clocks_get_m_n.c 6.5 KB

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  1. /*
  2. * Program for finding M & N values for DPLLs
  3. * To be run on Host PC
  4. *
  5. * (C) Copyright 2010
  6. * Texas Instruments, <www.ti.com>
  7. *
  8. * Aneesh V <aneesh@ti.com>
  9. *
  10. * See file CREDITS for list of people who contributed to this
  11. * project.
  12. *
  13. * This program is free software; you can redistribute it and/or
  14. * modify it under the terms of the GNU General Public License as
  15. * published by the Free Software Foundation; either version 2 of
  16. * the License, or (at your option) any later version.
  17. *
  18. * This program is distributed in the hope that it will be useful,
  19. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  20. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  21. * GNU General Public License for more details.
  22. *
  23. * You should have received a copy of the GNU General Public License
  24. * along with this program; if not, write to the Free Software
  25. * Foundation, Inc., 59 Temple Place, Suite 330, Boston,
  26. * MA 02111-1307 USA
  27. */
  28. #include <stdlib.h>
  29. #include <stdio.h>
  30. typedef unsigned int u32;
  31. #define MAX_N 127
  32. /*
  33. * get_m_n_optimized() - Finds optimal DPLL multiplier(M) and divider(N)
  34. * values based on the reference frequency, required output frequency,
  35. * maximum tolerance for output frequency etc.
  36. *
  37. * target_freq_khz - output frequency required in KHz
  38. * ref_freq_khz - reference(input) frequency in KHz
  39. * m - pointer to computed M value
  40. * n - pointer to computed N value
  41. * tolerance_khz - tolerance for the output frequency. When the algorithm
  42. * succeeds in finding vialble M and N values the corresponding output
  43. * frequency will be in the range:
  44. * [target_freq_khz - tolerance_khz, target_freq_khz]
  45. *
  46. * Formula:
  47. * Fdpll = (2 * M * Fref) / (N + 1)
  48. *
  49. * Considerations for lock-time:
  50. * - Smaller the N, better lock-time, especially lock-time will be
  51. * - For acceptable lock-times:
  52. * Fref / (M + 1) >= 1 MHz
  53. *
  54. * Considerations for power:
  55. * - The difference in power for different N values giving the same
  56. * output is negligible. So, we optimize for lock-time
  57. *
  58. * Hard-constraints:
  59. * - N can not be greater than 127(7 bit field for representing N)
  60. *
  61. * Usage:
  62. * $ gcc clocks_get_m_n.c
  63. * $ ./a.out
  64. */
  65. int get_m_n_optimized(u32 target_freq_khz, u32 ref_freq_khz, u32 *m, u32 *n,
  66. u32 tolerance_khz)
  67. {
  68. u32 min_freq = target_freq_khz - tolerance_khz;
  69. u32 max_freq = target_freq_khz;
  70. u32 freq, freq_old;
  71. *n = 1;
  72. while (1) {
  73. *m = min_freq / ref_freq_khz / 2 * (*n) ;
  74. freq_old = 0;
  75. while (1) {
  76. freq = ref_freq_khz * 2 * (*m) / (*n);
  77. if (abs(target_freq_khz - freq_old) <=
  78. abs(target_freq_khz - freq)) {
  79. freq = freq_old;
  80. (*m)--;
  81. break;
  82. }
  83. (*m)++;
  84. freq_old = freq;
  85. }
  86. if (freq >= min_freq && freq <= max_freq)
  87. break;
  88. (*n)++;
  89. if ((*n) > MAX_N + 1) {
  90. printf("ref %d m %d n %d target %d : ",
  91. ref_freq_khz, *m, *n, target_freq_khz);
  92. printf("can not find m & n - please consider"
  93. " increasing tolerance\n");
  94. return -1;
  95. }
  96. }
  97. (*n)--;
  98. printf("ref %d m %d n %d target %d locked %d\n",
  99. ref_freq_khz, *m, *n, target_freq_khz, freq);
  100. if ((ref_freq_khz / (*n + 1)) < 1000) {
  101. printf("\tREFCLK - CLKINP/(N+1) is less than 1 MHz - less than"
  102. " ideal, locking time will be high!\n");
  103. }
  104. return 0;
  105. }
  106. void main(void)
  107. {
  108. u32 m, n;
  109. printf("\nMPU - 2000000\n");
  110. get_m_n_optimized(2000000, 12000, &m, &n, 0);
  111. get_m_n_optimized(2000000, 13000, &m, &n, 0);
  112. get_m_n_optimized(2000000, 16800, &m, &n, 800);
  113. get_m_n_optimized(2000000, 19200, &m, &n, 0);
  114. get_m_n_optimized(2000000, 26000, &m, &n, 0);
  115. get_m_n_optimized(2000000, 27000, &m, &n, 0);
  116. get_m_n_optimized(2000000, 38400, &m, &n, 0);
  117. printf("\nMPU - 1200000\n");
  118. get_m_n_optimized(1200000, 12000, &m, &n, 0);
  119. get_m_n_optimized(1200000, 13000, &m, &n, 0);
  120. get_m_n_optimized(1200000, 16800, &m, &n, 800);
  121. get_m_n_optimized(1200000, 19200, &m, &n, 0);
  122. get_m_n_optimized(1200000, 26000, &m, &n, 0);
  123. get_m_n_optimized(1200000, 27000, &m, &n, 0);
  124. get_m_n_optimized(1200000, 38400, &m, &n, 0);
  125. printf("\nMPU - 1584000\n");
  126. get_m_n_optimized(1584000, 12000, &m, &n, 0);
  127. get_m_n_optimized(1584000, 13000, &m, &n, 0);
  128. get_m_n_optimized(1584000, 16800, &m, &n, 400);
  129. get_m_n_optimized(1584000, 19200, &m, &n, 0);
  130. get_m_n_optimized(1584000, 26000, &m, &n, 0);
  131. get_m_n_optimized(1584000, 27000, &m, &n, 0);
  132. get_m_n_optimized(1584000, 38400, &m, &n, 0);
  133. printf("\nCore 1600000\n");
  134. get_m_n_optimized(1600000, 12000, &m, &n, 0);
  135. get_m_n_optimized(1600000, 13000, &m, &n, 0);
  136. get_m_n_optimized(1600000, 16800, &m, &n, 200);
  137. get_m_n_optimized(1600000, 19200, &m, &n, 0);
  138. get_m_n_optimized(1600000, 26000, &m, &n, 0);
  139. get_m_n_optimized(1600000, 27000, &m, &n, 0);
  140. get_m_n_optimized(1600000, 38400, &m, &n, 0);
  141. printf("\nPER 1536000\n");
  142. get_m_n_optimized(1536000, 12000, &m, &n, 0);
  143. get_m_n_optimized(1536000, 13000, &m, &n, 0);
  144. get_m_n_optimized(1536000, 16800, &m, &n, 0);
  145. get_m_n_optimized(1536000, 19200, &m, &n, 0);
  146. get_m_n_optimized(1536000, 26000, &m, &n, 0);
  147. get_m_n_optimized(1536000, 27000, &m, &n, 0);
  148. get_m_n_optimized(1536000, 38400, &m, &n, 0);
  149. printf("\nIVA 1862000\n");
  150. get_m_n_optimized(1862000, 12000, &m, &n, 0);
  151. get_m_n_optimized(1862000, 13000, &m, &n, 0);
  152. get_m_n_optimized(1862000, 16800, &m, &n, 0);
  153. get_m_n_optimized(1862000, 19200, &m, &n, 900);
  154. get_m_n_optimized(1862000, 26000, &m, &n, 0);
  155. get_m_n_optimized(1862000, 27000, &m, &n, 0);
  156. get_m_n_optimized(1862000, 38400, &m, &n, 800);
  157. printf("\nABE 196608 sys clk\n");
  158. get_m_n_optimized(196608, 12000, &m, &n, 700);
  159. get_m_n_optimized(196608, 13000, &m, &n, 200);
  160. get_m_n_optimized(196608, 16800, &m, &n, 700);
  161. get_m_n_optimized(196608, 19200, &m, &n, 400);
  162. get_m_n_optimized(196608, 26000, &m, &n, 200);
  163. get_m_n_optimized(196608, 27000, &m, &n, 900);
  164. get_m_n_optimized(196608, 38400, &m, &n, 0);
  165. printf("\nABE 196608 32K\n");
  166. get_m_n_optimized(196608000/4, 32768, &m, &n, 0);
  167. printf("\nUSB 1920000\n");
  168. get_m_n_optimized(1920000, 12000, &m, &n, 0);
  169. get_m_n_optimized(1920000, 13000, &m, &n, 0);
  170. get_m_n_optimized(1920000, 16800, &m, &n, 0);
  171. get_m_n_optimized(1920000, 19200, &m, &n, 0);
  172. get_m_n_optimized(1920000, 26000, &m, &n, 0);
  173. get_m_n_optimized(1920000, 27000, &m, &n, 0);
  174. get_m_n_optimized(1920000, 38400, &m, &n, 0);
  175. printf("\nCore ES1 1523712\n");
  176. get_m_n_optimized(1524000, 12000, &m, &n, 100);
  177. get_m_n_optimized(1524000, 13000, &m, &n, 0);
  178. get_m_n_optimized(1524000, 16800, &m, &n, 0);
  179. get_m_n_optimized(1524000, 19200, &m, &n, 0);
  180. get_m_n_optimized(1524000, 26000, &m, &n, 0);
  181. get_m_n_optimized(1524000, 27000, &m, &n, 0);
  182. /* exact recommendation for SDPs */
  183. get_m_n_optimized(1523712, 38400, &m, &n, 0);
  184. }