mandelbench.cpp 6.1 KB

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  1. #include <iostream>
  2. #include <iomanip>
  3. #include <chrono>
  4. #include <functional>
  5. #include <Mandel.h>
  6. #include <cmath>
  7. constexpr mnd::MandelViewport benchViewport(void)
  8. {
  9. return mnd::MandelViewport{ -1.250000598933854152929, 0.0001879894057291665530, 0.0000003839916666666565, 0.0000003839916666666565 };
  10. }
  11. const std::vector<mnd::MandelInfo> benches {
  12. mnd::MandelInfo{ benchViewport(), 100, 100, 1000 },
  13. mnd::MandelInfo{ benchViewport(), 100, 200, 1000 },
  14. mnd::MandelInfo{ benchViewport(), 200, 200, 1000 },
  15. mnd::MandelInfo{ benchViewport(), 200, 200, 2000 },
  16. mnd::MandelInfo{ benchViewport(), 200, 400, 2000 },
  17. mnd::MandelInfo{ benchViewport(), 400, 400, 2000 },
  18. mnd::MandelInfo{ benchViewport(), 400, 400, 4000 },
  19. mnd::MandelInfo{ benchViewport(), 400, 800, 4000 },
  20. mnd::MandelInfo{ benchViewport(), 800, 800, 4000 },
  21. mnd::MandelInfo{ benchViewport(), 800, 800, 8000 },
  22. mnd::MandelInfo{ benchViewport(), 800, 800, 16000 },
  23. mnd::MandelInfo{ benchViewport(), 800, 1600, 16000 },
  24. mnd::MandelInfo{ benchViewport(), 1600, 1600, 16000 },
  25. mnd::MandelInfo{ benchViewport(), 1600, 1600, 32000 },
  26. mnd::MandelInfo{ benchViewport(), 1600, 1600, 64000 },
  27. mnd::MandelInfo{ benchViewport(), 1600, 3200, 64000 },
  28. mnd::MandelInfo{ benchViewport(), 3200, 3200, 64000 },
  29. mnd::MandelInfo{ benchViewport(), 3200, 3200, 128000 },
  30. mnd::MandelInfo{ benchViewport(), 3200, 3200, 256000 },
  31. mnd::MandelInfo{ benchViewport(), 3200, 3200, 512000 },
  32. mnd::MandelInfo{ benchViewport(), 3200, 3200, 1024000 },
  33. mnd::MandelInfo{ benchViewport(), 3200, 3200, 2048000 },
  34. mnd::MandelInfo{ benchViewport(), 3200, 6400, 2048000 },
  35. mnd::MandelInfo{ benchViewport(), 6400, 6400, 2048000 },
  36. mnd::MandelInfo{ benchViewport(), 6400, 6400, 4096000 },
  37. mnd::MandelInfo{ benchViewport(), 6400, 6400, 8192000 },
  38. mnd::MandelInfo{ benchViewport(), 6400, 6400, 16384000 },
  39. mnd::MandelInfo{ benchViewport(), 6400, 6400, 32768000 },
  40. mnd::MandelInfo{ benchViewport(), 6400, 6400, 65536000 },
  41. mnd::MandelInfo{ benchViewport(), 6400, 6400, 131072000 },
  42. mnd::MandelInfo{ benchViewport(), 6400, 6400, 262144000 },
  43. mnd::MandelInfo{ benchViewport(), 6400, 6400, 524288000 },
  44. mnd::MandelInfo{ benchViewport(), 6400, 6400, 1048576000 },
  45. mnd::MandelInfo{ benchViewport(), 6400, 6400, 2097152000 },
  46. };
  47. std::pair<long long, std::chrono::nanoseconds> measureMips(const std::function<std::pair<float*, long>()>& bench)
  48. {
  49. using namespace std::chrono;
  50. auto before = high_resolution_clock::now();
  51. auto [bitmap, length] = bench();
  52. auto after = high_resolution_clock::now();
  53. long long sum = 0;
  54. for (int i = 0; i < length; i++) {
  55. sum += std::floor(bitmap[size_t(i)]);
  56. }
  57. return std::make_pair(sum, duration_cast<nanoseconds>(after - before));
  58. /*
  59. double iterPerNanos = double(sum) / duration_cast<nanoseconds>(after - before).count();
  60. //printf("test took %lld millis\n", duration_cast<milliseconds>(after - before).count());
  61. //printf("test did %lld iters\n", sum);
  62. double megaItersPerSecond = iterPerNanos * 1000.0;
  63. return megaItersPerSecond;*/
  64. }
  65. double benchmark(mnd::Generator& generator)
  66. {
  67. /*mnd::MandelInfo mi;
  68. mi.bWidth = 250;
  69. mi.bHeight = 250;
  70. mi.maxIter = 4000;
  71. mi.view = benchViewport();*/
  72. int testIndex = 0;
  73. for (int i = 0; i < benches.size(); i++) {
  74. const mnd::MandelInfo& mi = benches[i];
  75. auto data = std::make_unique<float[]>(mi.bWidth * mi.bHeight);
  76. auto [iters, time] = measureMips([&generator, &mi, &data]() { generator.generate(mi, data.get()); return std::make_pair(data.get(), mi.bWidth * mi.bHeight); });
  77. //printf("benchmark lvl %d, time %d ms\n", i, time.count() / 1000 / 1000);
  78. //fflush(stdout);
  79. if (time > std::chrono::milliseconds(1000)) {
  80. testIndex = i + 2;
  81. break;
  82. }
  83. }
  84. const mnd::MandelInfo& mi = benches[(testIndex >= benches.size()) ? (benches.size() - 1) : testIndex];
  85. auto data = std::make_unique<float[]>(mi.bWidth * mi.bHeight);
  86. auto [iters, time] = measureMips([&generator, &mi, &data]() { generator.generate(mi, data.get()); return std::make_pair(data.get(), mi.bWidth * mi.bHeight); });
  87. //printf("bench time %d ms\n", time.count() / 1000 / 1000);
  88. //fflush(stdout);
  89. return double(iters) / time.count() * 1000;
  90. }
  91. #define REPORT_PERFORMANCE(name, performance) \
  92. do { std::cout << std::setw(30) << name << std::setw(10) << std::right << std::showbase << std::fixed << std::setprecision(2) << performance << std::endl; } while(0)
  93. int main()
  94. {
  95. mnd::MandelContext mc = mnd::initializeContext();
  96. std::cout << "Benchmarking CPU [" << mc.getCpuInfo().getBrand() << "]" << std::endl;
  97. REPORT_PERFORMANCE("float [MIps]: ", benchmark(mc.getCpuGeneratorFloat()));
  98. REPORT_PERFORMANCE("double [MIps]: ", benchmark(mc.getCpuGeneratorDouble()));
  99. REPORT_PERFORMANCE("fixed-point 128 bit [MIps]: ", benchmark(mc.getCpuGenerator128()));
  100. for (auto& device : mc.getDevices()) {
  101. std::cout << "Benchmarking Device [" << device.getName() << "]" << std::endl;
  102. if (mnd::Generator* gpuf; gpuf = device.getGeneratorFloat()) {
  103. REPORT_PERFORMANCE("float [MIps]: ", benchmark(*gpuf));
  104. }
  105. if (mnd::Generator* gpud; gpud = device.getGeneratorDouble()) {
  106. REPORT_PERFORMANCE("double [MIps]: ", benchmark(*gpud));
  107. }
  108. if (mnd::Generator* gpu128; gpu128 = device.getGenerator128()) {
  109. REPORT_PERFORMANCE("fixed-point 128 bit [MIps]: ", benchmark(*gpu128));
  110. }
  111. }
  112. /*
  113. std::cout << std::setw(30) << "float [MIps]: " << std::setw(10) << std::right << std::showbase << std::fixed << std::setprecision(2) << benchmark(mc.getCpuGeneratorFloat()) << std::endl;
  114. std::cout << std::setw(30) << "double [MIps]: " << std::setw(10) << std::right << std::showbase << std::fixed << std::setprecision(2) << benchmark(mc.getCpuGeneratorDouble()) << std::endl;
  115. std::cout << std::setw(30) << "fixed-point 128 bit [MIps]: " << std::setw(10) << std::right << std::showbase << std::fixed << std::setprecision(2) << benchmark(mc.getCpuGenerator128()) << std::endl;
  116. */
  117. }