test-quantize-fns.cpp 7.0 KB

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  1. // Unit tests for quantization specific functions - quantize, dequantize and dot product
  2. #include "ggml.h"
  3. #undef NDEBUG
  4. #include <assert.h>
  5. #include <math.h>
  6. #include <stdio.h>
  7. #include <string>
  8. #include <vector>
  9. #if defined(_MSC_VER)
  10. #pragma warning(disable: 4244 4267) // possible loss of data
  11. #endif
  12. constexpr float MAX_QUANTIZATION_REFERENCE_ERROR = 0.0001f;
  13. constexpr float MAX_QUANTIZATION_TOTAL_ERROR = 0.002f;
  14. constexpr float MAX_QUANTIZATION_TOTAL_ERROR_TERNARY = 0.01f;
  15. constexpr float MAX_QUANTIZATION_TOTAL_ERROR_2BITS = 0.0075f;
  16. constexpr float MAX_QUANTIZATION_TOTAL_ERROR_3BITS = 0.0040f;
  17. constexpr float MAX_QUANTIZATION_TOTAL_ERROR_3BITS_XXS = 0.0050f;
  18. constexpr float MAX_DOT_PRODUCT_ERROR = 0.02f;
  19. constexpr float MAX_DOT_PRODUCT_ERROR_LOWBIT = 0.04f;
  20. constexpr float MAX_DOT_PRODUCT_ERROR_TERNARY = 0.15f;
  21. static const char* RESULT_STR[] = {"ok", "FAILED"};
  22. // Generate synthetic data
  23. static void generate_data(float offset, size_t n, float * dst) {
  24. for (size_t i = 0; i < n; i++) {
  25. dst[i] = 0.1 + 2*cosf(i + offset);
  26. }
  27. }
  28. // Calculate RMSE between two float arrays
  29. static float array_rmse(const float * a1, const float * a2, size_t n) {
  30. double sum = 0;
  31. for (size_t i = 0; i < n; i++) {
  32. double diff = a1[i] - a2[i];
  33. sum += diff * diff;
  34. }
  35. return sqrtf(sum) / n;
  36. }
  37. // Total quantization error on test data
  38. static float total_quantization_error(ggml_type_traits_t & qfns, size_t test_size, const float * test_data) {
  39. std::vector<uint8_t> tmp_q(2*test_size);
  40. std::vector<float> tmp_out(test_size);
  41. qfns.from_float(test_data, tmp_q.data(), test_size);
  42. qfns.to_float(tmp_q.data(), tmp_out.data(), test_size);
  43. return array_rmse(test_data, tmp_out.data(), test_size);
  44. }
  45. // Total quantization error on test data
  46. static float reference_quantization_error(ggml_type_traits_t & qfns, size_t test_size, const float * test_data) {
  47. std::vector<uint8_t> tmp_q(2*test_size);
  48. std::vector<float> tmp_out(test_size);
  49. std::vector<float> tmp_out_ref(test_size);
  50. qfns.from_float(test_data, tmp_q.data(), test_size);
  51. qfns.to_float(tmp_q.data(), tmp_out.data(), test_size);
  52. qfns.from_float_ref(test_data, tmp_q.data(), test_size);
  53. qfns.to_float(tmp_q.data(), tmp_out_ref.data(), test_size);
  54. return array_rmse(tmp_out.data(), tmp_out_ref.data(), test_size);
  55. }
  56. static float dot_product(const float * a1, const float * a2, size_t test_size) {
  57. double sum = 0;
  58. for (size_t i = 0; i < test_size; i++) {
  59. sum += a1[i] * a2[i];
  60. }
  61. return sum;
  62. }
  63. // Total dot product error
  64. static float dot_product_error(
  65. ggml_type_traits_t & qfns, size_t test_size, const float * test_data1, const float *test_data2
  66. ) {
  67. std::vector<uint8_t> tmp_q1(2*test_size);
  68. std::vector<uint8_t> tmp_q2(2*test_size);
  69. auto vdot = ggml_internal_get_type_traits(qfns.vec_dot_type);
  70. qfns.from_float(test_data1, tmp_q1.data(), test_size);
  71. vdot.from_float(test_data2, tmp_q2.data(), test_size);
  72. float result = INFINITY;
  73. qfns.vec_dot(test_size, &result, 0, tmp_q1.data(), 0, tmp_q2.data(), 0, 1);
  74. const float dot_ref = dot_product(test_data1, test_data2, test_size);
  75. return fabsf(result - dot_ref) / test_size;
  76. }
  77. int main(int argc, char * argv[]) {
  78. bool verbose = false;
  79. const size_t test_size = 32 * 128;
  80. std::string arg;
  81. for (int i = 1; i < argc; i++) {
  82. arg = argv[i];
  83. if (arg == "-v") {
  84. verbose = true;
  85. } else {
  86. fprintf(stderr, "error: unknown argument: %s\n", arg.c_str());
  87. return 1;
  88. }
  89. }
  90. std::vector<float> test_data(test_size);
  91. std::vector<float> test_data2(test_size);
  92. generate_data(0.0, test_data.size(), test_data.data());
  93. generate_data(1.0, test_data2.size(), test_data2.data());
  94. // Initialize GGML, ensures float conversion tables are initialized
  95. struct ggml_init_params ggml_params = {
  96. /* .mem_size = */ 1*1024,
  97. /* .mem_buffer = */ NULL,
  98. /* .no_alloc = */ true,
  99. };
  100. struct ggml_context * ctx = ggml_init(ggml_params);
  101. int num_failed = 0;
  102. bool failed = false;
  103. for (int i = 0; i < GGML_TYPE_COUNT; i++) {
  104. ggml_type type = (ggml_type) i;
  105. ggml_type_traits_t qfns = ggml_internal_get_type_traits(type);
  106. // deprecated - skip
  107. if (qfns.blck_size == 0) {
  108. continue;
  109. }
  110. const ggml_type ei = (ggml_type)i;
  111. printf("Testing %s\n", ggml_type_name((ggml_type) i));
  112. ggml_quantize_init(ei);
  113. if (qfns.from_float && qfns.to_float) {
  114. const float total_error = total_quantization_error(qfns, test_size, test_data.data());
  115. const float max_quantization_error =
  116. type == GGML_TYPE_TQ1_0 ? MAX_QUANTIZATION_TOTAL_ERROR_TERNARY :
  117. type == GGML_TYPE_TQ2_0 ? MAX_QUANTIZATION_TOTAL_ERROR_TERNARY :
  118. type == GGML_TYPE_Q2_K ? MAX_QUANTIZATION_TOTAL_ERROR_2BITS :
  119. type == GGML_TYPE_IQ2_S ? MAX_QUANTIZATION_TOTAL_ERROR_2BITS :
  120. type == GGML_TYPE_Q3_K ? MAX_QUANTIZATION_TOTAL_ERROR_3BITS :
  121. type == GGML_TYPE_IQ3_S ? MAX_QUANTIZATION_TOTAL_ERROR_3BITS :
  122. type == GGML_TYPE_IQ3_XXS ? MAX_QUANTIZATION_TOTAL_ERROR_3BITS_XXS : MAX_QUANTIZATION_TOTAL_ERROR;
  123. failed = !(total_error < max_quantization_error);
  124. num_failed += failed;
  125. if (failed || verbose) {
  126. printf("%5s absolute quantization error: %s (%f)\n", ggml_type_name(type), RESULT_STR[failed], total_error);
  127. }
  128. const float reference_error = reference_quantization_error(qfns, test_size, test_data.data());
  129. failed = !(reference_error < MAX_QUANTIZATION_REFERENCE_ERROR);
  130. num_failed += failed;
  131. if (failed || verbose) {
  132. printf("%5s reference implementation error: %s (%f)\n", ggml_type_name(type), RESULT_STR[failed], reference_error);
  133. }
  134. const float vec_dot_error = dot_product_error(qfns, test_size, test_data.data(), test_data2.data());
  135. const float max_allowed_error = type == GGML_TYPE_Q2_K || type == GGML_TYPE_IQ2_XS || type == GGML_TYPE_IQ2_XXS ||
  136. type == GGML_TYPE_IQ3_XXS || type == GGML_TYPE_IQ3_S || type == GGML_TYPE_IQ2_S
  137. ? MAX_DOT_PRODUCT_ERROR_LOWBIT
  138. : type == GGML_TYPE_TQ1_0 || type == GGML_TYPE_TQ2_0
  139. ? MAX_DOT_PRODUCT_ERROR_TERNARY
  140. : MAX_DOT_PRODUCT_ERROR;
  141. failed = !(vec_dot_error < max_allowed_error);
  142. num_failed += failed;
  143. if (failed || verbose) {
  144. printf("%5s dot product error: %s (%f)\n", ggml_type_name(type), RESULT_STR[failed], vec_dot_error);
  145. }
  146. }
  147. }
  148. if (num_failed || verbose) {
  149. printf("%d tests failed\n", num_failed);
  150. }
  151. ggml_free(ctx);
  152. return num_failed > 0;
  153. }