sp_sub.c 4.7 KB

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  1. /* IEEE754 floating point arithmetic
  2. * single precision
  3. */
  4. /*
  5. * MIPS floating point support
  6. * Copyright (C) 1994-2000 Algorithmics Ltd.
  7. * http://www.algor.co.uk
  8. *
  9. * ########################################################################
  10. *
  11. * This program is free software; you can distribute it and/or modify it
  12. * under the terms of the GNU General Public License (Version 2) as
  13. * published by the Free Software Foundation.
  14. *
  15. * This program is distributed in the hope it will be useful, but WITHOUT
  16. * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
  17. * FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
  18. * for more details.
  19. *
  20. * You should have received a copy of the GNU General Public License along
  21. * with this program; if not, write to the Free Software Foundation, Inc.,
  22. * 59 Temple Place - Suite 330, Boston MA 02111-1307, USA.
  23. *
  24. * ########################################################################
  25. */
  26. #include "ieee754sp.h"
  27. ieee754sp ieee754sp_sub(ieee754sp x, ieee754sp y)
  28. {
  29. COMPXSP;
  30. COMPYSP;
  31. EXPLODEXSP;
  32. EXPLODEYSP;
  33. CLEARCX;
  34. FLUSHXSP;
  35. FLUSHYSP;
  36. switch (CLPAIR(xc, yc)) {
  37. case CLPAIR(IEEE754_CLASS_SNAN, IEEE754_CLASS_QNAN):
  38. case CLPAIR(IEEE754_CLASS_QNAN, IEEE754_CLASS_SNAN):
  39. case CLPAIR(IEEE754_CLASS_SNAN, IEEE754_CLASS_SNAN):
  40. case CLPAIR(IEEE754_CLASS_ZERO, IEEE754_CLASS_SNAN):
  41. case CLPAIR(IEEE754_CLASS_NORM, IEEE754_CLASS_SNAN):
  42. case CLPAIR(IEEE754_CLASS_DNORM, IEEE754_CLASS_SNAN):
  43. case CLPAIR(IEEE754_CLASS_INF, IEEE754_CLASS_SNAN):
  44. case CLPAIR(IEEE754_CLASS_SNAN, IEEE754_CLASS_ZERO):
  45. case CLPAIR(IEEE754_CLASS_SNAN, IEEE754_CLASS_NORM):
  46. case CLPAIR(IEEE754_CLASS_SNAN, IEEE754_CLASS_DNORM):
  47. case CLPAIR(IEEE754_CLASS_SNAN, IEEE754_CLASS_INF):
  48. SETCX(IEEE754_INVALID_OPERATION);
  49. return ieee754sp_nanxcpt(ieee754sp_indef(), "sub", x, y);
  50. case CLPAIR(IEEE754_CLASS_ZERO, IEEE754_CLASS_QNAN):
  51. case CLPAIR(IEEE754_CLASS_NORM, IEEE754_CLASS_QNAN):
  52. case CLPAIR(IEEE754_CLASS_DNORM, IEEE754_CLASS_QNAN):
  53. case CLPAIR(IEEE754_CLASS_INF, IEEE754_CLASS_QNAN):
  54. return y;
  55. case CLPAIR(IEEE754_CLASS_QNAN, IEEE754_CLASS_QNAN):
  56. case CLPAIR(IEEE754_CLASS_QNAN, IEEE754_CLASS_ZERO):
  57. case CLPAIR(IEEE754_CLASS_QNAN, IEEE754_CLASS_NORM):
  58. case CLPAIR(IEEE754_CLASS_QNAN, IEEE754_CLASS_DNORM):
  59. case CLPAIR(IEEE754_CLASS_QNAN, IEEE754_CLASS_INF):
  60. return x;
  61. /* Infinity handling
  62. */
  63. case CLPAIR(IEEE754_CLASS_INF, IEEE754_CLASS_INF):
  64. if (xs != ys)
  65. return x;
  66. SETCX(IEEE754_INVALID_OPERATION);
  67. return ieee754sp_xcpt(ieee754sp_indef(), "sub", x, y);
  68. case CLPAIR(IEEE754_CLASS_ZERO, IEEE754_CLASS_INF):
  69. case CLPAIR(IEEE754_CLASS_DNORM, IEEE754_CLASS_INF):
  70. case CLPAIR(IEEE754_CLASS_NORM, IEEE754_CLASS_INF):
  71. return ieee754sp_inf(ys ^ 1);
  72. case CLPAIR(IEEE754_CLASS_INF, IEEE754_CLASS_ZERO):
  73. case CLPAIR(IEEE754_CLASS_INF, IEEE754_CLASS_NORM):
  74. case CLPAIR(IEEE754_CLASS_INF, IEEE754_CLASS_DNORM):
  75. return x;
  76. /* Zero handling
  77. */
  78. case CLPAIR(IEEE754_CLASS_ZERO, IEEE754_CLASS_ZERO):
  79. if (xs != ys)
  80. return x;
  81. else
  82. return ieee754sp_zero(ieee754_csr.rm ==
  83. IEEE754_RD);
  84. case CLPAIR(IEEE754_CLASS_NORM, IEEE754_CLASS_ZERO):
  85. case CLPAIR(IEEE754_CLASS_DNORM, IEEE754_CLASS_ZERO):
  86. return x;
  87. case CLPAIR(IEEE754_CLASS_ZERO, IEEE754_CLASS_NORM):
  88. case CLPAIR(IEEE754_CLASS_ZERO, IEEE754_CLASS_DNORM):
  89. /* quick fix up */
  90. DPSIGN(y) ^= 1;
  91. return y;
  92. case CLPAIR(IEEE754_CLASS_DNORM, IEEE754_CLASS_DNORM):
  93. SPDNORMX;
  94. case CLPAIR(IEEE754_CLASS_NORM, IEEE754_CLASS_DNORM):
  95. SPDNORMY;
  96. break;
  97. case CLPAIR(IEEE754_CLASS_DNORM, IEEE754_CLASS_NORM):
  98. SPDNORMX;
  99. break;
  100. case CLPAIR(IEEE754_CLASS_NORM, IEEE754_CLASS_NORM):
  101. break;
  102. }
  103. /* flip sign of y and handle as add */
  104. ys ^= 1;
  105. assert(xm & SP_HIDDEN_BIT);
  106. assert(ym & SP_HIDDEN_BIT);
  107. /* provide guard,round and stick bit space */
  108. xm <<= 3;
  109. ym <<= 3;
  110. if (xe > ye) {
  111. /* have to shift y fraction right to align
  112. */
  113. int s = xe - ye;
  114. SPXSRSYn(s);
  115. } else if (ye > xe) {
  116. /* have to shift x fraction right to align
  117. */
  118. int s = ye - xe;
  119. SPXSRSXn(s);
  120. }
  121. assert(xe == ye);
  122. assert(xe <= SP_EMAX);
  123. if (xs == ys) {
  124. /* generate 28 bit result of adding two 27 bit numbers
  125. */
  126. xm = xm + ym;
  127. xe = xe;
  128. xs = xs;
  129. if (xm >> (SP_MBITS + 1 + 3)) { /* carry out */
  130. SPXSRSX1(); /* shift preserving sticky */
  131. }
  132. } else {
  133. if (xm >= ym) {
  134. xm = xm - ym;
  135. xe = xe;
  136. xs = xs;
  137. } else {
  138. xm = ym - xm;
  139. xe = xe;
  140. xs = ys;
  141. }
  142. if (xm == 0) {
  143. if (ieee754_csr.rm == IEEE754_RD)
  144. return ieee754sp_zero(1); /* round negative inf. => sign = -1 */
  145. else
  146. return ieee754sp_zero(0); /* other round modes => sign = 1 */
  147. }
  148. /* normalize to rounding precision
  149. */
  150. while ((xm >> (SP_MBITS + 3)) == 0) {
  151. xm <<= 1;
  152. xe--;
  153. }
  154. }
  155. SPNORMRET2(xs, xe, xm, "sub", x, y);
  156. }