mirror of
https://github.com/KhronosGroup/OpenCL-CTS.git
synced 2026-03-19 06:09:01 +00:00
A program having a type (such as ThreadInfo) defined differently in multiple translation units exhibits undefined behaviour. This commit fixes such issues in the math_brute_force component by ensuring most types are local to their translation unit with the help of anonymous namespaces. Later refactoring will be able to extract common definitions to a single place. This patch also removes unnecessary static and typedef keywords. Otherwise, code is only moved around with no change. Signed-off-by: Marco Antognini <marco.antognini@arm.com>
830 lines
31 KiB
C++
830 lines
31 KiB
C++
//
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// Copyright (c) 2017 The Khronos Group Inc.
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//
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// Licensed under the Apache License, Version 2.0 (the "License");
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// you may not use this file except in compliance with the License.
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// You may obtain a copy of the License at
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//
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// http://www.apache.org/licenses/LICENSE-2.0
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//
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// Unless required by applicable law or agreed to in writing, software
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// distributed under the License is distributed on an "AS IS" BASIS,
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// WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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// See the License for the specific language governing permissions and
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// limitations under the License.
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//
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#include "function_list.h"
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#include "test_functions.h"
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#include "utility.h"
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#include <cstring>
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namespace {
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const double twoToMinus1022 = MAKE_HEX_DOUBLE(0x1p-1022, 1, -1022);
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int BuildKernel(const char *name, int vectorSize, cl_uint kernel_count,
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cl_kernel *k, cl_program *p, bool relaxedMode)
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{
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const char *c[] = { "#pragma OPENCL EXTENSION cl_khr_fp64 : enable\n",
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"__kernel void math_kernel",
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sizeNames[vectorSize],
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"( __global double",
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sizeNames[vectorSize],
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"* out, __global double",
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sizeNames[vectorSize],
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"* in1, __global double",
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sizeNames[vectorSize],
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"* in2 )\n"
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"{\n"
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" size_t i = get_global_id(0);\n"
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" out[i] = ",
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name,
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"( in1[i], in2[i] );\n"
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"}\n" };
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const char *c3[] = {
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"#pragma OPENCL EXTENSION cl_khr_fp64 : enable\n",
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"__kernel void math_kernel",
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sizeNames[vectorSize],
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"( __global double* out, __global double* in, __global double* in2)\n"
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"{\n"
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" size_t i = get_global_id(0);\n"
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" if( i + 1 < get_global_size(0) )\n"
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" {\n"
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" double3 d0 = vload3( 0, in + 3 * i );\n"
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" double3 d1 = vload3( 0, in2 + 3 * i );\n"
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" d0 = ",
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name,
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"( d0, d1 );\n"
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" vstore3( d0, 0, out + 3*i );\n"
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" }\n"
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" else\n"
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" {\n"
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" size_t parity = i & 1; // Figure out how many elements are "
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"left over after BUFFER_SIZE % (3*sizeof(float)). Assume power of two "
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"buffer size \n"
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" double3 d0;\n"
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" double3 d1;\n"
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" switch( parity )\n"
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" {\n"
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" case 1:\n"
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" d0 = (double3)( in[3*i], NAN, NAN ); \n"
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" d1 = (double3)( in2[3*i], NAN, NAN ); \n"
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" break;\n"
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" case 0:\n"
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" d0 = (double3)( in[3*i], in[3*i+1], NAN ); \n"
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" d1 = (double3)( in2[3*i], in2[3*i+1], NAN ); \n"
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" break;\n"
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" }\n"
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" d0 = ",
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name,
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"( d0, d1 );\n"
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" switch( parity )\n"
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" {\n"
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" case 0:\n"
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" out[3*i+1] = d0.y; \n"
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" // fall through\n"
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" case 1:\n"
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" out[3*i] = d0.x; \n"
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" break;\n"
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" }\n"
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" }\n"
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"}\n"
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};
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const char **kern = c;
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size_t kernSize = sizeof(c) / sizeof(c[0]);
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if (sizeValues[vectorSize] == 3)
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{
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kern = c3;
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kernSize = sizeof(c3) / sizeof(c3[0]);
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}
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char testName[32];
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snprintf(testName, sizeof(testName) - 1, "math_kernel%s",
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sizeNames[vectorSize]);
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return MakeKernels(kern, (cl_uint)kernSize, testName, kernel_count, k, p,
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relaxedMode);
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}
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struct BuildKernelInfo
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{
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cl_uint offset; // the first vector size to build
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cl_uint kernel_count;
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cl_kernel **kernels;
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cl_program *programs;
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const char *nameInCode;
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bool relaxedMode; // Whether to build with -cl-fast-relaxed-math.
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};
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cl_int BuildKernelFn(cl_uint job_id, cl_uint thread_id UNUSED, void *p)
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{
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BuildKernelInfo *info = (BuildKernelInfo *)p;
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cl_uint i = info->offset + job_id;
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return BuildKernel(info->nameInCode, i, info->kernel_count,
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info->kernels[i], info->programs + i, info->relaxedMode);
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}
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// Thread specific data for a worker thread
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struct ThreadInfo
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{
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cl_mem inBuf; // input buffer for the thread
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cl_mem inBuf2; // input buffer for the thread
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cl_mem outBuf[VECTOR_SIZE_COUNT]; // output buffers for the thread
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float maxError; // max error value. Init to 0.
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double
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maxErrorValue; // position of the max error value (param 1). Init to 0.
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double maxErrorValue2; // position of the max error value (param 2). Init
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// to 0.
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MTdata d;
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cl_command_queue tQueue; // per thread command queue to improve performance
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};
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struct TestInfo
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{
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size_t subBufferSize; // Size of the sub-buffer in elements
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const Func *f; // A pointer to the function info
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cl_program programs[VECTOR_SIZE_COUNT]; // programs for various vector sizes
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cl_kernel
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*k[VECTOR_SIZE_COUNT]; // arrays of thread-specific kernels for each
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// worker thread: k[vector_size][thread_id]
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ThreadInfo *
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tinfo; // An array of thread specific information for each worker thread
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cl_uint threadCount; // Number of worker threads
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cl_uint jobCount; // Number of jobs
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cl_uint step; // step between each chunk and the next.
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cl_uint scale; // stride between individual test values
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float ulps; // max_allowed ulps
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int ftz; // non-zero if running in flush to zero mode
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int isFDim;
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int skipNanInf;
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int isNextafter;
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bool relaxedMode; // True if test is running in relaxed mode, false
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// otherwise.
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};
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// A table of more difficult cases to get right
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const double specialValues[] = {
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-NAN,
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-INFINITY,
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-DBL_MAX,
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MAKE_HEX_DOUBLE(-0x1.0000000000001p64, -0x10000000000001LL, 12),
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MAKE_HEX_DOUBLE(-0x1.0p64, -0x1LL, 64),
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MAKE_HEX_DOUBLE(-0x1.fffffffffffffp63, -0x1fffffffffffffLL, 11),
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MAKE_HEX_DOUBLE(-0x1.0000000000001p63, -0x10000000000001LL, 11),
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MAKE_HEX_DOUBLE(-0x1.0p63, -0x1LL, 63),
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MAKE_HEX_DOUBLE(-0x1.fffffffffffffp62, -0x1fffffffffffffLL, 10),
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MAKE_HEX_DOUBLE(-0x1.000002p32, -0x1000002LL, 8),
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MAKE_HEX_DOUBLE(-0x1.0p32, -0x1LL, 32),
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MAKE_HEX_DOUBLE(-0x1.fffffffffffffp31, -0x1fffffffffffffLL, -21),
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MAKE_HEX_DOUBLE(-0x1.0000000000001p31, -0x10000000000001LL, -21),
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MAKE_HEX_DOUBLE(-0x1.0p31, -0x1LL, 31),
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MAKE_HEX_DOUBLE(-0x1.fffffffffffffp30, -0x1fffffffffffffLL, -22),
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-1000.0,
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-100.0,
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-4.0,
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-3.5,
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-3.0,
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MAKE_HEX_DOUBLE(-0x1.8000000000001p1, -0x18000000000001LL, -51),
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-2.5,
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MAKE_HEX_DOUBLE(-0x1.7ffffffffffffp1, -0x17ffffffffffffLL, -51),
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-2.0,
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MAKE_HEX_DOUBLE(-0x1.8000000000001p0, -0x18000000000001LL, -52),
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-1.5,
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MAKE_HEX_DOUBLE(-0x1.7ffffffffffffp0, -0x17ffffffffffffLL, -52),
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MAKE_HEX_DOUBLE(-0x1.0000000000001p0, -0x10000000000001LL, -52),
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-1.0,
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MAKE_HEX_DOUBLE(-0x1.fffffffffffffp-1, -0x1fffffffffffffLL, -53),
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MAKE_HEX_DOUBLE(-0x1.0000000000001p-1, -0x10000000000001LL, -53),
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-0.5,
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MAKE_HEX_DOUBLE(-0x1.fffffffffffffp-2, -0x1fffffffffffffLL, -54),
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MAKE_HEX_DOUBLE(-0x1.0000000000001p-2, -0x10000000000001LL, -54),
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-0.25,
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MAKE_HEX_DOUBLE(-0x1.fffffffffffffp-3, -0x1fffffffffffffLL, -55),
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MAKE_HEX_DOUBLE(-0x1.0000000000001p-1022, -0x10000000000001LL, -1074),
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-DBL_MIN,
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MAKE_HEX_DOUBLE(-0x0.fffffffffffffp-1022, -0x0fffffffffffffLL, -1074),
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MAKE_HEX_DOUBLE(-0x0.0000000000fffp-1022, -0x00000000000fffLL, -1074),
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MAKE_HEX_DOUBLE(-0x0.00000000000fep-1022, -0x000000000000feLL, -1074),
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MAKE_HEX_DOUBLE(-0x0.000000000000ep-1022, -0x0000000000000eLL, -1074),
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MAKE_HEX_DOUBLE(-0x0.000000000000cp-1022, -0x0000000000000cLL, -1074),
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MAKE_HEX_DOUBLE(-0x0.000000000000ap-1022, -0x0000000000000aLL, -1074),
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MAKE_HEX_DOUBLE(-0x0.0000000000008p-1022, -0x00000000000008LL, -1074),
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MAKE_HEX_DOUBLE(-0x0.0000000000007p-1022, -0x00000000000007LL, -1074),
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MAKE_HEX_DOUBLE(-0x0.0000000000006p-1022, -0x00000000000006LL, -1074),
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MAKE_HEX_DOUBLE(-0x0.0000000000005p-1022, -0x00000000000005LL, -1074),
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MAKE_HEX_DOUBLE(-0x0.0000000000004p-1022, -0x00000000000004LL, -1074),
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MAKE_HEX_DOUBLE(-0x0.0000000000003p-1022, -0x00000000000003LL, -1074),
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MAKE_HEX_DOUBLE(-0x0.0000000000002p-1022, -0x00000000000002LL, -1074),
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MAKE_HEX_DOUBLE(-0x0.0000000000001p-1022, -0x00000000000001LL, -1074),
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-0.0,
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+NAN,
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+INFINITY,
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+DBL_MAX,
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MAKE_HEX_DOUBLE(+0x1.0000000000001p64, +0x10000000000001LL, 12),
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MAKE_HEX_DOUBLE(+0x1.0p64, +0x1LL, 64),
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MAKE_HEX_DOUBLE(+0x1.fffffffffffffp63, +0x1fffffffffffffLL, 11),
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MAKE_HEX_DOUBLE(+0x1.0000000000001p63, +0x10000000000001LL, 11),
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MAKE_HEX_DOUBLE(+0x1.0p63, +0x1LL, 63),
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MAKE_HEX_DOUBLE(+0x1.fffffffffffffp62, +0x1fffffffffffffLL, 10),
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MAKE_HEX_DOUBLE(+0x1.000002p32, +0x1000002LL, 8),
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MAKE_HEX_DOUBLE(+0x1.0p32, +0x1LL, 32),
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MAKE_HEX_DOUBLE(+0x1.fffffffffffffp31, +0x1fffffffffffffLL, -21),
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MAKE_HEX_DOUBLE(+0x1.0000000000001p31, +0x10000000000001LL, -21),
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MAKE_HEX_DOUBLE(+0x1.0p31, +0x1LL, 31),
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MAKE_HEX_DOUBLE(+0x1.fffffffffffffp30, +0x1fffffffffffffLL, -22),
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+1000.0,
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+100.0,
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+4.0,
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+3.5,
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+3.0,
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MAKE_HEX_DOUBLE(+0x1.8000000000001p1, +0x18000000000001LL, -51),
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+2.5,
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MAKE_HEX_DOUBLE(+0x1.7ffffffffffffp1, +0x17ffffffffffffLL, -51),
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+2.0,
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MAKE_HEX_DOUBLE(+0x1.8000000000001p0, +0x18000000000001LL, -52),
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+1.5,
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MAKE_HEX_DOUBLE(+0x1.7ffffffffffffp0, +0x17ffffffffffffLL, -52),
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MAKE_HEX_DOUBLE(-0x1.0000000000001p0, -0x10000000000001LL, -52),
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+1.0,
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MAKE_HEX_DOUBLE(+0x1.fffffffffffffp-1, +0x1fffffffffffffLL, -53),
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MAKE_HEX_DOUBLE(+0x1.0000000000001p-1, +0x10000000000001LL, -53),
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+0.5,
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MAKE_HEX_DOUBLE(+0x1.fffffffffffffp-2, +0x1fffffffffffffLL, -54),
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MAKE_HEX_DOUBLE(+0x1.0000000000001p-2, +0x10000000000001LL, -54),
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+0.25,
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MAKE_HEX_DOUBLE(+0x1.fffffffffffffp-3, +0x1fffffffffffffLL, -55),
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MAKE_HEX_DOUBLE(+0x1.0000000000001p-1022, +0x10000000000001LL, -1074),
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+DBL_MIN,
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MAKE_HEX_DOUBLE(+0x0.fffffffffffffp-1022, +0x0fffffffffffffLL, -1074),
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MAKE_HEX_DOUBLE(+0x0.0000000000fffp-1022, +0x00000000000fffLL, -1074),
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MAKE_HEX_DOUBLE(+0x0.00000000000fep-1022, +0x000000000000feLL, -1074),
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MAKE_HEX_DOUBLE(+0x0.000000000000ep-1022, +0x0000000000000eLL, -1074),
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MAKE_HEX_DOUBLE(+0x0.000000000000cp-1022, +0x0000000000000cLL, -1074),
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MAKE_HEX_DOUBLE(+0x0.000000000000ap-1022, +0x0000000000000aLL, -1074),
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MAKE_HEX_DOUBLE(+0x0.0000000000008p-1022, +0x00000000000008LL, -1074),
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MAKE_HEX_DOUBLE(+0x0.0000000000007p-1022, +0x00000000000007LL, -1074),
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MAKE_HEX_DOUBLE(+0x0.0000000000006p-1022, +0x00000000000006LL, -1074),
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MAKE_HEX_DOUBLE(+0x0.0000000000005p-1022, +0x00000000000005LL, -1074),
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MAKE_HEX_DOUBLE(+0x0.0000000000004p-1022, +0x00000000000004LL, -1074),
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MAKE_HEX_DOUBLE(+0x0.0000000000003p-1022, +0x00000000000003LL, -1074),
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MAKE_HEX_DOUBLE(+0x0.0000000000002p-1022, +0x00000000000002LL, -1074),
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MAKE_HEX_DOUBLE(+0x0.0000000000001p-1022, +0x00000000000001LL, -1074),
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+0.0,
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};
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constexpr size_t specialValuesCount =
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sizeof(specialValues) / sizeof(specialValues[0]);
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cl_int Test(cl_uint job_id, cl_uint thread_id, void *data)
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{
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const TestInfo *job = (const TestInfo *)data;
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size_t buffer_elements = job->subBufferSize;
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size_t buffer_size = buffer_elements * sizeof(cl_double);
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cl_uint base = job_id * (cl_uint)job->step;
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ThreadInfo *tinfo = job->tinfo + thread_id;
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float ulps = job->ulps;
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dptr func = job->f->dfunc;
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int ftz = job->ftz;
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MTdata d = tinfo->d;
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cl_int error;
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const char *name = job->f->name;
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int isNextafter = job->isNextafter;
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cl_ulong *t;
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cl_double *r;
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cl_double *s;
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cl_double *s2;
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Force64BitFPUPrecision();
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// start the map of the output arrays
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cl_event e[VECTOR_SIZE_COUNT];
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cl_ulong *out[VECTOR_SIZE_COUNT];
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for (auto j = gMinVectorSizeIndex; j < gMaxVectorSizeIndex; j++)
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{
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out[j] = (cl_ulong *)clEnqueueMapBuffer(
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tinfo->tQueue, tinfo->outBuf[j], CL_FALSE, CL_MAP_WRITE, 0,
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buffer_size, 0, NULL, e + j, &error);
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if (error || NULL == out[j])
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{
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vlog_error("Error: clEnqueueMapBuffer %d failed! err: %d\n", j,
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error);
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return error;
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}
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}
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// Get that moving
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if ((error = clFlush(tinfo->tQueue))) vlog("clFlush failed\n");
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// Init input array
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cl_ulong *p = (cl_ulong *)gIn + thread_id * buffer_elements;
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cl_ulong *p2 = (cl_ulong *)gIn2 + thread_id * buffer_elements;
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cl_uint idx = 0;
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int totalSpecialValueCount = specialValuesCount * specialValuesCount;
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int lastSpecialJobIndex = (totalSpecialValueCount - 1) / buffer_elements;
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if (job_id <= (cl_uint)lastSpecialJobIndex)
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{ // test edge cases
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cl_double *fp = (cl_double *)p;
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cl_double *fp2 = (cl_double *)p2;
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uint32_t x, y;
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x = (job_id * buffer_elements) % specialValuesCount;
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y = (job_id * buffer_elements) / specialValuesCount;
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for (; idx < buffer_elements; idx++)
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{
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fp[idx] = specialValues[x];
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fp2[idx] = specialValues[y];
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if (++x >= specialValuesCount)
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{
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x = 0;
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y++;
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if (y >= specialValuesCount) break;
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}
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}
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}
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// Init any remaining values.
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for (; idx < buffer_elements; idx++)
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{
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p[idx] = genrand_int64(d);
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p2[idx] = genrand_int64(d);
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}
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if ((error = clEnqueueWriteBuffer(tinfo->tQueue, tinfo->inBuf, CL_FALSE, 0,
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buffer_size, p, 0, NULL, NULL)))
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{
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vlog_error("Error: clEnqueueWriteBuffer failed! err: %d\n", error);
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goto exit;
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}
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if ((error = clEnqueueWriteBuffer(tinfo->tQueue, tinfo->inBuf2, CL_FALSE, 0,
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buffer_size, p2, 0, NULL, NULL)))
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{
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vlog_error("Error: clEnqueueWriteBuffer failed! err: %d\n", error);
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goto exit;
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}
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for (auto j = gMinVectorSizeIndex; j < gMaxVectorSizeIndex; j++)
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{
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// Wait for the map to finish
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if ((error = clWaitForEvents(1, e + j)))
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{
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vlog_error("Error: clWaitForEvents failed! err: %d\n", error);
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goto exit;
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}
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if ((error = clReleaseEvent(e[j])))
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{
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vlog_error("Error: clReleaseEvent failed! err: %d\n", error);
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goto exit;
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}
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// Fill the result buffer with garbage, so that old results don't carry
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// over
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uint32_t pattern = 0xffffdead;
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memset_pattern4(out[j], &pattern, buffer_size);
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if ((error = clEnqueueUnmapMemObject(tinfo->tQueue, tinfo->outBuf[j],
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out[j], 0, NULL, NULL)))
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{
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vlog_error("Error: clEnqueueMapBuffer failed! err: %d\n", error);
|
|
goto exit;
|
|
}
|
|
|
|
// run the kernel
|
|
size_t vectorCount =
|
|
(buffer_elements + sizeValues[j] - 1) / sizeValues[j];
|
|
cl_kernel kernel = job->k[j][thread_id]; // each worker thread has its
|
|
// own copy of the cl_kernel
|
|
cl_program program = job->programs[j];
|
|
|
|
if ((error = clSetKernelArg(kernel, 0, sizeof(tinfo->outBuf[j]),
|
|
&tinfo->outBuf[j])))
|
|
{
|
|
LogBuildError(program);
|
|
return error;
|
|
}
|
|
if ((error = clSetKernelArg(kernel, 1, sizeof(tinfo->inBuf),
|
|
&tinfo->inBuf)))
|
|
{
|
|
LogBuildError(program);
|
|
return error;
|
|
}
|
|
if ((error = clSetKernelArg(kernel, 2, sizeof(tinfo->inBuf2),
|
|
&tinfo->inBuf2)))
|
|
{
|
|
LogBuildError(program);
|
|
return error;
|
|
}
|
|
|
|
if ((error = clEnqueueNDRangeKernel(tinfo->tQueue, kernel, 1, NULL,
|
|
&vectorCount, NULL, 0, NULL, NULL)))
|
|
{
|
|
vlog_error("FAILED -- could not execute kernel\n");
|
|
goto exit;
|
|
}
|
|
}
|
|
|
|
// Get that moving
|
|
if ((error = clFlush(tinfo->tQueue))) vlog("clFlush 2 failed\n");
|
|
|
|
if (gSkipCorrectnessTesting) return CL_SUCCESS;
|
|
|
|
// Calculate the correctly rounded reference result
|
|
r = (cl_double *)gOut_Ref + thread_id * buffer_elements;
|
|
s = (cl_double *)gIn + thread_id * buffer_elements;
|
|
s2 = (cl_double *)gIn2 + thread_id * buffer_elements;
|
|
for (size_t j = 0; j < buffer_elements; j++)
|
|
r[j] = (cl_double)func.f_ff(s[j], s2[j]);
|
|
|
|
// Read the data back -- no need to wait for the first N-1 buffers but wait
|
|
// for the last buffer. This is an in order queue.
|
|
for (auto j = gMinVectorSizeIndex; j < gMaxVectorSizeIndex; j++)
|
|
{
|
|
cl_bool blocking = (j + 1 < gMaxVectorSizeIndex) ? CL_FALSE : CL_TRUE;
|
|
out[j] = (cl_ulong *)clEnqueueMapBuffer(
|
|
tinfo->tQueue, tinfo->outBuf[j], blocking, CL_MAP_READ, 0,
|
|
buffer_size, 0, NULL, NULL, &error);
|
|
if (error || NULL == out[j])
|
|
{
|
|
vlog_error("Error: clEnqueueMapBuffer %d failed! err: %d\n", j,
|
|
error);
|
|
goto exit;
|
|
}
|
|
}
|
|
|
|
// Verify data
|
|
t = (cl_ulong *)r;
|
|
for (size_t j = 0; j < buffer_elements; j++)
|
|
{
|
|
for (auto k = gMinVectorSizeIndex; k < gMaxVectorSizeIndex; k++)
|
|
{
|
|
cl_ulong *q = out[k];
|
|
|
|
// If we aren't getting the correctly rounded result
|
|
if (t[j] != q[j])
|
|
{
|
|
cl_double test = ((cl_double *)q)[j];
|
|
long double correct = func.f_ff(s[j], s2[j]);
|
|
float err = Bruteforce_Ulp_Error_Double(test, correct);
|
|
int fail = !(fabsf(err) <= ulps);
|
|
|
|
if (fail && ftz)
|
|
{
|
|
// retry per section 6.5.3.2
|
|
if (IsDoubleResultSubnormal(correct, ulps))
|
|
{
|
|
fail = fail && (test != 0.0f);
|
|
if (!fail) err = 0.0f;
|
|
}
|
|
|
|
// nextafter on FTZ platforms may return the smallest
|
|
// normal float (2^-126) given a denormal or a zero
|
|
// as the first argument. The rationale here is that
|
|
// nextafter flushes the argument to zero and then
|
|
// returns the next representable number in the
|
|
// direction of the second argument, and since
|
|
// denorms are considered as zero, the smallest
|
|
// normal number is the next representable number.
|
|
// In which case, it should have the same sign as the
|
|
// second argument.
|
|
if (isNextafter)
|
|
{
|
|
if (IsDoubleSubnormal(s[j]) || s[j] == 0.0f)
|
|
{
|
|
cl_double value = copysign(twoToMinus1022, s2[j]);
|
|
fail = fail && (test != value);
|
|
if (!fail) err = 0.0f;
|
|
}
|
|
}
|
|
else
|
|
{
|
|
// retry per section 6.5.3.3
|
|
if (IsDoubleSubnormal(s[j]))
|
|
{
|
|
long double correct2 = func.f_ff(0.0, s2[j]);
|
|
long double correct3 = func.f_ff(-0.0, s2[j]);
|
|
float err2 =
|
|
Bruteforce_Ulp_Error_Double(test, correct2);
|
|
float err3 =
|
|
Bruteforce_Ulp_Error_Double(test, correct3);
|
|
fail = fail
|
|
&& ((!(fabsf(err2) <= ulps))
|
|
&& (!(fabsf(err3) <= ulps)));
|
|
if (fabsf(err2) < fabsf(err)) err = err2;
|
|
if (fabsf(err3) < fabsf(err)) err = err3;
|
|
|
|
// retry per section 6.5.3.4
|
|
if (IsDoubleResultSubnormal(correct2, ulps)
|
|
|| IsDoubleResultSubnormal(correct3, ulps))
|
|
{
|
|
fail = fail && (test != 0.0f);
|
|
if (!fail) err = 0.0f;
|
|
}
|
|
|
|
// try with both args as zero
|
|
if (IsDoubleSubnormal(s2[j]))
|
|
{
|
|
correct2 = func.f_ff(0.0, 0.0);
|
|
correct3 = func.f_ff(-0.0, 0.0);
|
|
long double correct4 = func.f_ff(0.0, -0.0);
|
|
long double correct5 = func.f_ff(-0.0, -0.0);
|
|
err2 =
|
|
Bruteforce_Ulp_Error_Double(test, correct2);
|
|
err3 =
|
|
Bruteforce_Ulp_Error_Double(test, correct3);
|
|
float err4 =
|
|
Bruteforce_Ulp_Error_Double(test, correct4);
|
|
float err5 =
|
|
Bruteforce_Ulp_Error_Double(test, correct5);
|
|
fail = fail
|
|
&& ((!(fabsf(err2) <= ulps))
|
|
&& (!(fabsf(err3) <= ulps))
|
|
&& (!(fabsf(err4) <= ulps))
|
|
&& (!(fabsf(err5) <= ulps)));
|
|
if (fabsf(err2) < fabsf(err)) err = err2;
|
|
if (fabsf(err3) < fabsf(err)) err = err3;
|
|
if (fabsf(err4) < fabsf(err)) err = err4;
|
|
if (fabsf(err5) < fabsf(err)) err = err5;
|
|
|
|
// retry per section 6.5.3.4
|
|
if (IsDoubleResultSubnormal(correct2, ulps)
|
|
|| IsDoubleResultSubnormal(correct3, ulps)
|
|
|| IsDoubleResultSubnormal(correct4, ulps)
|
|
|| IsDoubleResultSubnormal(correct5, ulps))
|
|
{
|
|
fail = fail && (test != 0.0f);
|
|
if (!fail) err = 0.0f;
|
|
}
|
|
}
|
|
}
|
|
else if (IsDoubleSubnormal(s2[j]))
|
|
{
|
|
long double correct2 = func.f_ff(s[j], 0.0);
|
|
long double correct3 = func.f_ff(s[j], -0.0);
|
|
float err2 =
|
|
Bruteforce_Ulp_Error_Double(test, correct2);
|
|
float err3 =
|
|
Bruteforce_Ulp_Error_Double(test, correct3);
|
|
fail = fail
|
|
&& ((!(fabsf(err2) <= ulps))
|
|
&& (!(fabsf(err3) <= ulps)));
|
|
if (fabsf(err2) < fabsf(err)) err = err2;
|
|
if (fabsf(err3) < fabsf(err)) err = err3;
|
|
|
|
// retry per section 6.5.3.4
|
|
if (IsDoubleResultSubnormal(correct2, ulps)
|
|
|| IsDoubleResultSubnormal(correct3, ulps))
|
|
{
|
|
fail = fail && (test != 0.0f);
|
|
if (!fail) err = 0.0f;
|
|
}
|
|
}
|
|
}
|
|
}
|
|
|
|
if (fabsf(err) > tinfo->maxError)
|
|
{
|
|
tinfo->maxError = fabsf(err);
|
|
tinfo->maxErrorValue = s[j];
|
|
tinfo->maxErrorValue2 = s2[j];
|
|
}
|
|
if (fail)
|
|
{
|
|
vlog_error("\nERROR: %s%s: %f ulp error at {%.13la, "
|
|
"%.13la}: *%.13la vs. %.13la\n",
|
|
name, sizeNames[k], err, s[j], s2[j], r[j],
|
|
test);
|
|
error = -1;
|
|
goto exit;
|
|
}
|
|
}
|
|
}
|
|
}
|
|
|
|
for (auto j = gMinVectorSizeIndex; j < gMaxVectorSizeIndex; j++)
|
|
{
|
|
if ((error = clEnqueueUnmapMemObject(tinfo->tQueue, tinfo->outBuf[j],
|
|
out[j], 0, NULL, NULL)))
|
|
{
|
|
vlog_error("Error: clEnqueueUnmapMemObject %d failed 2! err: %d\n",
|
|
j, error);
|
|
return error;
|
|
}
|
|
}
|
|
|
|
if ((error = clFlush(tinfo->tQueue))) vlog("clFlush 3 failed\n");
|
|
|
|
|
|
if (0 == (base & 0x0fffffff))
|
|
{
|
|
if (gVerboseBruteForce)
|
|
{
|
|
vlog("base:%14u step:%10u scale:%10zu buf_elements:%10u ulps:%5.3f "
|
|
"ThreadCount:%2u\n",
|
|
base, job->step, job->scale, buffer_elements, job->ulps,
|
|
job->threadCount);
|
|
}
|
|
else
|
|
{
|
|
vlog(".");
|
|
}
|
|
fflush(stdout);
|
|
}
|
|
|
|
exit:
|
|
return error;
|
|
}
|
|
|
|
} // anonymous namespace
|
|
|
|
int TestFunc_Double_Double_Double(const Func *f, MTdata d, bool relaxedMode)
|
|
{
|
|
TestInfo test_info;
|
|
cl_int error;
|
|
float maxError = 0.0f;
|
|
double maxErrorVal = 0.0;
|
|
double maxErrorVal2 = 0.0;
|
|
|
|
logFunctionInfo(f->name, sizeof(cl_double), relaxedMode);
|
|
|
|
// Init test_info
|
|
memset(&test_info, 0, sizeof(test_info));
|
|
test_info.threadCount = GetThreadCount();
|
|
test_info.subBufferSize = BUFFER_SIZE
|
|
/ (sizeof(cl_double) * RoundUpToNextPowerOfTwo(test_info.threadCount));
|
|
test_info.scale = getTestScale(sizeof(cl_double));
|
|
|
|
test_info.step = (cl_uint)test_info.subBufferSize * test_info.scale;
|
|
if (test_info.step / test_info.subBufferSize != test_info.scale)
|
|
{
|
|
// there was overflow
|
|
test_info.jobCount = 1;
|
|
}
|
|
else
|
|
{
|
|
test_info.jobCount = (cl_uint)((1ULL << 32) / test_info.step);
|
|
}
|
|
|
|
test_info.f = f;
|
|
test_info.ulps = f->double_ulps;
|
|
test_info.ftz = f->ftz || gForceFTZ;
|
|
|
|
test_info.isFDim = 0 == strcmp("fdim", f->nameInCode);
|
|
test_info.skipNanInf = 0;
|
|
test_info.isNextafter = 0 == strcmp("nextafter", f->nameInCode);
|
|
|
|
// cl_kernels aren't thread safe, so we make one for each vector size for
|
|
// every thread
|
|
for (auto i = gMinVectorSizeIndex; i < gMaxVectorSizeIndex; i++)
|
|
{
|
|
size_t array_size = test_info.threadCount * sizeof(cl_kernel);
|
|
test_info.k[i] = (cl_kernel *)malloc(array_size);
|
|
if (NULL == test_info.k[i])
|
|
{
|
|
vlog_error("Error: Unable to allocate storage for kernels!\n");
|
|
error = CL_OUT_OF_HOST_MEMORY;
|
|
goto exit;
|
|
}
|
|
memset(test_info.k[i], 0, array_size);
|
|
}
|
|
test_info.tinfo =
|
|
(ThreadInfo *)malloc(test_info.threadCount * sizeof(*test_info.tinfo));
|
|
if (NULL == test_info.tinfo)
|
|
{
|
|
vlog_error(
|
|
"Error: Unable to allocate storage for thread specific data.\n");
|
|
error = CL_OUT_OF_HOST_MEMORY;
|
|
goto exit;
|
|
}
|
|
memset(test_info.tinfo, 0,
|
|
test_info.threadCount * sizeof(*test_info.tinfo));
|
|
for (cl_uint i = 0; i < test_info.threadCount; i++)
|
|
{
|
|
cl_buffer_region region = {
|
|
i * test_info.subBufferSize * sizeof(cl_double),
|
|
test_info.subBufferSize * sizeof(cl_double)
|
|
};
|
|
test_info.tinfo[i].inBuf =
|
|
clCreateSubBuffer(gInBuffer, CL_MEM_READ_ONLY,
|
|
CL_BUFFER_CREATE_TYPE_REGION, ®ion, &error);
|
|
if (error || NULL == test_info.tinfo[i].inBuf)
|
|
{
|
|
vlog_error("Error: Unable to create sub-buffer of gInBuffer for "
|
|
"region {%zd, %zd}\n",
|
|
region.origin, region.size);
|
|
goto exit;
|
|
}
|
|
test_info.tinfo[i].inBuf2 =
|
|
clCreateSubBuffer(gInBuffer2, CL_MEM_READ_ONLY,
|
|
CL_BUFFER_CREATE_TYPE_REGION, ®ion, &error);
|
|
if (error || NULL == test_info.tinfo[i].inBuf2)
|
|
{
|
|
vlog_error("Error: Unable to create sub-buffer of gInBuffer2 for "
|
|
"region {%zd, %zd}\n",
|
|
region.origin, region.size);
|
|
goto exit;
|
|
}
|
|
|
|
for (auto j = gMinVectorSizeIndex; j < gMaxVectorSizeIndex; j++)
|
|
{
|
|
test_info.tinfo[i].outBuf[j] = clCreateSubBuffer(
|
|
gOutBuffer[j], CL_MEM_WRITE_ONLY, CL_BUFFER_CREATE_TYPE_REGION,
|
|
®ion, &error);
|
|
if (error || NULL == test_info.tinfo[i].outBuf[j])
|
|
{
|
|
vlog_error("Error: Unable to create sub-buffer of "
|
|
"gOutBuffer[%d] for region {%zd, %zd}\n",
|
|
(int)j, region.origin, region.size);
|
|
goto exit;
|
|
}
|
|
}
|
|
test_info.tinfo[i].tQueue =
|
|
clCreateCommandQueue(gContext, gDevice, 0, &error);
|
|
if (NULL == test_info.tinfo[i].tQueue || error)
|
|
{
|
|
vlog_error("clCreateCommandQueue failed. (%d)\n", error);
|
|
goto exit;
|
|
}
|
|
|
|
test_info.tinfo[i].d = init_genrand(genrand_int32(d));
|
|
}
|
|
|
|
// Init the kernels
|
|
{
|
|
BuildKernelInfo build_info = {
|
|
gMinVectorSizeIndex, test_info.threadCount, test_info.k,
|
|
test_info.programs, f->nameInCode, relaxedMode
|
|
};
|
|
if ((error = ThreadPool_Do(BuildKernelFn,
|
|
gMaxVectorSizeIndex - gMinVectorSizeIndex,
|
|
&build_info)))
|
|
goto exit;
|
|
}
|
|
|
|
// Run the kernels
|
|
if (!gSkipCorrectnessTesting)
|
|
{
|
|
error = ThreadPool_Do(Test, test_info.jobCount, &test_info);
|
|
|
|
// Accumulate the arithmetic errors
|
|
for (cl_uint i = 0; i < test_info.threadCount; i++)
|
|
{
|
|
if (test_info.tinfo[i].maxError > maxError)
|
|
{
|
|
maxError = test_info.tinfo[i].maxError;
|
|
maxErrorVal = test_info.tinfo[i].maxErrorValue;
|
|
maxErrorVal2 = test_info.tinfo[i].maxErrorValue2;
|
|
}
|
|
}
|
|
|
|
if (error) goto exit;
|
|
|
|
if (gWimpyMode)
|
|
vlog("Wimp pass");
|
|
else
|
|
vlog("passed");
|
|
|
|
vlog("\t%8.2f @ {%a, %a}", maxError, maxErrorVal, maxErrorVal2);
|
|
}
|
|
|
|
vlog("\n");
|
|
|
|
exit:
|
|
// Release
|
|
for (auto i = gMinVectorSizeIndex; i < gMaxVectorSizeIndex; i++)
|
|
{
|
|
clReleaseProgram(test_info.programs[i]);
|
|
if (test_info.k[i])
|
|
{
|
|
for (cl_uint j = 0; j < test_info.threadCount; j++)
|
|
clReleaseKernel(test_info.k[i][j]);
|
|
|
|
free(test_info.k[i]);
|
|
}
|
|
}
|
|
if (test_info.tinfo)
|
|
{
|
|
for (cl_uint i = 0; i < test_info.threadCount; i++)
|
|
{
|
|
free_mtdata(test_info.tinfo[i].d);
|
|
clReleaseMemObject(test_info.tinfo[i].inBuf);
|
|
clReleaseMemObject(test_info.tinfo[i].inBuf2);
|
|
for (auto j = gMinVectorSizeIndex; j < gMaxVectorSizeIndex; j++)
|
|
clReleaseMemObject(test_info.tinfo[i].outBuf[j]);
|
|
clReleaseCommandQueue(test_info.tinfo[i].tQueue);
|
|
}
|
|
|
|
free(test_info.tinfo);
|
|
}
|
|
|
|
return error;
|
|
}
|