fenv.c revision 1.4 1 1.4 riastrad /* $NetBSD: fenv.c,v 1.4 2012/08/04 03:53:55 riastradh Exp $ */
2 1.1 joerg
3 1.1 joerg /*-
4 1.1 joerg * Copyright (c) 2004-2005 David Schultz <das (at) FreeBSD.ORG>
5 1.1 joerg * All rights reserved.
6 1.1 joerg *
7 1.1 joerg * Redistribution and use in source and binary forms, with or without
8 1.1 joerg * modification, are permitted provided that the following conditions
9 1.1 joerg * are met:
10 1.1 joerg * 1. Redistributions of source code must retain the above copyright
11 1.1 joerg * notice, this list of conditions and the following disclaimer.
12 1.1 joerg * 2. Redistributions in binary form must reproduce the above copyright
13 1.1 joerg * notice, this list of conditions and the following disclaimer in the
14 1.1 joerg * documentation and/or other materials provided with the distribution.
15 1.1 joerg *
16 1.1 joerg * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND
17 1.1 joerg * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
18 1.1 joerg * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
19 1.1 joerg * ARE DISCLAIMED. IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE
20 1.1 joerg * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
21 1.1 joerg * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
22 1.1 joerg * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
23 1.1 joerg * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
24 1.1 joerg * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
25 1.1 joerg * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
26 1.1 joerg * SUCH DAMAGE.
27 1.1 joerg */
28 1.1 joerg
29 1.1 joerg #include <sys/cdefs.h>
30 1.4 riastrad __RCSID("$NetBSD: fenv.c,v 1.4 2012/08/04 03:53:55 riastradh Exp $");
31 1.1 joerg
32 1.1 joerg #include <sys/param.h>
33 1.1 joerg #include <sys/sysctl.h>
34 1.1 joerg #include <assert.h>
35 1.1 joerg #include <fenv.h>
36 1.1 joerg #include <stddef.h>
37 1.1 joerg #include <string.h>
38 1.1 joerg
39 1.1 joerg /* Load x87 Control Word */
40 1.1 joerg #define __fldcw(__cw) __asm__ __volatile__ \
41 1.1 joerg ("fldcw %0" : : "m" (__cw))
42 1.1 joerg
43 1.1 joerg /* No-Wait Store Control Word */
44 1.1 joerg #define __fnstcw(__cw) __asm__ __volatile__ \
45 1.1 joerg ("fnstcw %0" : "=m" (*(__cw)))
46 1.1 joerg
47 1.1 joerg /* No-Wait Store Status Word */
48 1.1 joerg #define __fnstsw(__sw) __asm__ __volatile__ \
49 1.1 joerg ("fnstsw %0" : "=am" (*(__sw)))
50 1.1 joerg
51 1.1 joerg /* No-Wait Clear Exception Flags */
52 1.1 joerg #define __fnclex() __asm__ __volatile__ \
53 1.1 joerg ("fnclex")
54 1.1 joerg
55 1.1 joerg /* Load x87 Environment */
56 1.1 joerg #define __fldenv(__env) __asm__ __volatile__ \
57 1.1 joerg ("fldenv %0" : : "m" (__env))
58 1.1 joerg
59 1.1 joerg /* No-Wait Store x87 environment */
60 1.1 joerg #define __fnstenv(__env) __asm__ __volatile__ \
61 1.1 joerg ("fnstenv %0" : "=m" (*(__env)))
62 1.1 joerg
63 1.1 joerg /* Check for and handle pending unmasked x87 pending FPU exceptions */
64 1.1 joerg #define __fwait(__env) __asm__ __volatile__ \
65 1.1 joerg ("fwait")
66 1.1 joerg
67 1.1 joerg /* Load the MXCSR register */
68 1.1 joerg #define __ldmxcsr(__mxcsr) __asm__ __volatile__ \
69 1.1 joerg ("ldmxcsr %0" : : "m" (__mxcsr))
70 1.1 joerg
71 1.1 joerg /* Store the MXCSR register state */
72 1.1 joerg #define __stmxcsr(__mxcsr) __asm__ __volatile__ \
73 1.1 joerg ("stmxcsr %0" : "=m" (*(__mxcsr)))
74 1.1 joerg
75 1.1 joerg /*
76 1.1 joerg * The following constant represents the default floating-point environment
77 1.1 joerg * (that is, the one installed at program startup) and has type pointer to
78 1.1 joerg * const-qualified fenv_t.
79 1.1 joerg *
80 1.1 joerg * It can be used as an argument to the functions within the <fenv.h> header
81 1.1 joerg * that manage the floating-point environment, namely fesetenv() and
82 1.1 joerg * feupdateenv().
83 1.1 joerg *
84 1.1 joerg * x87 fpu registers are 16bit wide. The upper bits, 31-16, are marked as
85 1.1 joerg * RESERVED. We provide a partial floating-point environment, where we
86 1.1 joerg * define only the lower bits. The reserved bits are extracted and set by the
87 1.1 joerg * consumers of FE_DFL_ENV, during runtime.
88 1.1 joerg */
89 1.1 joerg fenv_t __fe_dfl_env = {
90 1.1 joerg {
91 1.1 joerg __NetBSD_NPXCW__, /* Control word register */
92 1.1 joerg 0x0, /* Unused */
93 1.1 joerg 0x0000, /* Status word register */
94 1.1 joerg 0x0, /* Unused */
95 1.1 joerg 0x0000ffff, /* Tag word register */
96 1.1 joerg 0x0, /* Unused */
97 1.1 joerg {
98 1.1 joerg 0x0000, 0x0000,
99 1.1 joerg 0x0000, 0xffff
100 1.1 joerg }
101 1.1 joerg },
102 1.1 joerg __INITIAL_MXCSR__ /* MXCSR register */
103 1.1 joerg };
104 1.1 joerg
105 1.1 joerg /*
106 1.1 joerg * Test for SSE support on this processor.
107 1.1 joerg *
108 1.1 joerg * We need to use ldmxcsr/stmxcsr to get correct results if any part
109 1.1 joerg * of the program was compiled to use SSE floating-point, but we can't
110 1.1 joerg * use SSE on older processors.
111 1.1 joerg *
112 1.1 joerg * In order to do so, we need to query the processor capabilities via the CPUID
113 1.1 joerg * instruction. We can make it even simpler though, by querying the machdep.sse
114 1.1 joerg * sysctl.
115 1.1 joerg */
116 1.1 joerg static int __HAS_SSE = 0;
117 1.1 joerg
118 1.1 joerg static void __test_sse(void) __attribute__ ((constructor));
119 1.1 joerg
120 1.1 joerg static void __test_sse(void)
121 1.1 joerg {
122 1.3 taca size_t oldlen = sizeof(__HAS_SSE);
123 1.1 joerg int rv;
124 1.1 joerg
125 1.1 joerg rv = sysctlbyname("machdep.sse", &__HAS_SSE, &oldlen, NULL, 0);
126 1.1 joerg if (rv == -1)
127 1.1 joerg __HAS_SSE = 0;
128 1.1 joerg }
129 1.1 joerg
130 1.1 joerg /*
131 1.1 joerg * The feclearexcept() function clears the supported floating-point exceptions
132 1.1 joerg * represented by `excepts'.
133 1.1 joerg */
134 1.1 joerg int
135 1.1 joerg feclearexcept(int excepts)
136 1.1 joerg {
137 1.1 joerg fenv_t env;
138 1.1 joerg uint32_t mxcsr;
139 1.1 joerg int ex;
140 1.1 joerg
141 1.1 joerg _DIAGASSERT((excepts & ~FE_ALL_EXCEPT) == 0);
142 1.1 joerg
143 1.1 joerg ex = excepts & FE_ALL_EXCEPT;
144 1.1 joerg
145 1.1 joerg /* It's ~3x faster to call fnclex, than store/load fp env */
146 1.1 joerg if (ex == FE_ALL_EXCEPT) {
147 1.1 joerg __fnclex();
148 1.1 joerg } else {
149 1.1 joerg __fnstenv(&env);
150 1.1 joerg env.x87.status &= ~ex;
151 1.1 joerg __fldenv(env);
152 1.1 joerg }
153 1.1 joerg
154 1.1 joerg if (__HAS_SSE) {
155 1.1 joerg __stmxcsr(&mxcsr);
156 1.1 joerg mxcsr &= ~ex;
157 1.1 joerg __ldmxcsr(mxcsr);
158 1.1 joerg }
159 1.1 joerg
160 1.1 joerg /* Success */
161 1.1 joerg return (0);
162 1.1 joerg }
163 1.1 joerg
164 1.1 joerg /*
165 1.1 joerg * The fegetexceptflag() function stores an implementation-defined
166 1.1 joerg * representation of the states of the floating-point status flags indicated by
167 1.1 joerg * the argument excepts in the object pointed to by the argument flagp.
168 1.1 joerg */
169 1.1 joerg int
170 1.1 joerg fegetexceptflag(fexcept_t *flagp, int excepts)
171 1.1 joerg {
172 1.1 joerg uint32_t mxcsr;
173 1.1 joerg uint16_t status;
174 1.1 joerg int ex;
175 1.1 joerg
176 1.1 joerg _DIAGASSERT(flagp != NULL);
177 1.1 joerg _DIAGASSERT((excepts & ~FE_ALL_EXCEPT) == 0);
178 1.1 joerg
179 1.1 joerg ex = excepts & FE_ALL_EXCEPT;
180 1.1 joerg
181 1.1 joerg __fnstsw(&status);
182 1.1 joerg if (__HAS_SSE)
183 1.1 joerg __stmxcsr(&mxcsr);
184 1.1 joerg else
185 1.1 joerg mxcsr = 0;
186 1.1 joerg
187 1.1 joerg *flagp = (mxcsr | status) & ex;
188 1.1 joerg
189 1.1 joerg /* Success */
190 1.1 joerg return (0);
191 1.1 joerg }
192 1.1 joerg
193 1.1 joerg /*
194 1.1 joerg * The feraiseexcept() function raises the supported floating-point exceptions
195 1.1 joerg * represented by the argument `excepts'.
196 1.1 joerg *
197 1.1 joerg * The standard explicitly allows us to execute an instruction that has the
198 1.1 joerg * exception as a side effect, but we choose to manipulate the status register
199 1.1 joerg * directly.
200 1.1 joerg *
201 1.1 joerg * The validation of input is being deferred to fesetexceptflag().
202 1.1 joerg */
203 1.1 joerg int
204 1.1 joerg feraiseexcept(int excepts)
205 1.1 joerg {
206 1.1 joerg fexcept_t ex;
207 1.1 joerg
208 1.1 joerg _DIAGASSERT((excepts & ~FE_ALL_EXCEPT) == 0);
209 1.1 joerg
210 1.1 joerg ex = excepts & FE_ALL_EXCEPT;
211 1.1 joerg fesetexceptflag(&ex, excepts);
212 1.1 joerg __fwait();
213 1.1 joerg
214 1.1 joerg /* Success */
215 1.1 joerg return (0);
216 1.1 joerg }
217 1.1 joerg
218 1.1 joerg /*
219 1.1 joerg * This function sets the floating-point status flags indicated by the argument
220 1.1 joerg * `excepts' to the states stored in the object pointed to by `flagp'. It does
221 1.1 joerg * NOT raise any floating-point exceptions, but only sets the state of the flags.
222 1.1 joerg */
223 1.1 joerg int
224 1.1 joerg fesetexceptflag(const fexcept_t *flagp, int excepts)
225 1.1 joerg {
226 1.1 joerg fenv_t env;
227 1.1 joerg uint32_t mxcsr;
228 1.1 joerg int ex;
229 1.1 joerg
230 1.1 joerg _DIAGASSERT(flagp != NULL);
231 1.1 joerg _DIAGASSERT((excepts & ~FE_ALL_EXCEPT) == 0);
232 1.1 joerg
233 1.1 joerg ex = excepts & FE_ALL_EXCEPT;
234 1.1 joerg
235 1.1 joerg __fnstenv(&env);
236 1.1 joerg env.x87.status &= ~ex;
237 1.1 joerg env.x87.status |= *flagp & ex;
238 1.1 joerg __fldenv(env);
239 1.1 joerg
240 1.1 joerg if (__HAS_SSE) {
241 1.1 joerg __stmxcsr(&mxcsr);
242 1.1 joerg mxcsr &= ~ex;
243 1.1 joerg mxcsr |= *flagp & ex;
244 1.1 joerg __ldmxcsr(mxcsr);
245 1.1 joerg }
246 1.1 joerg
247 1.1 joerg /* Success */
248 1.1 joerg return (0);
249 1.1 joerg }
250 1.1 joerg
251 1.1 joerg /*
252 1.1 joerg * The fetestexcept() function determines which of a specified subset of the
253 1.1 joerg * floating-point exception flags are currently set. The `excepts' argument
254 1.1 joerg * specifies the floating-point status flags to be queried.
255 1.1 joerg */
256 1.1 joerg int
257 1.1 joerg fetestexcept(int excepts)
258 1.1 joerg {
259 1.1 joerg uint32_t mxcsr;
260 1.1 joerg uint16_t status;
261 1.1 joerg int ex;
262 1.1 joerg
263 1.1 joerg _DIAGASSERT((excepts & ~FE_ALL_EXCEPT) == 0);
264 1.1 joerg
265 1.1 joerg ex = excepts & FE_ALL_EXCEPT;
266 1.1 joerg
267 1.1 joerg __fnstsw(&status);
268 1.1 joerg if (__HAS_SSE)
269 1.1 joerg __stmxcsr(&mxcsr);
270 1.1 joerg else
271 1.1 joerg mxcsr = 0;
272 1.1 joerg
273 1.1 joerg return ((status | mxcsr) & ex);
274 1.1 joerg }
275 1.1 joerg
276 1.1 joerg int
277 1.1 joerg fegetround(void)
278 1.1 joerg {
279 1.1 joerg uint16_t control;
280 1.1 joerg
281 1.1 joerg /*
282 1.1 joerg * We assume that the x87 and the SSE unit agree on the
283 1.1 joerg * rounding mode. Reading the control word on the x87 turns
284 1.1 joerg * out to be about 5 times faster than reading it on the SSE
285 1.1 joerg * unit on an Opteron 244.
286 1.1 joerg */
287 1.1 joerg __fnstcw(&control);
288 1.1 joerg
289 1.1 joerg return (control & __X87_ROUND_MASK);
290 1.1 joerg }
291 1.1 joerg
292 1.1 joerg /*
293 1.1 joerg * The fesetround() function shall establish the rounding direction represented
294 1.1 joerg * by its argument round. If the argument is not equal to the value of a
295 1.1 joerg * rounding direction macro, the rounding direction is not changed.
296 1.1 joerg */
297 1.1 joerg int
298 1.1 joerg fesetround(int round)
299 1.1 joerg {
300 1.1 joerg uint32_t mxcsr;
301 1.1 joerg uint16_t control;
302 1.1 joerg
303 1.1 joerg if (round & ~__X87_ROUND_MASK) {
304 1.1 joerg /* Failure */
305 1.1 joerg return (-1);
306 1.1 joerg }
307 1.1 joerg
308 1.1 joerg __fnstcw(&control);
309 1.1 joerg control &= ~__X87_ROUND_MASK;
310 1.1 joerg control |= round;
311 1.1 joerg __fldcw(control);
312 1.1 joerg
313 1.1 joerg if (__HAS_SSE) {
314 1.1 joerg __stmxcsr(&mxcsr);
315 1.1 joerg mxcsr &= ~(__X87_ROUND_MASK << __SSE_ROUND_SHIFT);
316 1.1 joerg mxcsr |= round << __SSE_ROUND_SHIFT;
317 1.1 joerg __ldmxcsr(mxcsr);
318 1.1 joerg }
319 1.1 joerg
320 1.1 joerg /* Success */
321 1.1 joerg return (0);
322 1.1 joerg }
323 1.1 joerg
324 1.1 joerg /*
325 1.1 joerg * The fegetenv() function attempts to store the current floating-point
326 1.1 joerg * environment in the object pointed to by envp.
327 1.1 joerg */
328 1.1 joerg int
329 1.1 joerg fegetenv(fenv_t *envp)
330 1.1 joerg {
331 1.1 joerg uint32_t mxcsr;
332 1.1 joerg
333 1.1 joerg _DIAGASSERT(flagp != NULL);
334 1.1 joerg
335 1.1 joerg /*
336 1.1 joerg * fnstenv masks all exceptions, so we need to restore the old control
337 1.1 joerg * word to avoid this side effect.
338 1.1 joerg */
339 1.1 joerg __fnstenv(envp);
340 1.1 joerg __fldcw(envp->x87.control);
341 1.1 joerg if (__HAS_SSE) {
342 1.1 joerg __stmxcsr(&mxcsr);
343 1.1 joerg envp->mxcsr = mxcsr;
344 1.1 joerg }
345 1.1 joerg
346 1.1 joerg /* Success */
347 1.1 joerg return (0);
348 1.1 joerg }
349 1.1 joerg
350 1.1 joerg /*
351 1.1 joerg * The feholdexcept() function saves the current floating-point environment in
352 1.1 joerg * the object pointed to by envp, clears the floating-point status flags, and
353 1.1 joerg * then installs a non-stop (continue on floating-point exceptions) mode, if
354 1.1 joerg * available, for all floating-point exceptions.
355 1.1 joerg */
356 1.1 joerg int
357 1.1 joerg feholdexcept(fenv_t *envp)
358 1.1 joerg {
359 1.1 joerg uint32_t mxcsr;
360 1.1 joerg
361 1.1 joerg _DIAGASSERT(envp != NULL);
362 1.1 joerg
363 1.1 joerg __fnstenv(envp);
364 1.1 joerg __fnclex();
365 1.1 joerg if (__HAS_SSE) {
366 1.1 joerg __stmxcsr(&mxcsr);
367 1.1 joerg envp->mxcsr = mxcsr;
368 1.1 joerg mxcsr &= ~FE_ALL_EXCEPT;
369 1.1 joerg mxcsr |= FE_ALL_EXCEPT << __SSE_EMASK_SHIFT;
370 1.1 joerg __ldmxcsr(mxcsr);
371 1.1 joerg }
372 1.1 joerg
373 1.1 joerg /* Success */
374 1.1 joerg return (0);
375 1.1 joerg }
376 1.1 joerg
377 1.1 joerg /*
378 1.1 joerg * The fesetenv() function attempts to establish the floating-point environment
379 1.1 joerg * represented by the object pointed to by envp. The argument `envp' points
380 1.1 joerg * to an object set by a call to fegetenv() or feholdexcept(), or equal a
381 1.1 joerg * floating-point environment macro. The fesetenv() function does not raise
382 1.1 joerg * floating-point exceptions, but only installs the state of the floating-point
383 1.1 joerg * status flags represented through its argument.
384 1.1 joerg */
385 1.1 joerg int
386 1.1 joerg fesetenv(const fenv_t *envp)
387 1.1 joerg {
388 1.1 joerg fenv_t env;
389 1.1 joerg
390 1.1 joerg _DIAGASSERT(envp != NULL);
391 1.1 joerg
392 1.1 joerg /* Store the x87 floating-point environment */
393 1.1 joerg memset(&env, 0, sizeof(env));
394 1.1 joerg __fnstenv(&env);
395 1.1 joerg
396 1.1 joerg __fe_dfl_env.x87.unused1 = env.x87.unused1;
397 1.1 joerg __fe_dfl_env.x87.unused2 = env.x87.unused2;
398 1.1 joerg __fe_dfl_env.x87.unused3 = env.x87.unused3;
399 1.1 joerg memcpy(__fe_dfl_env.x87.others,
400 1.1 joerg env.x87.others,
401 1.1 joerg sizeof(__fe_dfl_env.x87.others) / sizeof(uint32_t));
402 1.1 joerg
403 1.1 joerg __fldenv(envp->x87);
404 1.1 joerg if (__HAS_SSE)
405 1.1 joerg __ldmxcsr(envp->mxcsr);
406 1.1 joerg
407 1.1 joerg /* Success */
408 1.1 joerg return (0);
409 1.1 joerg }
410 1.1 joerg
411 1.1 joerg /*
412 1.1 joerg * The feupdateenv() function saves the currently raised floating-point
413 1.1 joerg * exceptions in its automatic storage, installs the floating-point environment
414 1.1 joerg * represented by the object pointed to by `envp', and then raises the saved
415 1.1 joerg * floating-point exceptions. The argument `envp' shall point to an object set
416 1.1 joerg * by a call to feholdexcept() or fegetenv(), or equal a floating-point
417 1.1 joerg * environment macro.
418 1.1 joerg */
419 1.1 joerg int
420 1.1 joerg feupdateenv(const fenv_t *envp)
421 1.1 joerg {
422 1.1 joerg fenv_t env;
423 1.1 joerg uint32_t mxcsr;
424 1.1 joerg uint16_t status;
425 1.1 joerg
426 1.1 joerg _DIAGASSERT(envp != NULL);
427 1.1 joerg
428 1.1 joerg /* Store the x87 floating-point environment */
429 1.1 joerg memset(&env, 0, sizeof(env));
430 1.1 joerg __fnstenv(&env);
431 1.1 joerg
432 1.1 joerg __fe_dfl_env.x87.unused1 = env.x87.unused1;
433 1.1 joerg __fe_dfl_env.x87.unused2 = env.x87.unused2;
434 1.1 joerg __fe_dfl_env.x87.unused3 = env.x87.unused3;
435 1.1 joerg memcpy(__fe_dfl_env.x87.others,
436 1.1 joerg env.x87.others,
437 1.1 joerg sizeof(__fe_dfl_env.x87.others) / sizeof(uint32_t));
438 1.1 joerg
439 1.1 joerg __fnstsw(&status);
440 1.1 joerg if (__HAS_SSE)
441 1.1 joerg __stmxcsr(&mxcsr);
442 1.1 joerg else
443 1.1 joerg mxcsr = 0;
444 1.1 joerg fesetenv(envp);
445 1.1 joerg feraiseexcept((mxcsr | status) & FE_ALL_EXCEPT);
446 1.1 joerg
447 1.1 joerg /* Success */
448 1.1 joerg return (0);
449 1.1 joerg }
450 1.1 joerg
451 1.1 joerg /*
452 1.1 joerg * The following functions are extentions to the standard
453 1.1 joerg */
454 1.1 joerg int
455 1.1 joerg feenableexcept(int mask)
456 1.1 joerg {
457 1.1 joerg uint32_t mxcsr, omask;
458 1.1 joerg uint16_t control;
459 1.1 joerg
460 1.1 joerg mask &= FE_ALL_EXCEPT;
461 1.1 joerg __fnstcw(&control);
462 1.1 joerg if (__HAS_SSE)
463 1.1 joerg __stmxcsr(&mxcsr);
464 1.1 joerg else
465 1.1 joerg mxcsr = 0;
466 1.1 joerg
467 1.1 joerg omask = (control | mxcsr >> __SSE_EMASK_SHIFT) & FE_ALL_EXCEPT;
468 1.1 joerg control &= ~mask;
469 1.1 joerg __fldcw(control);
470 1.1 joerg if (__HAS_SSE) {
471 1.1 joerg mxcsr &= ~(mask << __SSE_EMASK_SHIFT);
472 1.1 joerg __ldmxcsr(mxcsr);
473 1.1 joerg }
474 1.1 joerg
475 1.4 riastrad return (FE_ALL_EXCEPT & ~omask);
476 1.1 joerg }
477 1.1 joerg
478 1.1 joerg int
479 1.1 joerg fedisableexcept(int mask)
480 1.1 joerg {
481 1.1 joerg uint32_t mxcsr, omask;
482 1.1 joerg uint16_t control;
483 1.1 joerg
484 1.1 joerg mask &= FE_ALL_EXCEPT;
485 1.1 joerg __fnstcw(&control);
486 1.1 joerg if (__HAS_SSE)
487 1.1 joerg __stmxcsr(&mxcsr);
488 1.1 joerg else
489 1.1 joerg mxcsr = 0;
490 1.1 joerg
491 1.1 joerg omask = (control | mxcsr >> __SSE_EMASK_SHIFT) & FE_ALL_EXCEPT;
492 1.1 joerg control |= mask;
493 1.1 joerg __fldcw(control);
494 1.1 joerg if (__HAS_SSE) {
495 1.1 joerg mxcsr |= mask << __SSE_EMASK_SHIFT;
496 1.1 joerg __ldmxcsr(mxcsr);
497 1.1 joerg }
498 1.1 joerg
499 1.4 riastrad return (FE_ALL_EXCEPT & ~omask);
500 1.1 joerg }
501 1.1 joerg
502 1.1 joerg int
503 1.1 joerg fegetexcept(void)
504 1.1 joerg {
505 1.1 joerg uint16_t control;
506 1.1 joerg
507 1.1 joerg /*
508 1.1 joerg * We assume that the masks for the x87 and the SSE unit are
509 1.1 joerg * the same.
510 1.1 joerg */
511 1.1 joerg __fnstcw(&control);
512 1.1 joerg
513 1.1 joerg return (control & FE_ALL_EXCEPT);
514 1.1 joerg }
515