compressor-filter.c 6.7 KB

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  1. #include <stdint.h>
  2. #include <inttypes.h>
  3. #include <math.h>
  4. #include <obs-module.h>
  5. #include <media-io/audio-math.h>
  6. /* -------------------------------------------------------- */
  7. #define do_log(level, format, ...) \
  8. blog(level, "[compressor: '%s'] " format, \
  9. obs_source_get_name(cd->context), ##__VA_ARGS__)
  10. #define warn(format, ...) do_log(LOG_WARNING, format, ##__VA_ARGS__)
  11. #define info(format, ...) do_log(LOG_INFO, format, ##__VA_ARGS__)
  12. #ifdef _DEBUG
  13. #define debug(format, ...) do_log(LOG_DEBUG, format, ##__VA_ARGS__)
  14. #else
  15. #define debug(format, ...)
  16. #endif
  17. /* -------------------------------------------------------- */
  18. #define S_RATIO "ratio"
  19. #define S_THRESHOLD "threshold"
  20. #define S_ATTACK_TIME "attack_time"
  21. #define S_RELEASE_TIME "release_time"
  22. #define S_OUTPUT_GAIN "output_gain"
  23. #define MT_ obs_module_text
  24. #define TEXT_RATIO MT_("Compressor.Ratio")
  25. #define TEXT_THRESHOLD MT_("Compressor.Threshold")
  26. #define TEXT_ATTACK_TIME MT_("Compressor.AttackTime")
  27. #define TEXT_RELEASE_TIME MT_("Compressor.ReleaseTime")
  28. #define TEXT_OUTPUT_GAIN MT_("Compressor.OutputGain")
  29. #define MIN_RATIO 1.0f
  30. #define MAX_RATIO 32.0f
  31. #define MIN_THRESHOLD_DB -60.0f
  32. #define MAX_THRESHOLD_DB 0.0f
  33. #define MIN_OUTPUT_GAIN_DB -32.0f
  34. #define MAX_OUTPUT_GAIN_DB 32.0f
  35. #define MIN_ATK_RLS_MS 1
  36. #define MAX_RLS_MS 1000
  37. #define MAX_ATK_MS 500
  38. #define DEFAULT_AUDIO_BUF_MS 10
  39. #define MS_IN_S 1000
  40. #define MS_IN_S_F ((float)MS_IN_S)
  41. /* -------------------------------------------------------- */
  42. struct compressor_data {
  43. obs_source_t *context;
  44. float *envelope_buf;
  45. size_t envelope_buf_len;
  46. float ratio;
  47. float threshold;
  48. float attack_gain;
  49. float release_gain;
  50. float output_gain;
  51. size_t num_channels;
  52. float envelope;
  53. float slope;
  54. };
  55. /* -------------------------------------------------------- */
  56. static inline void resize_env_buffer(struct compressor_data *cd, size_t len)
  57. {
  58. cd->envelope_buf_len = len;
  59. cd->envelope_buf = brealloc(cd->envelope_buf, len * sizeof(float));
  60. }
  61. static inline float gain_coefficient(uint32_t sample_rate, float time)
  62. {
  63. return (float)exp(-1.0f / (sample_rate * time));
  64. }
  65. static const char *compressor_name(void *unused)
  66. {
  67. UNUSED_PARAMETER(unused);
  68. return obs_module_text("Compressor");
  69. }
  70. static void compressor_update(void *data, obs_data_t *s)
  71. {
  72. struct compressor_data *cd = data;
  73. const uint32_t sample_rate =
  74. audio_output_get_sample_rate(obs_get_audio());
  75. const size_t num_channels =
  76. audio_output_get_channels(obs_get_audio());
  77. const float attack_time_ms =
  78. (float)obs_data_get_int(s, S_ATTACK_TIME);
  79. const float release_time_ms =
  80. (float)obs_data_get_int(s, S_RELEASE_TIME);
  81. const float output_gain_db =
  82. (float)obs_data_get_double(s, S_OUTPUT_GAIN);
  83. if (cd->envelope_buf_len <= 0) {
  84. resize_env_buffer(cd,
  85. sample_rate * DEFAULT_AUDIO_BUF_MS / MS_IN_S);
  86. }
  87. cd->ratio = (float)obs_data_get_double(s, S_RATIO);
  88. cd->threshold = (float)obs_data_get_double(s, S_THRESHOLD);
  89. cd->attack_gain = gain_coefficient(sample_rate,
  90. attack_time_ms / MS_IN_S_F);
  91. cd->release_gain = gain_coefficient(sample_rate,
  92. release_time_ms / MS_IN_S_F);
  93. cd->output_gain = db_to_mul(output_gain_db);
  94. cd->num_channels = num_channels;
  95. cd->slope = 1.0f - (1.0f / cd->ratio);
  96. }
  97. static void *compressor_create(obs_data_t *settings, obs_source_t *filter)
  98. {
  99. struct compressor_data *cd = bzalloc(sizeof(struct compressor_data));
  100. cd->context = filter;
  101. compressor_update(cd, settings);
  102. return cd;
  103. }
  104. static void compressor_destroy(void *data)
  105. {
  106. struct compressor_data *cd = data;
  107. bfree(cd->envelope_buf);
  108. bfree(cd);
  109. }
  110. static inline void analyze_envelope(struct compressor_data *cd,
  111. float **samples, const uint32_t num_samples)
  112. {
  113. if (cd->envelope_buf_len < num_samples) {
  114. resize_env_buffer(cd, num_samples);
  115. }
  116. memset(cd->envelope_buf, 0, num_samples * sizeof(cd->envelope_buf[0]));
  117. for (size_t chan = 0; chan < cd->num_channels; ++chan) {
  118. if (samples[chan]) {
  119. float env = cd->envelope;
  120. for (uint32_t i = 0; i < num_samples; ++i) {
  121. const float env_in = fabsf(samples[chan][i]);
  122. if (env < env_in) {
  123. env = env_in + cd->attack_gain *
  124. (env - env_in);
  125. } else {
  126. env = env_in + cd->release_gain *
  127. (env - env_in);
  128. }
  129. cd->envelope_buf[i] = fmaxf(
  130. cd->envelope_buf[i], env);
  131. }
  132. }
  133. }
  134. cd->envelope = cd->envelope_buf[num_samples - 1];
  135. }
  136. static inline void process_compression(const struct compressor_data *cd,
  137. float **samples, uint32_t num_samples)
  138. {
  139. for (size_t i = 0; i < num_samples; ++i) {
  140. const float env_db = mul_to_db(cd->envelope_buf[i]);
  141. float gain = cd->slope * (cd->threshold - env_db);
  142. gain = db_to_mul(fminf(0, gain));
  143. for (size_t c = 0; c < cd->num_channels; ++c) {
  144. if (samples[c]) {
  145. samples[c][i] *= gain * cd->output_gain;
  146. }
  147. }
  148. }
  149. }
  150. static struct obs_audio_data *compressor_filter_audio(void *data,
  151. struct obs_audio_data *audio)
  152. {
  153. struct compressor_data *cd = data;
  154. const uint32_t num_samples = audio->frames;
  155. float **samples = (float**)audio->data;
  156. analyze_envelope(cd, samples, num_samples);
  157. process_compression(cd, samples, num_samples);
  158. return audio;
  159. }
  160. static void compressor_defaults(obs_data_t *s)
  161. {
  162. obs_data_set_default_double(s, S_RATIO, 10.0f);
  163. obs_data_set_default_double(s, S_THRESHOLD, -18.0f);
  164. obs_data_set_default_int(s, S_ATTACK_TIME, 6);
  165. obs_data_set_default_int(s, S_RELEASE_TIME, 60);
  166. obs_data_set_default_double(s, S_OUTPUT_GAIN, 0.0f);
  167. }
  168. static obs_properties_t *compressor_properties(void *data)
  169. {
  170. obs_properties_t *props = obs_properties_create();
  171. obs_properties_add_float_slider(props, S_RATIO,
  172. TEXT_RATIO, MIN_RATIO, MAX_RATIO, 0.5f);
  173. obs_properties_add_float_slider(props, S_THRESHOLD,
  174. TEXT_THRESHOLD, MIN_THRESHOLD_DB, MAX_THRESHOLD_DB, 0.1f);
  175. obs_properties_add_int_slider(props, S_ATTACK_TIME,
  176. TEXT_ATTACK_TIME, MIN_ATK_RLS_MS, MAX_ATK_MS, 1);
  177. obs_properties_add_int_slider(props, S_RELEASE_TIME,
  178. TEXT_RELEASE_TIME, MIN_ATK_RLS_MS, MAX_RLS_MS, 1);
  179. obs_properties_add_float_slider(props, S_OUTPUT_GAIN,
  180. TEXT_OUTPUT_GAIN, MIN_OUTPUT_GAIN_DB, MAX_OUTPUT_GAIN_DB, 0.1f);
  181. UNUSED_PARAMETER(data);
  182. return props;
  183. }
  184. struct obs_source_info compressor_filter = {
  185. .id = "compressor_filter",
  186. .type = OBS_SOURCE_TYPE_FILTER,
  187. .output_flags = OBS_SOURCE_AUDIO,
  188. .get_name = compressor_name,
  189. .create = compressor_create,
  190. .destroy = compressor_destroy,
  191. .update = compressor_update,
  192. .filter_audio = compressor_filter_audio,
  193. .get_defaults = compressor_defaults,
  194. .get_properties = compressor_properties,
  195. };