llama-impl.cpp 5.8 KB

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  1. #include "llama-impl.h"
  2. #include "llama.h"
  3. #include <cinttypes>
  4. #include <climits>
  5. #include <cstdarg>
  6. #include <cstring>
  7. #include <vector>
  8. #include <sstream>
  9. struct llama_logger_state {
  10. ggml_log_callback log_callback = llama_log_callback_default;
  11. void * log_callback_user_data = nullptr;
  12. };
  13. static llama_logger_state g_logger_state;
  14. time_meas::time_meas(int64_t & t_acc, bool disable) : t_start_us(disable ? -1 : ggml_time_us()), t_acc(t_acc) {}
  15. time_meas::~time_meas() {
  16. if (t_start_us >= 0) {
  17. t_acc += ggml_time_us() - t_start_us;
  18. }
  19. }
  20. void llama_log_set(ggml_log_callback log_callback, void * user_data) {
  21. ggml_log_set(log_callback, user_data);
  22. g_logger_state.log_callback = log_callback ? log_callback : llama_log_callback_default;
  23. g_logger_state.log_callback_user_data = user_data;
  24. }
  25. static void llama_log_internal_v(ggml_log_level level, const char * format, va_list args) {
  26. va_list args_copy;
  27. va_copy(args_copy, args);
  28. char buffer[128];
  29. int len = vsnprintf(buffer, 128, format, args);
  30. if (len < 128) {
  31. g_logger_state.log_callback(level, buffer, g_logger_state.log_callback_user_data);
  32. } else {
  33. char * buffer2 = new char[len + 1];
  34. vsnprintf(buffer2, len + 1, format, args_copy);
  35. buffer2[len] = 0;
  36. g_logger_state.log_callback(level, buffer2, g_logger_state.log_callback_user_data);
  37. delete[] buffer2;
  38. }
  39. va_end(args_copy);
  40. }
  41. void llama_log_internal(ggml_log_level level, const char * format, ...) {
  42. va_list args;
  43. va_start(args, format);
  44. llama_log_internal_v(level, format, args);
  45. va_end(args);
  46. }
  47. void llama_log_callback_default(ggml_log_level level, const char * text, void * user_data) {
  48. (void) level;
  49. (void) user_data;
  50. fputs(text, stderr);
  51. fflush(stderr);
  52. }
  53. void replace_all(std::string & s, const std::string & search, const std::string & replace) {
  54. if (search.empty()) {
  55. return;
  56. }
  57. std::string builder;
  58. builder.reserve(s.length());
  59. size_t pos = 0;
  60. size_t last_pos = 0;
  61. while ((pos = s.find(search, last_pos)) != std::string::npos) {
  62. builder.append(s, last_pos, pos - last_pos);
  63. builder.append(replace);
  64. last_pos = pos + search.length();
  65. }
  66. builder.append(s, last_pos, std::string::npos);
  67. s = std::move(builder);
  68. }
  69. std::string format(const char * fmt, ...) {
  70. va_list ap;
  71. va_list ap2;
  72. va_start(ap, fmt);
  73. va_copy(ap2, ap);
  74. int size = vsnprintf(NULL, 0, fmt, ap);
  75. GGML_ASSERT(size >= 0 && size < INT_MAX); // NOLINT
  76. std::vector<char> buf(size + 1);
  77. int size2 = vsnprintf(buf.data(), size + 1, fmt, ap2);
  78. GGML_ASSERT(size2 == size);
  79. va_end(ap2);
  80. va_end(ap);
  81. return std::string(buf.data(), size);
  82. }
  83. std::string llama_format_tensor_shape(const std::vector<int64_t> & ne) {
  84. char buf[256];
  85. snprintf(buf, sizeof(buf), "%5" PRId64, ne.at(0));
  86. for (size_t i = 1; i < ne.size(); i++) {
  87. snprintf(buf + strlen(buf), sizeof(buf) - strlen(buf), ", %5" PRId64, ne.at(i));
  88. }
  89. return buf;
  90. }
  91. std::string llama_format_tensor_shape(const struct ggml_tensor * t) {
  92. char buf[256];
  93. snprintf(buf, sizeof(buf), "%5" PRId64, t->ne[0]);
  94. for (int i = 1; i < GGML_MAX_DIMS; i++) {
  95. snprintf(buf + strlen(buf), sizeof(buf) - strlen(buf), ", %5" PRId64, t->ne[i]);
  96. }
  97. return buf;
  98. }
  99. static std::string gguf_data_to_str(enum gguf_type type, const void * data, int i) {
  100. switch (type) {
  101. case GGUF_TYPE_UINT8: return std::to_string(((const uint8_t *)data)[i]);
  102. case GGUF_TYPE_INT8: return std::to_string(((const int8_t *)data)[i]);
  103. case GGUF_TYPE_UINT16: return std::to_string(((const uint16_t *)data)[i]);
  104. case GGUF_TYPE_INT16: return std::to_string(((const int16_t *)data)[i]);
  105. case GGUF_TYPE_UINT32: return std::to_string(((const uint32_t *)data)[i]);
  106. case GGUF_TYPE_INT32: return std::to_string(((const int32_t *)data)[i]);
  107. case GGUF_TYPE_UINT64: return std::to_string(((const uint64_t *)data)[i]);
  108. case GGUF_TYPE_INT64: return std::to_string(((const int64_t *)data)[i]);
  109. case GGUF_TYPE_FLOAT32: return std::to_string(((const float *)data)[i]);
  110. case GGUF_TYPE_FLOAT64: return std::to_string(((const double *)data)[i]);
  111. case GGUF_TYPE_BOOL: return ((const bool *)data)[i] ? "true" : "false";
  112. default: return format("unknown type %d", type);
  113. }
  114. }
  115. std::string gguf_kv_to_str(const struct gguf_context * ctx_gguf, int i) {
  116. const enum gguf_type type = gguf_get_kv_type(ctx_gguf, i);
  117. switch (type) {
  118. case GGUF_TYPE_STRING:
  119. return gguf_get_val_str(ctx_gguf, i);
  120. case GGUF_TYPE_ARRAY:
  121. {
  122. const enum gguf_type arr_type = gguf_get_arr_type(ctx_gguf, i);
  123. int arr_n = gguf_get_arr_n(ctx_gguf, i);
  124. const void * data = gguf_get_arr_data(ctx_gguf, i);
  125. std::stringstream ss;
  126. ss << "[";
  127. for (int j = 0; j < arr_n; j++) {
  128. if (arr_type == GGUF_TYPE_STRING) {
  129. std::string val = gguf_get_arr_str(ctx_gguf, i, j);
  130. // escape quotes
  131. replace_all(val, "\\", "\\\\");
  132. replace_all(val, "\"", "\\\"");
  133. ss << '"' << val << '"';
  134. } else if (arr_type == GGUF_TYPE_ARRAY) {
  135. ss << "???";
  136. } else {
  137. ss << gguf_data_to_str(arr_type, data, j);
  138. }
  139. if (j < arr_n - 1) {
  140. ss << ", ";
  141. }
  142. }
  143. ss << "]";
  144. return ss.str();
  145. }
  146. default:
  147. return gguf_data_to_str(type, gguf_get_val_data(ctx_gguf, i), 0);
  148. }
  149. }