audiogen.c 4.5 KB

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  1. /*
  2. * Generates a synthetic stereo sound
  3. * NOTE: no floats are used to guaranty a bit exact output.
  4. */
  5. #include <stdlib.h>
  6. #include <stdio.h>
  7. #define NB_CHANNELS 2
  8. #define FE 44100
  9. static unsigned int myrnd(unsigned int *seed_ptr, int n)
  10. {
  11. unsigned int seed, val;
  12. seed = *seed_ptr;
  13. seed = (seed * 314159) + 1;
  14. if (n == 256) {
  15. val = seed >> 24;
  16. } else {
  17. val = seed % n;
  18. }
  19. *seed_ptr = seed;
  20. return val;
  21. }
  22. #define FRAC_BITS 16
  23. #define FRAC_ONE (1 << FRAC_BITS)
  24. #define COS_TABLE_BITS 7
  25. /* integer cosinus */
  26. static const unsigned short cos_table[(1 << COS_TABLE_BITS) + 2] = {
  27. 0x8000, 0x7ffe, 0x7ff6, 0x7fea, 0x7fd9, 0x7fc2, 0x7fa7, 0x7f87,
  28. 0x7f62, 0x7f38, 0x7f0a, 0x7ed6, 0x7e9d, 0x7e60, 0x7e1e, 0x7dd6,
  29. 0x7d8a, 0x7d3a, 0x7ce4, 0x7c89, 0x7c2a, 0x7bc6, 0x7b5d, 0x7aef,
  30. 0x7a7d, 0x7a06, 0x798a, 0x790a, 0x7885, 0x77fb, 0x776c, 0x76d9,
  31. 0x7642, 0x75a6, 0x7505, 0x7460, 0x73b6, 0x7308, 0x7255, 0x719e,
  32. 0x70e3, 0x7023, 0x6f5f, 0x6e97, 0x6dca, 0x6cf9, 0x6c24, 0x6b4b,
  33. 0x6a6e, 0x698c, 0x68a7, 0x67bd, 0x66d0, 0x65de, 0x64e9, 0x63ef,
  34. 0x62f2, 0x61f1, 0x60ec, 0x5fe4, 0x5ed7, 0x5dc8, 0x5cb4, 0x5b9d,
  35. 0x5a82, 0x5964, 0x5843, 0x571e, 0x55f6, 0x54ca, 0x539b, 0x5269,
  36. 0x5134, 0x4ffb, 0x4ec0, 0x4d81, 0x4c40, 0x4afb, 0x49b4, 0x486a,
  37. 0x471d, 0x45cd, 0x447b, 0x4326, 0x41ce, 0x4074, 0x3f17, 0x3db8,
  38. 0x3c57, 0x3af3, 0x398d, 0x3825, 0x36ba, 0x354e, 0x33df, 0x326e,
  39. 0x30fc, 0x2f87, 0x2e11, 0x2c99, 0x2b1f, 0x29a4, 0x2827, 0x26a8,
  40. 0x2528, 0x23a7, 0x2224, 0x209f, 0x1f1a, 0x1d93, 0x1c0c, 0x1a83,
  41. 0x18f9, 0x176e, 0x15e2, 0x1455, 0x12c8, 0x113a, 0x0fab, 0x0e1c,
  42. 0x0c8c, 0x0afb, 0x096b, 0x07d9, 0x0648, 0x04b6, 0x0324, 0x0192,
  43. 0x0000, 0x0000,
  44. };
  45. #define CSHIFT (FRAC_BITS - COS_TABLE_BITS - 2)
  46. static int int_cos(int a)
  47. {
  48. int neg, v, f;
  49. const unsigned short *p;
  50. a = a & (FRAC_ONE - 1); /* modulo 2 * pi */
  51. if (a >= (FRAC_ONE / 2))
  52. a = FRAC_ONE - a;
  53. neg = 0;
  54. if (a > (FRAC_ONE / 4)) {
  55. neg = -1;
  56. a = (FRAC_ONE / 2) - a;
  57. }
  58. p = cos_table + (a >> CSHIFT);
  59. /* linear interpolation */
  60. f = a & ((1 << CSHIFT) - 1);
  61. v = p[0] + (((p[1] - p[0]) * f + (1 << (CSHIFT - 1))) >> CSHIFT);
  62. v = (v ^ neg) - neg;
  63. v = v << (FRAC_BITS - 15);
  64. return v;
  65. }
  66. FILE *outfile;
  67. void put_sample(int v)
  68. {
  69. fputc(v & 0xff, outfile);
  70. fputc((v >> 8) & 0xff, outfile);
  71. }
  72. int main(int argc, char **argv)
  73. {
  74. int i, a, v, j, f, amp, ampa;
  75. unsigned int seed = 1;
  76. int tabf1[NB_CHANNELS], tabf2[NB_CHANNELS];
  77. int taba[NB_CHANNELS];
  78. if (argc != 2) {
  79. printf("usage: %s file\n"
  80. "generate a test raw 16 bit stereo audio stream\n", argv[0]);
  81. exit(1);
  82. }
  83. outfile = fopen(argv[1], "wb");
  84. if (!outfile) {
  85. perror(argv[1]);
  86. return 1;
  87. }
  88. /* 1 second of single freq sinus at 1000 Hz */
  89. a = 0;
  90. for(i=0;i<1 * FE;i++) {
  91. v = (int_cos(a) * 10000) >> FRAC_BITS;
  92. for(j=0;j<NB_CHANNELS;j++)
  93. put_sample(v);
  94. a += (1000 * FRAC_ONE) / FE;
  95. }
  96. /* 1 second of varing frequency between 100 and 10000 Hz */
  97. a = 0;
  98. for(i=0;i<1 * FE;i++) {
  99. v = (int_cos(a) * 10000) >> FRAC_BITS;
  100. for(j=0;j<NB_CHANNELS;j++)
  101. put_sample(v);
  102. f = 100 + (((10000 - 100) * i) / FE);
  103. a += (f * FRAC_ONE) / FE;
  104. }
  105. /* 0.5 second of low amplitude white noise */
  106. for(i=0;i<FE / 2;i++) {
  107. v = myrnd(&seed, 20000) - 10000;
  108. for(j=0;j<NB_CHANNELS;j++)
  109. put_sample(v);
  110. }
  111. /* 0.5 second of high amplitude white noise */
  112. for(i=0;i<FE / 2;i++) {
  113. v = myrnd(&seed, 65535) - 32768;
  114. for(j=0;j<NB_CHANNELS;j++)
  115. put_sample(v);
  116. }
  117. /* stereo : 2 unrelated ramps */
  118. for(j=0;j<NB_CHANNELS;j++) {
  119. taba[j] = 0;
  120. tabf1[j] = 100 + myrnd(&seed, 5000);
  121. tabf2[j] = 100 + myrnd(&seed, 5000);
  122. }
  123. for(i=0;i<1 * FE;i++) {
  124. for(j=0;j<NB_CHANNELS;j++) {
  125. v = (int_cos(taba[j]) * 10000) >> FRAC_BITS;
  126. put_sample(v);
  127. f = tabf1[j] + (((tabf2[j] - tabf1[j]) * i) / FE);
  128. taba[j] += (f * FRAC_ONE) / FE;
  129. }
  130. }
  131. /* stereo 500 Hz with varying volume */
  132. a = 0;
  133. ampa = 0;
  134. for(i=0;i<2 * FE;i++) {
  135. for(j=0;j<NB_CHANNELS;j++) {
  136. amp = ((FRAC_ONE + int_cos(ampa)) * 5000) >> FRAC_BITS;
  137. if (j & 1)
  138. amp = 10000 - amp;
  139. v = (int_cos(a) * amp) >> FRAC_BITS;
  140. put_sample(v);
  141. a += (500 * FRAC_ONE) / FE;
  142. ampa += (2 * FRAC_ONE) / FE;
  143. }
  144. }
  145. fclose(outfile);
  146. return 0;
  147. }