q8dot.cpp 5.2 KB

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  1. #include <cstdio>
  2. #include <type_traits>
  3. #include <vector>
  4. #include <random>
  5. #include <chrono>
  6. #include <cstdlib>
  7. #include <cmath>
  8. #include <cassert>
  9. #include <cstring>
  10. #include <array>
  11. #include <type_traits>
  12. #include <ggml.h>
  13. constexpr int kVecSize = 1 << 16;
  14. // Copy-pasted from ggml.c
  15. #define QK4_0 32
  16. typedef struct {
  17. float d; // delta
  18. uint8_t qs[QK4_0 / 2]; // nibbles / quants
  19. } block_q4_0;
  20. static_assert(sizeof(block_q4_0) == sizeof(float) + QK4_0 / 2, "wrong q4_0 block size/padding");
  21. #define QK4_1 32
  22. typedef struct {
  23. float d; // delta
  24. float m; // min
  25. uint8_t qs[QK4_1 / 2]; // nibbles / quants
  26. } block_q4_1;
  27. static_assert(sizeof(block_q4_1) == sizeof(float) * 2 + QK4_1 / 2, "wrong q4_1 block size/padding");
  28. // Copy-pasted from ggml.c
  29. #define QK8_0 32
  30. typedef struct {
  31. float d; // delta
  32. float s; // d * sum(qs[i])
  33. int8_t qs[QK8_0]; // quants
  34. } block_q8_0;
  35. static_assert(sizeof(block_q8_0) == 2*sizeof(float) + QK8_0, "wrong q8_0 block size/padding");
  36. static_assert(QK4_1 == QK8_0, "QK4_1 and QK8_0 must be the same");
  37. static_assert(QK4_0 == QK8_0, "QK4_0 and QK8_0 must be the same");
  38. template <typename T>
  39. static void fillQ4blocks(std::vector<T>& blocks, std::mt19937& rndm) {
  40. for (auto& b : blocks) {
  41. b.d = 1;
  42. for (int i=0; i<QK4_1/2; ++i) {
  43. uint8_t v1 = rndm() >> 28;
  44. uint8_t v2 = rndm() >> 28;
  45. b.qs[i] = v1 | (v2 << 4);
  46. }
  47. }
  48. }
  49. static void fillQ80blocks(std::vector<block_q8_0>& blocks, std::mt19937& rndm) {
  50. for (auto& b : blocks) {
  51. b.d = 1;
  52. int sum = 0;
  53. for (int i=0; i<QK8_0; ++i) {
  54. b.qs[i] = (rndm() >> 24) - 128;
  55. sum += b.qs[i];
  56. }
  57. b.s = b.d * sum;
  58. }
  59. }
  60. static float simpleDot(const block_q4_0& x, const block_q8_0& y) {
  61. int s1 = 0; //, s2 = 0;
  62. for (int i=0; i<QK4_1/2; i+=2) {
  63. int v1 = x.qs[i+0] & 0xf;
  64. int v2 = x.qs[i+0] >> 4;
  65. int v3 = x.qs[i+1] & 0xf;
  66. int v4 = x.qs[i+1] >> 4;
  67. int j = 2*i;
  68. s1 += v1*y.qs[j] + v2*y.qs[j+1] + v3*y.qs[j+2] + v4*y.qs[j+3];
  69. //s2 += y.qs[j] + y.qs[j+1] + y.qs[j+2] + y.qs[j+3];
  70. }
  71. return y.d * x.d * s1 - 8 * x.d * y.s;
  72. //return y.d * x.d * (s1 - 8 * s2);
  73. }
  74. static float simpleDot(const block_q4_1& x, const block_q8_0& y) {
  75. int s1 = 0; //, s2 = 0;
  76. for (int i=0; i<QK4_1/2; i+=2) {
  77. int v1 = x.qs[i+0] & 0xf;
  78. int v2 = x.qs[i+0] >> 4;
  79. int v3 = x.qs[i+1] & 0xf;
  80. int v4 = x.qs[i+1] >> 4;
  81. int j = 2*i;
  82. s1 += v1*y.qs[j] + v2*y.qs[j+1] + v3*y.qs[j+2] + v4*y.qs[j+3];
  83. //s2 += y.qs[j] + y.qs[j+1] + y.qs[j+2] + y.qs[j+3];
  84. }
  85. return y.d * x.d * s1 + y.s * x.m;
  86. //return y.d * (x.d * s1 + x.m * s2);
  87. }
  88. struct Stat {
  89. double sum = 0, sumt = 0, sumt2 = 0, maxt = 0;
  90. int nloop = 0;
  91. void addResult(double s, double t) {
  92. sum += s;
  93. sumt += t; sumt2 += t*t; maxt = std::max(maxt, t);
  94. ++nloop;
  95. }
  96. void reportResult(const char* title) const {
  97. if (nloop < 1) {
  98. printf("%s(%s): no result\n",__func__,title);
  99. return;
  100. }
  101. printf("============ %s\n",title);
  102. printf("<dot> = %g\n",sum/nloop);
  103. auto t = sumt/nloop, dt = sumt2/nloop - t*t;
  104. if (dt > 0) dt = sqrt(dt);
  105. printf("<time> = %g +/- %g us. Max. time = %g us.\n",t,dt,maxt);
  106. }
  107. };
  108. int main(int argc, char** argv) {
  109. int nloop = argc > 1 ? atoi(argv[1]) : 10;
  110. int type = argc > 2 ? atoi(argv[2]) : 1;
  111. std::mt19937 rndm(1234);
  112. std::vector<block_q4_1> x41;
  113. std::vector<block_q4_0> x40;
  114. std::vector<block_q8_0> y(kVecSize);
  115. if (type == 0) x40.resize(kVecSize);
  116. else {
  117. x41.resize(kVecSize);
  118. for (auto& b : x41) b.m = 1;
  119. }
  120. auto ggml_type = type == 0 ? GGML_TYPE_Q4_0 : GGML_TYPE_Q4_1;
  121. auto funcs = ggml_internal_get_type_traits(ggml_type);
  122. Stat simple, ggml;
  123. for (int iloop=0; iloop<nloop; ++iloop) {
  124. if (type == 0) fillQ4blocks(x40, rndm);
  125. else fillQ4blocks(x41, rndm);
  126. fillQ80blocks(y, rndm);
  127. auto t1 = std::chrono::high_resolution_clock::now();
  128. double s = 0;
  129. if (type == 0) for (int i=0; i<kVecSize; ++i) s += simpleDot(x40[i], y[i]);
  130. else for (int i=0; i<kVecSize; ++i) s += simpleDot(x41[i], y[i]);
  131. auto t2 = std::chrono::high_resolution_clock::now();
  132. auto t = 1e-3*std::chrono::duration_cast<std::chrono::nanoseconds>(t2-t1).count();
  133. if (iloop > 3) simple.addResult(s, t);
  134. t1 = std::chrono::high_resolution_clock::now();
  135. float fs;
  136. if (type == 0) funcs.vec_dot(kVecSize * QK4_1, &fs, x40.data(), y.data());
  137. else funcs.vec_dot(kVecSize * QK4_1, &fs, x41.data(), y.data());
  138. t2 = std::chrono::high_resolution_clock::now();
  139. t = 1e-3*std::chrono::duration_cast<std::chrono::nanoseconds>(t2-t1).count();
  140. if (iloop > 3) ggml.addResult(fs, t);
  141. }
  142. // Report the time (and the average of the dot products so the compiler does not come up with the idea
  143. // of optimizing away the function calls after figuring that the result is not used).
  144. simple.reportResult("Simple");
  145. ggml.reportResult("ggml");
  146. return 0;
  147. }