_order)
|
||||
&& IsChannelTypeSupported(
|
||||
formatList[f].image_channel_data_type))
|
||||
log_info(
|
||||
" %-7s %-24s %d\n",
|
||||
GetChannelOrderName(formatList[f].image_channel_order),
|
||||
GetChannelTypeName(formatList[f].image_channel_data_type),
|
||||
(int)get_format_channel_count(&formatList[f]));
|
||||
}
|
||||
log_info( "------------------------------------------- \n" );
|
||||
log_info("------------------------------------------- \n");
|
||||
printedFormatList = test;
|
||||
}
|
||||
|
||||
|
||||
Reference in New Issue
Block a user