dp_maddf.c 6.3 KB

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  1. /*
  2. * IEEE754 floating point arithmetic
  3. * double precision: MADDF.f (Fused Multiply Add)
  4. * MADDF.fmt: FPR[fd] = FPR[fd] + (FPR[fs] x FPR[ft])
  5. *
  6. * MIPS floating point support
  7. * Copyright (C) 2015 Imagination Technologies, Ltd.
  8. * Author: Markos Chandras <markos.chandras@imgtec.com>
  9. *
  10. * This program is free software; you can distribute it and/or modify it
  11. * under the terms of the GNU General Public License as published by the
  12. * Free Software Foundation; version 2 of the License.
  13. */
  14. #include "ieee754dp.h"
  15. enum maddf_flags {
  16. maddf_negate_product = 1 << 0,
  17. };
  18. static union ieee754dp _dp_maddf(union ieee754dp z, union ieee754dp x,
  19. union ieee754dp y, enum maddf_flags flags)
  20. {
  21. int re;
  22. int rs;
  23. u64 rm;
  24. unsigned lxm;
  25. unsigned hxm;
  26. unsigned lym;
  27. unsigned hym;
  28. u64 lrm;
  29. u64 hrm;
  30. u64 t;
  31. u64 at;
  32. int s;
  33. COMPXDP;
  34. COMPYDP;
  35. COMPZDP;
  36. EXPLODEXDP;
  37. EXPLODEYDP;
  38. EXPLODEZDP;
  39. FLUSHXDP;
  40. FLUSHYDP;
  41. FLUSHZDP;
  42. ieee754_clearcx();
  43. switch (zc) {
  44. case IEEE754_CLASS_SNAN:
  45. ieee754_setcx(IEEE754_INVALID_OPERATION);
  46. return ieee754dp_nanxcpt(z);
  47. case IEEE754_CLASS_DNORM:
  48. DPDNORMZ;
  49. /* QNAN is handled separately below */
  50. }
  51. switch (CLPAIR(xc, yc)) {
  52. case CLPAIR(IEEE754_CLASS_QNAN, IEEE754_CLASS_SNAN):
  53. case CLPAIR(IEEE754_CLASS_ZERO, IEEE754_CLASS_SNAN):
  54. case CLPAIR(IEEE754_CLASS_NORM, IEEE754_CLASS_SNAN):
  55. case CLPAIR(IEEE754_CLASS_DNORM, IEEE754_CLASS_SNAN):
  56. case CLPAIR(IEEE754_CLASS_INF, IEEE754_CLASS_SNAN):
  57. return ieee754dp_nanxcpt(y);
  58. case CLPAIR(IEEE754_CLASS_SNAN, IEEE754_CLASS_SNAN):
  59. case CLPAIR(IEEE754_CLASS_SNAN, IEEE754_CLASS_QNAN):
  60. case CLPAIR(IEEE754_CLASS_SNAN, IEEE754_CLASS_ZERO):
  61. case CLPAIR(IEEE754_CLASS_SNAN, IEEE754_CLASS_NORM):
  62. case CLPAIR(IEEE754_CLASS_SNAN, IEEE754_CLASS_DNORM):
  63. case CLPAIR(IEEE754_CLASS_SNAN, IEEE754_CLASS_INF):
  64. return ieee754dp_nanxcpt(x);
  65. case CLPAIR(IEEE754_CLASS_ZERO, IEEE754_CLASS_QNAN):
  66. case CLPAIR(IEEE754_CLASS_NORM, IEEE754_CLASS_QNAN):
  67. case CLPAIR(IEEE754_CLASS_DNORM, IEEE754_CLASS_QNAN):
  68. case CLPAIR(IEEE754_CLASS_INF, IEEE754_CLASS_QNAN):
  69. return y;
  70. case CLPAIR(IEEE754_CLASS_QNAN, IEEE754_CLASS_QNAN):
  71. case CLPAIR(IEEE754_CLASS_QNAN, IEEE754_CLASS_ZERO):
  72. case CLPAIR(IEEE754_CLASS_QNAN, IEEE754_CLASS_NORM):
  73. case CLPAIR(IEEE754_CLASS_QNAN, IEEE754_CLASS_DNORM):
  74. case CLPAIR(IEEE754_CLASS_QNAN, IEEE754_CLASS_INF):
  75. return x;
  76. /*
  77. * Infinity handling
  78. */
  79. case CLPAIR(IEEE754_CLASS_INF, IEEE754_CLASS_ZERO):
  80. case CLPAIR(IEEE754_CLASS_ZERO, IEEE754_CLASS_INF):
  81. if (zc == IEEE754_CLASS_QNAN)
  82. return z;
  83. ieee754_setcx(IEEE754_INVALID_OPERATION);
  84. return ieee754dp_indef();
  85. case CLPAIR(IEEE754_CLASS_NORM, IEEE754_CLASS_INF):
  86. case CLPAIR(IEEE754_CLASS_DNORM, IEEE754_CLASS_INF):
  87. case CLPAIR(IEEE754_CLASS_INF, IEEE754_CLASS_NORM):
  88. case CLPAIR(IEEE754_CLASS_INF, IEEE754_CLASS_DNORM):
  89. case CLPAIR(IEEE754_CLASS_INF, IEEE754_CLASS_INF):
  90. if (zc == IEEE754_CLASS_QNAN)
  91. return z;
  92. return ieee754dp_inf(xs ^ ys);
  93. case CLPAIR(IEEE754_CLASS_ZERO, IEEE754_CLASS_ZERO):
  94. case CLPAIR(IEEE754_CLASS_ZERO, IEEE754_CLASS_NORM):
  95. case CLPAIR(IEEE754_CLASS_ZERO, IEEE754_CLASS_DNORM):
  96. case CLPAIR(IEEE754_CLASS_NORM, IEEE754_CLASS_ZERO):
  97. case CLPAIR(IEEE754_CLASS_DNORM, IEEE754_CLASS_ZERO):
  98. if (zc == IEEE754_CLASS_INF)
  99. return ieee754dp_inf(zs);
  100. /* Multiplication is 0 so just return z */
  101. return z;
  102. case CLPAIR(IEEE754_CLASS_DNORM, IEEE754_CLASS_DNORM):
  103. DPDNORMX;
  104. case CLPAIR(IEEE754_CLASS_NORM, IEEE754_CLASS_DNORM):
  105. if (zc == IEEE754_CLASS_QNAN)
  106. return z;
  107. else if (zc == IEEE754_CLASS_INF)
  108. return ieee754dp_inf(zs);
  109. DPDNORMY;
  110. break;
  111. case CLPAIR(IEEE754_CLASS_DNORM, IEEE754_CLASS_NORM):
  112. if (zc == IEEE754_CLASS_QNAN)
  113. return z;
  114. else if (zc == IEEE754_CLASS_INF)
  115. return ieee754dp_inf(zs);
  116. DPDNORMX;
  117. break;
  118. case CLPAIR(IEEE754_CLASS_NORM, IEEE754_CLASS_NORM):
  119. if (zc == IEEE754_CLASS_QNAN)
  120. return z;
  121. else if (zc == IEEE754_CLASS_INF)
  122. return ieee754dp_inf(zs);
  123. /* fall through to real computations */
  124. }
  125. /* Finally get to do some computation */
  126. /*
  127. * Do the multiplication bit first
  128. *
  129. * rm = xm * ym, re = xe + ye basically
  130. *
  131. * At this point xm and ym should have been normalized.
  132. */
  133. assert(xm & DP_HIDDEN_BIT);
  134. assert(ym & DP_HIDDEN_BIT);
  135. re = xe + ye;
  136. rs = xs ^ ys;
  137. if (flags & maddf_negate_product)
  138. rs ^= 1;
  139. /* shunt to top of word */
  140. xm <<= 64 - (DP_FBITS + 1);
  141. ym <<= 64 - (DP_FBITS + 1);
  142. /*
  143. * Multiply 64 bits xm, ym to give high 64 bits rm with stickness.
  144. */
  145. /* 32 * 32 => 64 */
  146. #define DPXMULT(x, y) ((u64)(x) * (u64)y)
  147. lxm = xm;
  148. hxm = xm >> 32;
  149. lym = ym;
  150. hym = ym >> 32;
  151. lrm = DPXMULT(lxm, lym);
  152. hrm = DPXMULT(hxm, hym);
  153. t = DPXMULT(lxm, hym);
  154. at = lrm + (t << 32);
  155. hrm += at < lrm;
  156. lrm = at;
  157. hrm = hrm + (t >> 32);
  158. t = DPXMULT(hxm, lym);
  159. at = lrm + (t << 32);
  160. hrm += at < lrm;
  161. lrm = at;
  162. hrm = hrm + (t >> 32);
  163. rm = hrm | (lrm != 0);
  164. /*
  165. * Sticky shift down to normal rounding precision.
  166. */
  167. if ((s64) rm < 0) {
  168. rm = (rm >> (64 - (DP_FBITS + 1 + 3))) |
  169. ((rm << (DP_FBITS + 1 + 3)) != 0);
  170. re++;
  171. } else {
  172. rm = (rm >> (64 - (DP_FBITS + 1 + 3 + 1))) |
  173. ((rm << (DP_FBITS + 1 + 3 + 1)) != 0);
  174. }
  175. assert(rm & (DP_HIDDEN_BIT << 3));
  176. /* And now the addition */
  177. assert(zm & DP_HIDDEN_BIT);
  178. /*
  179. * Provide guard,round and stick bit space.
  180. */
  181. zm <<= 3;
  182. if (ze > re) {
  183. /*
  184. * Have to shift y fraction right to align.
  185. */
  186. s = ze - re;
  187. rm = XDPSRS(rm, s);
  188. re += s;
  189. } else if (re > ze) {
  190. /*
  191. * Have to shift x fraction right to align.
  192. */
  193. s = re - ze;
  194. zm = XDPSRS(zm, s);
  195. ze += s;
  196. }
  197. assert(ze == re);
  198. assert(ze <= DP_EMAX);
  199. if (zs == rs) {
  200. /*
  201. * Generate 28 bit result of adding two 27 bit numbers
  202. * leaving result in xm, xs and xe.
  203. */
  204. zm = zm + rm;
  205. if (zm >> (DP_FBITS + 1 + 3)) { /* carry out */
  206. zm = XDPSRS1(zm);
  207. ze++;
  208. }
  209. } else {
  210. if (zm >= rm) {
  211. zm = zm - rm;
  212. } else {
  213. zm = rm - zm;
  214. zs = rs;
  215. }
  216. if (zm == 0)
  217. return ieee754dp_zero(ieee754_csr.rm == FPU_CSR_RD);
  218. /*
  219. * Normalize to rounding precision.
  220. */
  221. while ((zm >> (DP_FBITS + 3)) == 0) {
  222. zm <<= 1;
  223. ze--;
  224. }
  225. }
  226. return ieee754dp_format(zs, ze, zm);
  227. }
  228. union ieee754dp ieee754dp_maddf(union ieee754dp z, union ieee754dp x,
  229. union ieee754dp y)
  230. {
  231. return _dp_maddf(z, x, y, 0);
  232. }
  233. union ieee754dp ieee754dp_msubf(union ieee754dp z, union ieee754dp x,
  234. union ieee754dp y)
  235. {
  236. return _dp_maddf(z, x, y, maddf_negate_product);
  237. }