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/*M///////////////////////////////////////////////////////////////////////////////////////
//
//  IMPORTANT: READ BEFORE DOWNLOADING, COPYING, INSTALLING OR USING.
//
//  By downloading, copying, installing or using the software you agree to this license.
//  If you do not agree to this license, do not download, install,
//  copy or use the software.
//
//
//                           License Agreement
//                For Open Source Computer Vision Library
//
// Copyright (C) 2013, OpenCV Foundation, all rights reserved.
// Third party copyrights are property of their respective owners.
//
// Redistribution and use in source and binary forms, with or without modification,
// are permitted provided that the following conditions are met:
//
//   * Redistribution's of source code must retain the above copyright notice,
//     this list of conditions and the following disclaimer.
//
//   * Redistribution's in binary form must reproduce the above copyright notice,
//     this list of conditions and the following disclaimer in the documentation
//     and/or other materials provided with the distribution.
//
//   * The name of the copyright holders may not be used to endorse or promote products
//     derived from this software without specific prior written permission.
//
// This software is provided by the copyright holders and contributors "as is" and
// any express or implied warranties, including, but not limited to, the implied
// warranties of merchantability and fitness for a particular purpose are disclaimed.
// In no event shall the OpenCV Foundation or contributors be liable for any direct,
// indirect, incidental, special, exemplary, or consequential damages
// (including, but not limited to, procurement of substitute goods or services;
// loss of use, data, or profits; or business interruption) however caused
// and on any theory of liability, whether in contract, strict liability,
// or tort (including negligence or otherwise) arising in any way out of
// the use of this software, even if advised of the possibility of such damage.
//
//M*/

#include "precomp.hpp"
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#include <list>
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#include <map>
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#include <string>
#include <sstream>
#include <iostream> // std::cerr
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#define CV_OPENCL_ALWAYS_SHOW_BUILD_LOG 0

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#include "opencv2/core/bufferpool.hpp"
#ifndef LOG_BUFFER_POOL
# if 0
#   define LOG_BUFFER_POOL printf
# else
#   define LOG_BUFFER_POOL(...)
# endif
#endif

// TODO Move to some common place
static size_t getConfigurationParameterForSize(const char* name, size_t defaultValue)
{
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#ifdef HAVE_WINRT
    const char* envValue = NULL;
#else
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    const char* envValue = getenv(name);
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#endif
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    if (envValue == NULL)
    {
        return defaultValue;
    }
    cv::String value = envValue;
    size_t pos = 0;
    for (; pos < value.size(); pos++)
    {
        if (!isdigit(value[pos]))
            break;
    }
    cv::String valueStr = value.substr(0, pos);
    cv::String suffixStr = value.substr(pos, value.length() - pos);
    int v = atoi(valueStr.c_str());
    if (suffixStr.length() == 0)
        return v;
    else if (suffixStr == "MB" || suffixStr == "Mb" || suffixStr == "mb")
        return v * 1024 * 1024;
    else if (suffixStr == "KB" || suffixStr == "Kb" || suffixStr == "kb")
        return v * 1024;
    CV_ErrorNoReturn(cv::Error::StsBadArg, cv::format("Invalid value for %s parameter: %s", name, value.c_str()));
}

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#include "opencv2/core/opencl/runtime/opencl_clamdblas.hpp"
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#include "opencv2/core/opencl/runtime/opencl_clamdfft.hpp"
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#ifdef HAVE_OPENCL
#include "opencv2/core/opencl/runtime/opencl_core.hpp"
#else
// TODO FIXIT: This file can't be build without OPENCL

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/*
  Part of the file is an extract from the standard OpenCL headers from Khronos site.
  Below is the original copyright.
*/

/*******************************************************************************
 * Copyright (c) 2008 - 2012 The Khronos Group Inc.
 *
 * Permission is hereby granted, free of charge, to any person obtaining a
 * copy of this software and/or associated documentation files (the
 * "Materials"), to deal in the Materials without restriction, including
 * without limitation the rights to use, copy, modify, merge, publish,
 * distribute, sublicense, and/or sell copies of the Materials, and to
 * permit persons to whom the Materials are furnished to do so, subject to
 * the following conditions:
 *
 * The above copyright notice and this permission notice shall be included
 * in all copies or substantial portions of the Materials.
 *
 * THE MATERIALS ARE PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND,
 * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF
 * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT.
 * IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY
 * CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN ACTION OF CONTRACT,
 * TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN CONNECTION WITH THE
 * MATERIALS OR THE USE OR OTHER DEALINGS IN THE MATERIALS.
 ******************************************************************************/

#if 0 //defined __APPLE__
#define HAVE_OPENCL 1
#else
#undef HAVE_OPENCL
#endif

#define OPENCV_CL_NOT_IMPLEMENTED -1000

#ifdef HAVE_OPENCL

#if defined __APPLE__
#include <OpenCL/opencl.h>
#else
#include <CL/opencl.h>
#endif

static const bool g_haveOpenCL = true;

#else

extern "C" {

struct _cl_platform_id { int dummy; };
struct _cl_device_id { int dummy; };
struct _cl_context { int dummy; };
struct _cl_command_queue { int dummy; };
struct _cl_mem { int dummy; };
struct _cl_program { int dummy; };
struct _cl_kernel { int dummy; };
struct _cl_event { int dummy; };
struct _cl_sampler { int dummy; };

typedef struct _cl_platform_id *    cl_platform_id;
typedef struct _cl_device_id *      cl_device_id;
typedef struct _cl_context *        cl_context;
typedef struct _cl_command_queue *  cl_command_queue;
typedef struct _cl_mem *            cl_mem;
typedef struct _cl_program *        cl_program;
typedef struct _cl_kernel *         cl_kernel;
typedef struct _cl_event *          cl_event;
typedef struct _cl_sampler *        cl_sampler;

typedef int cl_int;
typedef unsigned cl_uint;
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#if defined (_WIN32) && defined(_MSC_VER)
    typedef __int64 cl_long;
    typedef unsigned __int64 cl_ulong;
#else
    typedef long cl_long;
    typedef unsigned long cl_ulong;
#endif
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typedef cl_uint             cl_bool; /* WARNING!  Unlike cl_ types in cl_platform.h, cl_bool is not guaranteed to be the same size as the bool in kernels. */
typedef cl_ulong            cl_bitfield;
typedef cl_bitfield         cl_device_type;
typedef cl_uint             cl_platform_info;
typedef cl_uint             cl_device_info;
typedef cl_bitfield         cl_device_fp_config;
typedef cl_uint             cl_device_mem_cache_type;
typedef cl_uint             cl_device_local_mem_type;
typedef cl_bitfield         cl_device_exec_capabilities;
typedef cl_bitfield         cl_command_queue_properties;
typedef intptr_t            cl_device_partition_property;
typedef cl_bitfield         cl_device_affinity_domain;

typedef intptr_t            cl_context_properties;
typedef cl_uint             cl_context_info;
typedef cl_uint             cl_command_queue_info;
typedef cl_uint             cl_channel_order;
typedef cl_uint             cl_channel_type;
typedef cl_bitfield         cl_mem_flags;
typedef cl_uint             cl_mem_object_type;
typedef cl_uint             cl_mem_info;
typedef cl_bitfield         cl_mem_migration_flags;
typedef cl_uint             cl_image_info;
typedef cl_uint             cl_buffer_create_type;
typedef cl_uint             cl_addressing_mode;
typedef cl_uint             cl_filter_mode;
typedef cl_uint             cl_sampler_info;
typedef cl_bitfield         cl_map_flags;
typedef cl_uint             cl_program_info;
typedef cl_uint             cl_program_build_info;
typedef cl_uint             cl_program_binary_type;
typedef cl_int              cl_build_status;
typedef cl_uint             cl_kernel_info;
typedef cl_uint             cl_kernel_arg_info;
typedef cl_uint             cl_kernel_arg_address_qualifier;
typedef cl_uint             cl_kernel_arg_access_qualifier;
typedef cl_bitfield         cl_kernel_arg_type_qualifier;
typedef cl_uint             cl_kernel_work_group_info;
typedef cl_uint             cl_event_info;
typedef cl_uint             cl_command_type;
typedef cl_uint             cl_profiling_info;


typedef struct _cl_image_format {
    cl_channel_order        image_channel_order;
    cl_channel_type         image_channel_data_type;
} cl_image_format;

typedef struct _cl_image_desc {
    cl_mem_object_type      image_type;
    size_t                  image_width;
    size_t                  image_height;
    size_t                  image_depth;
    size_t                  image_array_size;
    size_t                  image_row_pitch;
    size_t                  image_slice_pitch;
    cl_uint                 num_mip_levels;
    cl_uint                 num_samples;
    cl_mem                  buffer;
} cl_image_desc;

typedef struct _cl_buffer_region {
    size_t                  origin;
    size_t                  size;
} cl_buffer_region;


//////////////////////////////////////////////////////////

#define CL_SUCCESS                                  0
#define CL_DEVICE_NOT_FOUND                         -1
#define CL_DEVICE_NOT_AVAILABLE                     -2
#define CL_COMPILER_NOT_AVAILABLE                   -3
#define CL_MEM_OBJECT_ALLOCATION_FAILURE            -4
#define CL_OUT_OF_RESOURCES                         -5
#define CL_OUT_OF_HOST_MEMORY                       -6
#define CL_PROFILING_INFO_NOT_AVAILABLE             -7
#define CL_MEM_COPY_OVERLAP                         -8
#define CL_IMAGE_FORMAT_MISMATCH                    -9
#define CL_IMAGE_FORMAT_NOT_SUPPORTED               -10
#define CL_BUILD_PROGRAM_FAILURE                    -11
#define CL_MAP_FAILURE                              -12
#define CL_MISALIGNED_SUB_BUFFER_OFFSET             -13
#define CL_EXEC_STATUS_ERROR_FOR_EVENTS_IN_WAIT_LIST -14
#define CL_COMPILE_PROGRAM_FAILURE                  -15
#define CL_LINKER_NOT_AVAILABLE                     -16
#define CL_LINK_PROGRAM_FAILURE                     -17
#define CL_DEVICE_PARTITION_FAILED                  -18
#define CL_KERNEL_ARG_INFO_NOT_AVAILABLE            -19

#define CL_INVALID_VALUE                            -30
#define CL_INVALID_DEVICE_TYPE                      -31
#define CL_INVALID_PLATFORM                         -32
#define CL_INVALID_DEVICE                           -33
#define CL_INVALID_CONTEXT                          -34
#define CL_INVALID_QUEUE_PROPERTIES                 -35
#define CL_INVALID_COMMAND_QUEUE                    -36
#define CL_INVALID_HOST_PTR                         -37
#define CL_INVALID_MEM_OBJECT                       -38
#define CL_INVALID_IMAGE_FORMAT_DESCRIPTOR          -39
#define CL_INVALID_IMAGE_SIZE                       -40
#define CL_INVALID_SAMPLER                          -41
#define CL_INVALID_BINARY                           -42
#define CL_INVALID_BUILD_OPTIONS                    -43
#define CL_INVALID_PROGRAM                          -44
#define CL_INVALID_PROGRAM_EXECUTABLE               -45
#define CL_INVALID_KERNEL_NAME                      -46
#define CL_INVALID_KERNEL_DEFINITION                -47
#define CL_INVALID_KERNEL                           -48
#define CL_INVALID_ARG_INDEX                        -49
#define CL_INVALID_ARG_VALUE                        -50
#define CL_INVALID_ARG_SIZE                         -51
#define CL_INVALID_KERNEL_ARGS                      -52
#define CL_INVALID_WORK_DIMENSION                   -53
#define CL_INVALID_WORK_GROUP_SIZE                  -54
#define CL_INVALID_WORK_ITEM_SIZE                   -55
#define CL_INVALID_GLOBAL_OFFSET                    -56
#define CL_INVALID_EVENT_WAIT_LIST                  -57
#define CL_INVALID_EVENT                            -58
#define CL_INVALID_OPERATION                        -59
#define CL_INVALID_GL_OBJECT                        -60
#define CL_INVALID_BUFFER_SIZE                      -61
#define CL_INVALID_MIP_LEVEL                        -62
#define CL_INVALID_GLOBAL_WORK_SIZE                 -63
#define CL_INVALID_PROPERTY                         -64
#define CL_INVALID_IMAGE_DESCRIPTOR                 -65
#define CL_INVALID_COMPILER_OPTIONS                 -66
#define CL_INVALID_LINKER_OPTIONS                   -67
#define CL_INVALID_DEVICE_PARTITION_COUNT           -68

/*#define CL_VERSION_1_0                              1
#define CL_VERSION_1_1                              1
#define CL_VERSION_1_2                              1*/

#define CL_FALSE                                    0
#define CL_TRUE                                     1
#define CL_BLOCKING                                 CL_TRUE
#define CL_NON_BLOCKING                             CL_FALSE

#define CL_PLATFORM_PROFILE                         0x0900
#define CL_PLATFORM_VERSION                         0x0901
#define CL_PLATFORM_NAME                            0x0902
#define CL_PLATFORM_VENDOR                          0x0903
#define CL_PLATFORM_EXTENSIONS                      0x0904

#define CL_DEVICE_TYPE_DEFAULT                      (1 << 0)
#define CL_DEVICE_TYPE_CPU                          (1 << 1)
#define CL_DEVICE_TYPE_GPU                          (1 << 2)
#define CL_DEVICE_TYPE_ACCELERATOR                  (1 << 3)
#define CL_DEVICE_TYPE_CUSTOM                       (1 << 4)
#define CL_DEVICE_TYPE_ALL                          0xFFFFFFFF
#define CL_DEVICE_TYPE                              0x1000
#define CL_DEVICE_VENDOR_ID                         0x1001
#define CL_DEVICE_MAX_COMPUTE_UNITS                 0x1002
#define CL_DEVICE_MAX_WORK_ITEM_DIMENSIONS          0x1003
#define CL_DEVICE_MAX_WORK_GROUP_SIZE               0x1004
#define CL_DEVICE_MAX_WORK_ITEM_SIZES               0x1005
#define CL_DEVICE_PREFERRED_VECTOR_WIDTH_CHAR       0x1006
#define CL_DEVICE_PREFERRED_VECTOR_WIDTH_SHORT      0x1007
#define CL_DEVICE_PREFERRED_VECTOR_WIDTH_INT        0x1008
#define CL_DEVICE_PREFERRED_VECTOR_WIDTH_LONG       0x1009
#define CL_DEVICE_PREFERRED_VECTOR_WIDTH_FLOAT      0x100A
#define CL_DEVICE_PREFERRED_VECTOR_WIDTH_DOUBLE     0x100B
#define CL_DEVICE_MAX_CLOCK_FREQUENCY               0x100C
#define CL_DEVICE_ADDRESS_BITS                      0x100D
#define CL_DEVICE_MAX_READ_IMAGE_ARGS               0x100E
#define CL_DEVICE_MAX_WRITE_IMAGE_ARGS              0x100F
#define CL_DEVICE_MAX_MEM_ALLOC_SIZE                0x1010
#define CL_DEVICE_IMAGE2D_MAX_WIDTH                 0x1011
#define CL_DEVICE_IMAGE2D_MAX_HEIGHT                0x1012
#define CL_DEVICE_IMAGE3D_MAX_WIDTH                 0x1013
#define CL_DEVICE_IMAGE3D_MAX_HEIGHT                0x1014
#define CL_DEVICE_IMAGE3D_MAX_DEPTH                 0x1015
#define CL_DEVICE_IMAGE_SUPPORT                     0x1016
#define CL_DEVICE_MAX_PARAMETER_SIZE                0x1017
#define CL_DEVICE_MAX_SAMPLERS                      0x1018
#define CL_DEVICE_MEM_BASE_ADDR_ALIGN               0x1019
#define CL_DEVICE_MIN_DATA_TYPE_ALIGN_SIZE          0x101A
#define CL_DEVICE_SINGLE_FP_CONFIG                  0x101B
#define CL_DEVICE_GLOBAL_MEM_CACHE_TYPE             0x101C
#define CL_DEVICE_GLOBAL_MEM_CACHELINE_SIZE         0x101D
#define CL_DEVICE_GLOBAL_MEM_CACHE_SIZE             0x101E
#define CL_DEVICE_GLOBAL_MEM_SIZE                   0x101F
#define CL_DEVICE_MAX_CONSTANT_BUFFER_SIZE          0x1020
#define CL_DEVICE_MAX_CONSTANT_ARGS                 0x1021
#define CL_DEVICE_LOCAL_MEM_TYPE                    0x1022
#define CL_DEVICE_LOCAL_MEM_SIZE                    0x1023
#define CL_DEVICE_ERROR_CORRECTION_SUPPORT          0x1024
#define CL_DEVICE_PROFILING_TIMER_RESOLUTION        0x1025
#define CL_DEVICE_ENDIAN_LITTLE                     0x1026
#define CL_DEVICE_AVAILABLE                         0x1027
#define CL_DEVICE_COMPILER_AVAILABLE                0x1028
#define CL_DEVICE_EXECUTION_CAPABILITIES            0x1029
#define CL_DEVICE_QUEUE_PROPERTIES                  0x102A
#define CL_DEVICE_NAME                              0x102B
#define CL_DEVICE_VENDOR                            0x102C
#define CL_DRIVER_VERSION                           0x102D
#define CL_DEVICE_PROFILE                           0x102E
#define CL_DEVICE_VERSION                           0x102F
#define CL_DEVICE_EXTENSIONS                        0x1030
#define CL_DEVICE_PLATFORM                          0x1031
#define CL_DEVICE_DOUBLE_FP_CONFIG                  0x1032
#define CL_DEVICE_HALF_FP_CONFIG                    0x1033
#define CL_DEVICE_PREFERRED_VECTOR_WIDTH_HALF       0x1034
#define CL_DEVICE_HOST_UNIFIED_MEMORY               0x1035
#define CL_DEVICE_NATIVE_VECTOR_WIDTH_CHAR          0x1036
#define CL_DEVICE_NATIVE_VECTOR_WIDTH_SHORT         0x1037
#define CL_DEVICE_NATIVE_VECTOR_WIDTH_INT           0x1038
#define CL_DEVICE_NATIVE_VECTOR_WIDTH_LONG          0x1039
#define CL_DEVICE_NATIVE_VECTOR_WIDTH_FLOAT         0x103A
#define CL_DEVICE_NATIVE_VECTOR_WIDTH_DOUBLE        0x103B
#define CL_DEVICE_NATIVE_VECTOR_WIDTH_HALF          0x103C
#define CL_DEVICE_OPENCL_C_VERSION                  0x103D
#define CL_DEVICE_LINKER_AVAILABLE                  0x103E
#define CL_DEVICE_BUILT_IN_KERNELS                  0x103F
#define CL_DEVICE_IMAGE_MAX_BUFFER_SIZE             0x1040
#define CL_DEVICE_IMAGE_MAX_ARRAY_SIZE              0x1041
#define CL_DEVICE_PARENT_DEVICE                     0x1042
#define CL_DEVICE_PARTITION_MAX_SUB_DEVICES         0x1043
#define CL_DEVICE_PARTITION_PROPERTIES              0x1044
#define CL_DEVICE_PARTITION_AFFINITY_DOMAIN         0x1045
#define CL_DEVICE_PARTITION_TYPE                    0x1046
#define CL_DEVICE_REFERENCE_COUNT                   0x1047
#define CL_DEVICE_PREFERRED_INTEROP_USER_SYNC       0x1048
#define CL_DEVICE_PRINTF_BUFFER_SIZE                0x1049
#define CL_DEVICE_IMAGE_PITCH_ALIGNMENT             0x104A
#define CL_DEVICE_IMAGE_BASE_ADDRESS_ALIGNMENT      0x104B

#define CL_FP_DENORM                                (1 << 0)
#define CL_FP_INF_NAN                               (1 << 1)
#define CL_FP_ROUND_TO_NEAREST                      (1 << 2)
#define CL_FP_ROUND_TO_ZERO                         (1 << 3)
#define CL_FP_ROUND_TO_INF                          (1 << 4)
#define CL_FP_FMA                                   (1 << 5)
#define CL_FP_SOFT_FLOAT                            (1 << 6)
#define CL_FP_CORRECTLY_ROUNDED_DIVIDE_SQRT         (1 << 7)

#define CL_NONE                                     0x0
#define CL_READ_ONLY_CACHE                          0x1
#define CL_READ_WRITE_CACHE                         0x2
#define CL_LOCAL                                    0x1
#define CL_GLOBAL                                   0x2
#define CL_EXEC_KERNEL                              (1 << 0)
#define CL_EXEC_NATIVE_KERNEL                       (1 << 1)
#define CL_QUEUE_OUT_OF_ORDER_EXEC_MODE_ENABLE      (1 << 0)
#define CL_QUEUE_PROFILING_ENABLE                   (1 << 1)

#define CL_CONTEXT_REFERENCE_COUNT                  0x1080
#define CL_CONTEXT_DEVICES                          0x1081
#define CL_CONTEXT_PROPERTIES                       0x1082
#define CL_CONTEXT_NUM_DEVICES                      0x1083
#define CL_CONTEXT_PLATFORM                         0x1084
#define CL_CONTEXT_INTEROP_USER_SYNC                0x1085

#define CL_DEVICE_PARTITION_EQUALLY                 0x1086
#define CL_DEVICE_PARTITION_BY_COUNTS               0x1087
#define CL_DEVICE_PARTITION_BY_COUNTS_LIST_END      0x0
#define CL_DEVICE_PARTITION_BY_AFFINITY_DOMAIN      0x1088
#define CL_DEVICE_AFFINITY_DOMAIN_NUMA                     (1 << 0)
#define CL_DEVICE_AFFINITY_DOMAIN_L4_CACHE                 (1 << 1)
#define CL_DEVICE_AFFINITY_DOMAIN_L3_CACHE                 (1 << 2)
#define CL_DEVICE_AFFINITY_DOMAIN_L2_CACHE                 (1 << 3)
#define CL_DEVICE_AFFINITY_DOMAIN_L1_CACHE                 (1 << 4)
#define CL_DEVICE_AFFINITY_DOMAIN_NEXT_PARTITIONABLE       (1 << 5)
#define CL_QUEUE_CONTEXT                            0x1090
#define CL_QUEUE_DEVICE                             0x1091
#define CL_QUEUE_REFERENCE_COUNT                    0x1092
#define CL_QUEUE_PROPERTIES                         0x1093
#define CL_MEM_READ_WRITE                           (1 << 0)
#define CL_MEM_WRITE_ONLY                           (1 << 1)
#define CL_MEM_READ_ONLY                            (1 << 2)
#define CL_MEM_USE_HOST_PTR                         (1 << 3)
#define CL_MEM_ALLOC_HOST_PTR                       (1 << 4)
#define CL_MEM_COPY_HOST_PTR                        (1 << 5)
453
// reserved                                         (1 << 6)
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#define CL_MEM_HOST_WRITE_ONLY                      (1 << 7)
#define CL_MEM_HOST_READ_ONLY                       (1 << 8)
#define CL_MEM_HOST_NO_ACCESS                       (1 << 9)
#define CL_MIGRATE_MEM_OBJECT_HOST                  (1 << 0)
#define CL_MIGRATE_MEM_OBJECT_CONTENT_UNDEFINED     (1 << 1)

#define CL_R                                        0x10B0
#define CL_A                                        0x10B1
#define CL_RG                                       0x10B2
#define CL_RA                                       0x10B3
#define CL_RGB                                      0x10B4
#define CL_RGBA                                     0x10B5
#define CL_BGRA                                     0x10B6
#define CL_ARGB                                     0x10B7
#define CL_INTENSITY                                0x10B8
#define CL_LUMINANCE                                0x10B9
#define CL_Rx                                       0x10BA
#define CL_RGx                                      0x10BB
#define CL_RGBx                                     0x10BC
#define CL_DEPTH                                    0x10BD
#define CL_DEPTH_STENCIL                            0x10BE

#define CL_SNORM_INT8                               0x10D0
#define CL_SNORM_INT16                              0x10D1
#define CL_UNORM_INT8                               0x10D2
#define CL_UNORM_INT16                              0x10D3
#define CL_UNORM_SHORT_565                          0x10D4
#define CL_UNORM_SHORT_555                          0x10D5
#define CL_UNORM_INT_101010                         0x10D6
#define CL_SIGNED_INT8                              0x10D7
#define CL_SIGNED_INT16                             0x10D8
#define CL_SIGNED_INT32                             0x10D9
#define CL_UNSIGNED_INT8                            0x10DA
#define CL_UNSIGNED_INT16                           0x10DB
#define CL_UNSIGNED_INT32                           0x10DC
#define CL_HALF_FLOAT                               0x10DD
#define CL_FLOAT                                    0x10DE
#define CL_UNORM_INT24                              0x10DF

#define CL_MEM_OBJECT_BUFFER                        0x10F0
#define CL_MEM_OBJECT_IMAGE2D                       0x10F1
#define CL_MEM_OBJECT_IMAGE3D                       0x10F2
#define CL_MEM_OBJECT_IMAGE2D_ARRAY                 0x10F3
#define CL_MEM_OBJECT_IMAGE1D                       0x10F4
#define CL_MEM_OBJECT_IMAGE1D_ARRAY                 0x10F5
#define CL_MEM_OBJECT_IMAGE1D_BUFFER                0x10F6

#define CL_MEM_TYPE                                 0x1100
#define CL_MEM_FLAGS                                0x1101
#define CL_MEM_SIZE                                 0x1102
#define CL_MEM_HOST_PTR                             0x1103
#define CL_MEM_MAP_COUNT                            0x1104
#define CL_MEM_REFERENCE_COUNT                      0x1105
#define CL_MEM_CONTEXT                              0x1106
#define CL_MEM_ASSOCIATED_MEMOBJECT                 0x1107
#define CL_MEM_OFFSET                               0x1108

#define CL_IMAGE_FORMAT                             0x1110
#define CL_IMAGE_ELEMENT_SIZE                       0x1111
#define CL_IMAGE_ROW_PITCH                          0x1112
#define CL_IMAGE_SLICE_PITCH                        0x1113
#define CL_IMAGE_WIDTH                              0x1114
#define CL_IMAGE_HEIGHT                             0x1115
#define CL_IMAGE_DEPTH                              0x1116
#define CL_IMAGE_ARRAY_SIZE                         0x1117
#define CL_IMAGE_BUFFER                             0x1118
#define CL_IMAGE_NUM_MIP_LEVELS                     0x1119
#define CL_IMAGE_NUM_SAMPLES                        0x111A

#define CL_ADDRESS_NONE                             0x1130
#define CL_ADDRESS_CLAMP_TO_EDGE                    0x1131
#define CL_ADDRESS_CLAMP                            0x1132
#define CL_ADDRESS_REPEAT                           0x1133
#define CL_ADDRESS_MIRRORED_REPEAT                  0x1134

#define CL_FILTER_NEAREST                           0x1140
#define CL_FILTER_LINEAR                            0x1141

#define CL_SAMPLER_REFERENCE_COUNT                  0x1150
#define CL_SAMPLER_CONTEXT                          0x1151
#define CL_SAMPLER_NORMALIZED_COORDS                0x1152
#define CL_SAMPLER_ADDRESSING_MODE                  0x1153
#define CL_SAMPLER_FILTER_MODE                      0x1154

#define CL_MAP_READ                                 (1 << 0)
#define CL_MAP_WRITE                                (1 << 1)
#define CL_MAP_WRITE_INVALIDATE_REGION              (1 << 2)

#define CL_PROGRAM_REFERENCE_COUNT                  0x1160
#define CL_PROGRAM_CONTEXT                          0x1161
#define CL_PROGRAM_NUM_DEVICES                      0x1162
#define CL_PROGRAM_DEVICES                          0x1163
#define CL_PROGRAM_SOURCE                           0x1164
#define CL_PROGRAM_BINARY_SIZES                     0x1165
#define CL_PROGRAM_BINARIES                         0x1166
#define CL_PROGRAM_NUM_KERNELS                      0x1167
#define CL_PROGRAM_KERNEL_NAMES                     0x1168
#define CL_PROGRAM_BUILD_STATUS                     0x1181
#define CL_PROGRAM_BUILD_OPTIONS                    0x1182
#define CL_PROGRAM_BUILD_LOG                        0x1183
#define CL_PROGRAM_BINARY_TYPE                      0x1184
#define CL_PROGRAM_BINARY_TYPE_NONE                 0x0
#define CL_PROGRAM_BINARY_TYPE_COMPILED_OBJECT      0x1
#define CL_PROGRAM_BINARY_TYPE_LIBRARY              0x2
#define CL_PROGRAM_BINARY_TYPE_EXECUTABLE           0x4

#define CL_BUILD_SUCCESS                            0
#define CL_BUILD_NONE                               -1
#define CL_BUILD_ERROR                              -2
#define CL_BUILD_IN_PROGRESS                        -3

#define CL_KERNEL_FUNCTION_NAME                     0x1190
#define CL_KERNEL_NUM_ARGS                          0x1191
#define CL_KERNEL_REFERENCE_COUNT                   0x1192
#define CL_KERNEL_CONTEXT                           0x1193
#define CL_KERNEL_PROGRAM                           0x1194
#define CL_KERNEL_ATTRIBUTES                        0x1195
#define CL_KERNEL_ARG_ADDRESS_QUALIFIER             0x1196
#define CL_KERNEL_ARG_ACCESS_QUALIFIER              0x1197
#define CL_KERNEL_ARG_TYPE_NAME                     0x1198
#define CL_KERNEL_ARG_TYPE_QUALIFIER                0x1199
#define CL_KERNEL_ARG_NAME                          0x119A
#define CL_KERNEL_ARG_ADDRESS_GLOBAL                0x119B
#define CL_KERNEL_ARG_ADDRESS_LOCAL                 0x119C
#define CL_KERNEL_ARG_ADDRESS_CONSTANT              0x119D
#define CL_KERNEL_ARG_ADDRESS_PRIVATE               0x119E
#define CL_KERNEL_ARG_ACCESS_READ_ONLY              0x11A0
#define CL_KERNEL_ARG_ACCESS_WRITE_ONLY             0x11A1
#define CL_KERNEL_ARG_ACCESS_READ_WRITE             0x11A2
#define CL_KERNEL_ARG_ACCESS_NONE                   0x11A3
#define CL_KERNEL_ARG_TYPE_NONE                     0
#define CL_KERNEL_ARG_TYPE_CONST                    (1 << 0)
#define CL_KERNEL_ARG_TYPE_RESTRICT                 (1 << 1)
#define CL_KERNEL_ARG_TYPE_VOLATILE                 (1 << 2)
#define CL_KERNEL_WORK_GROUP_SIZE                   0x11B0
#define CL_KERNEL_COMPILE_WORK_GROUP_SIZE           0x11B1
#define CL_KERNEL_LOCAL_MEM_SIZE                    0x11B2
#define CL_KERNEL_PREFERRED_WORK_GROUP_SIZE_MULTIPLE 0x11B3
#define CL_KERNEL_PRIVATE_MEM_SIZE                  0x11B4
#define CL_KERNEL_GLOBAL_WORK_SIZE                  0x11B5

#define CL_EVENT_COMMAND_QUEUE                      0x11D0
#define CL_EVENT_COMMAND_TYPE                       0x11D1
#define CL_EVENT_REFERENCE_COUNT                    0x11D2
#define CL_EVENT_COMMAND_EXECUTION_STATUS           0x11D3
#define CL_EVENT_CONTEXT                            0x11D4

#define CL_COMMAND_NDRANGE_KERNEL                   0x11F0
#define CL_COMMAND_TASK                             0x11F1
#define CL_COMMAND_NATIVE_KERNEL                    0x11F2
#define CL_COMMAND_READ_BUFFER                      0x11F3
#define CL_COMMAND_WRITE_BUFFER                     0x11F4
#define CL_COMMAND_COPY_BUFFER                      0x11F5
#define CL_COMMAND_READ_IMAGE                       0x11F6
#define CL_COMMAND_WRITE_IMAGE                      0x11F7
#define CL_COMMAND_COPY_IMAGE                       0x11F8
#define CL_COMMAND_COPY_IMAGE_TO_BUFFER             0x11F9
#define CL_COMMAND_COPY_BUFFER_TO_IMAGE             0x11FA
#define CL_COMMAND_MAP_BUFFER                       0x11FB
#define CL_COMMAND_MAP_IMAGE                        0x11FC
#define CL_COMMAND_UNMAP_MEM_OBJECT                 0x11FD
#define CL_COMMAND_MARKER                           0x11FE
#define CL_COMMAND_ACQUIRE_GL_OBJECTS               0x11FF
#define CL_COMMAND_RELEASE_GL_OBJECTS               0x1200
#define CL_COMMAND_READ_BUFFER_RECT                 0x1201
#define CL_COMMAND_WRITE_BUFFER_RECT                0x1202
#define CL_COMMAND_COPY_BUFFER_RECT                 0x1203
#define CL_COMMAND_USER                             0x1204
#define CL_COMMAND_BARRIER                          0x1205
#define CL_COMMAND_MIGRATE_MEM_OBJECTS              0x1206
#define CL_COMMAND_FILL_BUFFER                      0x1207
#define CL_COMMAND_FILL_IMAGE                       0x1208

#define CL_COMPLETE                                 0x0
#define CL_RUNNING                                  0x1
#define CL_SUBMITTED                                0x2
#define CL_QUEUED                                   0x3
#define CL_BUFFER_CREATE_TYPE_REGION                0x1220

#define CL_PROFILING_COMMAND_QUEUED                 0x1280
#define CL_PROFILING_COMMAND_SUBMIT                 0x1281
#define CL_PROFILING_COMMAND_START                  0x1282
#define CL_PROFILING_COMMAND_END                    0x1283

#define CL_CALLBACK CV_STDCALL

static volatile bool g_haveOpenCL = false;
static const char* oclFuncToCheck = "clEnqueueReadBufferRect";

#if defined(__APPLE__)
#include <dlfcn.h>

static void* initOpenCLAndLoad(const char* funcname)
{
    static bool initialized = false;
    static void* handle = 0;
    if (!handle)
    {
        if(!initialized)
        {
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            const char* oclpath = getenv("OPENCV_OPENCL_RUNTIME");
            oclpath = oclpath && strlen(oclpath) > 0 ? oclpath :
                "/System/Library/Frameworks/OpenCL.framework/Versions/Current/OpenCL";
            handle = dlopen(oclpath, RTLD_LAZY);
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            initialized = true;
            g_haveOpenCL = handle != 0 && dlsym(handle, oclFuncToCheck) != 0;
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            if( g_haveOpenCL )
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                fprintf(stderr, "Successfully loaded OpenCL v1.1+ runtime from %s\n", oclpath);
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            else
                fprintf(stderr, "Failed to load OpenCL runtime\n");
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        }
        if(!handle)
            return 0;
    }

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    return funcname && handle ? dlsym(handle, funcname) : 0;
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}

#elif defined WIN32 || defined _WIN32

#ifndef _WIN32_WINNT           // This is needed for the declaration of TryEnterCriticalSection in winbase.h with Visual Studio 2005 (and older?)
  #define _WIN32_WINNT 0x0400  // http://msdn.microsoft.com/en-us/library/ms686857(VS.85).aspx
#endif
#include <windows.h>
#if (_WIN32_WINNT >= 0x0602)
  #include <synchapi.h>
#endif
#undef small
#undef min
#undef max
#undef abs

static void* initOpenCLAndLoad(const char* funcname)
{
    static bool initialized = false;
    static HMODULE handle = 0;
    if (!handle)
    {
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#ifndef HAVE_WINRT
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        if(!initialized)
        {
            handle = LoadLibraryA("OpenCL.dll");
            initialized = true;
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            g_haveOpenCL = handle != 0 && GetProcAddress(handle, oclFuncToCheck) != 0;
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        }
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#endif
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        if(!handle)
            return 0;
    }
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    return funcname ? (void*)GetProcAddress(handle, funcname) : 0;
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}

#elif defined(__linux)

#include <dlfcn.h>
#include <stdio.h>

static void* initOpenCLAndLoad(const char* funcname)
{
    static bool initialized = false;
    static void* handle = 0;
    if (!handle)
    {
        if(!initialized)
        {
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            handle = dlopen("libOpenCL.so", RTLD_LAZY);
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            if(!handle)
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                handle = dlopen("libCL.so", RTLD_LAZY);
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            initialized = true;
            g_haveOpenCL = handle != 0 && dlsym(handle, oclFuncToCheck) != 0;
        }
        if(!handle)
            return 0;
    }
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    return funcname ? (void*)dlsym(handle, funcname) : 0;
}

#else

static void* initOpenCLAndLoad(const char*)
{
    return 0;
}

#endif


#define OCL_FUNC(rettype, funcname, argsdecl, args) \
    typedef rettype (CV_STDCALL * funcname##_t) argsdecl; \
    static rettype funcname argsdecl \
    { \
        static funcname##_t funcname##_p = 0; \
        if( !funcname##_p ) \
        { \
            funcname##_p = (funcname##_t)initOpenCLAndLoad(#funcname); \
            if( !funcname##_p ) \
                return OPENCV_CL_NOT_IMPLEMENTED; \
        } \
        return funcname##_p args; \
    }


#define OCL_FUNC_P(rettype, funcname, argsdecl, args) \
    typedef rettype (CV_STDCALL * funcname##_t) argsdecl; \
    static rettype funcname argsdecl \
    { \
        static funcname##_t funcname##_p = 0; \
        if( !funcname##_p ) \
        { \
            funcname##_p = (funcname##_t)initOpenCLAndLoad(#funcname); \
            if( !funcname##_p ) \
            { \
                if( errcode_ret ) \
                    *errcode_ret = OPENCV_CL_NOT_IMPLEMENTED; \
                return 0; \
            } \
        } \
        return funcname##_p args; \
    }

OCL_FUNC(cl_int, clGetPlatformIDs,
    (cl_uint num_entries, cl_platform_id* platforms, cl_uint* num_platforms),
    (num_entries, platforms, num_platforms))

OCL_FUNC(cl_int, clGetPlatformInfo,
    (cl_platform_id platform, cl_platform_info param_name,
    size_t param_value_size, void * param_value,
    size_t * param_value_size_ret),
    (platform, param_name, param_value_size, param_value, param_value_size_ret))

OCL_FUNC(cl_int, clGetDeviceInfo,
         (cl_device_id device,
          cl_device_info param_name,
          size_t param_value_size,
          void * param_value,
          size_t * param_value_size_ret),
         (device, param_name, param_value_size, param_value, param_value_size_ret))


OCL_FUNC(cl_int, clGetDeviceIDs,
    (cl_platform_id platform,
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    cl_device_type device_type,
    cl_uint num_entries,
    cl_device_id * devices,
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    cl_uint * num_devices),
    (platform, device_type, num_entries, devices, num_devices))

OCL_FUNC_P(cl_context, clCreateContext,
    (const cl_context_properties * properties,
    cl_uint num_devices,
    const cl_device_id * devices,
    void (CL_CALLBACK * pfn_notify)(const char *, const void *, size_t, void *),
    void * user_data,
    cl_int * errcode_ret),
    (properties, num_devices, devices, pfn_notify, user_data, errcode_ret))

OCL_FUNC(cl_int, clReleaseContext, (cl_context context), (context))

/*
OCL_FUNC(cl_int, clRetainContext, (cl_context context), (context))

OCL_FUNC_P(cl_context, clCreateContextFromType,
    (const cl_context_properties * properties,
    cl_device_type device_type,
    void (CL_CALLBACK * pfn_notify)(const char *, const void *, size_t, void *),
    void * user_data,
    cl_int * errcode_ret),
    (properties, device_type, pfn_notify, user_data, errcode_ret))

OCL_FUNC(cl_int, clGetContextInfo,
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    (cl_context context,
    cl_context_info param_name,
    size_t param_value_size,
    void * param_value,
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    size_t * param_value_size_ret),
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    (context, param_name, param_value_size,
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    param_value, param_value_size_ret))
*/
OCL_FUNC_P(cl_command_queue, clCreateCommandQueue,
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    (cl_context context,
    cl_device_id device,
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    cl_command_queue_properties properties,
    cl_int * errcode_ret),
    (context, device, properties, errcode_ret))

OCL_FUNC(cl_int, clReleaseCommandQueue, (cl_command_queue command_queue), (command_queue))

OCL_FUNC_P(cl_mem, clCreateBuffer,
    (cl_context context,
    cl_mem_flags flags,
    size_t size,
    void * host_ptr,
    cl_int * errcode_ret),
    (context, flags, size, host_ptr, errcode_ret))

/*
OCL_FUNC(cl_int, clRetainCommandQueue, (cl_command_queue command_queue), (command_queue))

OCL_FUNC(cl_int, clGetCommandQueueInfo,
 (cl_command_queue command_queue,
 cl_command_queue_info param_name,
 size_t param_value_size,
 void * param_value,
 size_t * param_value_size_ret),
 (command_queue, param_name, param_value_size, param_value, param_value_size_ret))

OCL_FUNC_P(cl_mem, clCreateSubBuffer,
    (cl_mem buffer,
    cl_mem_flags flags,
    cl_buffer_create_type buffer_create_type,
    const void * buffer_create_info,
    cl_int * errcode_ret),
    (buffer, flags, buffer_create_type, buffer_create_info, errcode_ret))
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*/
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OCL_FUNC_P(cl_mem, clCreateImage,
    (cl_context context,
    cl_mem_flags flags,
    const cl_image_format * image_format,
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    const cl_image_desc * image_desc,
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    void * host_ptr,
    cl_int * errcode_ret),
    (context, flags, image_format, image_desc, host_ptr, errcode_ret))

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OCL_FUNC_P(cl_mem, clCreateImage2D,
    (cl_context context,
    cl_mem_flags flags,
    const cl_image_format * image_format,
    size_t image_width,
    size_t image_height,
    size_t image_row_pitch,
    void * host_ptr,
    cl_int *errcode_ret),
    (context, flags, image_format, image_width, image_height, image_row_pitch, host_ptr, errcode_ret))

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OCL_FUNC(cl_int, clGetSupportedImageFormats,
 (cl_context context,
 cl_mem_flags flags,
 cl_mem_object_type image_type,
 cl_uint num_entries,
 cl_image_format * image_formats,
 cl_uint * num_image_formats),
 (context, flags, image_type, num_entries, image_formats, num_image_formats))

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/*
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OCL_FUNC(cl_int, clGetMemObjectInfo,
 (cl_mem memobj,
 cl_mem_info param_name,
 size_t param_value_size,
 void * param_value,
 size_t * param_value_size_ret),
 (memobj, param_name, param_value_size, param_value, param_value_size_ret))

OCL_FUNC(cl_int, clGetImageInfo,
 (cl_mem image,
 cl_image_info param_name,
 size_t param_value_size,
 void * param_value,
 size_t * param_value_size_ret),
 (image, param_name, param_value_size, param_value, param_value_size_ret))

OCL_FUNC(cl_int, clCreateKernelsInProgram,
 (cl_program program,
 cl_uint num_kernels,
 cl_kernel * kernels,
 cl_uint * num_kernels_ret),
 (program, num_kernels, kernels, num_kernels_ret))

OCL_FUNC(cl_int, clRetainKernel, (cl_kernel kernel), (kernel))

OCL_FUNC(cl_int, clGetKernelArgInfo,
 (cl_kernel kernel,
 cl_uint arg_indx,
 cl_kernel_arg_info param_name,
 size_t param_value_size,
 void * param_value,
 size_t * param_value_size_ret),
 (kernel, arg_indx, param_name, param_value_size, param_value, param_value_size_ret))
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OCL_FUNC(cl_int, clEnqueueReadImage,
 (cl_command_queue command_queue,
 cl_mem image,
 cl_bool blocking_read,
 const size_t * origin[3],
 const size_t * region[3],
 size_t row_pitch,
 size_t slice_pitch,
 void * ptr,
 cl_uint num_events_in_wait_list,
 const cl_event * event_wait_list,
 cl_event * event),
 (command_queue, image, blocking_read, origin, region,
 row_pitch, slice_pitch,
 ptr,
 num_events_in_wait_list,
 event_wait_list,
 event))

OCL_FUNC(cl_int, clEnqueueWriteImage,
 (cl_command_queue command_queue,
 cl_mem image,
 cl_bool blocking_write,
 const size_t * origin[3],
 const size_t * region[3],
 size_t input_row_pitch,
 size_t input_slice_pitch,
 const void * ptr,
 cl_uint num_events_in_wait_list,
 const cl_event * event_wait_list,
 cl_event * event),
 (command_queue, image, blocking_write, origin, region, input_row_pitch,
 input_slice_pitch, ptr, num_events_in_wait_list, event_wait_list, event))

OCL_FUNC(cl_int, clEnqueueFillImage,
 (cl_command_queue command_queue,
 cl_mem image,
 const void * fill_color,
 const size_t * origin[3],
 const size_t * region[3],
 cl_uint num_events_in_wait_list,
 const cl_event * event_wait_list,
 cl_event * event),
 (command_queue, image, fill_color, origin, region,
 num_events_in_wait_list, event_wait_list, event))

OCL_FUNC(cl_int, clEnqueueCopyImage,
 (cl_command_queue command_queue,
 cl_mem src_image,
 cl_mem dst_image,
 const size_t * src_origin[3],
 const size_t * dst_origin[3],
 const size_t * region[3],
 cl_uint num_events_in_wait_list,
 const cl_event * event_wait_list,
 cl_event * event),
 (command_queue, src_image, dst_image, src_origin, dst_origin,
 region, num_events_in_wait_list, event_wait_list, event))

OCL_FUNC(cl_int, clEnqueueCopyImageToBuffer,
 (cl_command_queue command_queue,
 cl_mem src_image,
 cl_mem dst_buffer,
 const size_t * src_origin[3],
 const size_t * region[3],
 size_t dst_offset,
 cl_uint num_events_in_wait_list,
 const cl_event * event_wait_list,
 cl_event * event),
 (command_queue, src_image, dst_buffer, src_origin, region, dst_offset,
 num_events_in_wait_list, event_wait_list, event))
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*/
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OCL_FUNC(cl_int, clEnqueueCopyBufferToImage,
 (cl_command_queue command_queue,
 cl_mem src_buffer,
 cl_mem dst_image,
 size_t src_offset,
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 const size_t dst_origin[3],
 const size_t region[3],
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 cl_uint num_events_in_wait_list,
 const cl_event * event_wait_list,
 cl_event * event),
 (command_queue, src_buffer, dst_image, src_offset, dst_origin,
 region, num_events_in_wait_list, event_wait_list, event))

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 OCL_FUNC(cl_int, clFlush,
 (cl_command_queue command_queue),
 (command_queue))
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/*
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OCL_FUNC_P(void*, clEnqueueMapImage,
 (cl_command_queue command_queue,
 cl_mem image,
 cl_bool blocking_map,
 cl_map_flags map_flags,
 const size_t * origin[3],
 const size_t * region[3],
 size_t * image_row_pitch,
 size_t * image_slice_pitch,
 cl_uint num_events_in_wait_list,
 const cl_event * event_wait_list,
 cl_event * event,
 cl_int * errcode_ret),
 (command_queue, image, blocking_map, map_flags, origin, region,
 image_row_pitch, image_slice_pitch, num_events_in_wait_list,
 event_wait_list, event, errcode_ret))
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*/
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/*
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OCL_FUNC(cl_int, clRetainProgram, (cl_program program), (program))
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OCL_FUNC(cl_int, clGetKernelInfo,
 (cl_kernel kernel,
 cl_kernel_info param_name,
 size_t param_value_size,
 void * param_value,
 size_t * param_value_size_ret),
 (kernel, param_name, param_value_size, param_value, param_value_size_ret))

OCL_FUNC(cl_int, clRetainMemObject, (cl_mem memobj), (memobj))

*/

OCL_FUNC(cl_int, clReleaseMemObject, (cl_mem memobj), (memobj))


OCL_FUNC_P(cl_program, clCreateProgramWithSource,
    (cl_context context,
    cl_uint count,
    const char ** strings,
    const size_t * lengths,
    cl_int * errcode_ret),
    (context, count, strings, lengths, errcode_ret))

OCL_FUNC_P(cl_program, clCreateProgramWithBinary,
    (cl_context context,
    cl_uint num_devices,
    const cl_device_id * device_list,
    const size_t * lengths,
    const unsigned char ** binaries,
    cl_int * binary_status,
    cl_int * errcode_ret),
    (context, num_devices, device_list, lengths, binaries, binary_status, errcode_ret))

OCL_FUNC(cl_int, clReleaseProgram, (cl_program program), (program))

OCL_FUNC(cl_int, clBuildProgram,
    (cl_program program,
    cl_uint num_devices,
    const cl_device_id * device_list,
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    const char * options,
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    void (CL_CALLBACK * pfn_notify)(cl_program, void *),
    void * user_data),
    (program, num_devices, device_list, options, pfn_notify, user_data))

OCL_FUNC(cl_int, clGetProgramInfo,
    (cl_program program,
    cl_program_info param_name,
    size_t param_value_size,
    void * param_value,
    size_t * param_value_size_ret),
    (program, param_name, param_value_size, param_value, param_value_size_ret))

OCL_FUNC(cl_int, clGetProgramBuildInfo,
    (cl_program program,
    cl_device_id device,
    cl_program_build_info param_name,
    size_t param_value_size,
    void * param_value,
    size_t * param_value_size_ret),
    (program, device, param_name, param_value_size, param_value, param_value_size_ret))
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OCL_FUNC_P(cl_kernel, clCreateKernel,
    (cl_program program,
    const char * kernel_name,
    cl_int * errcode_ret),
    (program, kernel_name, errcode_ret))

OCL_FUNC(cl_int, clReleaseKernel, (cl_kernel kernel), (kernel))

OCL_FUNC(cl_int, clSetKernelArg,
    (cl_kernel kernel,
    cl_uint arg_index,
    size_t arg_size,
    const void * arg_value),
    (kernel, arg_index, arg_size, arg_value))

OCL_FUNC(cl_int, clGetKernelWorkGroupInfo,
    (cl_kernel kernel,
    cl_device_id device,
    cl_kernel_work_group_info param_name,
    size_t param_value_size,
    void * param_value,
    size_t * param_value_size_ret),
    (kernel, device, param_name, param_value_size, param_value, param_value_size_ret))
1131

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OCL_FUNC(cl_int, clFinish, (cl_command_queue command_queue), (command_queue))

OCL_FUNC(cl_int, clEnqueueReadBuffer,
    (cl_command_queue command_queue,
    cl_mem buffer,
    cl_bool blocking_read,
    size_t offset,
1139
    size_t size,
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    void * ptr,
    cl_uint num_events_in_wait_list,
    const cl_event * event_wait_list,
    cl_event * event),
    (command_queue, buffer, blocking_read, offset, size, ptr,
    num_events_in_wait_list, event_wait_list, event))

OCL_FUNC(cl_int, clEnqueueReadBufferRect,
    (cl_command_queue command_queue,
    cl_mem buffer,
    cl_bool blocking_read,
    const size_t * buffer_offset,
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    const size_t * host_offset,
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    const size_t * region,
    size_t buffer_row_pitch,
    size_t buffer_slice_pitch,
    size_t host_row_pitch,
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    size_t host_slice_pitch,
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    void * ptr,
    cl_uint num_events_in_wait_list,
    const cl_event * event_wait_list,
    cl_event * event),
    (command_queue, buffer, blocking_read, buffer_offset, host_offset, region, buffer_row_pitch,
    buffer_slice_pitch, host_row_pitch, host_slice_pitch, ptr, num_events_in_wait_list,
    event_wait_list, event))

OCL_FUNC(cl_int, clEnqueueWriteBuffer,
1167 1168 1169 1170 1171 1172 1173 1174
    (cl_command_queue command_queue,
    cl_mem buffer,
    cl_bool blocking_write,
    size_t offset,
    size_t size,
    const void * ptr,
    cl_uint num_events_in_wait_list,
    const cl_event * event_wait_list,
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    cl_event * event),
    (command_queue, buffer, blocking_write, offset, size, ptr,
    num_events_in_wait_list, event_wait_list, event))

OCL_FUNC(cl_int, clEnqueueWriteBufferRect,
    (cl_command_queue command_queue,
    cl_mem buffer,
    cl_bool blocking_write,
    const size_t * buffer_offset,
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    const size_t * host_offset,
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    const size_t * region,
    size_t buffer_row_pitch,
    size_t buffer_slice_pitch,
    size_t host_row_pitch,
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    size_t host_slice_pitch,
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    const void * ptr,
    cl_uint num_events_in_wait_list,
    const cl_event * event_wait_list,
    cl_event * event),
    (command_queue, buffer, blocking_write, buffer_offset, host_offset,
    region, buffer_row_pitch, buffer_slice_pitch, host_row_pitch,
    host_slice_pitch, ptr, num_events_in_wait_list, event_wait_list, event))

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/*OCL_FUNC(cl_int, clEnqueueFillBuffer,
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    (cl_command_queue command_queue,
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    cl_mem buffer,
    const void * pattern,
    size_t pattern_size,
    size_t offset,
    size_t size,
    cl_uint num_events_in_wait_list,
    const cl_event * event_wait_list,
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    cl_event * event),
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    (command_queue, buffer, pattern, pattern_size, offset, size,
    num_events_in_wait_list, event_wait_list, event))*/
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OCL_FUNC(cl_int, clEnqueueCopyBuffer,
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    (cl_command_queue command_queue,
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    cl_mem src_buffer,
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    cl_mem dst_buffer,
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    size_t src_offset,
    size_t dst_offset,
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    size_t size,
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    cl_uint num_events_in_wait_list,
    const cl_event * event_wait_list,
    cl_event * event),
    (command_queue, src_buffer, dst_buffer, src_offset, dst_offset,
    size, num_events_in_wait_list, event_wait_list, event))

OCL_FUNC(cl_int, clEnqueueCopyBufferRect,
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    (cl_command_queue command_queue,
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    cl_mem src_buffer,
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    cl_mem dst_buffer,
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    const size_t * src_origin,
    const size_t * dst_origin,
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    const size_t * region,
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    size_t src_row_pitch,
    size_t src_slice_pitch,
    size_t dst_row_pitch,
    size_t dst_slice_pitch,
    cl_uint num_events_in_wait_list,
    const cl_event * event_wait_list,
    cl_event * event),
    (command_queue, src_buffer, dst_buffer, src_origin, dst_origin,
    region, src_row_pitch, src_slice_pitch, dst_row_pitch, dst_slice_pitch,
    num_events_in_wait_list, event_wait_list, event))

OCL_FUNC_P(void*, clEnqueueMapBuffer,
    (cl_command_queue command_queue,
    cl_mem buffer,
1245
    cl_bool blocking_map,
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    cl_map_flags map_flags,
    size_t offset,
    size_t size,
    cl_uint num_events_in_wait_list,
    const cl_event * event_wait_list,
    cl_event * event,
    cl_int * errcode_ret),
    (command_queue, buffer, blocking_map, map_flags, offset, size,
    num_events_in_wait_list, event_wait_list, event, errcode_ret))

OCL_FUNC(cl_int, clEnqueueUnmapMemObject,
    (cl_command_queue command_queue,
    cl_mem memobj,
    void * mapped_ptr,
    cl_uint num_events_in_wait_list,
    const cl_event * event_wait_list,
    cl_event * event),
    (command_queue, memobj, mapped_ptr, num_events_in_wait_list, event_wait_list, event))

OCL_FUNC(cl_int, clEnqueueNDRangeKernel,
    (cl_command_queue command_queue,
    cl_kernel kernel,
    cl_uint work_dim,
    const size_t * global_work_offset,
    const size_t * global_work_size,
    const size_t * local_work_size,
    cl_uint num_events_in_wait_list,
    const cl_event * event_wait_list,
    cl_event * event),
    (command_queue, kernel, work_dim, global_work_offset, global_work_size,
    local_work_size, num_events_in_wait_list, event_wait_list, event))

OCL_FUNC(cl_int, clEnqueueTask,
    (cl_command_queue command_queue,
    cl_kernel kernel,
    cl_uint num_events_in_wait_list,
    const cl_event * event_wait_list,
    cl_event * event),
    (command_queue, kernel, num_events_in_wait_list, event_wait_list, event))

OCL_FUNC(cl_int, clSetEventCallback,
    (cl_event event,
    cl_int command_exec_callback_type ,
    void (CL_CALLBACK  *pfn_event_notify) (cl_event event, cl_int event_command_exec_status, void *user_data),
    void *user_data),
    (event, command_exec_callback_type, pfn_event_notify, user_data))

OCL_FUNC(cl_int, clReleaseEvent, (cl_event event), (event))

}

#endif

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#ifndef CL_VERSION_1_2
#define CL_VERSION_1_2
#endif

#endif

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#ifdef _DEBUG
#define CV_OclDbgAssert CV_DbgAssert
#else
#define CV_OclDbgAssert(expr) (void)(expr)
#endif

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namespace cv { namespace ocl {

1313 1314
struct UMat2D
{
1315
    UMat2D(const UMat& m)
1316
    {
1317 1318
        offset = (int)m.offset;
        step = (int)m.step;
1319 1320 1321
        rows = m.rows;
        cols = m.cols;
    }
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    int offset;
    int step;
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    int rows;
    int cols;
};

struct UMat3D
{
1330
    UMat3D(const UMat& m)
1331
    {
1332 1333 1334 1335
        offset = (int)m.offset;
        step = (int)m.step.p[1];
        slicestep = (int)m.step.p[0];
        slices = (int)m.size.p[0];
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        rows = m.size.p[1];
        cols = m.size.p[2];
    }
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    int offset;
    int slicestep;
    int step;
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    int slices;
    int rows;
    int cols;
};

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// Computes 64-bit "cyclic redundancy check" sum, as specified in ECMA-182
static uint64 crc64( const uchar* data, size_t size, uint64 crc0=0 )
{
    static uint64 table[256];
    static bool initialized = false;

    if( !initialized )
    {
        for( int i = 0; i < 256; i++ )
        {
            uint64 c = i;
            for( int j = 0; j < 8; j++ )
                c = ((c & 1) ? CV_BIG_UINT(0xc96c5795d7870f42) : 0) ^ (c >> 1);
            table[i] = c;
        }
        initialized = true;
    }

    uint64 crc = ~crc0;
    for( size_t idx = 0; idx < size; idx++ )
        crc = table[(uchar)crc ^ data[idx]] ^ (crc >> 8);

    return ~crc;
}

struct HashKey
{
    typedef uint64 part;
    HashKey(part _a, part _b) : a(_a), b(_b) {}
    part a, b;
};

inline bool operator == (const HashKey& h1, const HashKey& h2)
{
    return h1.a == h2.a && h1.b == h2.b;
}

inline bool operator < (const HashKey& h1, const HashKey& h2)
{
    return h1.a < h2.a || (h1.a == h2.a && h1.b < h2.b);
}

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bool haveOpenCL()
{
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#ifdef HAVE_OPENCL
    static bool g_isOpenCLInitialized = false;
    static bool g_isOpenCLAvailable = false;

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    if (!g_isOpenCLInitialized)
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    {
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        try
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        {
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            cl_uint n = 0;
            g_isOpenCLAvailable = ::clGetPlatformIDs(0, NULL, &n) == CL_SUCCESS;
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        }
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        catch (...)
        {
            g_isOpenCLAvailable = false;
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        }
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        g_isOpenCLInitialized = true;
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    }
    return g_isOpenCLAvailable;
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#else
    return false;
#endif
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}

bool useOpenCL()
{
1417
    CoreTLSData* data = coreTlsData.get();
1418
    if( data->useOpenCL < 0 )
1419
        data->useOpenCL = (int)haveOpenCL() && Device::getDefault().ptr() != NULL;
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    return data->useOpenCL > 0;
}

1423 1424 1425 1426
void setUseOpenCL(bool flag)
{
    if( haveOpenCL() )
    {
1427
        CoreTLSData* data = coreTlsData.get();
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        data->useOpenCL = (flag && Device::getDefault().ptr() != NULL) ? 1 : 0;
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    }
}

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#ifdef HAVE_CLAMDBLAS

class AmdBlasHelper
{
public:
    static AmdBlasHelper & getInstance()
    {
        static AmdBlasHelper amdBlas;
        return amdBlas;
    }

    bool isAvailable() const
    {
        return g_isAmdBlasAvailable;
    }

    ~AmdBlasHelper()
    {
        try
        {
            clAmdBlasTeardown();
        }
        catch (...) { }
    }

protected:
    AmdBlasHelper()
    {
        if (!g_isAmdBlasInitialized)
        {
            AutoLock lock(m);

            if (!g_isAmdBlasInitialized && haveOpenCL())
            {
                try
                {
                    g_isAmdBlasAvailable = clAmdBlasSetup() == clAmdBlasSuccess;
                }
                catch (...)
                {
                    g_isAmdBlasAvailable = false;
                }
            }
            else
                g_isAmdBlasAvailable = false;

            g_isAmdBlasInitialized = true;
        }
    }

private:
    static Mutex m;
    static bool g_isAmdBlasInitialized;
    static bool g_isAmdBlasAvailable;
};

bool AmdBlasHelper::g_isAmdBlasAvailable = false;
bool AmdBlasHelper::g_isAmdBlasInitialized = false;
Mutex AmdBlasHelper::m;

bool haveAmdBlas()
{
    return AmdBlasHelper::getInstance().isAvailable();
}

#else

bool haveAmdBlas()
{
    return false;
}

#endif

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#ifdef HAVE_CLAMDFFT

class AmdFftHelper
{
public:
    static AmdFftHelper & getInstance()
    {
        static AmdFftHelper amdFft;
        return amdFft;
    }

    bool isAvailable() const
    {
        return g_isAmdFftAvailable;
    }

    ~AmdFftHelper()
    {
        try
        {
//            clAmdFftTeardown();
        }
        catch (...) { }
    }

protected:
    AmdFftHelper()
    {
        if (!g_isAmdFftInitialized)
        {
            AutoLock lock(m);

            if (!g_isAmdFftInitialized && haveOpenCL())
            {
                try
                {
                    CV_Assert(clAmdFftInitSetupData(&setupData) == CLFFT_SUCCESS);
                    g_isAmdFftAvailable = true;
                }
                catch (const Exception &)
                {
                    g_isAmdFftAvailable = false;
                }
            }
            else
                g_isAmdFftAvailable = false;

            g_isAmdFftInitialized = true;
        }
    }

private:
    static clAmdFftSetupData setupData;
    static Mutex m;
    static bool g_isAmdFftInitialized;
    static bool g_isAmdFftAvailable;
};

clAmdFftSetupData AmdFftHelper::setupData;
bool AmdFftHelper::g_isAmdFftAvailable = false;
bool AmdFftHelper::g_isAmdFftInitialized = false;
Mutex AmdFftHelper::m;

bool haveAmdFft()
{
    return AmdFftHelper::getInstance().isAvailable();
}

#else

bool haveAmdFft()
{
    return false;
}

#endif

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void finish()
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{
    Queue::getDefault().finish();
}

#define IMPLEMENT_REFCOUNTABLE() \
    void addref() { CV_XADD(&refcount, 1); } \
1590
    void release() { if( CV_XADD(&refcount, -1) == 1 && !cv::__termination) delete this; } \
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    int refcount

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/////////////////////////////////////////// Platform /////////////////////////////////////////////

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struct Platform::Impl
{
    Impl()
    {
        refcount = 1;
        handle = 0;
        initialized = false;
    }

    ~Impl() {}

    void init()
    {
        if( !initialized )
        {
            //cl_uint num_entries
            cl_uint n = 0;
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            if( clGetPlatformIDs(1, &handle, &n) != CL_SUCCESS || n == 0 )
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                handle = 0;
            if( handle != 0 )
            {
                char buf[1000];
                size_t len = 0;
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                CV_OclDbgAssert(clGetPlatformInfo(handle, CL_PLATFORM_VENDOR, sizeof(buf), buf, &len) == CL_SUCCESS);
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                buf[len] = '\0';
                vendor = String(buf);
            }

            initialized = true;
        }
    }

    IMPLEMENT_REFCOUNTABLE();

    cl_platform_id handle;
    String vendor;
    bool initialized;
};

Platform::Platform()
{
    p = 0;
}

Platform::~Platform()
{
    if(p)
        p->release();
}

Platform::Platform(const Platform& pl)
{
    p = (Impl*)pl.p;
    if(p)
        p->addref();
}

Platform& Platform::operator = (const Platform& pl)
{
    Impl* newp = (Impl*)pl.p;
    if(newp)
        newp->addref();
    if(p)
        p->release();
    p = newp;
    return *this;
}

void* Platform::ptr() const
{
    return p ? p->handle : 0;
}

Platform& Platform::getDefault()
{
    static Platform p;
    if( !p.p )
    {
        p.p = new Impl;
        p.p->init();
    }
    return p;
}

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/////////////////////////////////////// Device ////////////////////////////////////////////

// deviceVersion has format
//   OpenCL<space><major_version.minor_version><space><vendor-specific information>
// by specification
//   http://www.khronos.org/registry/cl/sdk/1.1/docs/man/xhtml/clGetDeviceInfo.html
//   http://www.khronos.org/registry/cl/sdk/1.2/docs/man/xhtml/clGetDeviceInfo.html
static void parseDeviceVersion(const String &deviceVersion, int &major, int &minor)
{
    major = minor = 0;
    if (10 >= deviceVersion.length())
        return;
    const char *pstr = deviceVersion.c_str();
    if (0 != strncmp(pstr, "OpenCL ", 7))
        return;
    size_t ppos = deviceVersion.find('.', 7);
    if (String::npos == ppos)
        return;
    String temp = deviceVersion.substr(7, ppos - 7);
    major = atoi(temp.c_str());
    temp = deviceVersion.substr(ppos + 1);
    minor = atoi(temp.c_str());
}
1702 1703 1704 1705 1706 1707

struct Device::Impl
{
    Impl(void* d)
    {
        handle = (cl_device_id)d;
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        refcount = 1;
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        name_ = getStrProp(CL_DEVICE_NAME);
        version_ = getStrProp(CL_DEVICE_VERSION);
        doubleFPConfig_ = getProp<cl_device_fp_config, int>(CL_DEVICE_DOUBLE_FP_CONFIG);
        hostUnifiedMemory_ = getBoolProp(CL_DEVICE_HOST_UNIFIED_MEMORY);
        maxComputeUnits_ = getProp<cl_uint, int>(CL_DEVICE_MAX_COMPUTE_UNITS);
        maxWorkGroupSize_ = getProp<size_t, size_t>(CL_DEVICE_MAX_WORK_GROUP_SIZE);
        type_ = getProp<cl_device_type, int>(CL_DEVICE_TYPE);
        driverVersion_ = getStrProp(CL_DRIVER_VERSION);
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        String deviceVersion_ = getStrProp(CL_DEVICE_VERSION);
        parseDeviceVersion(deviceVersion_, deviceVersionMajor_, deviceVersionMinor_);
1721

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        vendorName_ = getStrProp(CL_DEVICE_VENDOR);
        if (vendorName_ == "Advanced Micro Devices, Inc." ||
            vendorName_ == "AMD")
            vendorID_ = VENDOR_AMD;
        else if (vendorName_ == "Intel(R) Corporation")
            vendorID_ = VENDOR_INTEL;
        else if (vendorName_ == "NVIDIA Corporation")
            vendorID_ = VENDOR_NVIDIA;
1730
        else
1731
            vendorID_ = UNKNOWN_VENDOR;
1732 1733 1734 1735 1736 1737 1738 1739
    }

    template<typename _TpCL, typename _TpOut>
    _TpOut getProp(cl_device_info prop) const
    {
        _TpCL temp=_TpCL();
        size_t sz = 0;

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        return clGetDeviceInfo(handle, prop, sizeof(temp), &temp, &sz) == CL_SUCCESS &&
1741 1742 1743
            sz == sizeof(temp) ? _TpOut(temp) : _TpOut();
    }

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    bool getBoolProp(cl_device_info prop) const
    {
        cl_bool temp = CL_FALSE;
        size_t sz = 0;

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        return clGetDeviceInfo(handle, prop, sizeof(temp), &temp, &sz) == CL_SUCCESS &&
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            sz == sizeof(temp) ? temp != 0 : false;
    }

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    String getStrProp(cl_device_info prop) const
    {
        char buf[1024];
        size_t sz=0;
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        return clGetDeviceInfo(handle, prop, sizeof(buf)-16, buf, &sz) == CL_SUCCESS &&
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            sz < sizeof(buf) ? String(buf) : String();
    }

    IMPLEMENT_REFCOUNTABLE();
    cl_device_id handle;
1763 1764 1765 1766 1767 1768 1769 1770

    String name_;
    String version_;
    int doubleFPConfig_;
    bool hostUnifiedMemory_;
    int maxComputeUnits_;
    size_t maxWorkGroupSize_;
    int type_;
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Ilya Lavrenov 已提交
1771 1772
    int deviceVersionMajor_;
    int deviceVersionMinor_;
1773
    String driverVersion_;
1774 1775
    String vendorName_;
    int vendorID_;
1776 1777 1778 1779 1780 1781 1782 1783 1784 1785 1786 1787 1788 1789 1790 1791 1792 1793 1794 1795 1796 1797 1798 1799 1800 1801 1802 1803 1804 1805 1806 1807 1808 1809 1810 1811 1812 1813 1814 1815 1816 1817 1818 1819 1820 1821 1822 1823 1824 1825 1826
};


Device::Device()
{
    p = 0;
}

Device::Device(void* d)
{
    p = 0;
    set(d);
}

Device::Device(const Device& d)
{
    p = d.p;
    if(p)
        p->addref();
}

Device& Device::operator = (const Device& d)
{
    Impl* newp = (Impl*)d.p;
    if(newp)
        newp->addref();
    if(p)
        p->release();
    p = newp;
    return *this;
}

Device::~Device()
{
    if(p)
        p->release();
}

void Device::set(void* d)
{
    if(p)
        p->release();
    p = new Impl(d);
}

void* Device::ptr() const
{
    return p ? p->handle : 0;
}

String Device::name() const
1827
{ return p ? p->name_ : String(); }
1828 1829 1830 1831

String Device::extensions() const
{ return p ? p->getStrProp(CL_DEVICE_EXTENSIONS) : String(); }

K
Konstantin Matskevich 已提交
1832
String Device::version() const
1833
{ return p ? p->version_ : String(); }
K
Konstantin Matskevich 已提交
1834

1835 1836 1837 1838 1839
String Device::vendorName() const
{ return p ? p->vendorName_ : String(); }

int Device::vendorID() const
{ return p ? p->vendorID_ : 0; }
1840 1841 1842 1843 1844 1845 1846

String Device::OpenCL_C_Version() const
{ return p ? p->getStrProp(CL_DEVICE_OPENCL_C_VERSION) : String(); }

String Device::OpenCLVersion() const
{ return p ? p->getStrProp(CL_DEVICE_EXTENSIONS) : String(); }

I
Ilya Lavrenov 已提交
1847 1848 1849 1850 1851
int Device::deviceVersionMajor() const
{ return p ? p->deviceVersionMajor_ : 0; }

int Device::deviceVersionMinor() const
{ return p ? p->deviceVersionMinor_ : 0; }
1852

1853
String Device::driverVersion() const
1854
{ return p ? p->driverVersion_ : String(); }
1855 1856

int Device::type() const
1857
{ return p ? p->type_ : 0; }
1858 1859 1860 1861 1862

int Device::addressBits() const
{ return p ? p->getProp<cl_uint, int>(CL_DEVICE_ADDRESS_BITS) : 0; }

bool Device::available() const
1863
{ return p ? p->getBoolProp(CL_DEVICE_AVAILABLE) : false; }
1864 1865

bool Device::compilerAvailable() const
1866
{ return p ? p->getBoolProp(CL_DEVICE_COMPILER_AVAILABLE) : false; }
1867 1868

bool Device::linkerAvailable() const
1869
#ifdef CL_VERSION_1_2
1870
{ return p ? p->getBoolProp(CL_DEVICE_LINKER_AVAILABLE) : false; }
1871 1872 1873
#else
{ CV_REQUIRE_OPENCL_1_2_ERROR; }
#endif
1874 1875

int Device::doubleFPConfig() const
1876
{ return p ? p->doubleFPConfig_ : 0; }
1877 1878 1879 1880 1881

int Device::singleFPConfig() const
{ return p ? p->getProp<cl_device_fp_config, int>(CL_DEVICE_SINGLE_FP_CONFIG) : 0; }

int Device::halfFPConfig() const
1882
#ifdef CL_VERSION_1_2
1883
{ return p ? p->getProp<cl_device_fp_config, int>(CL_DEVICE_HALF_FP_CONFIG) : 0; }
1884 1885 1886
#else
{ CV_REQUIRE_OPENCL_1_2_ERROR; }
#endif
1887 1888

bool Device::endianLittle() const
1889
{ return p ? p->getBoolProp(CL_DEVICE_ENDIAN_LITTLE) : false; }
1890 1891

bool Device::errorCorrectionSupport() const
1892
{ return p ? p->getBoolProp(CL_DEVICE_ERROR_CORRECTION_SUPPORT) : false; }
1893 1894 1895 1896 1897 1898 1899 1900 1901 1902 1903 1904 1905 1906 1907 1908 1909 1910 1911 1912 1913 1914 1915

int Device::executionCapabilities() const
{ return p ? p->getProp<cl_device_exec_capabilities, int>(CL_DEVICE_EXECUTION_CAPABILITIES) : 0; }

size_t Device::globalMemCacheSize() const
{ return p ? p->getProp<cl_ulong, size_t>(CL_DEVICE_GLOBAL_MEM_CACHE_SIZE) : 0; }

int Device::globalMemCacheType() const
{ return p ? p->getProp<cl_device_mem_cache_type, int>(CL_DEVICE_GLOBAL_MEM_CACHE_TYPE) : 0; }

int Device::globalMemCacheLineSize() const
{ return p ? p->getProp<cl_uint, int>(CL_DEVICE_GLOBAL_MEM_CACHELINE_SIZE) : 0; }

size_t Device::globalMemSize() const
{ return p ? p->getProp<cl_ulong, size_t>(CL_DEVICE_GLOBAL_MEM_SIZE) : 0; }

size_t Device::localMemSize() const
{ return p ? p->getProp<cl_ulong, size_t>(CL_DEVICE_LOCAL_MEM_SIZE) : 0; }

int Device::localMemType() const
{ return p ? p->getProp<cl_device_local_mem_type, int>(CL_DEVICE_LOCAL_MEM_TYPE) : 0; }

bool Device::hostUnifiedMemory() const
1916
{ return p ? p->hostUnifiedMemory_ : false; }
1917 1918

bool Device::imageSupport() const
1919
{ return p ? p->getBoolProp(CL_DEVICE_IMAGE_SUPPORT) : false; }
1920

1921 1922 1923 1924 1925 1926 1927 1928 1929 1930 1931 1932 1933 1934 1935 1936 1937 1938 1939 1940 1941 1942 1943 1944 1945 1946 1947 1948 1949 1950 1951 1952
bool Device::imageFromBufferSupport() const
{
    bool ret = false;
    if (p)
    {
        size_t pos = p->getStrProp(CL_DEVICE_EXTENSIONS).find("cl_khr_image2d_from_buffer");
        if (pos != String::npos)
        {
            ret = true;
        }
    }
    return ret;
}

uint Device::imagePitchAlignment() const
{
#ifdef CL_DEVICE_IMAGE_PITCH_ALIGNMENT
    return p ? p->getProp<cl_uint, uint>(CL_DEVICE_IMAGE_PITCH_ALIGNMENT) : 0;
#else
    return 0;
#endif
}

uint Device::imageBaseAddressAlignment() const
{
#ifdef CL_DEVICE_IMAGE_BASE_ADDRESS_ALIGNMENT
    return p ? p->getProp<cl_uint, uint>(CL_DEVICE_IMAGE_BASE_ADDRESS_ALIGNMENT) : 0;
#else
    return 0;
#endif
}

1953 1954 1955 1956 1957 1958 1959 1960 1961 1962 1963 1964 1965 1966 1967 1968
size_t Device::image2DMaxWidth() const
{ return p ? p->getProp<size_t, size_t>(CL_DEVICE_IMAGE2D_MAX_WIDTH) : 0; }

size_t Device::image2DMaxHeight() const
{ return p ? p->getProp<size_t, size_t>(CL_DEVICE_IMAGE2D_MAX_HEIGHT) : 0; }

size_t Device::image3DMaxWidth() const
{ return p ? p->getProp<size_t, size_t>(CL_DEVICE_IMAGE3D_MAX_WIDTH) : 0; }

size_t Device::image3DMaxHeight() const
{ return p ? p->getProp<size_t, size_t>(CL_DEVICE_IMAGE3D_MAX_HEIGHT) : 0; }

size_t Device::image3DMaxDepth() const
{ return p ? p->getProp<size_t, size_t>(CL_DEVICE_IMAGE3D_MAX_DEPTH) : 0; }

size_t Device::imageMaxBufferSize() const
1969
#ifdef CL_VERSION_1_2
1970
{ return p ? p->getProp<size_t, size_t>(CL_DEVICE_IMAGE_MAX_BUFFER_SIZE) : 0; }
1971 1972 1973
#else
{ CV_REQUIRE_OPENCL_1_2_ERROR; }
#endif
1974 1975

size_t Device::imageMaxArraySize() const
1976
#ifdef CL_VERSION_1_2
1977
{ return p ? p->getProp<size_t, size_t>(CL_DEVICE_IMAGE_MAX_ARRAY_SIZE) : 0; }
1978 1979 1980
#else
{ CV_REQUIRE_OPENCL_1_2_ERROR; }
#endif
1981 1982 1983 1984 1985

int Device::maxClockFrequency() const
{ return p ? p->getProp<cl_uint, int>(CL_DEVICE_MAX_CLOCK_FREQUENCY) : 0; }

int Device::maxComputeUnits() const
1986
{ return p ? p->maxComputeUnits_ : 0; }
1987 1988 1989 1990 1991 1992 1993 1994 1995 1996 1997 1998 1999 2000 2001 2002 2003 2004 2005 2006 2007 2008 2009

int Device::maxConstantArgs() const
{ return p ? p->getProp<cl_uint, int>(CL_DEVICE_MAX_CONSTANT_ARGS) : 0; }

size_t Device::maxConstantBufferSize() const
{ return p ? p->getProp<cl_ulong, size_t>(CL_DEVICE_MAX_CONSTANT_BUFFER_SIZE) : 0; }

size_t Device::maxMemAllocSize() const
{ return p ? p->getProp<cl_ulong, size_t>(CL_DEVICE_MAX_MEM_ALLOC_SIZE) : 0; }

size_t Device::maxParameterSize() const
{ return p ? p->getProp<cl_ulong, size_t>(CL_DEVICE_MAX_PARAMETER_SIZE) : 0; }

int Device::maxReadImageArgs() const
{ return p ? p->getProp<cl_uint, int>(CL_DEVICE_MAX_READ_IMAGE_ARGS) : 0; }

int Device::maxWriteImageArgs() const
{ return p ? p->getProp<cl_uint, int>(CL_DEVICE_MAX_WRITE_IMAGE_ARGS) : 0; }

int Device::maxSamplers() const
{ return p ? p->getProp<cl_uint, int>(CL_DEVICE_MAX_SAMPLERS) : 0; }

size_t Device::maxWorkGroupSize() const
2010
{ return p ? p->maxWorkGroupSize_ : 0; }
2011 2012 2013 2014 2015 2016 2017 2018 2019 2020

int Device::maxWorkItemDims() const
{ return p ? p->getProp<cl_uint, int>(CL_DEVICE_MAX_WORK_ITEM_DIMENSIONS) : 0; }

void Device::maxWorkItemSizes(size_t* sizes) const
{
    if(p)
    {
        const int MAX_DIMS = 32;
        size_t retsz = 0;
I
Ilya Lavrenov 已提交
2021 2022
        CV_OclDbgAssert(clGetDeviceInfo(p->handle, CL_DEVICE_MAX_WORK_ITEM_SIZES,
                MAX_DIMS*sizeof(sizes[0]), &sizes[0], &retsz) == CL_SUCCESS);
2023 2024 2025 2026 2027 2028 2029 2030 2031 2032 2033 2034 2035 2036 2037 2038 2039 2040 2041 2042 2043 2044 2045 2046 2047 2048 2049 2050 2051 2052 2053 2054 2055 2056 2057 2058 2059 2060 2061 2062 2063 2064 2065 2066 2067 2068 2069 2070 2071
    }
}

int Device::memBaseAddrAlign() const
{ return p ? p->getProp<cl_uint, int>(CL_DEVICE_MEM_BASE_ADDR_ALIGN) : 0; }

int Device::nativeVectorWidthChar() const
{ return p ? p->getProp<cl_uint, int>(CL_DEVICE_NATIVE_VECTOR_WIDTH_CHAR) : 0; }

int Device::nativeVectorWidthShort() const
{ return p ? p->getProp<cl_uint, int>(CL_DEVICE_NATIVE_VECTOR_WIDTH_SHORT) : 0; }

int Device::nativeVectorWidthInt() const
{ return p ? p->getProp<cl_uint, int>(CL_DEVICE_NATIVE_VECTOR_WIDTH_INT) : 0; }

int Device::nativeVectorWidthLong() const
{ return p ? p->getProp<cl_uint, int>(CL_DEVICE_NATIVE_VECTOR_WIDTH_LONG) : 0; }

int Device::nativeVectorWidthFloat() const
{ return p ? p->getProp<cl_uint, int>(CL_DEVICE_NATIVE_VECTOR_WIDTH_FLOAT) : 0; }

int Device::nativeVectorWidthDouble() const
{ return p ? p->getProp<cl_uint, int>(CL_DEVICE_NATIVE_VECTOR_WIDTH_DOUBLE) : 0; }

int Device::nativeVectorWidthHalf() const
{ return p ? p->getProp<cl_uint, int>(CL_DEVICE_NATIVE_VECTOR_WIDTH_HALF) : 0; }

int Device::preferredVectorWidthChar() const
{ return p ? p->getProp<cl_uint, int>(CL_DEVICE_PREFERRED_VECTOR_WIDTH_CHAR) : 0; }

int Device::preferredVectorWidthShort() const
{ return p ? p->getProp<cl_uint, int>(CL_DEVICE_PREFERRED_VECTOR_WIDTH_SHORT) : 0; }

int Device::preferredVectorWidthInt() const
{ return p ? p->getProp<cl_uint, int>(CL_DEVICE_PREFERRED_VECTOR_WIDTH_INT) : 0; }

int Device::preferredVectorWidthLong() const
{ return p ? p->getProp<cl_uint, int>(CL_DEVICE_PREFERRED_VECTOR_WIDTH_LONG) : 0; }

int Device::preferredVectorWidthFloat() const
{ return p ? p->getProp<cl_uint, int>(CL_DEVICE_PREFERRED_VECTOR_WIDTH_FLOAT) : 0; }

int Device::preferredVectorWidthDouble() const
{ return p ? p->getProp<cl_uint, int>(CL_DEVICE_PREFERRED_VECTOR_WIDTH_DOUBLE) : 0; }

int Device::preferredVectorWidthHalf() const
{ return p ? p->getProp<cl_uint, int>(CL_DEVICE_PREFERRED_VECTOR_WIDTH_HALF) : 0; }

size_t Device::printfBufferSize() const
2072
#ifdef CL_VERSION_1_2
2073
{ return p ? p->getProp<size_t, size_t>(CL_DEVICE_PRINTF_BUFFER_SIZE) : 0; }
2074 2075 2076 2077
#else
{ CV_REQUIRE_OPENCL_1_2_ERROR; }
#endif

2078 2079 2080 2081 2082 2083

size_t Device::profilingTimerResolution() const
{ return p ? p->getProp<size_t, size_t>(CL_DEVICE_PROFILING_TIMER_RESOLUTION) : 0; }

const Device& Device::getDefault()
{
I
Ilya Lavrenov 已提交
2084
    const Context& ctx = Context::getDefault();
2085
    int idx = coreTlsData.get()->device;
2086 2087 2088
    return ctx.device(idx);
}

I
Ilya Lavrenov 已提交
2089
////////////////////////////////////// Context ///////////////////////////////////////////////////
2090

2091 2092 2093 2094 2095 2096 2097 2098 2099 2100 2101
template <typename Functor, typename ObjectType>
inline cl_int getStringInfo(Functor f, ObjectType obj, cl_uint name, std::string& param)
{
    ::size_t required;
    cl_int err = f(obj, name, 0, NULL, &required);
    if (err != CL_SUCCESS)
        return err;

    param.clear();
    if (required > 0)
    {
A
fixes  
Alexander Alekhin 已提交
2102 2103 2104
        AutoBuffer<char> buf(required + 1);
        char* ptr = (char*)buf; // cleanup is not needed
        err = f(obj, name, required, ptr, NULL);
2105 2106
        if (err != CL_SUCCESS)
            return err;
A
fixes  
Alexander Alekhin 已提交
2107
        param = ptr;
2108 2109 2110
    }

    return CL_SUCCESS;
2111
}
2112

I
Ilya Lavrenov 已提交
2113 2114
static void split(const std::string &s, char delim, std::vector<std::string> &elems)
{
A
fixes  
Alexander Alekhin 已提交
2115 2116 2117 2118
    elems.clear();
    if (s.size() == 0)
        return;
    std::istringstream ss(s);
2119
    std::string item;
A
fixes  
Alexander Alekhin 已提交
2120 2121 2122
    while (!ss.eof())
    {
        std::getline(ss, item, delim);
2123 2124 2125 2126 2127 2128 2129 2130 2131 2132 2133
        elems.push_back(item);
    }
}

// Layout: <Platform>:<CPU|GPU|ACCELERATOR|nothing=GPU/CPU>:<deviceName>
// Sample: AMD:GPU:
// Sample: AMD:GPU:Tahiti
// Sample: :GPU|CPU: = '' = ':' = '::'
static bool parseOpenCLDeviceConfiguration(const std::string& configurationStr,
        std::string& platform, std::vector<std::string>& deviceTypes, std::string& deviceNameOrID)
{
A
fixes  
Alexander Alekhin 已提交
2134 2135 2136
    std::vector<std::string> parts;
    split(configurationStr, ':', parts);
    if (parts.size() > 3)
2137
    {
A
fixes  
Alexander Alekhin 已提交
2138 2139 2140 2141 2142 2143 2144 2145
        std::cerr << "ERROR: Invalid configuration string for OpenCL device" << std::endl;
        return false;
    }
    if (parts.size() > 2)
        deviceNameOrID = parts[2];
    if (parts.size() > 1)
    {
        split(parts[1], '|', deviceTypes);
2146
    }
A
fixes  
Alexander Alekhin 已提交
2147
    if (parts.size() > 0)
2148
    {
A
fixes  
Alexander Alekhin 已提交
2149
        platform = parts[0];
2150 2151 2152 2153
    }
    return true;
}

G
GregoryMorse 已提交
2154 2155 2156 2157 2158 2159
#ifdef HAVE_WINRT
static cl_device_id selectOpenCLDevice()
{
    return NULL;
}
#else
2160 2161
static cl_device_id selectOpenCLDevice()
{
I
Ilya Lavrenov 已提交
2162
    std::string platform, deviceName;
2163
    std::vector<std::string> deviceTypes;
I
Ilya Lavrenov 已提交
2164

2165
    const char* configuration = getenv("OPENCV_OPENCL_DEVICE");
I
Ilya Lavrenov 已提交
2166 2167
    if (configuration && !parseOpenCLDeviceConfiguration(std::string(configuration), platform, deviceTypes, deviceName))
        return NULL;
2168 2169 2170 2171 2172 2173 2174 2175 2176 2177 2178 2179 2180 2181 2182 2183 2184 2185 2186 2187 2188 2189

    bool isID = false;
    int deviceID = -1;
    if (deviceName.length() == 1)
    // We limit ID range to 0..9, because we want to write:
    // - '2500' to mean i5-2500
    // - '8350' to mean AMD FX-8350
    // - '650' to mean GeForce 650
    // To extend ID range change condition to '> 0'
    {
        isID = true;
        for (size_t i = 0; i < deviceName.length(); i++)
        {
            if (!isdigit(deviceName[i]))
            {
                isID = false;
                break;
            }
        }
        if (isID)
        {
            deviceID = atoi(deviceName.c_str());
I
Ilya Lavrenov 已提交
2190 2191
            if (deviceID < 0)
                return NULL;
2192 2193 2194 2195
        }
    }

    std::vector<cl_platform_id> platforms;
A
fixes  
Alexander Alekhin 已提交
2196 2197
    {
        cl_uint numPlatforms = 0;
I
Ilya Lavrenov 已提交
2198 2199
        CV_OclDbgAssert(clGetPlatformIDs(0, NULL, &numPlatforms) == CL_SUCCESS);

A
fixes  
Alexander Alekhin 已提交
2200 2201 2202
        if (numPlatforms == 0)
            return NULL;
        platforms.resize((size_t)numPlatforms);
I
Ilya Lavrenov 已提交
2203
        CV_OclDbgAssert(clGetPlatformIDs(numPlatforms, &platforms[0], &numPlatforms) == CL_SUCCESS);
A
fixes  
Alexander Alekhin 已提交
2204 2205
        platforms.resize(numPlatforms);
    }
2206 2207 2208 2209 2210 2211 2212

    int selectedPlatform = -1;
    if (platform.length() > 0)
    {
        for (size_t i = 0; i < platforms.size(); i++)
        {
            std::string name;
I
Ilya Lavrenov 已提交
2213
            CV_OclDbgAssert(getStringInfo(clGetPlatformInfo, platforms[i], CL_PLATFORM_NAME, name) == CL_SUCCESS);
2214 2215 2216 2217 2218 2219 2220 2221 2222 2223 2224 2225 2226 2227 2228 2229 2230 2231 2232 2233 2234 2235 2236 2237 2238
            if (name.find(platform) != std::string::npos)
            {
                selectedPlatform = (int)i;
                break;
            }
        }
        if (selectedPlatform == -1)
        {
            std::cerr << "ERROR: Can't find OpenCL platform by name: " << platform << std::endl;
            goto not_found;
        }
    }
    if (deviceTypes.size() == 0)
    {
        if (!isID)
        {
            deviceTypes.push_back("GPU");
            deviceTypes.push_back("CPU");
        }
        else
            deviceTypes.push_back("ALL");
    }
    for (size_t t = 0; t < deviceTypes.size(); t++)
    {
        int deviceType = 0;
K
Konstantin Matskevich 已提交
2239 2240 2241 2242
        std::string tempStrDeviceType = deviceTypes[t];
        std::transform( tempStrDeviceType.begin(), tempStrDeviceType.end(), tempStrDeviceType.begin(), tolower );

        if (tempStrDeviceType == "gpu" || tempStrDeviceType == "dgpu" || tempStrDeviceType == "igpu")
2243
            deviceType = Device::TYPE_GPU;
K
Konstantin Matskevich 已提交
2244
        else if (tempStrDeviceType == "cpu")
2245
            deviceType = Device::TYPE_CPU;
K
Konstantin Matskevich 已提交
2246
        else if (tempStrDeviceType == "accelerator")
2247
            deviceType = Device::TYPE_ACCELERATOR;
K
Konstantin Matskevich 已提交
2248
        else if (tempStrDeviceType == "all")
2249 2250 2251 2252 2253 2254 2255 2256 2257 2258 2259 2260 2261
            deviceType = Device::TYPE_ALL;
        else
        {
            std::cerr << "ERROR: Unsupported device type for OpenCL device (GPU, CPU, ACCELERATOR): " << deviceTypes[t] << std::endl;
            goto not_found;
        }

        std::vector<cl_device_id> devices; // TODO Use clReleaseDevice to cleanup
        for (int i = selectedPlatform >= 0 ? selectedPlatform : 0;
                (selectedPlatform >= 0 ? i == selectedPlatform : true) && (i < (int)platforms.size());
                i++)
        {
            cl_uint count = 0;
I
Ilya Lavrenov 已提交
2262 2263
            cl_int status = clGetDeviceIDs(platforms[i], deviceType, 0, NULL, &count);
            CV_OclDbgAssert(status == CL_SUCCESS || status == CL_DEVICE_NOT_FOUND);
2264 2265 2266 2267 2268
            if (count == 0)
                continue;
            size_t base = devices.size();
            devices.resize(base + count);
            status = clGetDeviceIDs(platforms[i], deviceType, count, &devices[base], &count);
I
Ilya Lavrenov 已提交
2269
            CV_OclDbgAssert(status == CL_SUCCESS || status == CL_DEVICE_NOT_FOUND);
2270 2271 2272 2273 2274 2275 2276
        }

        for (size_t i = (isID ? deviceID : 0);
             (isID ? (i == (size_t)deviceID) : true) && (i < devices.size());
             i++)
        {
            std::string name;
I
Ilya Lavrenov 已提交
2277
            CV_OclDbgAssert(getStringInfo(clGetDeviceInfo, devices[i], CL_DEVICE_NAME, name) == CL_SUCCESS);
2278
            cl_bool useGPU = true;
K
Konstantin Matskevich 已提交
2279
            if(tempStrDeviceType == "dgpu" || tempStrDeviceType == "igpu")
2280 2281 2282
            {
                cl_bool isIGPU = CL_FALSE;
                clGetDeviceInfo(devices[i], CL_DEVICE_HOST_UNIFIED_MEMORY, sizeof(isIGPU), &isIGPU, NULL);
K
Konstantin Matskevich 已提交
2283
                useGPU = tempStrDeviceType == "dgpu" ? !isIGPU : isIGPU;
2284 2285
            }
            if ( (isID || name.find(deviceName) != std::string::npos) && useGPU)
2286 2287 2288 2289 2290 2291
            {
                // TODO check for OpenCL 1.1
                return devices[i];
            }
        }
    }
I
Ilya Lavrenov 已提交
2292

2293 2294 2295 2296 2297 2298
not_found:
    std::cerr << "ERROR: Required OpenCL device not found, check configuration: " << (configuration == NULL ? "" : configuration) << std::endl
            << "    Platform: " << (platform.length() == 0 ? "any" : platform) << std::endl
            << "    Device types: ";
    for (size_t t = 0; t < deviceTypes.size(); t++)
        std::cerr << deviceTypes[t] << " ";
I
Ilya Lavrenov 已提交
2299

2300
    std::cerr << std::endl << "    Device name: " << (deviceName.length() == 0 ? "any" : deviceName) << std::endl;
K
Konstantin Matskevich 已提交
2301
    CV_Error(CL_INVALID_DEVICE, "Requested OpenCL device is not found");
2302 2303
    return NULL;
}
G
GregoryMorse 已提交
2304
#endif
2305

I
Ilya Lavrenov 已提交
2306
struct Context::Impl
2307
{
2308 2309 2310 2311 2312 2313
    Impl()
    {
        refcount = 1;
        handle = 0;
    }

2314 2315 2316 2317 2318 2319 2320 2321 2322 2323
    void setDefault()
    {
        CV_Assert(handle == NULL);

        cl_device_id d = selectOpenCLDevice();

        if (d == NULL)
            return;

        cl_platform_id pl = NULL;
I
Ilya Lavrenov 已提交
2324
        CV_OclDbgAssert(clGetDeviceInfo(d, CL_DEVICE_PLATFORM, sizeof(cl_platform_id), &pl, NULL) == CL_SUCCESS);
2325 2326 2327 2328 2329 2330 2331 2332

        cl_context_properties prop[] =
        {
            CL_CONTEXT_PLATFORM, (cl_context_properties)pl,
            0
        };

        // !!! in the current implementation force the number of devices to 1 !!!
I
Ilya Lavrenov 已提交
2333 2334
        cl_uint nd = 1;
        cl_int status;
2335 2336

        handle = clCreateContext(prop, nd, &d, 0, 0, &status);
I
Ilya Lavrenov 已提交
2337 2338

        bool ok = handle != 0 && status == CL_SUCCESS;
2339 2340 2341 2342 2343 2344 2345 2346 2347
        if( ok )
        {
            devices.resize(nd);
            devices[0].set(d);
        }
        else
            handle = NULL;
    }

2348 2349 2350 2351 2352 2353 2354 2355 2356 2357 2358 2359 2360 2361 2362
    Impl(int dtype0)
    {
        refcount = 1;
        handle = 0;

        cl_int retval = 0;
        cl_platform_id pl = (cl_platform_id)Platform::getDefault().ptr();
        cl_context_properties prop[] =
        {
            CL_CONTEXT_PLATFORM, (cl_context_properties)pl,
            0
        };

        cl_uint i, nd0 = 0, nd = 0;
        int dtype = dtype0 & 15;
I
Ilya Lavrenov 已提交
2363 2364
        CV_OclDbgAssert(clGetDeviceIDs( pl, dtype, 0, 0, &nd0 ) == CL_SUCCESS);

2365 2366 2367
        AutoBuffer<void*> dlistbuf(nd0*2+1);
        cl_device_id* dlist = (cl_device_id*)(void**)dlistbuf;
        cl_device_id* dlist_new = dlist + nd0;
I
Ilya Lavrenov 已提交
2368
        CV_OclDbgAssert(clGetDeviceIDs(	pl, dtype, nd0, dlist, &nd0 ) == CL_SUCCESS);
2369 2370 2371 2372 2373 2374 2375 2376 2377 2378 2379 2380 2381 2382 2383 2384 2385 2386 2387 2388 2389 2390 2391 2392 2393
        String name0;

        for(i = 0; i < nd0; i++)
        {
            Device d(dlist[i]);
            if( !d.available() || !d.compilerAvailable() )
                continue;
            if( dtype0 == Device::TYPE_DGPU && d.hostUnifiedMemory() )
                continue;
            if( dtype0 == Device::TYPE_IGPU && !d.hostUnifiedMemory() )
                continue;
            String name = d.name();
            if( nd != 0 && name != name0 )
                continue;
            name0 = name;
            dlist_new[nd++] = dlist[i];
        }

        if(nd == 0)
            return;

        // !!! in the current implementation force the number of devices to 1 !!!
        nd = 1;

        handle = clCreateContext(prop, nd, dlist_new, 0, 0, &retval);
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2394
        bool ok = handle != 0 && retval == CL_SUCCESS;
2395 2396 2397 2398 2399 2400 2401 2402 2403 2404 2405
        if( ok )
        {
            devices.resize(nd);
            for( i = 0; i < nd; i++ )
                devices[i].set(dlist_new[i]);
        }
    }

    ~Impl()
    {
        if(handle)
I
Ilya Lavrenov 已提交
2406
        {
2407
            clReleaseContext(handle);
I
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2408 2409
            handle = NULL;
        }
2410 2411 2412
        devices.clear();
    }

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2413
    Program getProg(const ProgramSource& src,
2414 2415 2416 2417 2418 2419 2420 2421 2422
                    const String& buildflags, String& errmsg)
    {
        String prefix = Program::getPrefix(buildflags);
        HashKey k(src.hash(), crc64((const uchar*)prefix.c_str(), prefix.size()));
        phash_t::iterator it = phash.find(k);
        if( it != phash.end() )
            return it->second;
        //String filename = format("%08x%08x_%08x%08x.clb2",
        Program prog(src, buildflags, errmsg);
2423 2424
        if(prog.ptr())
            phash.insert(std::pair<HashKey,Program>(k, prog));
2425 2426 2427 2428 2429 2430 2431 2432
        return prog;
    }

    IMPLEMENT_REFCOUNTABLE();

    cl_context handle;
    std::vector<Device> devices;

I
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2433
    typedef ProgramSource::hash_t hash_t;
2434 2435 2436 2437 2438 2439 2440 2441 2442 2443 2444 2445 2446 2447

    struct HashKey
    {
        HashKey(hash_t _a, hash_t _b) : a(_a), b(_b) {}
        bool operator < (const HashKey& k) const { return a < k.a || (a == k.a && b < k.b); }
        bool operator == (const HashKey& k) const { return a == k.a && b == k.b; }
        bool operator != (const HashKey& k) const { return a != k.a || b != k.b; }
        hash_t a, b;
    };
    typedef std::map<HashKey, Program> phash_t;
    phash_t phash;
};


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Ilya Lavrenov 已提交
2448
Context::Context()
2449 2450 2451 2452
{
    p = 0;
}

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2453
Context::Context(int dtype)
2454 2455 2456 2457 2458
{
    p = 0;
    create(dtype);
}

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2459
bool Context::create()
2460 2461 2462 2463 2464 2465 2466 2467 2468 2469 2470 2471 2472 2473
{
    if( !haveOpenCL() )
        return false;
    if(p)
        p->release();
    p = new Impl();
    if(!p->handle)
    {
        delete p;
        p = 0;
    }
    return p != 0;
}

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2474
bool Context::create(int dtype0)
2475 2476 2477 2478 2479 2480 2481 2482 2483 2484 2485 2486 2487 2488
{
    if( !haveOpenCL() )
        return false;
    if(p)
        p->release();
    p = new Impl(dtype0);
    if(!p->handle)
    {
        delete p;
        p = 0;
    }
    return p != 0;
}

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Ilya Lavrenov 已提交
2489
Context::~Context()
2490
{
2491 2492 2493 2494 2495
    if (p)
    {
        p->release();
        p = NULL;
    }
2496 2497
}

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2498
Context::Context(const Context& c)
2499 2500 2501 2502 2503 2504
{
    p = (Impl*)c.p;
    if(p)
        p->addref();
}

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2505
Context& Context::operator = (const Context& c)
2506 2507 2508 2509 2510 2511 2512 2513 2514 2515
{
    Impl* newp = (Impl*)c.p;
    if(newp)
        newp->addref();
    if(p)
        p->release();
    p = newp;
    return *this;
}

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Ilya Lavrenov 已提交
2516
void* Context::ptr() const
2517
{
2518
    return p == NULL ? NULL : p->handle;
2519 2520
}

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Ilya Lavrenov 已提交
2521
size_t Context::ndevices() const
2522 2523 2524 2525
{
    return p ? p->devices.size() : 0;
}

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2526
const Device& Context::device(size_t idx) const
2527 2528 2529 2530 2531
{
    static Device dummy;
    return !p || idx >= p->devices.size() ? dummy : p->devices[idx];
}

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Ilya Lavrenov 已提交
2532
Context& Context::getDefault(bool initialize)
2533
{
A
Alexander Alekhin 已提交
2534 2535
    static Context* ctx = new Context();
    if(!ctx->p && haveOpenCL())
2536
    {
A
Alexander Alekhin 已提交
2537 2538
        if (!ctx->p)
            ctx->p = new Impl();
2539 2540
        if (initialize)
        {
I
Ilya Lavrenov 已提交
2541
            // do not create new Context right away.
2542
            // First, try to retrieve existing context of the same type.
I
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2543
            // In its turn, Platform::getContext() may call Context::create()
2544
            // if there is no such context.
A
Alexander Alekhin 已提交
2545 2546
            if (ctx->p->handle == NULL)
                ctx->p->setDefault();
2547
        }
2548 2549
    }

A
Alexander Alekhin 已提交
2550
    return *ctx;
2551 2552
}

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Ilya Lavrenov 已提交
2553
Program Context::getProg(const ProgramSource& prog,
2554 2555 2556 2557 2558
                         const String& buildopts, String& errmsg)
{
    return p ? p->getProg(prog, buildopts, errmsg) : Program();
}

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2559
void initializeContextFromHandle(Context& ctx, void* platform, void* _context, void* _device)
2560 2561 2562 2563 2564
{
    cl_context context = (cl_context)_context;
    cl_device_id device = (cl_device_id)_device;

    // cleanup old context
I
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2565
    Context::Impl * impl = ctx.p;
2566 2567
    if (impl->handle)
    {
I
Ilya Lavrenov 已提交
2568
        CV_OclDbgAssert(clReleaseContext(impl->handle) == CL_SUCCESS);
2569 2570 2571 2572 2573 2574 2575 2576
    }
    impl->devices.clear();

    impl->handle = context;
    impl->devices.resize(1);
    impl->devices[0].set(device);

    Platform& p = Platform::getDefault();
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Ilya Lavrenov 已提交
2577
    Platform::Impl* pImpl = p.p;
2578 2579 2580
    pImpl->handle = (cl_platform_id)platform;
}

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2581
/////////////////////////////////////////// Queue /////////////////////////////////////////////
2582

2583 2584
struct Queue::Impl
{
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Ilya Lavrenov 已提交
2585
    Impl(const Context& c, const Device& d)
2586 2587
    {
        refcount = 1;
I
Ilya Lavrenov 已提交
2588
        const Context* pc = &c;
2589 2590 2591
        cl_context ch = (cl_context)pc->ptr();
        if( !ch )
        {
I
Ilya Lavrenov 已提交
2592
            pc = &Context::getDefault();
2593 2594 2595 2596 2597 2598 2599
            ch = (cl_context)pc->ptr();
        }
        cl_device_id dh = (cl_device_id)d.ptr();
        if( !dh )
            dh = (cl_device_id)pc->device(0).ptr();
        cl_int retval = 0;
        handle = clCreateCommandQueue(ch, dh, 0, &retval);
I
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2600
        CV_OclDbgAssert(retval == CL_SUCCESS);
2601 2602 2603 2604
    }

    ~Impl()
    {
2605 2606 2607
#ifdef _WIN32
        if (!cv::__termination)
#endif
2608
        {
2609 2610 2611 2612
            if(handle)
            {
                clFinish(handle);
                clReleaseCommandQueue(handle);
I
Ilya Lavrenov 已提交
2613
                handle = NULL;
2614
            }
2615 2616 2617 2618 2619 2620 2621 2622 2623 2624 2625 2626 2627
        }
    }

    IMPLEMENT_REFCOUNTABLE();

    cl_command_queue handle;
};

Queue::Queue()
{
    p = 0;
}

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Ilya Lavrenov 已提交
2628
Queue::Queue(const Context& c, const Device& d)
2629 2630 2631 2632 2633 2634 2635 2636 2637 2638 2639 2640 2641 2642 2643 2644 2645 2646 2647 2648 2649 2650 2651 2652 2653 2654 2655 2656 2657
{
    p = 0;
    create(c, d);
}

Queue::Queue(const Queue& q)
{
    p = q.p;
    if(p)
        p->addref();
}

Queue& Queue::operator = (const Queue& q)
{
    Impl* newp = (Impl*)q.p;
    if(newp)
        newp->addref();
    if(p)
        p->release();
    p = newp;
    return *this;
}

Queue::~Queue()
{
    if(p)
        p->release();
}

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Ilya Lavrenov 已提交
2658
bool Queue::create(const Context& c, const Device& d)
2659 2660 2661 2662 2663 2664 2665 2666 2667 2668
{
    if(p)
        p->release();
    p = new Impl(c, d);
    return p->handle != 0;
}

void Queue::finish()
{
    if(p && p->handle)
I
Ilya Lavrenov 已提交
2669 2670 2671
    {
        CV_OclDbgAssert(clFinish(p->handle) == CL_SUCCESS);
    }
2672 2673 2674 2675 2676 2677 2678 2679 2680
}

void* Queue::ptr() const
{
    return p ? p->handle : 0;
}

Queue& Queue::getDefault()
{
2681
    Queue& q = coreTlsData.get()->oclQueue;
2682
    if( !q.p && haveOpenCL() )
I
Ilya Lavrenov 已提交
2683
        q.create(Context::getDefault());
2684 2685 2686 2687 2688 2689 2690 2691 2692 2693 2694
    return q;
}

static cl_command_queue getQueue(const Queue& q)
{
    cl_command_queue qq = (cl_command_queue)q.ptr();
    if(!qq)
        qq = (cl_command_queue)Queue::getDefault().ptr();
    return qq;
}

I
Ilya Lavrenov 已提交
2695 2696
/////////////////////////////////////////// KernelArg /////////////////////////////////////////////

2697
KernelArg::KernelArg()
I
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2698
    : flags(0), m(0), obj(0), sz(0), wscale(1), iwscale(1)
2699 2700 2701
{
}

I
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2702 2703
KernelArg::KernelArg(int _flags, UMat* _m, int _wscale, int _iwscale, const void* _obj, size_t _sz)
    : flags(_flags), m(_m), obj(_obj), sz(_sz), wscale(_wscale), iwscale(_iwscale)
2704 2705 2706 2707 2708 2709
{
}

KernelArg KernelArg::Constant(const Mat& m)
{
    CV_Assert(m.isContinuous());
I
Ilya Lavrenov 已提交
2710
    return KernelArg(CONSTANT, 0, 0, 0, m.data, m.total()*m.elemSize());
2711 2712
}

I
Ilya Lavrenov 已提交
2713
/////////////////////////////////////////// Kernel /////////////////////////////////////////////
2714 2715 2716

struct Kernel::Impl
{
I
Ilya Lavrenov 已提交
2717 2718
    Impl(const char* kname, const Program& prog) :
        refcount(1), e(0), nu(0)
2719 2720 2721 2722 2723
    {
        cl_program ph = (cl_program)prog.ptr();
        cl_int retval = 0;
        handle = ph != 0 ?
            clCreateKernel(ph, kname, &retval) : 0;
I
Ilya Lavrenov 已提交
2724
        CV_OclDbgAssert(retval == CL_SUCCESS);
2725 2726
        for( int i = 0; i < MAX_ARRS; i++ )
            u[i] = 0;
2727
        haveTempDstUMats = false;
2728 2729 2730 2731 2732 2733 2734 2735 2736 2737 2738 2739
    }

    void cleanupUMats()
    {
        for( int i = 0; i < MAX_ARRS; i++ )
            if( u[i] )
            {
                if( CV_XADD(&u[i]->urefcount, -1) == 1 )
                    u[i]->currAllocator->deallocate(u[i]);
                u[i] = 0;
            }
        nu = 0;
2740
        haveTempDstUMats = false;
2741 2742
    }

2743
    void addUMat(const UMat& m, bool dst)
2744 2745 2746 2747 2748
    {
        CV_Assert(nu < MAX_ARRS && m.u && m.u->urefcount > 0);
        u[nu] = m.u;
        CV_XADD(&m.u->urefcount, 1);
        nu++;
2749 2750
        if(dst && m.u->tempUMat())
            haveTempDstUMats = true;
2751
    }
2752

2753 2754 2755 2756 2757
    void addImage(const Image2D& image)
    {
        images.push_back(image);
    }

2758 2759
    void finit()
    {
2760
        cleanupUMats();
2761
        images.clear();
2762 2763 2764 2765 2766 2767 2768 2769 2770 2771 2772 2773 2774 2775
        if(e) { clReleaseEvent(e); e = 0; }
        release();
    }

    ~Impl()
    {
        if(handle)
            clReleaseKernel(handle);
    }

    IMPLEMENT_REFCOUNTABLE();

    cl_kernel handle;
    cl_event e;
2776 2777 2778
    enum { MAX_ARRS = 16 };
    UMatData* u[MAX_ARRS];
    int nu;
2779
    std::list<Image2D> images;
2780
    bool haveTempDstUMats;
2781 2782 2783 2784 2785 2786 2787 2788 2789 2790 2791 2792 2793 2794 2795 2796 2797 2798 2799 2800 2801 2802 2803 2804 2805 2806
};

}}

extern "C"
{
static void CL_CALLBACK oclCleanupCallback(cl_event, cl_int, void *p)
{
    ((cv::ocl::Kernel::Impl*)p)->finit();
}

}

namespace cv { namespace ocl {

Kernel::Kernel()
{
    p = 0;
}

Kernel::Kernel(const char* kname, const Program& prog)
{
    p = 0;
    create(kname, prog);
}

I
Ilya Lavrenov 已提交
2807
Kernel::Kernel(const char* kname, const ProgramSource& src,
2808
               const String& buildopts, String* errmsg)
2809 2810 2811 2812 2813 2814 2815 2816 2817 2818 2819 2820 2821 2822 2823 2824 2825 2826 2827 2828 2829 2830 2831 2832 2833 2834 2835 2836 2837 2838 2839 2840 2841 2842 2843 2844 2845 2846 2847 2848 2849 2850
{
    p = 0;
    create(kname, src, buildopts, errmsg);
}

Kernel::Kernel(const Kernel& k)
{
    p = k.p;
    if(p)
        p->addref();
}

Kernel& Kernel::operator = (const Kernel& k)
{
    Impl* newp = (Impl*)k.p;
    if(newp)
        newp->addref();
    if(p)
        p->release();
    p = newp;
    return *this;
}

Kernel::~Kernel()
{
    if(p)
        p->release();
}

bool Kernel::create(const char* kname, const Program& prog)
{
    if(p)
        p->release();
    p = new Impl(kname, prog);
    if(p->handle == 0)
    {
        p->release();
        p = 0;
    }
    return p != 0;
}

I
Ilya Lavrenov 已提交
2851
bool Kernel::create(const char* kname, const ProgramSource& src,
2852
                    const String& buildopts, String* errmsg)
2853 2854 2855 2856 2857 2858
{
    if(p)
    {
        p->release();
        p = 0;
    }
2859 2860
    String tempmsg;
    if( !errmsg ) errmsg = &tempmsg;
I
Ilya Lavrenov 已提交
2861
    const Program& prog = Context::getDefault().getProg(src, buildopts, *errmsg);
2862 2863 2864 2865 2866 2867 2868 2869
    return create(kname, prog);
}

void* Kernel::ptr() const
{
    return p ? p->handle : 0;
}

2870
bool Kernel::empty() const
2871
{
2872 2873 2874 2875 2876
    return ptr() == 0;
}

int Kernel::set(int i, const void* value, size_t sz)
{
I
Ilya Lavrenov 已提交
2877 2878
    if (!p || !p->handle)
        return -1;
2879 2880
    if (i < 0)
        return i;
2881 2882
    if( i == 0 )
        p->cleanupUMats();
I
Ilya Lavrenov 已提交
2883 2884 2885 2886

    cl_int retval = clSetKernelArg(p->handle, (cl_uint)i, sz, value);
    CV_OclDbgAssert(retval == CL_SUCCESS);
    if (retval != CL_SUCCESS)
2887 2888
        return -1;
    return i+1;
2889 2890
}

2891 2892
int Kernel::set(int i, const Image2D& image2D)
{
2893
    p->addImage(image2D);
2894 2895 2896 2897
    cl_mem h = (cl_mem)image2D.ptr();
    return set(i, &h, sizeof(h));
}

2898
int Kernel::set(int i, const UMat& m)
2899
{
2900
    return set(i, KernelArg(KernelArg::READ_WRITE, (UMat*)&m, 0, 0));
2901 2902
}

2903
int Kernel::set(int i, const KernelArg& arg)
2904
{
2905 2906
    if( !p || !p->handle )
        return -1;
2907 2908
    if (i < 0)
        return i;
2909 2910
    if( i == 0 )
        p->cleanupUMats();
2911 2912
    if( arg.m )
    {
2913 2914
        int accessFlags = ((arg.flags & KernelArg::READ_ONLY) ? ACCESS_READ : 0) +
                          ((arg.flags & KernelArg::WRITE_ONLY) ? ACCESS_WRITE : 0);
I
Ilya Lavrenov 已提交
2915
        bool ptronly = (arg.flags & KernelArg::PTR_ONLY) != 0;
2916 2917
        cl_mem h = (cl_mem)arg.m->handle(accessFlags);

I
Ilya Lavrenov 已提交
2918 2919 2920 2921 2922 2923 2924
        if (!h)
        {
            p->release();
            p = 0;
            return -1;
        }

I
Ilya Lavrenov 已提交
2925
        if (ptronly)
I
Ilya Lavrenov 已提交
2926
            CV_OclDbgAssert(clSetKernelArg(p->handle, (cl_uint)i++, sizeof(h), &h) == CL_SUCCESS);
I
Ilya Lavrenov 已提交
2927
        else if( arg.m->dims <= 2 )
2928
        {
2929
            UMat2D u2d(*arg.m);
I
Ilya Lavrenov 已提交
2930 2931 2932
            CV_OclDbgAssert(clSetKernelArg(p->handle, (cl_uint)i, sizeof(h), &h) == CL_SUCCESS);
            CV_OclDbgAssert(clSetKernelArg(p->handle, (cl_uint)(i+1), sizeof(u2d.step), &u2d.step) == CL_SUCCESS);
            CV_OclDbgAssert(clSetKernelArg(p->handle, (cl_uint)(i+2), sizeof(u2d.offset), &u2d.offset) == CL_SUCCESS);
2933 2934 2935 2936
            i += 3;

            if( !(arg.flags & KernelArg::NO_SIZE) )
            {
I
Ilya Lavrenov 已提交
2937
                int cols = u2d.cols*arg.wscale/arg.iwscale;
I
Ilya Lavrenov 已提交
2938 2939
                CV_OclDbgAssert(clSetKernelArg(p->handle, (cl_uint)i, sizeof(u2d.rows), &u2d.rows) == CL_SUCCESS);
                CV_OclDbgAssert(clSetKernelArg(p->handle, (cl_uint)(i+1), sizeof(cols), &cols) == CL_SUCCESS);
2940 2941
                i += 2;
            }
2942 2943 2944
        }
        else
        {
2945
            UMat3D u3d(*arg.m);
I
Ilya Lavrenov 已提交
2946 2947 2948 2949
            CV_OclDbgAssert(clSetKernelArg(p->handle, (cl_uint)i, sizeof(h), &h) == CL_SUCCESS);
            CV_OclDbgAssert(clSetKernelArg(p->handle, (cl_uint)(i+1), sizeof(u3d.slicestep), &u3d.slicestep) == CL_SUCCESS);
            CV_OclDbgAssert(clSetKernelArg(p->handle, (cl_uint)(i+2), sizeof(u3d.step), &u3d.step) == CL_SUCCESS);
            CV_OclDbgAssert(clSetKernelArg(p->handle, (cl_uint)(i+3), sizeof(u3d.offset), &u3d.offset) == CL_SUCCESS);
2950 2951 2952
            i += 4;
            if( !(arg.flags & KernelArg::NO_SIZE) )
            {
I
Ilya Lavrenov 已提交
2953
                int cols = u3d.cols*arg.wscale/arg.iwscale;
I
Ilya Lavrenov 已提交
2954 2955 2956
                CV_OclDbgAssert(clSetKernelArg(p->handle, (cl_uint)i, sizeof(u3d.slices), &u3d.rows) == CL_SUCCESS);
                CV_OclDbgAssert(clSetKernelArg(p->handle, (cl_uint)(i+1), sizeof(u3d.rows), &u3d.rows) == CL_SUCCESS);
                CV_OclDbgAssert(clSetKernelArg(p->handle, (cl_uint)(i+2), sizeof(u3d.cols), &cols) == CL_SUCCESS);
2957 2958
                i += 3;
            }
2959
        }
2960
        p->addUMat(*arg.m, (accessFlags & ACCESS_WRITE) != 0);
2961
        return i;
2962
    }
I
Ilya Lavrenov 已提交
2963
    CV_OclDbgAssert(clSetKernelArg(p->handle, (cl_uint)i, arg.sz, arg.obj) == CL_SUCCESS);
2964
    return i+1;
2965 2966 2967
}


2968
bool Kernel::run(int dims, size_t _globalsize[], size_t _localsize[],
2969
                 bool sync, const Queue& q)
2970
{
2971 2972
    if(!p || !p->handle || p->e != 0)
        return false;
2973

2974
    cl_command_queue qq = getQueue(q);
2975
    size_t offset[CV_MAX_DIM] = {0}, globalsize[CV_MAX_DIM] = {1,1,1};
2976
    size_t total = 1;
2977
    CV_Assert(_globalsize != 0);
2978 2979
    for (int i = 0; i < dims; i++)
    {
2980
        size_t val = _localsize ? _localsize[i] :
I
Ilya Lavrenov 已提交
2981
            dims == 1 ? 64 : dims == 2 ? (i == 0 ? 256 : 8) : dims == 3 ? (8>>(int)(i>0)) : 1;
2982
        CV_Assert( val > 0 );
2983 2984 2985 2986 2987
        total *= _globalsize[i];
        globalsize[i] = ((_globalsize[i] + val - 1)/val)*val;
    }
    if( total == 0 )
        return true;
2988 2989
    if( p->haveTempDstUMats )
        sync = true;
2990
    cl_int retval = clEnqueueNDRangeKernel(qq, p->handle, (cl_uint)dims,
2991
                                           offset, globalsize, _localsize, 0, 0,
2992
                                           sync ? 0 : &p->e);
I
Ilya Lavrenov 已提交
2993
    if( sync || retval != CL_SUCCESS )
2994
    {
I
Ilya Lavrenov 已提交
2995
        CV_OclDbgAssert(clFinish(qq) == CL_SUCCESS);
2996
        p->cleanupUMats();
2997 2998 2999 3000
    }
    else
    {
        p->addref();
I
Ilya Lavrenov 已提交
3001
        CV_OclDbgAssert(clSetEventCallback(p->e, CL_COMPLETE, oclCleanupCallback, p) == CL_SUCCESS);
3002
    }
I
Ilya Lavrenov 已提交
3003
    return retval == CL_SUCCESS;
3004 3005
}

3006
bool Kernel::runTask(bool sync, const Queue& q)
3007
{
3008 3009 3010
    if(!p || !p->handle || p->e != 0)
        return false;

3011
    cl_command_queue qq = getQueue(q);
3012
    cl_int retval = clEnqueueTask(qq, p->handle, 0, 0, sync ? 0 : &p->e);
I
Ilya Lavrenov 已提交
3013
    if( sync || retval != CL_SUCCESS )
3014
    {
I
Ilya Lavrenov 已提交
3015
        CV_OclDbgAssert(clFinish(qq) == CL_SUCCESS);
3016
        p->cleanupUMats();
3017 3018 3019 3020
    }
    else
    {
        p->addref();
I
Ilya Lavrenov 已提交
3021
        CV_OclDbgAssert(clSetEventCallback(p->e, CL_COMPLETE, oclCleanupCallback, p) == CL_SUCCESS);
3022
    }
I
Ilya Lavrenov 已提交
3023
    return retval == CL_SUCCESS;
3024 3025 3026 3027 3028
}


size_t Kernel::workGroupSize() const
{
I
Ilya Lavrenov 已提交
3029
    if(!p || !p->handle)
3030 3031 3032 3033
        return 0;
    size_t val = 0, retsz = 0;
    cl_device_id dev = (cl_device_id)Device::getDefault().ptr();
    return clGetKernelWorkGroupInfo(p->handle, dev, CL_KERNEL_WORK_GROUP_SIZE,
I
Ilya Lavrenov 已提交
3034
                                    sizeof(val), &val, &retsz) == CL_SUCCESS ? val : 0;
3035 3036
}

K
fix  
Konstantin Matskevich 已提交
3037 3038
size_t Kernel::preferedWorkGroupSizeMultiple() const
{
I
Ilya Lavrenov 已提交
3039
    if(!p || !p->handle)
K
fix  
Konstantin Matskevich 已提交
3040 3041 3042 3043
        return 0;
    size_t val = 0, retsz = 0;
    cl_device_id dev = (cl_device_id)Device::getDefault().ptr();
    return clGetKernelWorkGroupInfo(p->handle, dev, CL_KERNEL_PREFERRED_WORK_GROUP_SIZE_MULTIPLE,
I
Ilya Lavrenov 已提交
3044
                                    sizeof(val), &val, &retsz) == CL_SUCCESS ? val : 0;
K
fix  
Konstantin Matskevich 已提交
3045 3046
}

3047 3048
bool Kernel::compileWorkGroupSize(size_t wsz[]) const
{
I
Ilya Lavrenov 已提交
3049
    if(!p || !p->handle || !wsz)
3050 3051 3052 3053
        return 0;
    size_t retsz = 0;
    cl_device_id dev = (cl_device_id)Device::getDefault().ptr();
    return clGetKernelWorkGroupInfo(p->handle, dev, CL_KERNEL_COMPILE_WORK_GROUP_SIZE,
I
Ilya Lavrenov 已提交
3054
                                    sizeof(wsz[0]*3), wsz, &retsz) == CL_SUCCESS;
3055 3056 3057 3058
}

size_t Kernel::localMemSize() const
{
I
Ilya Lavrenov 已提交
3059
    if(!p || !p->handle)
3060 3061 3062 3063 3064
        return 0;
    size_t retsz = 0;
    cl_ulong val = 0;
    cl_device_id dev = (cl_device_id)Device::getDefault().ptr();
    return clGetKernelWorkGroupInfo(p->handle, dev, CL_KERNEL_LOCAL_MEM_SIZE,
I
Ilya Lavrenov 已提交
3065
                                    sizeof(val), &val, &retsz) == CL_SUCCESS ? (size_t)val : 0;
3066 3067
}

I
Ilya Lavrenov 已提交
3068
/////////////////////////////////////////// Program /////////////////////////////////////////////
3069 3070 3071

struct Program::Impl
{
I
Ilya Lavrenov 已提交
3072
    Impl(const ProgramSource& _src,
3073 3074 3075
         const String& _buildflags, String& errmsg)
    {
        refcount = 1;
I
Ilya Lavrenov 已提交
3076
        const Context& ctx = Context::getDefault();
3077 3078 3079 3080 3081 3082 3083 3084
        src = _src;
        buildflags = _buildflags;
        const String& srcstr = src.source();
        const char* srcptr = srcstr.c_str();
        size_t srclen = srcstr.size();
        cl_int retval = 0;

        handle = clCreateProgramWithSource((cl_context)ctx.ptr(), 1, &srcptr, &srclen, &retval);
I
Ilya Lavrenov 已提交
3085
        if( handle && retval == CL_SUCCESS )
3086
        {
I
Ilya Lavrenov 已提交
3087
            int i, n = (int)ctx.ndevices();
3088 3089 3090 3091
            AutoBuffer<void*> deviceListBuf(n+1);
            void** deviceList = deviceListBuf;
            for( i = 0; i < n; i++ )
                deviceList[i] = ctx.device(i).ptr();
3092

3093 3094 3095 3096 3097 3098
            Device device = Device::getDefault();
            if (device.isAMD())
                buildflags += " -D AMD_DEVICE";
            else if (device.isIntel())
                buildflags += " -D INTEL_DEVICE";

3099 3100 3101
            retval = clBuildProgram(handle, n,
                                    (const cl_device_id*)deviceList,
                                    buildflags.c_str(), 0, 0);
3102
#if !CV_OPENCL_ALWAYS_SHOW_BUILD_LOG
I
Ilya Lavrenov 已提交
3103
            if( retval != CL_SUCCESS )
3104
#endif
3105 3106
            {
                size_t retsz = 0;
3107
                cl_int buildInfo_retval = clGetProgramBuildInfo(handle, (cl_device_id)deviceList[0],
3108
                                               CL_PROGRAM_BUILD_LOG, 0, 0, &retsz);
3109
                if (buildInfo_retval == CL_SUCCESS && retsz > 1)
3110 3111 3112
                {
                    AutoBuffer<char> bufbuf(retsz + 16);
                    char* buf = bufbuf;
3113
                    buildInfo_retval = clGetProgramBuildInfo(handle, (cl_device_id)deviceList[0],
3114
                                                   CL_PROGRAM_BUILD_LOG, retsz+1, buf, &retsz);
3115
                    if (buildInfo_retval == CL_SUCCESS)
3116
                    {
3117
                        // TODO It is useful to see kernel name & program file name also
3118
                        errmsg = String(buf);
3119
                        printf("OpenCL program build log: %s\n%s\n", buildflags.c_str(), errmsg.c_str());
I
Ilya Lavrenov 已提交
3120
                        fflush(stdout);
3121 3122
                    }
                }
3123
                if (retval != CL_SUCCESS && handle)
I
Ilya Lavrenov 已提交
3124 3125 3126 3127
                {
                    clReleaseProgram(handle);
                    handle = NULL;
                }
3128 3129 3130 3131 3132 3133 3134 3135 3136 3137 3138 3139
            }
        }
    }

    Impl(const String& _buf, const String& _buildflags)
    {
        refcount = 1;
        handle = 0;
        buildflags = _buildflags;
        if(_buf.empty())
            return;
        String prefix0 = Program::getPrefix(buildflags);
I
Ilya Lavrenov 已提交
3140
        const Context& ctx = Context::getDefault();
3141 3142
        const Device& dev = Device::getDefault();
        const char* pos0 = _buf.c_str();
3143
        const char* pos1 = strchr(pos0, '\n');
3144 3145
        if(!pos1)
            return;
3146
        const char* pos2 = strchr(pos1+1, '\n');
3147 3148
        if(!pos2)
            return;
3149
        const char* pos3 = strchr(pos2+1, '\n');
3150 3151 3152 3153 3154 3155 3156 3157 3158 3159 3160 3161
        if(!pos3)
            return;
        size_t prefixlen = (pos3 - pos0)+1;
        String prefix(pos0, prefixlen);
        if( prefix != prefix0 )
            return;
        const uchar* bin = (uchar*)(pos3+1);
        void* devid = dev.ptr();
        size_t codelen = _buf.length() - prefixlen;
        cl_int binstatus = 0, retval = 0;
        handle = clCreateProgramWithBinary((cl_context)ctx.ptr(), 1, (cl_device_id*)&devid,
                                           &codelen, &bin, &binstatus, &retval);
I
Ilya Lavrenov 已提交
3162
        CV_OclDbgAssert(retval == CL_SUCCESS);
3163 3164 3165 3166 3167 3168 3169 3170 3171
    }

    String store()
    {
        if(!handle)
            return String();
        size_t progsz = 0, retsz = 0;
        String prefix = Program::getPrefix(buildflags);
        size_t prefixlen = prefix.length();
I
Ilya Lavrenov 已提交
3172
        if(clGetProgramInfo(handle, CL_PROGRAM_BINARY_SIZES, sizeof(progsz), &progsz, &retsz) != CL_SUCCESS)
3173 3174 3175 3176 3177
            return String();
        AutoBuffer<uchar> bufbuf(prefixlen + progsz + 16);
        uchar* buf = bufbuf;
        memcpy(buf, prefix.c_str(), prefixlen);
        buf += prefixlen;
I
Ilya Lavrenov 已提交
3178
        if(clGetProgramInfo(handle, CL_PROGRAM_BINARIES, sizeof(buf), &buf, &retsz) != CL_SUCCESS)
3179 3180 3181 3182 3183 3184 3185 3186
            return String();
        buf[progsz] = (uchar)'\0';
        return String((const char*)(uchar*)bufbuf, prefixlen + progsz);
    }

    ~Impl()
    {
        if( handle )
I
Ilya Lavrenov 已提交
3187
        {
A
Alexander Alekhin 已提交
3188 3189 3190 3191 3192 3193
#ifdef _WIN32
            if (!cv::__termination)
#endif
            {
                clReleaseProgram(handle);
            }
I
Ilya Lavrenov 已提交
3194 3195
            handle = NULL;
        }
3196 3197 3198 3199
    }

    IMPLEMENT_REFCOUNTABLE();

I
Ilya Lavrenov 已提交
3200
    ProgramSource src;
3201 3202 3203 3204 3205 3206 3207
    String buildflags;
    cl_program handle;
};


Program::Program() { p = 0; }

I
Ilya Lavrenov 已提交
3208
Program::Program(const ProgramSource& src,
3209 3210 3211 3212 3213 3214 3215 3216 3217 3218 3219 3220 3221 3222 3223 3224 3225 3226 3227 3228 3229 3230 3231 3232 3233 3234 3235 3236 3237 3238
        const String& buildflags, String& errmsg)
{
    p = 0;
    create(src, buildflags, errmsg);
}

Program::Program(const Program& prog)
{
    p = prog.p;
    if(p)
        p->addref();
}

Program& Program::operator = (const Program& prog)
{
    Impl* newp = (Impl*)prog.p;
    if(newp)
        newp->addref();
    if(p)
        p->release();
    p = newp;
    return *this;
}

Program::~Program()
{
    if(p)
        p->release();
}

I
Ilya Lavrenov 已提交
3239
bool Program::create(const ProgramSource& src,
3240 3241 3242 3243 3244 3245 3246 3247 3248 3249 3250 3251 3252
            const String& buildflags, String& errmsg)
{
    if(p)
        p->release();
    p = new Impl(src, buildflags, errmsg);
    if(!p->handle)
    {
        p->release();
        p = 0;
    }
    return p != 0;
}

I
Ilya Lavrenov 已提交
3253
const ProgramSource& Program::source() const
3254
{
I
Ilya Lavrenov 已提交
3255
    static ProgramSource dummy;
3256 3257 3258 3259 3260 3261 3262 3263 3264 3265 3266 3267 3268 3269 3270 3271 3272 3273 3274 3275 3276 3277 3278 3279 3280 3281 3282 3283 3284 3285 3286 3287 3288
    return p ? p->src : dummy;
}

void* Program::ptr() const
{
    return p ? p->handle : 0;
}

bool Program::read(const String& bin, const String& buildflags)
{
    if(p)
        p->release();
    p = new Impl(bin, buildflags);
    return p->handle != 0;
}

bool Program::write(String& bin) const
{
    if(!p)
        return false;
    bin = p->store();
    return !bin.empty();
}

String Program::getPrefix() const
{
    if(!p)
        return String();
    return getPrefix(p->buildflags);
}

String Program::getPrefix(const String& buildflags)
{
I
Ilya Lavrenov 已提交
3289
    const Context& ctx = Context::getDefault();
3290 3291 3292 3293 3294
    const Device& dev = ctx.device(0);
    return format("name=%s\ndriver=%s\nbuildflags=%s\n",
                  dev.name().c_str(), dev.driverVersion().c_str(), buildflags.c_str());
}

I
Ilya Lavrenov 已提交
3295
///////////////////////////////////////// ProgramSource ///////////////////////////////////////////////
3296

I
Ilya Lavrenov 已提交
3297
struct ProgramSource::Impl
3298 3299 3300 3301 3302 3303 3304 3305 3306 3307 3308 3309 3310 3311 3312 3313 3314 3315
{
    Impl(const char* _src)
    {
        init(String(_src));
    }
    Impl(const String& _src)
    {
        init(_src);
    }
    void init(const String& _src)
    {
        refcount = 1;
        src = _src;
        h = crc64((uchar*)src.c_str(), src.size());
    }

    IMPLEMENT_REFCOUNTABLE();
    String src;
I
Ilya Lavrenov 已提交
3316
    ProgramSource::hash_t h;
3317 3318 3319
};


I
Ilya Lavrenov 已提交
3320
ProgramSource::ProgramSource()
3321 3322 3323 3324
{
    p = 0;
}

I
Ilya Lavrenov 已提交
3325
ProgramSource::ProgramSource(const char* prog)
3326 3327 3328 3329
{
    p = new Impl(prog);
}

I
Ilya Lavrenov 已提交
3330
ProgramSource::ProgramSource(const String& prog)
3331 3332 3333 3334
{
    p = new Impl(prog);
}

I
Ilya Lavrenov 已提交
3335
ProgramSource::~ProgramSource()
3336 3337 3338 3339 3340
{
    if(p)
        p->release();
}

I
Ilya Lavrenov 已提交
3341
ProgramSource::ProgramSource(const ProgramSource& prog)
3342 3343 3344 3345 3346 3347
{
    p = prog.p;
    if(p)
        p->addref();
}

I
Ilya Lavrenov 已提交
3348
ProgramSource& ProgramSource::operator = (const ProgramSource& prog)
3349 3350 3351 3352 3353 3354 3355 3356 3357 3358
{
    Impl* newp = (Impl*)prog.p;
    if(newp)
        newp->addref();
    if(p)
        p->release();
    p = newp;
    return *this;
}

I
Ilya Lavrenov 已提交
3359
const String& ProgramSource::source() const
3360 3361 3362 3363 3364
{
    static String dummy;
    return p ? p->src : dummy;
}

I
Ilya Lavrenov 已提交
3365
ProgramSource::hash_t ProgramSource::hash() const
3366 3367 3368 3369
{
    return p ? p->h : 0;
}

I
Ilya Lavrenov 已提交
3370
//////////////////////////////////////////// OpenCLAllocator //////////////////////////////////////////////////
3371

A
Alexander Alekhin 已提交
3372 3373 3374 3375 3376 3377 3378 3379 3380 3381 3382 3383 3384 3385 3386 3387 3388 3389 3390 3391 3392 3393 3394 3395 3396 3397 3398 3399 3400 3401 3402 3403 3404 3405 3406 3407 3408 3409 3410 3411 3412 3413 3414 3415 3416 3417 3418 3419 3420 3421 3422 3423 3424 3425 3426 3427 3428 3429 3430 3431 3432 3433 3434 3435 3436 3437 3438 3439 3440 3441 3442 3443 3444 3445 3446 3447 3448 3449 3450 3451 3452 3453 3454 3455 3456 3457 3458 3459 3460 3461 3462 3463 3464 3465
class OpenCLBufferPool
{
protected:
    ~OpenCLBufferPool() { }
public:
    virtual cl_mem allocate(size_t size, CV_OUT size_t& capacity) = 0;
    virtual void release(cl_mem handle, size_t capacity) = 0;
};

class OpenCLBufferPoolImpl : public BufferPoolController, public OpenCLBufferPool
{
public:
    struct BufferEntry
    {
        cl_mem clBuffer_;
        size_t capacity_;
    };
protected:
    Mutex mutex_;

    size_t currentReservedSize;
    size_t maxReservedSize;

    std::list<BufferEntry> reservedEntries_; // LRU order

    // synchronized
    bool _findAndRemoveEntryFromReservedList(CV_OUT BufferEntry& entry, const size_t size)
    {
        if (reservedEntries_.empty())
            return false;
        std::list<BufferEntry>::iterator i = reservedEntries_.begin();
        std::list<BufferEntry>::iterator result_pos = reservedEntries_.end();
        BufferEntry result = {NULL, 0};
        size_t minDiff = (size_t)(-1);
        for (; i != reservedEntries_.end(); ++i)
        {
            BufferEntry& e = *i;
            if (e.capacity_ >= size)
            {
                size_t diff = e.capacity_ - size;
                if (diff < size / 8 && (result_pos == reservedEntries_.end() || diff < minDiff))
                {
                    minDiff = diff;
                    result_pos = i;
                    result = e;
                    if (diff == 0)
                        break;
                }
            }
        }
        if (result_pos != reservedEntries_.end())
        {
            //CV_DbgAssert(result == *result_pos);
            reservedEntries_.erase(result_pos);
            entry = result;
            currentReservedSize -= entry.capacity_;
            return true;
        }
        return false;
    }

    // synchronized
    void _checkSizeOfReservedEntries()
    {
        while (currentReservedSize > maxReservedSize)
        {
            CV_DbgAssert(!reservedEntries_.empty());
            const BufferEntry& entry = reservedEntries_.back();
            CV_DbgAssert(currentReservedSize >= entry.capacity_);
            currentReservedSize -= entry.capacity_;
            _releaseBufferEntry(entry);
            reservedEntries_.pop_back();
        }
    }

    inline size_t _allocationGranularity(size_t size)
    {
        // heuristic values
        if (size < 1024)
            return 16;
        else if (size < 64*1024)
            return 64;
        else if (size < 1024*1024)
            return 4096;
        else if (size < 16*1024*1024)
            return 64*1024;
        else
            return 1024*1024;
    }

    void _allocateBufferEntry(BufferEntry& entry, size_t size)
    {
        CV_DbgAssert(entry.clBuffer_ == NULL);
        entry.capacity_ = alignSize(size, (int)_allocationGranularity(size));
3466
        Context& ctx = Context::getDefault();
A
Alexander Alekhin 已提交
3467 3468 3469 3470 3471 3472 3473 3474 3475 3476 3477 3478 3479 3480 3481 3482 3483 3484 3485 3486 3487 3488 3489 3490 3491 3492 3493 3494 3495 3496 3497 3498 3499 3500 3501 3502 3503 3504 3505 3506 3507 3508 3509 3510 3511 3512 3513 3514 3515 3516 3517 3518 3519 3520 3521 3522 3523 3524 3525 3526 3527 3528 3529 3530 3531 3532 3533 3534 3535 3536 3537 3538 3539 3540 3541 3542 3543 3544 3545 3546 3547 3548 3549 3550 3551 3552 3553 3554 3555 3556 3557 3558 3559 3560 3561 3562 3563 3564 3565 3566 3567 3568 3569
        cl_int retval = CL_SUCCESS;
        entry.clBuffer_ = clCreateBuffer((cl_context)ctx.ptr(), CL_MEM_READ_WRITE, entry.capacity_, 0, &retval);
        CV_Assert(retval == CL_SUCCESS);
        CV_Assert(entry.clBuffer_ != NULL);
        LOG_BUFFER_POOL("OpenCL allocate %lld (0x%llx) bytes: %p\n",
                (long long)entry.capacity_, (long long)entry.capacity_, entry.clBuffer_);
    }

    void _releaseBufferEntry(const BufferEntry& entry)
    {
        CV_Assert(entry.capacity_ != 0);
        CV_Assert(entry.clBuffer_ != NULL);
        LOG_BUFFER_POOL("OpenCL release buffer: %p, %lld (0x%llx) bytes\n",
                entry.clBuffer_, (long long)entry.capacity_, (long long)entry.capacity_);
        clReleaseMemObject(entry.clBuffer_);
    }
public:
    OpenCLBufferPoolImpl()
        : currentReservedSize(0), maxReservedSize(0)
    {
        // Note: Buffer pool is disabled by default,
        //       because we didn't receive significant performance improvement
        maxReservedSize = getConfigurationParameterForSize("OPENCV_OPENCL_BUFFERPOOL_LIMIT", 0);
    }
    virtual ~OpenCLBufferPoolImpl()
    {
        freeAllReservedBuffers();
        CV_Assert(reservedEntries_.empty());
    }
public:
    virtual cl_mem allocate(size_t size, CV_OUT size_t& capacity)
    {
        BufferEntry entry = {NULL, 0};
        if (maxReservedSize > 0)
        {
            AutoLock locker(mutex_);
            if (_findAndRemoveEntryFromReservedList(entry, size))
            {
                CV_DbgAssert(size <= entry.capacity_);
                LOG_BUFFER_POOL("Reuse reserved buffer: %p\n", entry.clBuffer_);
                capacity = entry.capacity_;
                return entry.clBuffer_;
            }
        }
        _allocateBufferEntry(entry, size);
        capacity = entry.capacity_;
        return entry.clBuffer_;
    }
    virtual void release(cl_mem handle, size_t capacity)
    {
        BufferEntry entry = {handle, capacity};
        if (maxReservedSize == 0 || entry.capacity_ > maxReservedSize / 8)
        {
            _releaseBufferEntry(entry);
        }
        else
        {
            AutoLock locker(mutex_);
            reservedEntries_.push_front(entry);
            currentReservedSize += entry.capacity_;
            _checkSizeOfReservedEntries();
        }
    }

    virtual size_t getReservedSize() const { return currentReservedSize; }
    virtual size_t getMaxReservedSize() const { return maxReservedSize; }
    virtual void setMaxReservedSize(size_t size)
    {
        AutoLock locker(mutex_);
        size_t oldMaxReservedSize = maxReservedSize;
        maxReservedSize = size;
        if (maxReservedSize < oldMaxReservedSize)
        {
            std::list<BufferEntry>::iterator i = reservedEntries_.begin();
            for (; i != reservedEntries_.end();)
            {
                const BufferEntry& entry = *i;
                if (entry.capacity_ > maxReservedSize / 8)
                {
                    CV_DbgAssert(currentReservedSize >= entry.capacity_);
                    currentReservedSize -= entry.capacity_;
                    _releaseBufferEntry(entry);
                    i = reservedEntries_.erase(i);
                    continue;
                }
                ++i;
            }
            _checkSizeOfReservedEntries();
        }
    }
    virtual void freeAllReservedBuffers()
    {
        AutoLock locker(mutex_);
        std::list<BufferEntry>::const_iterator i = reservedEntries_.begin();
        for (; i != reservedEntries_.end(); ++i)
        {
            const BufferEntry& entry = *i;
            _releaseBufferEntry(entry);
        }
        reservedEntries_.clear();
    }
};

3570 3571 3572 3573 3574 3575 3576 3577 3578 3579 3580 3581 3582 3583 3584 3585 3586 3587 3588 3589 3590 3591 3592 3593 3594 3595 3596 3597 3598 3599 3600 3601 3602 3603 3604 3605 3606 3607 3608 3609 3610 3611 3612 3613 3614 3615 3616 3617 3618 3619 3620 3621 3622 3623 3624 3625 3626 3627 3628
#if defined _MSC_VER
#pragma warning(disable:4127) // conditional expression is constant
#endif
template <bool readAccess, bool writeAccess>
class AlignedDataPtr
{
protected:
    const size_t size_;
    uchar* const originPtr_;
    const size_t alignment_;
    uchar* ptr_;
    uchar* allocatedPtr_;

public:
    AlignedDataPtr(uchar* ptr, size_t size, size_t alignment)
        : size_(size), originPtr_(ptr), alignment_(alignment), ptr_(ptr), allocatedPtr_(NULL)
    {
        CV_DbgAssert((alignment & (alignment - 1)) == 0); // check for 2^n
        if (((size_t)ptr_ & (alignment - 1)) != 0)
        {
            allocatedPtr_ = new uchar[size_ + alignment - 1];
            ptr_ = (uchar*)(((uintptr_t)allocatedPtr_ + (alignment - 1)) & ~(alignment - 1));
            if (readAccess)
            {
                memcpy(ptr_, originPtr_, size_);
            }
        }
    }

    uchar* getAlignedPtr() const
    {
        CV_DbgAssert(((size_t)ptr_ & (alignment_ - 1)) == 0);
        return ptr_;
    }

    ~AlignedDataPtr()
    {
        if (allocatedPtr_)
        {
            if (writeAccess)
            {
                memcpy(originPtr_, ptr_, size_);
            }
            delete[] allocatedPtr_;
            allocatedPtr_ = NULL;
        }
        ptr_ = NULL;
    }
private:
    AlignedDataPtr(const AlignedDataPtr&); // disabled
    AlignedDataPtr& operator=(const AlignedDataPtr&); // disabled
};
#if defined _MSC_VER
#pragma warning(default:4127) // conditional expression is constant
#endif

#ifndef CV_OPENCL_DATA_PTR_ALIGNMENT
#define CV_OPENCL_DATA_PTR_ALIGNMENT 16
#endif
A
Alexander Alekhin 已提交
3629

3630 3631
class OpenCLAllocator : public MatAllocator
{
A
Alexander Alekhin 已提交
3632
    mutable OpenCLBufferPoolImpl bufferPool;
3633 3634 3635 3636
    enum AllocatorFlags
    {
        ALLOCATOR_FLAGS_BUFFER_POOL_USED = 1 << 0
    };
3637
public:
3638
    OpenCLAllocator() { matStdAllocator = Mat::getStdAllocator(); }
3639

3640 3641
    UMatData* defaultAllocate(int dims, const int* sizes, int type, void* data, size_t* step,
            int flags, UMatUsageFlags usageFlags) const
3642
    {
3643
        UMatData* u = matStdAllocator->allocate(dims, sizes, type, data, step, flags, usageFlags);
3644 3645 3646
        return u;
    }

3647
    void getBestFlags(const Context& ctx, int /*flags*/, UMatUsageFlags usageFlags, int& createFlags, int& flags0) const
3648 3649
    {
        const Device& dev = ctx.device(0);
3650 3651 3652
        createFlags = 0;
        if ((usageFlags & USAGE_ALLOCATE_HOST_MEMORY) != 0)
            createFlags |= CL_MEM_ALLOC_HOST_PTR;
3653 3654 3655 3656 3657 3658 3659

        if( dev.hostUnifiedMemory() )
            flags0 = 0;
        else
            flags0 = UMatData::COPY_ON_MAP;
    }

3660
    UMatData* allocate(int dims, const int* sizes, int type,
3661
                       void* data, size_t* step, int flags, UMatUsageFlags usageFlags) const
3662 3663
    {
        if(!useOpenCL())
3664
            return defaultAllocate(dims, sizes, type, data, step, flags, usageFlags);
3665
        CV_Assert(data == 0);
3666 3667 3668 3669 3670 3671 3672 3673
        size_t total = CV_ELEM_SIZE(type);
        for( int i = dims-1; i >= 0; i-- )
        {
            if( step )
                step[i] = total;
            total *= sizes[i];
        }

I
Ilya Lavrenov 已提交
3674
        Context& ctx = Context::getDefault();
3675
        int createFlags = 0, flags0 = 0;
3676
        getBestFlags(ctx, flags, usageFlags, createFlags, flags0);
3677

A
Alexander Alekhin 已提交
3678
        size_t capacity = 0;
3679 3680 3681 3682 3683 3684 3685 3686 3687 3688 3689 3690 3691 3692 3693 3694 3695 3696
        void* handle = NULL;
        int allocatorFlags = 0;
        if (createFlags == 0)
        {
            handle = bufferPool.allocate(total, capacity);
            if (!handle)
                return defaultAllocate(dims, sizes, type, data, step, flags, usageFlags);
            allocatorFlags = ALLOCATOR_FLAGS_BUFFER_POOL_USED;
        }
        else
        {
            capacity = total;
            cl_int retval = 0;
            handle = clCreateBuffer((cl_context)ctx.ptr(),
                                          CL_MEM_READ_WRITE|createFlags, total, 0, &retval);
            if( !handle || retval != CL_SUCCESS )
                return defaultAllocate(dims, sizes, type, data, step, flags, usageFlags);
        }
3697 3698 3699
        UMatData* u = new UMatData(this);
        u->data = 0;
        u->size = total;
A
Alexander Alekhin 已提交
3700
        u->capacity = capacity;
3701 3702
        u->handle = handle;
        u->flags = flags0;
3703 3704
        u->allocatorFlags_ = allocatorFlags;
        CV_DbgAssert(!u->tempUMat()); // for bufferPool.release() consistency in deallocate()
3705 3706 3707
        return u;
    }

3708
    bool allocate(UMatData* u, int accessFlags, UMatUsageFlags usageFlags) const
3709 3710 3711 3712 3713 3714 3715 3716 3717
    {
        if(!u)
            return false;

        UMatDataAutoLock lock(u);

        if(u->handle == 0)
        {
            CV_Assert(u->origdata != 0);
I
Ilya Lavrenov 已提交
3718
            Context& ctx = Context::getDefault();
3719
            int createFlags = 0, flags0 = 0;
3720
            getBestFlags(ctx, accessFlags, usageFlags, createFlags, flags0);
3721 3722 3723 3724

            cl_context ctx_handle = (cl_context)ctx.ptr();
            cl_int retval = 0;
            int tempUMatFlags = UMatData::TEMP_UMAT;
3725
            u->handle = clCreateBuffer(ctx_handle, CL_MEM_USE_HOST_PTR|CL_MEM_READ_WRITE,
3726
                                       u->size, u->origdata, &retval);
I
Ilya Lavrenov 已提交
3727
            if((!u->handle || retval != CL_SUCCESS) && !(accessFlags & ACCESS_FAST))
3728
            {
3729
                u->handle = clCreateBuffer(ctx_handle, CL_MEM_COPY_HOST_PTR|CL_MEM_READ_WRITE|createFlags,
3730 3731 3732
                                           u->size, u->origdata, &retval);
                tempUMatFlags = UMatData::TEMP_COPIED_UMAT;
            }
I
Ilya Lavrenov 已提交
3733
            if(!u->handle || retval != CL_SUCCESS)
3734 3735 3736 3737 3738 3739 3740 3741 3742 3743
                return false;
            u->prevAllocator = u->currAllocator;
            u->currAllocator = this;
            u->flags |= tempUMatFlags;
        }
        if(accessFlags & ACCESS_WRITE)
            u->markHostCopyObsolete(true);
        return true;
    }

3744
    /*void sync(UMatData* u) const
3745 3746
    {
        cl_command_queue q = (cl_command_queue)Queue::getDefault().ptr();
3747 3748
        UMatDataAutoLock lock(u);

3749
        if( u->hostCopyObsolete() && u->handle && u->refcount > 0 && u->origdata)
3750
        {
3751 3752 3753 3754 3755 3756 3757 3758 3759 3760 3761 3762 3763 3764
            if( u->tempCopiedUMat() )
            {
                clEnqueueReadBuffer(q, (cl_mem)u->handle, CL_TRUE, 0,
                                    u->size, u->origdata, 0, 0, 0);
            }
            else
            {
                cl_int retval = 0;
                void* data = clEnqueueMapBuffer(q, (cl_mem)u->handle, CL_TRUE,
                                                (CL_MAP_READ | CL_MAP_WRITE),
                                                0, u->size, 0, 0, 0, &retval);
                clEnqueueUnmapMemObject(q, (cl_mem)u->handle, data, 0, 0, 0);
                clFinish(q);
            }
3765 3766 3767 3768 3769 3770 3771
            u->markHostCopyObsolete(false);
        }
        else if( u->copyOnMap() && u->deviceCopyObsolete() && u->data )
        {
            clEnqueueWriteBuffer(q, (cl_mem)u->handle, CL_TRUE, 0,
                                 u->size, u->data, 0, 0, 0);
        }
3772
    }*/
3773

3774 3775 3776 3777 3778
    void deallocate(UMatData* u) const
    {
        if(!u)
            return;

A
Alexander Alekhin 已提交
3779 3780 3781
        CV_Assert(u->urefcount >= 0);
        CV_Assert(u->refcount >= 0);

3782
        // TODO: !!! when we add Shared Virtual Memory Support,
3783
        // this function (as well as the others) should be corrected
3784 3785 3786
        CV_Assert(u->handle != 0 && u->urefcount == 0);
        if(u->tempUMat())
        {
I
async  
Ilya Lavrenov 已提交
3787
//            UMatDataAutoLock lock(u);
3788
            if( u->hostCopyObsolete() && u->refcount > 0 )
3789
            {
3790 3791 3792
                cl_command_queue q = (cl_command_queue)Queue::getDefault().ptr();
                if( u->tempCopiedUMat() )
                {
3793
                    AlignedDataPtr<false, true> alignedPtr(u->origdata, u->size, CV_OPENCL_DATA_PTR_ALIGNMENT);
I
Ilya Lavrenov 已提交
3794
                    CV_OclDbgAssert(clEnqueueReadBuffer(q, (cl_mem)u->handle, CL_TRUE, 0,
3795
                                        u->size, alignedPtr.getAlignedPtr(), 0, 0, 0) == CL_SUCCESS);
3796 3797 3798 3799 3800 3801 3802
                }
                else
                {
                    cl_int retval = 0;
                    void* data = clEnqueueMapBuffer(q, (cl_mem)u->handle, CL_TRUE,
                                                    (CL_MAP_READ | CL_MAP_WRITE),
                                                    0, u->size, 0, 0, 0, &retval);
I
Ilya Lavrenov 已提交
3803 3804 3805
                    CV_OclDbgAssert(retval == CL_SUCCESS);
                    CV_OclDbgAssert(clEnqueueUnmapMemObject(q, (cl_mem)u->handle, data, 0, 0, 0) == CL_SUCCESS);
                    CV_OclDbgAssert(clFinish(q) == CL_SUCCESS);
3806
                }
3807 3808 3809
            }
            u->markHostCopyObsolete(false);
            clReleaseMemObject((cl_mem)u->handle);
K
Konstantin Matskevich 已提交
3810
            u->handle = 0;
3811
            u->currAllocator = u->prevAllocator;
3812
            if(u->data && u->copyOnMap() && !(u->flags & UMatData::USER_ALLOCATED))
3813 3814
                fastFree(u->data);
            u->data = u->origdata;
3815 3816 3817 3818 3819
            if(u->refcount == 0)
                u->currAllocator->deallocate(u);
        }
        else
        {
3820
            CV_Assert(u->refcount == 0);
3821 3822
            if(u->data && u->copyOnMap() && !(u->flags & UMatData::USER_ALLOCATED))
            {
3823
                fastFree(u->data);
3824 3825
                u->data = 0;
            }
3826 3827 3828 3829 3830 3831 3832 3833
            if (u->allocatorFlags_ & ALLOCATOR_FLAGS_BUFFER_POOL_USED)
            {
                bufferPool.release((cl_mem)u->handle, u->capacity);
            }
            else
            {
                clReleaseMemObject((cl_mem)u->handle);
            }
K
Konstantin Matskevich 已提交
3834
            u->handle = 0;
A
Alexander Alekhin 已提交
3835
            u->capacity = 0;
3836 3837 3838 3839 3840 3841 3842 3843 3844 3845 3846 3847 3848 3849 3850 3851 3852 3853
            delete u;
        }
    }

    void map(UMatData* u, int accessFlags) const
    {
        if(!u)
            return;

        CV_Assert( u->handle != 0 );

        UMatDataAutoLock autolock(u);

        if(accessFlags & ACCESS_WRITE)
            u->markDeviceCopyObsolete(true);

        cl_command_queue q = (cl_command_queue)Queue::getDefault().ptr();

3854 3855
        // FIXIT Workaround for UMat synchronization issue
        // if( u->refcount == 0 )
3856 3857 3858
        {
            if( !u->copyOnMap() )
            {
3859 3860 3861 3862 3863
                if (u->data) // FIXIT Workaround for UMat synchronization issue
                {
                    //CV_Assert(u->hostCopyObsolete() == false);
                    return;
                }
3864 3865 3866 3867 3868 3869
                // because there can be other map requests for the same UMat with different access flags,
                // we use the universal (read-write) access mode.
                cl_int retval = 0;
                u->data = (uchar*)clEnqueueMapBuffer(q, (cl_mem)u->handle, CL_TRUE,
                                                     (CL_MAP_READ | CL_MAP_WRITE),
                                                     0, u->size, 0, 0, 0, &retval);
I
Ilya Lavrenov 已提交
3870
                if(u->data && retval == CL_SUCCESS)
3871 3872 3873 3874 3875 3876 3877 3878 3879 3880 3881 3882 3883 3884 3885 3886 3887 3888
                {
                    u->markHostCopyObsolete(false);
                    return;
                }

                // if map failed, switch to copy-on-map mode for the particular buffer
                u->flags |= UMatData::COPY_ON_MAP;
            }

            if(!u->data)
            {
                u->data = (uchar*)fastMalloc(u->size);
                u->markHostCopyObsolete(true);
            }
        }

        if( (accessFlags & ACCESS_READ) != 0 && u->hostCopyObsolete() )
        {
3889
            AlignedDataPtr<false, true> alignedPtr(u->data, u->size, CV_OPENCL_DATA_PTR_ALIGNMENT);
3890
            CV_Assert( clEnqueueReadBuffer(q, (cl_mem)u->handle, CL_TRUE, 0,
3891
                                           u->size, alignedPtr.getAlignedPtr(), 0, 0, 0) == CL_SUCCESS );
3892 3893 3894 3895 3896 3897 3898 3899 3900 3901 3902 3903 3904
            u->markHostCopyObsolete(false);
        }
    }

    void unmap(UMatData* u) const
    {
        if(!u)
            return;

        CV_Assert(u->handle != 0);

        UMatDataAutoLock autolock(u);

3905 3906 3907 3908
        // FIXIT Workaround for UMat synchronization issue
        if(u->refcount > 0)
            return;

3909
        cl_command_queue q = (cl_command_queue)Queue::getDefault().ptr();
3910
        cl_int retval = 0;
3911 3912
        if( !u->copyOnMap() && u->data )
        {
3913
            CV_Assert( (retval = clEnqueueUnmapMemObject(q,
I
Ilya Lavrenov 已提交
3914 3915
                                (cl_mem)u->handle, u->data, 0, 0, 0)) == CL_SUCCESS );
            CV_OclDbgAssert(clFinish(q) == CL_SUCCESS);
3916 3917 3918 3919
            u->data = 0;
        }
        else if( u->copyOnMap() && u->deviceCopyObsolete() )
        {
3920
            AlignedDataPtr<true, false> alignedPtr(u->data, u->size, CV_OPENCL_DATA_PTR_ALIGNMENT);
3921
            CV_Assert( (retval = clEnqueueWriteBuffer(q, (cl_mem)u->handle, CL_TRUE, 0,
3922
                                u->size, alignedPtr.getAlignedPtr(), 0, 0, 0)) == CL_SUCCESS );
3923 3924 3925 3926 3927 3928 3929 3930 3931 3932 3933 3934 3935 3936 3937 3938 3939 3940
        }
        u->markDeviceCopyObsolete(false);
        u->markHostCopyObsolete(false);
    }

    bool checkContinuous(int dims, const size_t sz[],
                         const size_t srcofs[], const size_t srcstep[],
                         const size_t dstofs[], const size_t dststep[],
                         size_t& total, size_t new_sz[],
                         size_t& srcrawofs, size_t new_srcofs[], size_t new_srcstep[],
                         size_t& dstrawofs, size_t new_dstofs[], size_t new_dststep[]) const
    {
        bool iscontinuous = true;
        srcrawofs = srcofs ? srcofs[dims-1] : 0;
        dstrawofs = dstofs ? dstofs[dims-1] : 0;
        total = sz[dims-1];
        for( int i = dims-2; i >= 0; i-- )
        {
3941
            if( i >= 0 && (total != srcstep[i] || total != dststep[i]) )
3942 3943 3944 3945 3946 3947 3948 3949 3950 3951 3952 3953 3954 3955 3956 3957 3958 3959 3960 3961 3962 3963 3964 3965 3966 3967 3968 3969 3970 3971 3972 3973 3974 3975 3976 3977 3978 3979 3980 3981 3982 3983 3984 3985 3986 3987 3988 3989 3990 3991 3992 3993 3994 3995 3996 3997 3998 3999 4000 4001 4002 4003 4004 4005 4006 4007 4008 4009 4010 4011 4012 4013 4014 4015 4016 4017 4018 4019 4020 4021 4022 4023 4024 4025 4026
                iscontinuous = false;
            total *= sz[i];
            if( srcofs )
                srcrawofs += srcofs[i]*srcstep[i];
            if( dstofs )
                dstrawofs += dstofs[i]*dststep[i];
        }

        if( !iscontinuous )
        {
            // OpenCL uses {x, y, z} order while OpenCV uses {z, y, x} order.
            if( dims == 2 )
            {
                new_sz[0] = sz[1]; new_sz[1] = sz[0]; new_sz[2] = 1;
                // we assume that new_... arrays are initialized by caller
                // with 0's, so there is no else branch
                if( srcofs )
                {
                    new_srcofs[0] = srcofs[1];
                    new_srcofs[1] = srcofs[0];
                    new_srcofs[2] = 0;
                }

                if( dstofs )
                {
                    new_dstofs[0] = dstofs[1];
                    new_dstofs[1] = dstofs[0];
                    new_dstofs[2] = 0;
                }

                new_srcstep[0] = srcstep[0]; new_srcstep[1] = 0;
                new_dststep[0] = dststep[0]; new_dststep[1] = 0;
            }
            else
            {
                // we could check for dims == 3 here,
                // but from user perspective this one is more informative
                CV_Assert(dims <= 3);
                new_sz[0] = sz[2]; new_sz[1] = sz[1]; new_sz[2] = sz[0];
                if( srcofs )
                {
                    new_srcofs[0] = srcofs[2];
                    new_srcofs[1] = srcofs[1];
                    new_srcofs[2] = srcofs[0];
                }

                if( dstofs )
                {
                    new_dstofs[0] = dstofs[2];
                    new_dstofs[1] = dstofs[1];
                    new_dstofs[2] = dstofs[0];
                }

                new_srcstep[0] = srcstep[1]; new_srcstep[1] = srcstep[0];
                new_dststep[0] = dststep[1]; new_dststep[1] = dststep[0];
            }
        }
        return iscontinuous;
    }

    void download(UMatData* u, void* dstptr, int dims, const size_t sz[],
                  const size_t srcofs[], const size_t srcstep[],
                  const size_t dststep[]) const
    {
        if(!u)
            return;
        UMatDataAutoLock autolock(u);

        if( u->data && !u->hostCopyObsolete() )
        {
            Mat::getStdAllocator()->download(u, dstptr, dims, sz, srcofs, srcstep, dststep);
            return;
        }
        CV_Assert( u->handle != 0 );

        cl_command_queue q = (cl_command_queue)Queue::getDefault().ptr();

        size_t total = 0, new_sz[] = {0, 0, 0};
        size_t srcrawofs = 0, new_srcofs[] = {0, 0, 0}, new_srcstep[] = {0, 0, 0};
        size_t dstrawofs = 0, new_dstofs[] = {0, 0, 0}, new_dststep[] = {0, 0, 0};

        bool iscontinuous = checkContinuous(dims, sz, srcofs, srcstep, 0, dststep,
                                            total, new_sz,
                                            srcrawofs, new_srcofs, new_srcstep,
                                            dstrawofs, new_dstofs, new_dststep);
4027 4028

        AlignedDataPtr<false, true> alignedPtr((uchar*)dstptr, sz[0] * dststep[0], CV_OPENCL_DATA_PTR_ALIGNMENT);
4029 4030 4031
        if( iscontinuous )
        {
            CV_Assert( clEnqueueReadBuffer(q, (cl_mem)u->handle, CL_TRUE,
4032
                                           srcrawofs, total, alignedPtr.getAlignedPtr(), 0, 0, 0) == CL_SUCCESS );
4033 4034 4035 4036 4037
        }
        else
        {
            CV_Assert( clEnqueueReadBufferRect(q, (cl_mem)u->handle, CL_TRUE,
                            new_srcofs, new_dstofs, new_sz, new_srcstep[0], new_srcstep[1],
4038
                            new_dststep[0], new_dststep[1], alignedPtr.getAlignedPtr(), 0, 0, 0) == CL_SUCCESS );
4039 4040 4041 4042 4043 4044 4045 4046 4047 4048 4049
        }
    }

    void upload(UMatData* u, const void* srcptr, int dims, const size_t sz[],
                const size_t dstofs[], const size_t dststep[],
                const size_t srcstep[]) const
    {
        if(!u)
            return;

        // there should be no user-visible CPU copies of the UMat which we are going to copy to
4050
        CV_Assert(u->refcount == 0 || u->tempUMat());
4051 4052 4053 4054 4055 4056 4057 4058 4059 4060 4061 4062 4063 4064 4065 4066 4067

        size_t total = 0, new_sz[] = {0, 0, 0};
        size_t srcrawofs = 0, new_srcofs[] = {0, 0, 0}, new_srcstep[] = {0, 0, 0};
        size_t dstrawofs = 0, new_dstofs[] = {0, 0, 0}, new_dststep[] = {0, 0, 0};

        bool iscontinuous = checkContinuous(dims, sz, 0, srcstep, dstofs, dststep,
                                            total, new_sz,
                                            srcrawofs, new_srcofs, new_srcstep,
                                            dstrawofs, new_dstofs, new_dststep);

        UMatDataAutoLock autolock(u);

        // if there is cached CPU copy of the GPU matrix,
        // we could use it as a destination.
        // we can do it in 2 cases:
        //    1. we overwrite the whole content
        //    2. we overwrite part of the matrix, but the GPU copy is out-of-date
I
Ilya Lavrenov 已提交
4068
        if( u->data && (u->hostCopyObsolete() < u->deviceCopyObsolete() || total == u->size))
4069 4070 4071 4072 4073 4074 4075 4076 4077 4078
        {
            Mat::getStdAllocator()->upload(u, srcptr, dims, sz, dstofs, dststep, srcstep);
            u->markHostCopyObsolete(false);
            u->markDeviceCopyObsolete(true);
            return;
        }

        CV_Assert( u->handle != 0 );
        cl_command_queue q = (cl_command_queue)Queue::getDefault().ptr();

4079
        AlignedDataPtr<true, false> alignedPtr((uchar*)srcptr, sz[0] * srcstep[0], CV_OPENCL_DATA_PTR_ALIGNMENT);
4080 4081 4082
        if( iscontinuous )
        {
            CV_Assert( clEnqueueWriteBuffer(q, (cl_mem)u->handle,
I
Ilya Lavrenov 已提交
4083
                CL_TRUE, dstrawofs, total, srcptr, 0, 0, 0) == CL_SUCCESS );
4084 4085 4086 4087 4088
        }
        else
        {
            CV_Assert( clEnqueueWriteBufferRect(q, (cl_mem)u->handle, CL_TRUE,
                new_dstofs, new_srcofs, new_sz, new_dststep[0], new_dststep[1],
I
Ilya Lavrenov 已提交
4089
                new_srcstep[0], new_srcstep[1], srcptr, 0, 0, 0) == CL_SUCCESS );
4090 4091 4092 4093 4094 4095 4096 4097
        }

        u->markHostCopyObsolete(true);
        u->markDeviceCopyObsolete(false);
    }

    void copy(UMatData* src, UMatData* dst, int dims, const size_t sz[],
              const size_t srcofs[], const size_t srcstep[],
4098
              const size_t dstofs[], const size_t dststep[], bool _sync) const
4099 4100 4101 4102 4103 4104 4105 4106 4107 4108 4109 4110 4111 4112 4113 4114
    {
        if(!src || !dst)
            return;

        size_t total = 0, new_sz[] = {0, 0, 0};
        size_t srcrawofs = 0, new_srcofs[] = {0, 0, 0}, new_srcstep[] = {0, 0, 0};
        size_t dstrawofs = 0, new_dstofs[] = {0, 0, 0}, new_dststep[] = {0, 0, 0};

        bool iscontinuous = checkContinuous(dims, sz, srcofs, srcstep, dstofs, dststep,
                                            total, new_sz,
                                            srcrawofs, new_srcofs, new_srcstep,
                                            dstrawofs, new_dstofs, new_dststep);

        UMatDataAutoLock src_autolock(src);
        UMatDataAutoLock dst_autolock(dst);

I
Ilya Lavrenov 已提交
4115
        if( !src->handle || (src->data && src->hostCopyObsolete() < src->deviceCopyObsolete()) )
4116 4117 4118 4119
        {
            upload(dst, src->data + srcrawofs, dims, sz, dstofs, dststep, srcstep);
            return;
        }
I
Ilya Lavrenov 已提交
4120
        if( !dst->handle || (dst->data && dst->hostCopyObsolete() < dst->deviceCopyObsolete()) )
4121 4122 4123 4124 4125 4126 4127 4128 4129 4130 4131 4132 4133 4134
        {
            download(src, dst->data + dstrawofs, dims, sz, srcofs, srcstep, dststep);
            dst->markHostCopyObsolete(false);
            dst->markDeviceCopyObsolete(true);
            return;
        }

        // there should be no user-visible CPU copies of the UMat which we are going to copy to
        CV_Assert(dst->refcount == 0);
        cl_command_queue q = (cl_command_queue)Queue::getDefault().ptr();

        if( iscontinuous )
        {
            CV_Assert( clEnqueueCopyBuffer(q, (cl_mem)src->handle, (cl_mem)dst->handle,
I
Ilya Lavrenov 已提交
4135
                                           srcrawofs, dstrawofs, total, 0, 0, 0) == CL_SUCCESS );
4136 4137 4138
        }
        else
        {
4139 4140
            cl_int retval;
            CV_Assert( (retval = clEnqueueCopyBufferRect(q, (cl_mem)src->handle, (cl_mem)dst->handle,
4141
                                               new_srcofs, new_dstofs, new_sz,
4142 4143
                                               new_srcstep[0], new_srcstep[1],
                                               new_dststep[0], new_dststep[1],
I
Ilya Lavrenov 已提交
4144
                                               0, 0, 0)) == CL_SUCCESS );
4145 4146 4147 4148 4149
        }

        dst->markHostCopyObsolete(true);
        dst->markDeviceCopyObsolete(false);

4150
        if( _sync )
I
Ilya Lavrenov 已提交
4151 4152 4153
        {
            CV_OclDbgAssert(clFinish(q) == CL_SUCCESS);
        }
4154
    }
4155

A
Alexander Alekhin 已提交
4156 4157
    BufferPoolController* getBufferPoolController() const { return &bufferPool; }

4158
    MatAllocator* matStdAllocator;
4159 4160 4161 4162
};

MatAllocator* getOpenCLAllocator()
{
4163 4164
    static MatAllocator * allocator = new OpenCLAllocator();
    return allocator;
4165 4166
}

I
Ilya Lavrenov 已提交
4167
///////////////////////////////////////////// Utility functions /////////////////////////////////////////////////
K
Konstantin Matskevich 已提交
4168

I
Ilya Lavrenov 已提交
4169
static void getDevices(std::vector<cl_device_id>& devices, cl_platform_id platform)
K
Konstantin Matskevich 已提交
4170 4171
{
    cl_uint numDevices = 0;
I
Ilya Lavrenov 已提交
4172 4173 4174
    CV_OclDbgAssert(clGetDeviceIDs(platform, (cl_device_type)Device::TYPE_ALL,
                                0, NULL, &numDevices) == CL_SUCCESS);

K
Konstantin Matskevich 已提交
4175
    if (numDevices == 0)
I
Ilya Lavrenov 已提交
4176 4177
    {
        devices.clear();
K
Konstantin Matskevich 已提交
4178
        return;
I
Ilya Lavrenov 已提交
4179 4180
    }

K
Konstantin Matskevich 已提交
4181
    devices.resize((size_t)numDevices);
I
Ilya Lavrenov 已提交
4182 4183
    CV_OclDbgAssert(clGetDeviceIDs(platform, (cl_device_type)Device::TYPE_ALL,
                                numDevices, &devices[0], &numDevices) == CL_SUCCESS);
K
Konstantin Matskevich 已提交
4184 4185
}

I
Ilya Lavrenov 已提交
4186
struct PlatformInfo::Impl
K
Konstantin Matskevich 已提交
4187 4188 4189
{
    Impl(void* id)
    {
4190
        refcount = 1;
K
Konstantin Matskevich 已提交
4191 4192 4193 4194 4195 4196 4197 4198
        handle = *(cl_platform_id*)id;
        getDevices(devices, handle);
    }

    String getStrProp(cl_device_info prop) const
    {
        char buf[1024];
        size_t sz=0;
I
Ilya Lavrenov 已提交
4199
        return clGetPlatformInfo(handle, prop, sizeof(buf)-16, buf, &sz) == CL_SUCCESS &&
K
Konstantin Matskevich 已提交
4200 4201 4202 4203 4204 4205 4206 4207
            sz < sizeof(buf) ? String(buf) : String();
    }

    IMPLEMENT_REFCOUNTABLE();
    std::vector<cl_device_id> devices;
    cl_platform_id handle;
};

I
Ilya Lavrenov 已提交
4208
PlatformInfo::PlatformInfo()
K
Konstantin Matskevich 已提交
4209 4210 4211 4212
{
    p = 0;
}

I
Ilya Lavrenov 已提交
4213
PlatformInfo::PlatformInfo(void* platform_id)
K
Konstantin Matskevich 已提交
4214 4215 4216 4217
{
    p = new Impl(platform_id);
}

I
Ilya Lavrenov 已提交
4218
PlatformInfo::~PlatformInfo()
K
Konstantin Matskevich 已提交
4219 4220 4221 4222 4223
{
    if(p)
        p->release();
}

I
Ilya Lavrenov 已提交
4224
PlatformInfo::PlatformInfo(const PlatformInfo& i)
4225 4226 4227
{
    if (i.p)
        i.p->addref();
I
Ilya Lavrenov 已提交
4228
    p = i.p;
4229 4230
}

I
Ilya Lavrenov 已提交
4231
PlatformInfo& PlatformInfo::operator =(const PlatformInfo& i)
4232
{
I
Ilya Lavrenov 已提交
4233
    if (i.p != p)
4234 4235 4236
    {
        if (i.p)
            i.p->addref();
I
Ilya Lavrenov 已提交
4237 4238 4239
        if (p)
            p->release();
        p = i.p;
4240 4241 4242 4243
    }
    return *this;
}

I
Ilya Lavrenov 已提交
4244
int PlatformInfo::deviceNumber() const
K
Konstantin Matskevich 已提交
4245 4246 4247 4248
{
    return p ? (int)p->devices.size() : 0;
}

I
Ilya Lavrenov 已提交
4249
void PlatformInfo::getDevice(Device& device, int d) const
K
Konstantin Matskevich 已提交
4250
{
4251
    CV_Assert(p && d < (int)p->devices.size() );
K
Konstantin Matskevich 已提交
4252 4253 4254 4255
    if(p)
        device.set(p->devices[d]);
}

I
Ilya Lavrenov 已提交
4256
String PlatformInfo::name() const
K
Konstantin Matskevich 已提交
4257 4258 4259 4260
{
    return p ? p->getStrProp(CL_PLATFORM_NAME) : String();
}

I
Ilya Lavrenov 已提交
4261
String PlatformInfo::vendor() const
K
Konstantin Matskevich 已提交
4262 4263 4264 4265
{
    return p ? p->getStrProp(CL_PLATFORM_VENDOR) : String();
}

I
Ilya Lavrenov 已提交
4266
String PlatformInfo::version() const
K
Konstantin Matskevich 已提交
4267 4268 4269 4270 4271 4272 4273
{
    return p ? p->getStrProp(CL_PLATFORM_VERSION) : String();
}

static void getPlatforms(std::vector<cl_platform_id>& platforms)
{
    cl_uint numPlatforms = 0;
I
Ilya Lavrenov 已提交
4274 4275
    CV_OclDbgAssert(clGetPlatformIDs(0, NULL, &numPlatforms) == CL_SUCCESS);

K
Konstantin Matskevich 已提交
4276
    if (numPlatforms == 0)
I
Ilya Lavrenov 已提交
4277 4278
    {
        platforms.clear();
K
Konstantin Matskevich 已提交
4279
        return;
I
Ilya Lavrenov 已提交
4280 4281
    }

K
Konstantin Matskevich 已提交
4282
    platforms.resize((size_t)numPlatforms);
I
Ilya Lavrenov 已提交
4283
    CV_OclDbgAssert(clGetPlatformIDs(numPlatforms, &platforms[0], &numPlatforms) == CL_SUCCESS);
K
Konstantin Matskevich 已提交
4284 4285
}

I
Ilya Lavrenov 已提交
4286
void getPlatfomsInfo(std::vector<PlatformInfo>& platformsInfo)
K
Konstantin Matskevich 已提交
4287 4288 4289
{
    std::vector<cl_platform_id> platforms;
    getPlatforms(platforms);
I
Ilya Lavrenov 已提交
4290

K
Konstantin Matskevich 已提交
4291
    for (size_t i = 0; i < platforms.size(); i++)
I
Ilya Lavrenov 已提交
4292
        platformsInfo.push_back( PlatformInfo((void*)&platforms[i]) );
K
Konstantin Matskevich 已提交
4293 4294
}

I
Ilya Lavrenov 已提交
4295
const char* typeToStr(int type)
4296 4297 4298
{
    static const char* tab[]=
    {
I
Ilya Lavrenov 已提交
4299 4300 4301 4302 4303 4304 4305 4306
        "uchar", "uchar2", "uchar3", "uchar4", 0, 0, 0, "uchar8", 0, 0, 0, 0, 0, 0, 0, "uchar16",
        "char", "char2", "char3", "char4", 0, 0, 0, "char8", 0, 0, 0, 0, 0, 0, 0, "char16",
        "ushort", "ushort2", "ushort3", "ushort4",0, 0, 0, "ushort8", 0, 0, 0, 0, 0, 0, 0, "ushort16",
        "short", "short2", "short3", "short4", 0, 0, 0, "short8", 0, 0, 0, 0, 0, 0, 0, "short16",
        "int", "int2", "int3", "int4", 0, 0, 0, "int8", 0, 0, 0, 0, 0, 0, 0, "int16",
        "float", "float2", "float3", "float4", 0, 0, 0, "float8", 0, 0, 0, 0, 0, 0, 0, "float16",
        "double", "double2", "double3", "double4", 0, 0, 0, "double8", 0, 0, 0, 0, 0, 0, 0, "double16",
        "?", "?", "?", "?", "?", "?", "?", "?", "?", "?", "?", "?", "?", "?", "?", "?"
4307
    };
I
Ilya Lavrenov 已提交
4308
    int cn = CV_MAT_CN(type), depth = CV_MAT_DEPTH(type);
I
Ilya Lavrenov 已提交
4309
    return cn > 16 ? "?" : tab[depth*16 + cn-1];
4310 4311
}

I
Ilya Lavrenov 已提交
4312
const char* memopTypeToStr(int type)
4313
{
4314
    static const char* tab[] =
4315
    {
I
Ilya Lavrenov 已提交
4316 4317 4318 4319 4320 4321 4322 4323
        "uchar", "uchar2", "uchar3", "uchar4", 0, 0, 0, "uchar8", 0, 0, 0, 0, 0, 0, 0, "uchar16",
        "char", "char2", "char3", "char4", 0, 0, 0, "char8", 0, 0, 0, 0, 0, 0, 0, "char16",
        "ushort", "ushort2", "ushort3", "ushort4",0, 0, 0, "ushort8", 0, 0, 0, 0, 0, 0, 0, "ushort16",
        "short", "short2", "short3", "short4", 0, 0, 0, "short8", 0, 0, 0, 0, 0, 0, 0, "short16",
        "int", "int2", "int3", "int4", 0, 0, 0, "int8", 0, 0, 0, 0, 0, 0, 0, "int16",
        "int", "int2", "int3", "int4", 0, 0, 0, "int8", 0, 0, 0, 0, 0, 0, 0, "int16",
        "ulong", "ulong2", "ulong3", "ulong4", 0, 0, 0, "ulong8", 0, 0, 0, 0, 0, 0, 0, "ulong16",
        "?", "?", "?", "?", "?", "?", "?", "?", "?", "?", "?", "?", "?", "?", "?", "?"
4324
    };
I
Ilya Lavrenov 已提交
4325
    int cn = CV_MAT_CN(type), depth = CV_MAT_DEPTH(type);
I
Ilya Lavrenov 已提交
4326
    return cn > 16 ? "?" : tab[depth*16 + cn-1];
4327 4328 4329 4330 4331 4332 4333 4334 4335 4336 4337 4338 4339 4340 4341 4342 4343 4344
}

const char* convertTypeStr(int sdepth, int ddepth, int cn, char* buf)
{
    if( sdepth == ddepth )
        return "noconvert";
    const char *typestr = typeToStr(CV_MAKETYPE(ddepth, cn));
    if( ddepth >= CV_32F ||
        (ddepth == CV_32S && sdepth < CV_32S) ||
        (ddepth == CV_16S && sdepth <= CV_8S) ||
        (ddepth == CV_16U && sdepth == CV_8U))
    {
        sprintf(buf, "convert_%s", typestr);
    }
    else if( sdepth >= CV_32F )
        sprintf(buf, "convert_%s%s_rte", typestr, (ddepth < CV_32S ? "_sat" : ""));
    else
        sprintf(buf, "convert_%s_sat", typestr);
I
Ilya Lavrenov 已提交
4345

4346 4347 4348
    return buf;
}

I
Ilya Lavrenov 已提交
4349 4350 4351 4352 4353 4354 4355 4356 4357 4358 4359 4360
template <typename T>
static std::string kerToStr(const Mat & k)
{
    int width = k.cols - 1, depth = k.depth();
    const T * const data = reinterpret_cast<const T *>(k.data);

    std::ostringstream stream;
    stream.precision(10);

    if (depth <= CV_8S)
    {
        for (int i = 0; i < width; ++i)
I
Ilya Lavrenov 已提交
4361 4362
            stream << "DIG(" << (int)data[i] << ")";
        stream << "DIG(" << (int)data[width] << ")";
I
Ilya Lavrenov 已提交
4363 4364 4365 4366 4367
    }
    else if (depth == CV_32F)
    {
        stream.setf(std::ios_base::showpoint);
        for (int i = 0; i < width; ++i)
I
Ilya Lavrenov 已提交
4368 4369
            stream << "DIG(" << data[i] << "f)";
        stream << "DIG(" << data[width] << "f)";
I
Ilya Lavrenov 已提交
4370 4371 4372 4373
    }
    else
    {
        for (int i = 0; i < width; ++i)
I
Ilya Lavrenov 已提交
4374 4375
            stream << "DIG(" << data[i] << ")";
        stream << "DIG(" << data[width] << ")";
I
Ilya Lavrenov 已提交
4376 4377 4378 4379 4380
    }

    return stream.str();
}

I
Ilya Lavrenov 已提交
4381
String kernelToStr(InputArray _kernel, int ddepth, const char * name)
I
Ilya Lavrenov 已提交
4382 4383 4384 4385 4386 4387 4388 4389 4390 4391
{
    Mat kernel = _kernel.getMat().reshape(1, 1);

    int depth = kernel.depth();
    if (ddepth < 0)
        ddepth = depth;

    if (ddepth != depth)
        kernel.convertTo(kernel, ddepth);

4392 4393
    typedef std::string (* func_t)(const Mat &);
    static const func_t funcs[] = { kerToStr<uchar>, kerToStr<char>, kerToStr<ushort>, kerToStr<short>,
I
Ilya Lavrenov 已提交
4394
                                    kerToStr<int>, kerToStr<float>, kerToStr<double>, 0 };
A
Aaron Kunze 已提交
4395
    const func_t func = funcs[ddepth];
I
Ilya Lavrenov 已提交
4396 4397
    CV_Assert(func != 0);

I
Ilya Lavrenov 已提交
4398
    return cv::format(" -D %s=%s", name ? name : "COEFF", func(kernel).c_str());
I
Ilya Lavrenov 已提交
4399 4400
}

I
Ilya Lavrenov 已提交
4401 4402 4403 4404 4405 4406 4407 4408
#define PROCESS_SRC(src) \
    do \
    { \
        if (!src.empty()) \
        { \
            CV_Assert(src.isMat() || src.isUMat()); \
            int ctype = src.type(), ccn = CV_MAT_CN(ctype); \
            Size csize = src.size(); \
I
Ilya Lavrenov 已提交
4409 4410
            cols.push_back(ccn * csize.width); \
            if (ctype != type) \
I
Ilya Lavrenov 已提交
4411 4412 4413 4414 4415 4416 4417 4418 4419 4420 4421
                return 1; \
            offsets.push_back(src.offset()); \
            steps.push_back(src.step()); \
        } \
    } \
    while ((void)0, 0)

int predictOptimalVectorWidth(InputArray src1, InputArray src2, InputArray src3,
                              InputArray src4, InputArray src5, InputArray src6,
                              InputArray src7, InputArray src8, InputArray src9)
{
I
Ilya Lavrenov 已提交
4422
    int type = src1.type(), depth = CV_MAT_DEPTH(type), cn = CV_MAT_CN(type), esz1 = CV_ELEM_SIZE1(depth);
I
Ilya Lavrenov 已提交
4423 4424 4425 4426 4427 4428
    Size ssize = src1.size();
    const ocl::Device & d = ocl::Device::getDefault();

    int vectorWidths[] = { d.preferredVectorWidthChar(), d.preferredVectorWidthChar(),
        d.preferredVectorWidthShort(), d.preferredVectorWidthShort(),
        d.preferredVectorWidthInt(), d.preferredVectorWidthFloat(),
I
Ilya Lavrenov 已提交
4429
        d.preferredVectorWidthDouble(), -1 }, kercn = vectorWidths[depth];
I
Ilya Lavrenov 已提交
4430 4431 4432 4433
    if (d.isIntel())
    {
        // it's heuristic
        int vectorWidthsIntel[] = { 16, 16, 8, 8, 1, 1, 1, -1 };
I
Ilya Lavrenov 已提交
4434
        kercn = vectorWidthsIntel[depth];
I
Ilya Lavrenov 已提交
4435
    }
I
Ilya Lavrenov 已提交
4436

I
Ilya Lavrenov 已提交
4437
    if (ssize.width * cn < kercn || kercn <= 0)
I
Ilya Lavrenov 已提交
4438 4439 4440 4441 4442 4443 4444 4445 4446 4447 4448 4449 4450 4451
        return 1;

    std::vector<size_t> offsets, steps, cols;
    PROCESS_SRC(src1);
    PROCESS_SRC(src2);
    PROCESS_SRC(src3);
    PROCESS_SRC(src4);
    PROCESS_SRC(src5);
    PROCESS_SRC(src6);
    PROCESS_SRC(src7);
    PROCESS_SRC(src8);
    PROCESS_SRC(src9);

    size_t size = offsets.size();
I
Ilya Lavrenov 已提交
4452
    int wsz = kercn * esz1;
4453
    std::vector<int> dividers(size, wsz);
I
Ilya Lavrenov 已提交
4454 4455 4456 4457 4458 4459 4460

    for (size_t i = 0; i < size; ++i)
        while (offsets[i] % dividers[i] != 0 || steps[i] % dividers[i] != 0 || cols[i] % dividers[i] != 0)
            dividers[i] >>= 1;

    // default strategy
    for (size_t i = 0; i < size; ++i)
4461
        if (dividers[i] != wsz)
I
Ilya Lavrenov 已提交
4462
        {
I
Ilya Lavrenov 已提交
4463
            kercn = 1;
I
Ilya Lavrenov 已提交
4464 4465 4466 4467 4468 4469
            break;
        }

    // another strategy
//    width = *std::min_element(dividers.begin(), dividers.end());

I
Ilya Lavrenov 已提交
4470
    return kercn;
I
Ilya Lavrenov 已提交
4471 4472 4473 4474
}

#undef PROCESS_SRC

4475 4476 4477 4478 4479 4480 4481 4482 4483 4484 4485 4486 4487 4488 4489 4490 4491 4492

// TODO Make this as a method of OpenCL "BuildOptions" class
void buildOptionsAddMatrixDescription(String& buildOptions, const String& name, InputArray _m)
{
    if (!buildOptions.empty())
        buildOptions += " ";
    int type = _m.type(), depth = CV_MAT_DEPTH(type);
    buildOptions += format(
            "-D %s_T=%s -D %s_T1=%s -D %s_CN=%d -D %s_TSIZE=%d -D %s_T1SIZE=%d -D %s_DEPTH=%d",
            name.c_str(), ocl::typeToStr(type),
            name.c_str(), ocl::typeToStr(CV_MAKE_TYPE(depth, 1)),
            name.c_str(), (int)CV_MAT_CN(type),
            name.c_str(), (int)CV_ELEM_SIZE(type),
            name.c_str(), (int)CV_ELEM_SIZE1(type),
            name.c_str(), (int)depth
            );
}

4493 4494 4495

struct Image2D::Impl
{
4496
    Impl(const UMat &src, bool norm, bool alias)
4497
    {
4498 4499
        handle = 0;
        refcount = 1;
4500
        init(src, norm, alias);
4501
    }
I
Ilya Lavrenov 已提交
4502

4503 4504 4505 4506 4507
    ~Impl()
    {
        if (handle)
            clReleaseMemObject(handle);
    }
I
Ilya Lavrenov 已提交
4508

4509
    static cl_image_format getImageFormat(int depth, int cn, bool norm)
4510 4511
    {
        cl_image_format format;
I
Ilya Lavrenov 已提交
4512 4513
        static const int channelTypes[] = { CL_UNSIGNED_INT8, CL_SIGNED_INT8, CL_UNSIGNED_INT16,
                                       CL_SIGNED_INT16, CL_SIGNED_INT32, CL_FLOAT, -1, -1 };
4514 4515
        static const int channelTypesNorm[] = { CL_UNORM_INT8, CL_SNORM_INT8, CL_UNORM_INT16,
                                                CL_SNORM_INT16, -1, -1, -1, -1 };
I
Ilya Lavrenov 已提交
4516 4517
        static const int channelOrders[] = { -1, CL_R, CL_RG, -1, CL_RGBA };

4518 4519
        int channelType = norm ? channelTypesNorm[depth] : channelTypes[depth];
        int channelOrder = channelOrders[cn];
I
Ilya Lavrenov 已提交
4520 4521
        format.image_channel_data_type = (cl_channel_type)channelType;
        format.image_channel_order = (cl_channel_order)channelOrder;
4522 4523 4524 4525 4526 4527 4528 4529 4530 4531 4532 4533 4534 4535 4536 4537 4538 4539 4540 4541 4542 4543 4544 4545 4546 4547 4548 4549 4550 4551 4552 4553 4554 4555 4556 4557
        return format;
    }

    static bool isFormatSupported(cl_image_format format)
    {
        cl_context context = (cl_context)Context::getDefault().ptr();
        // Figure out how many formats are supported by this context.
        cl_uint numFormats = 0;
        cl_int err = clGetSupportedImageFormats(context, CL_MEM_READ_WRITE,
                                                CL_MEM_OBJECT_IMAGE2D, numFormats,
                                                NULL, &numFormats);
        AutoBuffer<cl_image_format> formats(numFormats);
        err = clGetSupportedImageFormats(context, CL_MEM_READ_WRITE,
                                         CL_MEM_OBJECT_IMAGE2D, numFormats,
                                         formats, NULL);
        CV_OclDbgAssert(err == CL_SUCCESS);
        for (cl_uint i = 0; i < numFormats; ++i)
        {
            if (!memcmp(&formats[i], &format, sizeof(format)))
            {
                return true;
            }
        }
        return false;
    }

    void init(const UMat &src, bool norm, bool alias)
    {
        CV_Assert(ocl::Device::getDefault().imageSupport());

        int err, depth = src.depth(), cn = src.channels();
        CV_Assert(cn <= 4);
        cl_image_format format = getImageFormat(depth, cn, norm);

        if (!isFormatSupported(format))
            CV_Error(Error::OpenCLApiCallError, "Image format is not supported");
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        cl_context context = (cl_context)Context::getDefault().ptr();
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        cl_command_queue queue = (cl_command_queue)Queue::getDefault().ptr();
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#ifdef CL_VERSION_1_2
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        // this enables backwards portability to
        // run on OpenCL 1.1 platform if library binaries are compiled with OpenCL 1.2 support
        const Device & d = ocl::Device::getDefault();
        int minor = d.deviceVersionMinor(), major = d.deviceVersionMajor();
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        CV_Assert(!alias || canCreateAlias(src));
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        if (1 < major || (1 == major && 2 <= minor))
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        {
            cl_image_desc desc;
            desc.image_type       = CL_MEM_OBJECT_IMAGE2D;
            desc.image_width      = src.cols;
            desc.image_height     = src.rows;
            desc.image_depth      = 0;
            desc.image_array_size = 1;
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            desc.image_row_pitch  = alias ? src.step[0] : 0;
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            desc.image_slice_pitch = 0;
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            desc.buffer           = alias ? (cl_mem)src.handle(ACCESS_RW) : 0;
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            desc.num_mip_levels   = 0;
            desc.num_samples      = 0;
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            handle = clCreateImage(context, CL_MEM_READ_WRITE, &format, &desc, NULL, &err);
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        }
        else
#endif
        {
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            CV_SUPPRESS_DEPRECATED_START
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            CV_Assert(!alias);  // This is an OpenCL 1.2 extension
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            handle = clCreateImage2D(context, CL_MEM_READ_WRITE, &format, src.cols, src.rows, 0, NULL, &err);
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            CV_SUPPRESS_DEPRECATED_END
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        }
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        CV_OclDbgAssert(err == CL_SUCCESS);

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        size_t origin[] = { 0, 0, 0 };
        size_t region[] = { src.cols, src.rows, 1 };

        cl_mem devData;
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        if (!alias && !src.isContinuous())
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        {
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            devData = clCreateBuffer(context, CL_MEM_READ_ONLY, src.cols * src.rows * src.elemSize(), NULL, &err);
            CV_OclDbgAssert(err == CL_SUCCESS);

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            const size_t roi[3] = {src.cols * src.elemSize(), src.rows, 1};
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            CV_Assert(clEnqueueCopyBufferRect(queue, (cl_mem)src.handle(ACCESS_READ), devData, origin, origin,
                roi, src.step, 0, src.cols * src.elemSize(), 0, 0, NULL, NULL) == CL_SUCCESS);
            CV_OclDbgAssert(clFlush(queue) == CL_SUCCESS);
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        }
        else
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        {
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            devData = (cl_mem)src.handle(ACCESS_READ);
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        }
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        CV_Assert(devData != NULL);
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        if (!alias)
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        {
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            CV_OclDbgAssert(clEnqueueCopyBufferToImage(queue, devData, handle, 0, origin, region, 0, NULL, 0) == CL_SUCCESS);
            if (!src.isContinuous())
            {
                CV_OclDbgAssert(clFlush(queue) == CL_SUCCESS);
                CV_OclDbgAssert(clReleaseMemObject(devData) == CL_SUCCESS);
            }
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        }
    }

    IMPLEMENT_REFCOUNTABLE();

    cl_mem handle;
};

Image2D::Image2D()
{
    p = NULL;
}
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Image2D::Image2D(const UMat &src, bool norm, bool alias)
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{
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    p = new Impl(src, norm, alias);
}

bool Image2D::canCreateAlias(const UMat &m)
{
    bool ret = false;
    const Device & d = ocl::Device::getDefault();
    if (d.imageFromBufferSupport())
    {
        // This is the required pitch alignment in pixels
        uint pitchAlign = d.imagePitchAlignment();
        if (pitchAlign && !(m.step % (pitchAlign * m.elemSize())))
        {
            // We don't currently handle the case where the buffer was created
            // with CL_MEM_USE_HOST_PTR
            if (!m.u->tempUMat())
            {
                ret = true;
            }
        }
    }
    return ret;
}

bool Image2D::isFormatSupported(int depth, int cn, bool norm)
{
    cl_image_format format = Impl::getImageFormat(depth, cn, norm);

    return Impl::isFormatSupported(format);
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}
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Image2D::Image2D(const Image2D & i)
{
    p = i.p;
    if (p)
        p->addref();
}

Image2D & Image2D::operator = (const Image2D & i)
{
    if (i.p != p)
    {
        if (i.p)
            i.p->addref();
        if (p)
            p->release();
        p = i.p;
    }
    return *this;
}

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Image2D::~Image2D()
{
    if (p)
        p->release();
}

void* Image2D::ptr() const
{
    return p ? p->handle : 0;
}

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}}