vfpdouble.cpp 36 KB

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  1. /*
  2. vfp/vfpdouble.c - ARM VFPv3 emulation unit - SoftFloat double instruction
  3. Copyright (C) 2003 Skyeye Develop Group
  4. for help please send mail to <skyeye-developer@lists.gro.clinux.org>
  5. This program is free software; you can redistribute it and/or modify
  6. it under the terms of the GNU General Public License as published by
  7. the Free Software Foundation; either version 2 of the License, or
  8. (at your option) any later version.
  9. This program is distributed in the hope that it will be useful,
  10. but WITHOUT ANY WARRANTY; without even the implied warranty of
  11. MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  12. GNU General Public License for more details.
  13. You should have received a copy of the GNU General Public License
  14. along with this program; if not, write to the Free Software
  15. Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
  16. */
  17. /*
  18. * This code is derived in part from :
  19. * - Android kernel
  20. * - John R. Housers softfloat library, which
  21. * carries the following notice:
  22. *
  23. * ===========================================================================
  24. * This C source file is part of the SoftFloat IEC/IEEE Floating-point
  25. * Arithmetic Package, Release 2.
  26. *
  27. * Written by John R. Hauser. This work was made possible in part by the
  28. * International Computer Science Institute, located at Suite 600, 1947 Center
  29. * Street, Berkeley, California 94704. Funding was partially provided by the
  30. * National Science Foundation under grant MIP-9311980. The original version
  31. * of this code was written as part of a project to build a fixed-point vector
  32. * processor in collaboration with the University of California at Berkeley,
  33. * overseen by Profs. Nelson Morgan and John Wawrzynek. More information
  34. * is available through the web page `http://HTTP.CS.Berkeley.EDU/~jhauser/
  35. * arithmetic/softfloat.html'.
  36. *
  37. * THIS SOFTWARE IS DISTRIBUTED AS IS, FOR FREE. Although reasonable effort
  38. * has been made to avoid it, THIS SOFTWARE MAY CONTAIN FAULTS THAT WILL AT
  39. * TIMES RESULT IN INCORRECT BEHAVIOR. USE OF THIS SOFTWARE IS RESTRICTED TO
  40. * PERSONS AND ORGANIZATIONS WHO CAN AND WILL TAKE FULL RESPONSIBILITY FOR ANY
  41. * AND ALL LOSSES, COSTS, OR OTHER PROBLEMS ARISING FROM ITS USE.
  42. *
  43. * Derivative works are acceptable, even for commercial purposes, so long as
  44. * (1) they include prominent notice that the work is derivative, and (2) they
  45. * include prominent notice akin to these three paragraphs for those parts of
  46. * this code that are retained.
  47. * ===========================================================================
  48. */
  49. #include "common/logging/log.h"
  50. #include "core/arm/skyeye_common/vfp/vfp.h"
  51. #include "core/arm/skyeye_common/vfp/vfp_helper.h"
  52. #include "core/arm/skyeye_common/vfp/asm_vfp.h"
  53. static struct vfp_double vfp_double_default_qnan = {
  54. 2047,
  55. 0,
  56. VFP_DOUBLE_SIGNIFICAND_QNAN,
  57. };
  58. static void vfp_double_dump(const char *str, struct vfp_double *d)
  59. {
  60. LOG_TRACE(Core_ARM11, "VFP: %s: sign=%d exponent=%d significand=%016llx\n",
  61. str, d->sign != 0, d->exponent, d->significand);
  62. }
  63. static void vfp_double_normalise_denormal(struct vfp_double *vd)
  64. {
  65. int bits = 31 - fls((ARMword)(vd->significand >> 32));
  66. if (bits == 31)
  67. bits = 63 - fls((ARMword)vd->significand);
  68. vfp_double_dump("normalise_denormal: in", vd);
  69. if (bits) {
  70. vd->exponent -= bits - 1;
  71. vd->significand <<= bits;
  72. }
  73. vfp_double_dump("normalise_denormal: out", vd);
  74. }
  75. u32 vfp_double_normaliseround(ARMul_State* state, int dd, struct vfp_double *vd, u32 fpscr, u32 exceptions, const char *func)
  76. {
  77. u64 significand, incr;
  78. int exponent, shift, underflow;
  79. u32 rmode;
  80. vfp_double_dump("pack: in", vd);
  81. /*
  82. * Infinities and NaNs are a special case.
  83. */
  84. if (vd->exponent == 2047 && (vd->significand == 0 || exceptions))
  85. goto pack;
  86. /*
  87. * Special-case zero.
  88. */
  89. if (vd->significand == 0) {
  90. vd->exponent = 0;
  91. goto pack;
  92. }
  93. exponent = vd->exponent;
  94. significand = vd->significand;
  95. shift = 32 - fls((ARMword)(significand >> 32));
  96. if (shift == 32)
  97. shift = 64 - fls((ARMword)significand);
  98. if (shift) {
  99. exponent -= shift;
  100. significand <<= shift;
  101. }
  102. #if 1
  103. vd->exponent = exponent;
  104. vd->significand = significand;
  105. vfp_double_dump("pack: normalised", vd);
  106. #endif
  107. /*
  108. * Tiny number?
  109. */
  110. underflow = exponent < 0;
  111. if (underflow) {
  112. significand = vfp_shiftright64jamming(significand, -exponent);
  113. exponent = 0;
  114. #if 1
  115. vd->exponent = exponent;
  116. vd->significand = significand;
  117. vfp_double_dump("pack: tiny number", vd);
  118. #endif
  119. if (!(significand & ((1ULL << (VFP_DOUBLE_LOW_BITS + 1)) - 1)))
  120. underflow = 0;
  121. }
  122. /*
  123. * Select rounding increment.
  124. */
  125. incr = 0;
  126. rmode = fpscr & FPSCR_RMODE_MASK;
  127. if (rmode == FPSCR_ROUND_NEAREST) {
  128. incr = 1ULL << VFP_DOUBLE_LOW_BITS;
  129. if ((significand & (1ULL << (VFP_DOUBLE_LOW_BITS + 1))) == 0)
  130. incr -= 1;
  131. } else if (rmode == FPSCR_ROUND_TOZERO) {
  132. incr = 0;
  133. } else if ((rmode == FPSCR_ROUND_PLUSINF) ^ (vd->sign != 0))
  134. incr = (1ULL << (VFP_DOUBLE_LOW_BITS + 1)) - 1;
  135. LOG_TRACE(Core_ARM11, "VFP: rounding increment = 0x%08llx\n", incr);
  136. /*
  137. * Is our rounding going to overflow?
  138. */
  139. if ((significand + incr) < significand) {
  140. exponent += 1;
  141. significand = (significand >> 1) | (significand & 1);
  142. incr >>= 1;
  143. #if 1
  144. vd->exponent = exponent;
  145. vd->significand = significand;
  146. vfp_double_dump("pack: overflow", vd);
  147. #endif
  148. }
  149. /*
  150. * If any of the low bits (which will be shifted out of the
  151. * number) are non-zero, the result is inexact.
  152. */
  153. if (significand & ((1 << (VFP_DOUBLE_LOW_BITS + 1)) - 1))
  154. exceptions |= FPSCR_IXC;
  155. /*
  156. * Do our rounding.
  157. */
  158. significand += incr;
  159. /*
  160. * Infinity?
  161. */
  162. if (exponent >= 2046) {
  163. exceptions |= FPSCR_OFC | FPSCR_IXC;
  164. if (incr == 0) {
  165. vd->exponent = 2045;
  166. vd->significand = 0x7fffffffffffffffULL;
  167. } else {
  168. vd->exponent = 2047; /* infinity */
  169. vd->significand = 0;
  170. }
  171. } else {
  172. if (significand >> (VFP_DOUBLE_LOW_BITS + 1) == 0)
  173. exponent = 0;
  174. if (exponent || significand > 0x8000000000000000ULL)
  175. underflow = 0;
  176. if (underflow)
  177. exceptions |= FPSCR_UFC;
  178. vd->exponent = exponent;
  179. vd->significand = significand >> 1;
  180. }
  181. pack:
  182. vfp_double_dump("pack: final", vd);
  183. {
  184. s64 d = vfp_double_pack(vd);
  185. LOG_TRACE(Core_ARM11, "VFP: %s: d(d%d)=%016llx exceptions=%08x\n", func,
  186. dd, d, exceptions);
  187. vfp_put_double(state, d, dd);
  188. }
  189. return exceptions;
  190. }
  191. /*
  192. * Propagate the NaN, setting exceptions if it is signalling.
  193. * 'n' is always a NaN. 'm' may be a number, NaN or infinity.
  194. */
  195. static u32
  196. vfp_propagate_nan(struct vfp_double *vdd, struct vfp_double *vdn,
  197. struct vfp_double *vdm, u32 fpscr)
  198. {
  199. struct vfp_double *nan;
  200. int tn, tm = 0;
  201. tn = vfp_double_type(vdn);
  202. if (vdm)
  203. tm = vfp_double_type(vdm);
  204. if (fpscr & FPSCR_DEFAULT_NAN)
  205. /*
  206. * Default NaN mode - always returns a quiet NaN
  207. */
  208. nan = &vfp_double_default_qnan;
  209. else {
  210. /*
  211. * Contemporary mode - select the first signalling
  212. * NAN, or if neither are signalling, the first
  213. * quiet NAN.
  214. */
  215. if (tn == VFP_SNAN || (tm != VFP_SNAN && tn == VFP_QNAN))
  216. nan = vdn;
  217. else
  218. nan = vdm;
  219. /*
  220. * Make the NaN quiet.
  221. */
  222. nan->significand |= VFP_DOUBLE_SIGNIFICAND_QNAN;
  223. }
  224. *vdd = *nan;
  225. /*
  226. * If one was a signalling NAN, raise invalid operation.
  227. */
  228. return tn == VFP_SNAN || tm == VFP_SNAN ? FPSCR_IOC : VFP_NAN_FLAG;
  229. }
  230. /*
  231. * Extended operations
  232. */
  233. static u32 vfp_double_fabs(ARMul_State* state, int dd, int unused, int dm, u32 fpscr)
  234. {
  235. LOG_TRACE(Core_ARM11, "In %s\n", __FUNCTION__);
  236. vfp_put_double(state, vfp_double_packed_abs(vfp_get_double(state, dm)), dd);
  237. return 0;
  238. }
  239. static u32 vfp_double_fcpy(ARMul_State* state, int dd, int unused, int dm, u32 fpscr)
  240. {
  241. LOG_TRACE(Core_ARM11, "In %s\n", __FUNCTION__);
  242. vfp_put_double(state, vfp_get_double(state, dm), dd);
  243. return 0;
  244. }
  245. static u32 vfp_double_fneg(ARMul_State* state, int dd, int unused, int dm, u32 fpscr)
  246. {
  247. LOG_TRACE(Core_ARM11, "In %s\n", __FUNCTION__);
  248. vfp_put_double(state, vfp_double_packed_negate(vfp_get_double(state, dm)), dd);
  249. return 0;
  250. }
  251. static u32 vfp_double_fsqrt(ARMul_State* state, int dd, int unused, int dm, u32 fpscr)
  252. {
  253. LOG_TRACE(Core_ARM11, "In %s\n", __FUNCTION__);
  254. vfp_double vdm, vdd, *vdp;
  255. int ret, tm;
  256. vfp_double_unpack(&vdm, vfp_get_double(state, dm), &fpscr);
  257. tm = vfp_double_type(&vdm);
  258. if (tm & (VFP_NAN|VFP_INFINITY)) {
  259. vdp = &vdd;
  260. if (tm & VFP_NAN)
  261. ret = vfp_propagate_nan(vdp, &vdm, NULL, fpscr);
  262. else if (vdm.sign == 0) {
  263. sqrt_copy:
  264. vdp = &vdm;
  265. ret = 0;
  266. } else {
  267. sqrt_invalid:
  268. vdp = &vfp_double_default_qnan;
  269. ret = FPSCR_IOC;
  270. }
  271. vfp_put_double(state, vfp_double_pack(vdp), dd);
  272. return ret;
  273. }
  274. /*
  275. * sqrt(+/- 0) == +/- 0
  276. */
  277. if (tm & VFP_ZERO)
  278. goto sqrt_copy;
  279. /*
  280. * Normalise a denormalised number
  281. */
  282. if (tm & VFP_DENORMAL)
  283. vfp_double_normalise_denormal(&vdm);
  284. /*
  285. * sqrt(<0) = invalid
  286. */
  287. if (vdm.sign)
  288. goto sqrt_invalid;
  289. vfp_double_dump("sqrt", &vdm);
  290. /*
  291. * Estimate the square root.
  292. */
  293. vdd.sign = 0;
  294. vdd.exponent = ((vdm.exponent - 1023) >> 1) + 1023;
  295. vdd.significand = (u64)vfp_estimate_sqrt_significand(vdm.exponent, vdm.significand >> 32) << 31;
  296. vfp_double_dump("sqrt estimate1", &vdd);
  297. vdm.significand >>= 1 + (vdm.exponent & 1);
  298. vdd.significand += 2 + vfp_estimate_div128to64(vdm.significand, 0, vdd.significand);
  299. vfp_double_dump("sqrt estimate2", &vdd);
  300. /*
  301. * And now adjust.
  302. */
  303. if ((vdd.significand & VFP_DOUBLE_LOW_BITS_MASK) <= 5) {
  304. if (vdd.significand < 2) {
  305. vdd.significand = ~0ULL;
  306. } else {
  307. u64 termh, terml, remh, reml;
  308. vdm.significand <<= 2;
  309. mul64to128(&termh, &terml, vdd.significand, vdd.significand);
  310. sub128(&remh, &reml, vdm.significand, 0, termh, terml);
  311. while ((s64)remh < 0) {
  312. vdd.significand -= 1;
  313. shift64left(&termh, &terml, vdd.significand);
  314. terml |= 1;
  315. add128(&remh, &reml, remh, reml, termh, terml);
  316. }
  317. vdd.significand |= (remh | reml) != 0;
  318. }
  319. }
  320. vdd.significand = vfp_shiftright64jamming(vdd.significand, 1);
  321. return vfp_double_normaliseround(state, dd, &vdd, fpscr, 0, "fsqrt");
  322. }
  323. /*
  324. * Equal := ZC
  325. * Less than := N
  326. * Greater than := C
  327. * Unordered := CV
  328. */
  329. static u32 vfp_compare(ARMul_State* state, int dd, int signal_on_qnan, int dm, u32 fpscr)
  330. {
  331. s64 d, m;
  332. u32 ret = 0;
  333. LOG_TRACE(Core_ARM11, "In %s, state=0x%p, fpscr=0x%x\n", __FUNCTION__, state, fpscr);
  334. m = vfp_get_double(state, dm);
  335. if (vfp_double_packed_exponent(m) == 2047 && vfp_double_packed_mantissa(m)) {
  336. ret |= FPSCR_CFLAG | FPSCR_VFLAG;
  337. if (signal_on_qnan || !(vfp_double_packed_mantissa(m) & (1ULL << (VFP_DOUBLE_MANTISSA_BITS - 1))))
  338. /*
  339. * Signalling NaN, or signalling on quiet NaN
  340. */
  341. ret |= FPSCR_IOC;
  342. }
  343. d = vfp_get_double(state, dd);
  344. if (vfp_double_packed_exponent(d) == 2047 && vfp_double_packed_mantissa(d)) {
  345. ret |= FPSCR_CFLAG | FPSCR_VFLAG;
  346. if (signal_on_qnan || !(vfp_double_packed_mantissa(d) & (1ULL << (VFP_DOUBLE_MANTISSA_BITS - 1))))
  347. /*
  348. * Signalling NaN, or signalling on quiet NaN
  349. */
  350. ret |= FPSCR_IOC;
  351. }
  352. if (ret == 0) {
  353. //printf("In %s, d=%lld, m =%lld\n ", __FUNCTION__, d, m);
  354. if (d == m || vfp_double_packed_abs(d | m) == 0) {
  355. /*
  356. * equal
  357. */
  358. ret |= FPSCR_ZFLAG | FPSCR_CFLAG;
  359. //printf("In %s,1 ret=0x%x\n", __FUNCTION__, ret);
  360. } else if (vfp_double_packed_sign(d ^ m)) {
  361. /*
  362. * different signs
  363. */
  364. if (vfp_double_packed_sign(d))
  365. /*
  366. * d is negative, so d < m
  367. */
  368. ret |= FPSCR_NFLAG;
  369. else
  370. /*
  371. * d is positive, so d > m
  372. */
  373. ret |= FPSCR_CFLAG;
  374. } else if ((vfp_double_packed_sign(d) != 0) ^ (d < m)) {
  375. /*
  376. * d < m
  377. */
  378. ret |= FPSCR_NFLAG;
  379. } else if ((vfp_double_packed_sign(d) != 0) ^ (d > m)) {
  380. /*
  381. * d > m
  382. */
  383. ret |= FPSCR_CFLAG;
  384. }
  385. }
  386. LOG_TRACE(Core_ARM11, "In %s, state=0x%p, ret=0x%x\n", __FUNCTION__, state, ret);
  387. return ret;
  388. }
  389. static u32 vfp_double_fcmp(ARMul_State* state, int dd, int unused, int dm, u32 fpscr)
  390. {
  391. LOG_TRACE(Core_ARM11, "In %s\n", __FUNCTION__);
  392. return vfp_compare(state, dd, 0, dm, fpscr);
  393. }
  394. static u32 vfp_double_fcmpe(ARMul_State* state, int dd, int unused, int dm, u32 fpscr)
  395. {
  396. LOG_TRACE(Core_ARM11, "In %s\n", __FUNCTION__);
  397. return vfp_compare(state, dd, 1, dm, fpscr);
  398. }
  399. static u32 vfp_double_fcmpz(ARMul_State* state, int dd, int unused, int dm, u32 fpscr)
  400. {
  401. LOG_TRACE(Core_ARM11, "In %s\n", __FUNCTION__);
  402. return vfp_compare(state, dd, 0, VFP_REG_ZERO, fpscr);
  403. }
  404. static u32 vfp_double_fcmpez(ARMul_State* state, int dd, int unused, int dm, u32 fpscr)
  405. {
  406. LOG_TRACE(Core_ARM11, "In %s\n", __FUNCTION__);
  407. return vfp_compare(state, dd, 1, VFP_REG_ZERO, fpscr);
  408. }
  409. static u32 vfp_double_fcvts(ARMul_State* state, int sd, int unused, int dm, u32 fpscr)
  410. {
  411. struct vfp_double vdm;
  412. struct vfp_single vsd;
  413. int tm;
  414. u32 exceptions = 0;
  415. LOG_TRACE(Core_ARM11, "In %s\n", __FUNCTION__);
  416. vfp_double_unpack(&vdm, vfp_get_double(state, dm), &fpscr);
  417. tm = vfp_double_type(&vdm);
  418. /*
  419. * If we have a signalling NaN, signal invalid operation.
  420. */
  421. if (tm == VFP_SNAN)
  422. exceptions = FPSCR_IOC;
  423. if (tm & VFP_DENORMAL)
  424. vfp_double_normalise_denormal(&vdm);
  425. vsd.sign = vdm.sign;
  426. vsd.significand = vfp_hi64to32jamming(vdm.significand);
  427. /*
  428. * If we have an infinity or a NaN, the exponent must be 255
  429. */
  430. if (tm & (VFP_INFINITY|VFP_NAN)) {
  431. vsd.exponent = 255;
  432. if (tm == VFP_QNAN)
  433. vsd.significand |= VFP_SINGLE_SIGNIFICAND_QNAN;
  434. goto pack_nan;
  435. } else if (tm & VFP_ZERO)
  436. vsd.exponent = 0;
  437. else
  438. vsd.exponent = vdm.exponent - (1023 - 127);
  439. return vfp_single_normaliseround(state, sd, &vsd, fpscr, exceptions, "fcvts");
  440. pack_nan:
  441. vfp_put_float(state, vfp_single_pack(&vsd), sd);
  442. return exceptions;
  443. }
  444. static u32 vfp_double_fuito(ARMul_State* state, int dd, int unused, int dm, u32 fpscr)
  445. {
  446. struct vfp_double vdm;
  447. u32 m = vfp_get_float(state, dm);
  448. LOG_TRACE(Core_ARM11, "In %s\n", __FUNCTION__);
  449. vdm.sign = 0;
  450. vdm.exponent = 1023 + 63 - 1;
  451. vdm.significand = (u64)m;
  452. return vfp_double_normaliseround(state, dd, &vdm, fpscr, 0, "fuito");
  453. }
  454. static u32 vfp_double_fsito(ARMul_State* state, int dd, int unused, int dm, u32 fpscr)
  455. {
  456. struct vfp_double vdm;
  457. u32 m = vfp_get_float(state, dm);
  458. LOG_TRACE(Core_ARM11, "In %s\n", __FUNCTION__);
  459. vdm.sign = (m & 0x80000000) >> 16;
  460. vdm.exponent = 1023 + 63 - 1;
  461. vdm.significand = vdm.sign ? -m : m;
  462. return vfp_double_normaliseround(state, dd, &vdm, fpscr, 0, "fsito");
  463. }
  464. static u32 vfp_double_ftoui(ARMul_State* state, int sd, int unused, int dm, u32 fpscr)
  465. {
  466. struct vfp_double vdm;
  467. u32 d, exceptions = 0;
  468. int rmode = fpscr & FPSCR_RMODE_MASK;
  469. int tm;
  470. LOG_TRACE(Core_ARM11, "In %s\n", __FUNCTION__);
  471. vfp_double_unpack(&vdm, vfp_get_double(state, dm), &fpscr);
  472. /*
  473. * Do we have a denormalised number?
  474. */
  475. tm = vfp_double_type(&vdm);
  476. if (tm & VFP_DENORMAL)
  477. exceptions |= FPSCR_IDC;
  478. if (tm & VFP_NAN)
  479. vdm.sign = 1;
  480. if (vdm.exponent >= 1023 + 32) {
  481. d = vdm.sign ? 0 : 0xffffffff;
  482. exceptions = FPSCR_IOC;
  483. } else if (vdm.exponent >= 1023 - 1) {
  484. int shift = 1023 + 63 - vdm.exponent;
  485. u64 rem, incr = 0;
  486. /*
  487. * 2^0 <= m < 2^32-2^8
  488. */
  489. d = (ARMword)((vdm.significand << 1) >> shift);
  490. rem = vdm.significand << (65 - shift);
  491. if (rmode == FPSCR_ROUND_NEAREST) {
  492. incr = 0x8000000000000000ULL;
  493. if ((d & 1) == 0)
  494. incr -= 1;
  495. } else if (rmode == FPSCR_ROUND_TOZERO) {
  496. incr = 0;
  497. } else if ((rmode == FPSCR_ROUND_PLUSINF) ^ (vdm.sign != 0)) {
  498. incr = ~0ULL;
  499. }
  500. if ((rem + incr) < rem) {
  501. if (d < 0xffffffff)
  502. d += 1;
  503. else
  504. exceptions |= FPSCR_IOC;
  505. }
  506. if (d && vdm.sign) {
  507. d = 0;
  508. exceptions |= FPSCR_IOC;
  509. } else if (rem)
  510. exceptions |= FPSCR_IXC;
  511. } else {
  512. d = 0;
  513. if (vdm.exponent | vdm.significand) {
  514. exceptions |= FPSCR_IXC;
  515. if (rmode == FPSCR_ROUND_PLUSINF && vdm.sign == 0)
  516. d = 1;
  517. else if (rmode == FPSCR_ROUND_MINUSINF && vdm.sign) {
  518. d = 0;
  519. exceptions |= FPSCR_IOC;
  520. }
  521. }
  522. }
  523. LOG_TRACE(Core_ARM11, "VFP: ftoui: d(s%d)=%08x exceptions=%08x\n", sd, d, exceptions);
  524. vfp_put_float(state, d, sd);
  525. return exceptions;
  526. }
  527. static u32 vfp_double_ftouiz(ARMul_State* state, int sd, int unused, int dm, u32 fpscr)
  528. {
  529. LOG_TRACE(Core_ARM11, "In %s\n", __FUNCTION__);
  530. return vfp_double_ftoui(state, sd, unused, dm, FPSCR_ROUND_TOZERO);
  531. }
  532. static u32 vfp_double_ftosi(ARMul_State* state, int sd, int unused, int dm, u32 fpscr)
  533. {
  534. struct vfp_double vdm;
  535. u32 d, exceptions = 0;
  536. int rmode = fpscr & FPSCR_RMODE_MASK;
  537. int tm;
  538. LOG_TRACE(Core_ARM11, "In %s\n", __FUNCTION__);
  539. vfp_double_unpack(&vdm, vfp_get_double(state, dm), &fpscr);
  540. vfp_double_dump("VDM", &vdm);
  541. /*
  542. * Do we have denormalised number?
  543. */
  544. tm = vfp_double_type(&vdm);
  545. if (tm & VFP_DENORMAL)
  546. exceptions |= FPSCR_IDC;
  547. if (tm & VFP_NAN) {
  548. d = 0;
  549. exceptions |= FPSCR_IOC;
  550. } else if (vdm.exponent >= 1023 + 32) {
  551. d = 0x7fffffff;
  552. if (vdm.sign)
  553. d = ~d;
  554. exceptions |= FPSCR_IOC;
  555. } else if (vdm.exponent >= 1023 - 1) {
  556. int shift = 1023 + 63 - vdm.exponent; /* 58 */
  557. u64 rem, incr = 0;
  558. d = (ARMword)((vdm.significand << 1) >> shift);
  559. rem = vdm.significand << (65 - shift);
  560. if (rmode == FPSCR_ROUND_NEAREST) {
  561. incr = 0x8000000000000000ULL;
  562. if ((d & 1) == 0)
  563. incr -= 1;
  564. } else if (rmode == FPSCR_ROUND_TOZERO) {
  565. incr = 0;
  566. } else if ((rmode == FPSCR_ROUND_PLUSINF) ^ (vdm.sign != 0)) {
  567. incr = ~0ULL;
  568. }
  569. if ((rem + incr) < rem && d < 0xffffffff)
  570. d += 1;
  571. if (d > (0x7fffffffU + (vdm.sign != 0))) {
  572. d = (0x7fffffffU + (vdm.sign != 0));
  573. exceptions |= FPSCR_IOC;
  574. } else if (rem)
  575. exceptions |= FPSCR_IXC;
  576. if (vdm.sign)
  577. d = -d;
  578. } else {
  579. d = 0;
  580. if (vdm.exponent | vdm.significand) {
  581. exceptions |= FPSCR_IXC;
  582. if (rmode == FPSCR_ROUND_PLUSINF && vdm.sign == 0)
  583. d = 1;
  584. else if (rmode == FPSCR_ROUND_MINUSINF && vdm.sign)
  585. d = -1;
  586. }
  587. }
  588. LOG_TRACE(Core_ARM11, "VFP: ftosi: d(s%d)=%08x exceptions=%08x\n", sd, d, exceptions);
  589. vfp_put_float(state, (s32)d, sd);
  590. return exceptions;
  591. }
  592. static u32 vfp_double_ftosiz(ARMul_State* state, int dd, int unused, int dm, u32 fpscr)
  593. {
  594. LOG_TRACE(Core_ARM11, "In %s\n", __FUNCTION__);
  595. return vfp_double_ftosi(state, dd, unused, dm, FPSCR_ROUND_TOZERO);
  596. }
  597. static struct op fops_ext[] = {
  598. { vfp_double_fcpy, 0 }, //0x00000000 - FEXT_FCPY
  599. { vfp_double_fabs, 0 }, //0x00000001 - FEXT_FABS
  600. { vfp_double_fneg, 0 }, //0x00000002 - FEXT_FNEG
  601. { vfp_double_fsqrt, 0 }, //0x00000003 - FEXT_FSQRT
  602. { NULL, 0 },
  603. { NULL, 0 },
  604. { NULL, 0 },
  605. { NULL, 0 },
  606. { vfp_double_fcmp, OP_SCALAR }, //0x00000008 - FEXT_FCMP
  607. { vfp_double_fcmpe, OP_SCALAR }, //0x00000009 - FEXT_FCMPE
  608. { vfp_double_fcmpz, OP_SCALAR }, //0x0000000A - FEXT_FCMPZ
  609. { vfp_double_fcmpez, OP_SCALAR }, //0x0000000B - FEXT_FCMPEZ
  610. { NULL, 0 },
  611. { NULL, 0 },
  612. { NULL, 0 },
  613. { vfp_double_fcvts, OP_SCALAR|OP_DD }, //0x0000000F - FEXT_FCVT
  614. { vfp_double_fuito, OP_SCALAR|OP_SM }, //0x00000010 - FEXT_FUITO
  615. { vfp_double_fsito, OP_SCALAR|OP_SM }, //0x00000011 - FEXT_FSITO
  616. { NULL, 0 },
  617. { NULL, 0 },
  618. { NULL, 0 },
  619. { NULL, 0 },
  620. { NULL, 0 },
  621. { NULL, 0 },
  622. { vfp_double_ftoui, OP_SCALAR|OP_SD }, //0x00000018 - FEXT_FTOUI
  623. { vfp_double_ftouiz, OP_SCALAR|OP_SD }, //0x00000019 - FEXT_FTOUIZ
  624. { vfp_double_ftosi, OP_SCALAR|OP_SD }, //0x0000001A - FEXT_FTOSI
  625. { vfp_double_ftosiz, OP_SCALAR|OP_SD }, //0x0000001B - FEXT_FTOSIZ
  626. };
  627. static u32
  628. vfp_double_fadd_nonnumber(struct vfp_double *vdd, struct vfp_double *vdn,
  629. struct vfp_double *vdm, u32 fpscr)
  630. {
  631. struct vfp_double *vdp;
  632. u32 exceptions = 0;
  633. int tn, tm;
  634. tn = vfp_double_type(vdn);
  635. tm = vfp_double_type(vdm);
  636. if (tn & tm & VFP_INFINITY) {
  637. /*
  638. * Two infinities. Are they different signs?
  639. */
  640. if (vdn->sign ^ vdm->sign) {
  641. /*
  642. * different signs -> invalid
  643. */
  644. exceptions = FPSCR_IOC;
  645. vdp = &vfp_double_default_qnan;
  646. } else {
  647. /*
  648. * same signs -> valid
  649. */
  650. vdp = vdn;
  651. }
  652. } else if (tn & VFP_INFINITY && tm & VFP_NUMBER) {
  653. /*
  654. * One infinity and one number -> infinity
  655. */
  656. vdp = vdn;
  657. } else {
  658. /*
  659. * 'n' is a NaN of some type
  660. */
  661. return vfp_propagate_nan(vdd, vdn, vdm, fpscr);
  662. }
  663. *vdd = *vdp;
  664. return exceptions;
  665. }
  666. u32 vfp_double_add(struct vfp_double *vdd, struct vfp_double *vdn,struct vfp_double *vdm, u32 fpscr)
  667. {
  668. u32 exp_diff;
  669. u64 m_sig;
  670. if (vdn->significand & (1ULL << 63) ||
  671. vdm->significand & (1ULL << 63)) {
  672. LOG_INFO(Core_ARM11, "VFP: bad FP values in %s\n", __func__);
  673. vfp_double_dump("VDN", vdn);
  674. vfp_double_dump("VDM", vdm);
  675. }
  676. /*
  677. * Ensure that 'n' is the largest magnitude number. Note that
  678. * if 'n' and 'm' have equal exponents, we do not swap them.
  679. * This ensures that NaN propagation works correctly.
  680. */
  681. if (vdn->exponent < vdm->exponent) {
  682. struct vfp_double *t = vdn;
  683. vdn = vdm;
  684. vdm = t;
  685. }
  686. /*
  687. * Is 'n' an infinity or a NaN? Note that 'm' may be a number,
  688. * infinity or a NaN here.
  689. */
  690. if (vdn->exponent == 2047)
  691. return vfp_double_fadd_nonnumber(vdd, vdn, vdm, fpscr);
  692. /*
  693. * We have two proper numbers, where 'vdn' is the larger magnitude.
  694. *
  695. * Copy 'n' to 'd' before doing the arithmetic.
  696. */
  697. *vdd = *vdn;
  698. /*
  699. * Align 'm' with the result.
  700. */
  701. exp_diff = vdn->exponent - vdm->exponent;
  702. m_sig = vfp_shiftright64jamming(vdm->significand, exp_diff);
  703. /*
  704. * If the signs are different, we are really subtracting.
  705. */
  706. if (vdn->sign ^ vdm->sign) {
  707. m_sig = vdn->significand - m_sig;
  708. if ((s64)m_sig < 0) {
  709. vdd->sign = vfp_sign_negate(vdd->sign);
  710. m_sig = -m_sig;
  711. } else if (m_sig == 0) {
  712. vdd->sign = (fpscr & FPSCR_RMODE_MASK) ==
  713. FPSCR_ROUND_MINUSINF ? 0x8000 : 0;
  714. }
  715. } else {
  716. m_sig += vdn->significand;
  717. }
  718. vdd->significand = m_sig;
  719. return 0;
  720. }
  721. u32
  722. vfp_double_multiply(struct vfp_double *vdd, struct vfp_double *vdn,
  723. struct vfp_double *vdm, u32 fpscr)
  724. {
  725. vfp_double_dump("VDN", vdn);
  726. vfp_double_dump("VDM", vdm);
  727. /*
  728. * Ensure that 'n' is the largest magnitude number. Note that
  729. * if 'n' and 'm' have equal exponents, we do not swap them.
  730. * This ensures that NaN propagation works correctly.
  731. */
  732. if (vdn->exponent < vdm->exponent) {
  733. struct vfp_double *t = vdn;
  734. vdn = vdm;
  735. vdm = t;
  736. LOG_TRACE(Core_ARM11, "VFP: swapping M <-> N\n");
  737. }
  738. vdd->sign = vdn->sign ^ vdm->sign;
  739. /*
  740. * If 'n' is an infinity or NaN, handle it. 'm' may be anything.
  741. */
  742. if (vdn->exponent == 2047) {
  743. if (vdn->significand || (vdm->exponent == 2047 && vdm->significand))
  744. return vfp_propagate_nan(vdd, vdn, vdm, fpscr);
  745. if ((vdm->exponent | vdm->significand) == 0) {
  746. *vdd = vfp_double_default_qnan;
  747. return FPSCR_IOC;
  748. }
  749. vdd->exponent = vdn->exponent;
  750. vdd->significand = 0;
  751. return 0;
  752. }
  753. /*
  754. * If 'm' is zero, the result is always zero. In this case,
  755. * 'n' may be zero or a number, but it doesn't matter which.
  756. */
  757. if ((vdm->exponent | vdm->significand) == 0) {
  758. vdd->exponent = 0;
  759. vdd->significand = 0;
  760. return 0;
  761. }
  762. /*
  763. * We add 2 to the destination exponent for the same reason
  764. * as the addition case - though this time we have +1 from
  765. * each input operand.
  766. */
  767. vdd->exponent = vdn->exponent + vdm->exponent - 1023 + 2;
  768. vdd->significand = vfp_hi64multiply64(vdn->significand, vdm->significand);
  769. vfp_double_dump("VDD", vdd);
  770. return 0;
  771. }
  772. #define NEG_MULTIPLY (1 << 0)
  773. #define NEG_SUBTRACT (1 << 1)
  774. static u32
  775. vfp_double_multiply_accumulate(ARMul_State* state, int dd, int dn, int dm, u32 fpscr, u32 negate, const char *func)
  776. {
  777. struct vfp_double vdd, vdp, vdn, vdm;
  778. u32 exceptions;
  779. vfp_double_unpack(&vdn, vfp_get_double(state, dn), &fpscr);
  780. if (vdn.exponent == 0 && vdn.significand)
  781. vfp_double_normalise_denormal(&vdn);
  782. vfp_double_unpack(&vdm, vfp_get_double(state, dm), &fpscr);
  783. if (vdm.exponent == 0 && vdm.significand)
  784. vfp_double_normalise_denormal(&vdm);
  785. exceptions = vfp_double_multiply(&vdp, &vdn, &vdm, fpscr);
  786. if (negate & NEG_MULTIPLY)
  787. vdp.sign = vfp_sign_negate(vdp.sign);
  788. vfp_double_unpack(&vdn, vfp_get_double(state, dd), &fpscr);
  789. if (vdn.exponent == 0 && vdn.significand != 0)
  790. vfp_double_normalise_denormal(&vdn);
  791. if (negate & NEG_SUBTRACT)
  792. vdn.sign = vfp_sign_negate(vdn.sign);
  793. exceptions |= vfp_double_add(&vdd, &vdn, &vdp, fpscr);
  794. return vfp_double_normaliseround(state, dd, &vdd, fpscr, exceptions, func);
  795. }
  796. /*
  797. * Standard operations
  798. */
  799. /*
  800. * sd = sd + (sn * sm)
  801. */
  802. static u32 vfp_double_fmac(ARMul_State* state, int dd, int dn, int dm, u32 fpscr)
  803. {
  804. LOG_TRACE(Core_ARM11, "In %s\n", __FUNCTION__);
  805. return vfp_double_multiply_accumulate(state, dd, dn, dm, fpscr, 0, "fmac");
  806. }
  807. /*
  808. * sd = sd - (sn * sm)
  809. */
  810. static u32 vfp_double_fnmac(ARMul_State* state, int dd, int dn, int dm, u32 fpscr)
  811. {
  812. LOG_TRACE(Core_ARM11, "In %s\n", __FUNCTION__);
  813. return vfp_double_multiply_accumulate(state, dd, dn, dm, fpscr, NEG_MULTIPLY, "fnmac");
  814. }
  815. /*
  816. * sd = -sd + (sn * sm)
  817. */
  818. static u32 vfp_double_fmsc(ARMul_State* state, int dd, int dn, int dm, u32 fpscr)
  819. {
  820. LOG_TRACE(Core_ARM11, "In %s\n", __FUNCTION__);
  821. return vfp_double_multiply_accumulate(state, dd, dn, dm, fpscr, NEG_SUBTRACT, "fmsc");
  822. }
  823. /*
  824. * sd = -sd - (sn * sm)
  825. */
  826. static u32 vfp_double_fnmsc(ARMul_State* state, int dd, int dn, int dm, u32 fpscr)
  827. {
  828. LOG_TRACE(Core_ARM11, "In %s\n", __FUNCTION__);
  829. return vfp_double_multiply_accumulate(state, dd, dn, dm, fpscr, NEG_SUBTRACT | NEG_MULTIPLY, "fnmsc");
  830. }
  831. /*
  832. * sd = sn * sm
  833. */
  834. static u32 vfp_double_fmul(ARMul_State* state, int dd, int dn, int dm, u32 fpscr)
  835. {
  836. struct vfp_double vdd, vdn, vdm;
  837. u32 exceptions;
  838. LOG_TRACE(Core_ARM11, "In %s\n", __FUNCTION__);
  839. vfp_double_unpack(&vdn, vfp_get_double(state, dn), &fpscr);
  840. if (vdn.exponent == 0 && vdn.significand)
  841. vfp_double_normalise_denormal(&vdn);
  842. vfp_double_unpack(&vdm, vfp_get_double(state, dm), &fpscr);
  843. if (vdm.exponent == 0 && vdm.significand)
  844. vfp_double_normalise_denormal(&vdm);
  845. exceptions = vfp_double_multiply(&vdd, &vdn, &vdm, fpscr);
  846. return vfp_double_normaliseround(state, dd, &vdd, fpscr, exceptions, "fmul");
  847. }
  848. /*
  849. * sd = -(sn * sm)
  850. */
  851. static u32 vfp_double_fnmul(ARMul_State* state, int dd, int dn, int dm, u32 fpscr)
  852. {
  853. struct vfp_double vdd, vdn, vdm;
  854. u32 exceptions;
  855. LOG_TRACE(Core_ARM11, "In %s\n", __FUNCTION__);
  856. vfp_double_unpack(&vdn, vfp_get_double(state, dn), &fpscr);
  857. if (vdn.exponent == 0 && vdn.significand)
  858. vfp_double_normalise_denormal(&vdn);
  859. vfp_double_unpack(&vdm, vfp_get_double(state, dm), &fpscr);
  860. if (vdm.exponent == 0 && vdm.significand)
  861. vfp_double_normalise_denormal(&vdm);
  862. exceptions = vfp_double_multiply(&vdd, &vdn, &vdm, fpscr);
  863. vdd.sign = vfp_sign_negate(vdd.sign);
  864. return vfp_double_normaliseround(state, dd, &vdd, fpscr, exceptions, "fnmul");
  865. }
  866. /*
  867. * sd = sn + sm
  868. */
  869. static u32 vfp_double_fadd(ARMul_State* state, int dd, int dn, int dm, u32 fpscr)
  870. {
  871. struct vfp_double vdd, vdn, vdm;
  872. u32 exceptions;
  873. LOG_TRACE(Core_ARM11, "In %s\n", __FUNCTION__);
  874. vfp_double_unpack(&vdn, vfp_get_double(state, dn), &fpscr);
  875. if (vdn.exponent == 0 && vdn.significand)
  876. vfp_double_normalise_denormal(&vdn);
  877. vfp_double_unpack(&vdm, vfp_get_double(state, dm), &fpscr);
  878. if (vdm.exponent == 0 && vdm.significand)
  879. vfp_double_normalise_denormal(&vdm);
  880. exceptions = vfp_double_add(&vdd, &vdn, &vdm, fpscr);
  881. return vfp_double_normaliseround(state, dd, &vdd, fpscr, exceptions, "fadd");
  882. }
  883. /*
  884. * sd = sn - sm
  885. */
  886. static u32 vfp_double_fsub(ARMul_State* state, int dd, int dn, int dm, u32 fpscr)
  887. {
  888. struct vfp_double vdd, vdn, vdm;
  889. u32 exceptions;
  890. LOG_TRACE(Core_ARM11, "In %s\n", __FUNCTION__);
  891. vfp_double_unpack(&vdn, vfp_get_double(state, dn), &fpscr);
  892. if (vdn.exponent == 0 && vdn.significand)
  893. vfp_double_normalise_denormal(&vdn);
  894. vfp_double_unpack(&vdm, vfp_get_double(state, dm), &fpscr);
  895. if (vdm.exponent == 0 && vdm.significand)
  896. vfp_double_normalise_denormal(&vdm);
  897. /*
  898. * Subtraction is like addition, but with a negated operand.
  899. */
  900. vdm.sign = vfp_sign_negate(vdm.sign);
  901. exceptions = vfp_double_add(&vdd, &vdn, &vdm, fpscr);
  902. return vfp_double_normaliseround(state, dd, &vdd, fpscr, exceptions, "fsub");
  903. }
  904. /*
  905. * sd = sn / sm
  906. */
  907. static u32 vfp_double_fdiv(ARMul_State* state, int dd, int dn, int dm, u32 fpscr)
  908. {
  909. struct vfp_double vdd, vdn, vdm;
  910. u32 exceptions = 0;
  911. int tm, tn;
  912. LOG_TRACE(Core_ARM11, "In %s\n", __FUNCTION__);
  913. vfp_double_unpack(&vdn, vfp_get_double(state, dn), &fpscr);
  914. vfp_double_unpack(&vdm, vfp_get_double(state, dm), &fpscr);
  915. vdd.sign = vdn.sign ^ vdm.sign;
  916. tn = vfp_double_type(&vdn);
  917. tm = vfp_double_type(&vdm);
  918. /*
  919. * Is n a NAN?
  920. */
  921. if (tn & VFP_NAN)
  922. goto vdn_nan;
  923. /*
  924. * Is m a NAN?
  925. */
  926. if (tm & VFP_NAN)
  927. goto vdm_nan;
  928. /*
  929. * If n and m are infinity, the result is invalid
  930. * If n and m are zero, the result is invalid
  931. */
  932. if (tm & tn & (VFP_INFINITY|VFP_ZERO))
  933. goto invalid;
  934. /*
  935. * If n is infinity, the result is infinity
  936. */
  937. if (tn & VFP_INFINITY)
  938. goto infinity;
  939. /*
  940. * If m is zero, raise div0 exceptions
  941. */
  942. if (tm & VFP_ZERO)
  943. goto divzero;
  944. /*
  945. * If m is infinity, or n is zero, the result is zero
  946. */
  947. if (tm & VFP_INFINITY || tn & VFP_ZERO)
  948. goto zero;
  949. if (tn & VFP_DENORMAL)
  950. vfp_double_normalise_denormal(&vdn);
  951. if (tm & VFP_DENORMAL)
  952. vfp_double_normalise_denormal(&vdm);
  953. /*
  954. * Ok, we have two numbers, we can perform division.
  955. */
  956. vdd.exponent = vdn.exponent - vdm.exponent + 1023 - 1;
  957. vdm.significand <<= 1;
  958. if (vdm.significand <= (2 * vdn.significand)) {
  959. vdn.significand >>= 1;
  960. vdd.exponent++;
  961. }
  962. vdd.significand = vfp_estimate_div128to64(vdn.significand, 0, vdm.significand);
  963. if ((vdd.significand & 0x1ff) <= 2) {
  964. u64 termh, terml, remh, reml;
  965. mul64to128(&termh, &terml, vdm.significand, vdd.significand);
  966. sub128(&remh, &reml, vdn.significand, 0, termh, terml);
  967. while ((s64)remh < 0) {
  968. vdd.significand -= 1;
  969. add128(&remh, &reml, remh, reml, 0, vdm.significand);
  970. }
  971. vdd.significand |= (reml != 0);
  972. }
  973. return vfp_double_normaliseround(state, dd, &vdd, fpscr, 0, "fdiv");
  974. vdn_nan:
  975. exceptions = vfp_propagate_nan(&vdd, &vdn, &vdm, fpscr);
  976. pack:
  977. vfp_put_double(state, vfp_double_pack(&vdd), dd);
  978. return exceptions;
  979. vdm_nan:
  980. exceptions = vfp_propagate_nan(&vdd, &vdm, &vdn, fpscr);
  981. goto pack;
  982. zero:
  983. vdd.exponent = 0;
  984. vdd.significand = 0;
  985. goto pack;
  986. divzero:
  987. exceptions = FPSCR_DZC;
  988. infinity:
  989. vdd.exponent = 2047;
  990. vdd.significand = 0;
  991. goto pack;
  992. invalid:
  993. vfp_put_double(state, vfp_double_pack(&vfp_double_default_qnan), dd);
  994. return FPSCR_IOC;
  995. }
  996. static struct op fops[] = {
  997. { vfp_double_fmac, 0 },
  998. { vfp_double_fmsc, 0 },
  999. { vfp_double_fmul, 0 },
  1000. { vfp_double_fadd, 0 },
  1001. { vfp_double_fnmac, 0 },
  1002. { vfp_double_fnmsc, 0 },
  1003. { vfp_double_fnmul, 0 },
  1004. { vfp_double_fsub, 0 },
  1005. { vfp_double_fdiv, 0 },
  1006. };
  1007. #define FREG_BANK(x) ((x) & 0x0c)
  1008. #define FREG_IDX(x) ((x) & 3)
  1009. u32 vfp_double_cpdo(ARMul_State* state, u32 inst, u32 fpscr)
  1010. {
  1011. u32 op = inst & FOP_MASK;
  1012. u32 exceptions = 0;
  1013. unsigned int dest;
  1014. unsigned int dn = vfp_get_dn(inst);
  1015. unsigned int dm;
  1016. unsigned int vecitr, veclen, vecstride;
  1017. struct op *fop;
  1018. LOG_TRACE(Core_ARM11, "In %s\n", __FUNCTION__);
  1019. vecstride = (1 + ((fpscr & FPSCR_STRIDE_MASK) == FPSCR_STRIDE_MASK));
  1020. fop = (op == FOP_EXT) ? &fops_ext[FEXT_TO_IDX(inst)] : &fops[FOP_TO_IDX(op)];
  1021. /*
  1022. * fcvtds takes an sN register number as destination, not dN.
  1023. * It also always operates on scalars.
  1024. */
  1025. if (fop->flags & OP_SD)
  1026. dest = vfp_get_sd(inst);
  1027. else
  1028. dest = vfp_get_dd(inst);
  1029. /*
  1030. * f[us]ito takes a sN operand, not a dN operand.
  1031. */
  1032. if (fop->flags & OP_SM)
  1033. dm = vfp_get_sm(inst);
  1034. else
  1035. dm = vfp_get_dm(inst);
  1036. /*
  1037. * If destination bank is zero, vector length is always '1'.
  1038. * ARM DDI0100F C5.1.3, C5.3.2.
  1039. */
  1040. if ((fop->flags & OP_SCALAR) || (FREG_BANK(dest) == 0))
  1041. veclen = 0;
  1042. else
  1043. veclen = fpscr & FPSCR_LENGTH_MASK;
  1044. LOG_TRACE(Core_ARM11, "VFP: vecstride=%u veclen=%u\n", vecstride,
  1045. (veclen >> FPSCR_LENGTH_BIT) + 1);
  1046. if (!fop->fn) {
  1047. printf("VFP: could not find double op %d\n", FEXT_TO_IDX(inst));
  1048. goto invalid;
  1049. }
  1050. for (vecitr = 0; vecitr <= veclen; vecitr += 1 << FPSCR_LENGTH_BIT) {
  1051. u32 except;
  1052. char type;
  1053. type = (fop->flags & OP_SD) ? 's' : 'd';
  1054. if (op == FOP_EXT)
  1055. LOG_TRACE(Core_ARM11, "VFP: itr%d (%c%u) = op[%u] (d%u)\n",
  1056. vecitr >> FPSCR_LENGTH_BIT,
  1057. type, dest, dn, dm);
  1058. else
  1059. LOG_TRACE(Core_ARM11, "VFP: itr%d (%c%u) = (d%u) op[%u] (d%u)\n",
  1060. vecitr >> FPSCR_LENGTH_BIT,
  1061. type, dest, dn, FOP_TO_IDX(op), dm);
  1062. except = fop->fn(state, dest, dn, dm, fpscr);
  1063. LOG_TRACE(Core_ARM11, "VFP: itr%d: exceptions=%08x\n",
  1064. vecitr >> FPSCR_LENGTH_BIT, except);
  1065. exceptions |= except;
  1066. /*
  1067. * CHECK: It appears to be undefined whether we stop when
  1068. * we encounter an exception. We continue.
  1069. */
  1070. dest = FREG_BANK(dest) + ((FREG_IDX(dest) + vecstride) & 3);
  1071. dn = FREG_BANK(dn) + ((FREG_IDX(dn) + vecstride) & 3);
  1072. if (FREG_BANK(dm) != 0)
  1073. dm = FREG_BANK(dm) + ((FREG_IDX(dm) + vecstride) & 3);
  1074. }
  1075. return exceptions;
  1076. invalid:
  1077. return ~0;
  1078. }