Bcj2.c 5.8 KB

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  1. /* Bcj2.c -- BCJ2 Decoder (Converter for x86 code)
  2. 2015-08-01 : Igor Pavlov : Public domain */
  3. #include "Precomp.h"
  4. #include "Bcj2.h"
  5. #include "CpuArch.h"
  6. #define CProb UInt16
  7. #define kTopValue ((UInt32)1 << 24)
  8. #define kNumModelBits 11
  9. #define kBitModelTotal (1 << kNumModelBits)
  10. #define kNumMoveBits 5
  11. #define _IF_BIT_0 ttt = *prob; bound = (p->range >> kNumModelBits) * ttt; if (p->code < bound)
  12. #define _UPDATE_0 p->range = bound; *prob = (CProb)(ttt + ((kBitModelTotal - ttt) >> kNumMoveBits));
  13. #define _UPDATE_1 p->range -= bound; p->code -= bound; *prob = (CProb)(ttt - (ttt >> kNumMoveBits));
  14. void Bcj2Dec_Init(CBcj2Dec *p)
  15. {
  16. unsigned i;
  17. p->state = BCJ2_DEC_STATE_OK;
  18. p->ip = 0;
  19. p->temp[3] = 0;
  20. p->range = 0;
  21. p->code = 0;
  22. for (i = 0; i < sizeof(p->probs) / sizeof(p->probs[0]); i++)
  23. p->probs[i] = kBitModelTotal >> 1;
  24. }
  25. SRes Bcj2Dec_Decode(CBcj2Dec *p)
  26. {
  27. if (p->range <= 5)
  28. {
  29. p->state = BCJ2_DEC_STATE_OK;
  30. for (; p->range != 5; p->range++)
  31. {
  32. if (p->range == 1 && p->code != 0)
  33. return SZ_ERROR_DATA;
  34. if (p->bufs[BCJ2_STREAM_RC] == p->lims[BCJ2_STREAM_RC])
  35. {
  36. p->state = BCJ2_STREAM_RC;
  37. return SZ_OK;
  38. }
  39. p->code = (p->code << 8) | *(p->bufs[BCJ2_STREAM_RC])++;
  40. }
  41. if (p->code == 0xFFFFFFFF)
  42. return SZ_ERROR_DATA;
  43. p->range = 0xFFFFFFFF;
  44. }
  45. else if (p->state >= BCJ2_DEC_STATE_ORIG_0)
  46. {
  47. while (p->state <= BCJ2_DEC_STATE_ORIG_3)
  48. {
  49. Byte *dest = p->dest;
  50. if (dest == p->destLim)
  51. return SZ_OK;
  52. *dest = p->temp[p->state++ - BCJ2_DEC_STATE_ORIG_0];
  53. p->dest = dest + 1;
  54. }
  55. }
  56. /*
  57. if (BCJ2_IS_32BIT_STREAM(p->state))
  58. {
  59. const Byte *cur = p->bufs[p->state];
  60. if (cur == p->lims[p->state])
  61. return SZ_OK;
  62. p->bufs[p->state] = cur + 4;
  63. {
  64. UInt32 val;
  65. Byte *dest;
  66. SizeT rem;
  67. p->ip += 4;
  68. val = GetBe32(cur) - p->ip;
  69. dest = p->dest;
  70. rem = p->destLim - dest;
  71. if (rem < 4)
  72. {
  73. SizeT i;
  74. SetUi32(p->temp, val);
  75. for (i = 0; i < rem; i++)
  76. dest[i] = p->temp[i];
  77. p->dest = dest + rem;
  78. p->state = BCJ2_DEC_STATE_ORIG_0 + (unsigned)rem;
  79. return SZ_OK;
  80. }
  81. SetUi32(dest, val);
  82. p->temp[3] = (Byte)(val >> 24);
  83. p->dest = dest + 4;
  84. p->state = BCJ2_DEC_STATE_OK;
  85. }
  86. }
  87. */
  88. for (;;)
  89. {
  90. if (BCJ2_IS_32BIT_STREAM(p->state))
  91. p->state = BCJ2_DEC_STATE_OK;
  92. else
  93. {
  94. if (p->range < kTopValue)
  95. {
  96. if (p->bufs[BCJ2_STREAM_RC] == p->lims[BCJ2_STREAM_RC])
  97. {
  98. p->state = BCJ2_STREAM_RC;
  99. return SZ_OK;
  100. }
  101. p->range <<= 8;
  102. p->code = (p->code << 8) | *(p->bufs[BCJ2_STREAM_RC])++;
  103. }
  104. {
  105. const Byte *src = p->bufs[BCJ2_STREAM_MAIN];
  106. const Byte *srcLim;
  107. Byte *dest;
  108. SizeT num = p->lims[BCJ2_STREAM_MAIN] - src;
  109. if (num == 0)
  110. {
  111. p->state = BCJ2_STREAM_MAIN;
  112. return SZ_OK;
  113. }
  114. dest = p->dest;
  115. if (num > (SizeT)(p->destLim - dest))
  116. {
  117. num = p->destLim - dest;
  118. if (num == 0)
  119. {
  120. p->state = BCJ2_DEC_STATE_ORIG;
  121. return SZ_OK;
  122. }
  123. }
  124. srcLim = src + num;
  125. if (p->temp[3] == 0x0F && (src[0] & 0xF0) == 0x80)
  126. *dest = src[0];
  127. else for (;;)
  128. {
  129. Byte b = *src;
  130. *dest = b;
  131. if (b != 0x0F)
  132. {
  133. if ((b & 0xFE) == 0xE8)
  134. break;
  135. dest++;
  136. if (++src != srcLim)
  137. continue;
  138. break;
  139. }
  140. dest++;
  141. if (++src == srcLim)
  142. break;
  143. if ((*src & 0xF0) != 0x80)
  144. continue;
  145. *dest = *src;
  146. break;
  147. }
  148. num = src - p->bufs[BCJ2_STREAM_MAIN];
  149. if (src == srcLim)
  150. {
  151. p->temp[3] = src[-1];
  152. p->bufs[BCJ2_STREAM_MAIN] = src;
  153. p->ip += (UInt32)num;
  154. p->dest += num;
  155. p->state =
  156. p->bufs[BCJ2_STREAM_MAIN] ==
  157. p->lims[BCJ2_STREAM_MAIN] ?
  158. (unsigned)BCJ2_STREAM_MAIN :
  159. (unsigned)BCJ2_DEC_STATE_ORIG;
  160. return SZ_OK;
  161. }
  162. {
  163. UInt32 bound, ttt;
  164. CProb *prob;
  165. Byte b = src[0];
  166. Byte prev = (Byte)(num == 0 ? p->temp[3] : src[-1]);
  167. p->temp[3] = b;
  168. p->bufs[BCJ2_STREAM_MAIN] = src + 1;
  169. num++;
  170. p->ip += (UInt32)num;
  171. p->dest += num;
  172. prob = p->probs + (unsigned)(b == 0xE8 ? 2 + (unsigned)prev : (b == 0xE9 ? 1 : 0));
  173. _IF_BIT_0
  174. {
  175. _UPDATE_0
  176. continue;
  177. }
  178. _UPDATE_1
  179. }
  180. }
  181. }
  182. {
  183. UInt32 val;
  184. unsigned cj = (p->temp[3] == 0xE8) ? BCJ2_STREAM_CALL : BCJ2_STREAM_JUMP;
  185. const Byte *cur = p->bufs[cj];
  186. Byte *dest;
  187. SizeT rem;
  188. if (cur == p->lims[cj])
  189. {
  190. p->state = cj;
  191. break;
  192. }
  193. val = GetBe32(cur);
  194. p->bufs[cj] = cur + 4;
  195. p->ip += 4;
  196. val -= p->ip;
  197. dest = p->dest;
  198. rem = p->destLim - dest;
  199. if (rem < 4)
  200. {
  201. SizeT i;
  202. SetUi32(p->temp, val);
  203. for (i = 0; i < rem; i++)
  204. dest[i] = p->temp[i];
  205. p->dest = dest + rem;
  206. p->state = BCJ2_DEC_STATE_ORIG_0 + (unsigned)rem;
  207. break;
  208. }
  209. SetUi32(dest, val);
  210. p->temp[3] = (Byte)(val >> 24);
  211. p->dest = dest + 4;
  212. }
  213. }
  214. if (p->range < kTopValue && p->bufs[BCJ2_STREAM_RC] != p->lims[BCJ2_STREAM_RC])
  215. {
  216. p->range <<= 8;
  217. p->code = (p->code << 8) | *(p->bufs[BCJ2_STREAM_RC])++;
  218. }
  219. return SZ_OK;
  220. }