1 /* Primitive operations on floating point for GNU Emacs Lisp interpreter.
2 Copyright (C) 1988, 1993 Free Software Foundation, Inc.
4 This file is part of GNU Emacs.
6 GNU Emacs is free software; you can redistribute it and/or modify
7 it under the terms of the GNU General Public License as published by
8 the Free Software Foundation; either version 2, or (at your option)
11 GNU Emacs is distributed in the hope that it will be useful,
12 but WITHOUT ANY WARRANTY; without even the implied warranty of
13 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
14 GNU General Public License for more details.
16 You should have received a copy of the GNU General Public License
17 along with GNU Emacs; see the file COPYING. If not, write to
18 the Free Software Foundation, 675 Mass Ave, Cambridge, MA 02139, USA. */
21 /* ANSI C requires only these float functions:
22 acos, asin, atan, atan2, ceil, cos, cosh, exp, fabs, floor, fmod,
23 frexp, ldexp, log, log10, modf, pow, sin, sinh, sqrt, tan, tanh.
25 Define HAVE_INVERSE_HYPERBOLIC if you have acosh, asinh, and atanh.
26 Define HAVE_CBRT if you have cbrt.
27 Define HAVE_RINT if you have rint.
28 If you don't define these, then the appropriate routines will be simulated.
30 Define HAVE_MATHERR if on a system supporting the SysV matherr callback.
31 (This should happen automatically.)
33 Define FLOAT_CHECK_ERRNO if the float library routines set errno.
34 This has no effect if HAVE_MATHERR is defined.
36 Define FLOAT_CATCH_SIGILL if the float library routines signal SIGILL.
37 (What systems actually do this? Please let us know.)
39 Define FLOAT_CHECK_DOMAIN if the float library doesn't handle errors by
40 either setting errno, or signalling SIGFPE/SIGILL. Otherwise, domain and
41 range checking will happen before calling the float routines. This has
42 no effect if HAVE_MATHERR is defined (since matherr will be called when
43 a domain error occurs.)
50 #include "syssignal.h"
52 Lisp_Object Qarith_error
;
54 #ifdef LISP_FLOAT_TYPE
56 #if 0 /* That is untrue--XINT is used below, and it uses INTBITS.
57 What in the world is values.h, anyway? */
59 /* These are redefined in <values.h> and not used here */
66 /* Work around a problem that happens because math.h on hpux 7
67 defines two static variables--which, in Emacs, are not really static,
68 because `static' is defined as nothing. The problem is that they are
69 defined both here and in lread.c.
70 These macros prevent the name conflict. */
71 #if defined (HPUX) && !defined (HPUX8)
72 #define _MAXLDBL floatfns_maxldbl
73 #define _NMAXLDBL floatfns_nmaxldbl
78 /* This declaration is omitted on some systems, like Ultrix. */
79 #if !defined (hpux) && defined (HAVE_LOGB)
80 extern double logb ();
81 #endif /* !hpux && HAVE_LOGB */
84 #if defined(DOMAIN) && defined(SING) && defined(OVERFLOW)
85 /* If those are defined, then this is probably a `matherr' machine. */
97 # ifdef FLOAT_CHECK_ERRNO
98 # undef FLOAT_CHECK_ERRNO
100 # ifdef FLOAT_CHECK_DOMAIN
101 # undef FLOAT_CHECK_DOMAIN
105 #ifndef NO_FLOAT_CHECK_ERRNO
106 #define FLOAT_CHECK_ERRNO
109 #ifdef FLOAT_CHECK_ERRNO
115 /* Avoid traps on VMS from sinh and cosh.
116 All the other functions set errno instead. */
121 #define cosh(x) ((exp(x)+exp(-x))*0.5)
122 #define sinh(x) ((exp(x)-exp(-x))*0.5)
126 #define rint(x) (floor((x)+0.5))
129 static SIGTYPE
float_error ();
131 /* Nonzero while executing in floating point.
132 This tells float_error what to do. */
136 /* If an argument is out of range for a mathematical function,
137 here is the actual argument value to use in the error message. */
139 static Lisp_Object float_error_arg
, float_error_arg2
;
141 static char *float_error_fn_name
;
143 /* Evaluate the floating point expression D, recording NUM
144 as the original argument for error messages.
145 D is normally an assignment expression.
146 Handle errors which may result in signals or may set errno.
148 Note that float_error may be declared to return void, so you can't
149 just cast the zero after the colon to (SIGTYPE) to make the types
152 #ifdef FLOAT_CHECK_ERRNO
153 #define IN_FLOAT(d, name, num) \
155 float_error_arg = num; \
156 float_error_fn_name = name; \
157 in_float = 1; errno = 0; (d); in_float = 0; \
160 case EDOM: domain_error (float_error_fn_name, float_error_arg); \
161 case ERANGE: range_error (float_error_fn_name, float_error_arg); \
162 default: arith_error (float_error_fn_name, float_error_arg); \
165 #define IN_FLOAT2(d, name, num, num2) \
167 float_error_arg = num; \
168 float_error_arg2 = num2; \
169 float_error_fn_name = name; \
170 in_float = 1; errno = 0; (d); in_float = 0; \
173 case EDOM: domain_error (float_error_fn_name, float_error_arg); \
174 case ERANGE: range_error (float_error_fn_name, float_error_arg); \
175 default: arith_error (float_error_fn_name, float_error_arg); \
179 #define IN_FLOAT(d, name, num) (in_float = 1, (d), in_float = 0)
180 #define IN_FLOAT2(d, name, num, num2) (in_float = 1, (d), in_float = 0)
183 /* Convert float to Lisp_Int if it fits, else signal a range error
184 using the given arguments. */
185 #define FLOAT_TO_INT(x, i, name, num) \
188 if ((x) >= (1 << (VALBITS-1)) || (x) <= - (1 << (VALBITS-1)) - 1) \
189 range_error (name, num); \
190 XSET (i, Lisp_Int, (int)(x)); \
193 #define FLOAT_TO_INT2(x, i, name, num1, num2) \
196 if ((x) >= (1 << (VALBITS-1)) || (x) <= - (1 << (VALBITS-1)) - 1) \
197 range_error2 (name, num1, num2); \
198 XSET (i, Lisp_Int, (int)(x)); \
202 #define arith_error(op,arg) \
203 Fsignal (Qarith_error, Fcons (build_string ((op)), Fcons ((arg), Qnil)))
204 #define range_error(op,arg) \
205 Fsignal (Qrange_error, Fcons (build_string ((op)), Fcons ((arg), Qnil)))
206 #define range_error2(op,a1,a2) \
207 Fsignal (Qrange_error, Fcons (build_string ((op)), \
208 Fcons ((a1), Fcons ((a2), Qnil))))
209 #define domain_error(op,arg) \
210 Fsignal (Qdomain_error, Fcons (build_string ((op)), Fcons ((arg), Qnil)))
211 #define domain_error2(op,a1,a2) \
212 Fsignal (Qdomain_error, Fcons (build_string ((op)), \
213 Fcons ((a1), Fcons ((a2), Qnil))))
215 /* Extract a Lisp number as a `double', or signal an error. */
221 CHECK_NUMBER_OR_FLOAT (num
, 0);
223 if (XTYPE (num
) == Lisp_Float
)
224 return XFLOAT (num
)->data
;
225 return (double) XINT (num
);
228 /* Trig functions. */
230 DEFUN ("acos", Facos
, Sacos
, 1, 1, 0,
231 "Return the inverse cosine of ARG.")
233 register Lisp_Object arg
;
235 double d
= extract_float (arg
);
236 #ifdef FLOAT_CHECK_DOMAIN
237 if (d
> 1.0 || d
< -1.0)
238 domain_error ("acos", arg
);
240 IN_FLOAT (d
= acos (d
), "acos", arg
);
241 return make_float (d
);
244 DEFUN ("asin", Fasin
, Sasin
, 1, 1, 0,
245 "Return the inverse sine of ARG.")
247 register Lisp_Object arg
;
249 double d
= extract_float (arg
);
250 #ifdef FLOAT_CHECK_DOMAIN
251 if (d
> 1.0 || d
< -1.0)
252 domain_error ("asin", arg
);
254 IN_FLOAT (d
= asin (d
), "asin", arg
);
255 return make_float (d
);
258 DEFUN ("atan", Fatan
, Satan
, 1, 1, 0,
259 "Return the inverse tangent of ARG.")
261 register Lisp_Object arg
;
263 double d
= extract_float (arg
);
264 IN_FLOAT (d
= atan (d
), "atan", arg
);
265 return make_float (d
);
268 DEFUN ("cos", Fcos
, Scos
, 1, 1, 0,
269 "Return the cosine of ARG.")
271 register Lisp_Object arg
;
273 double d
= extract_float (arg
);
274 IN_FLOAT (d
= cos (d
), "cos", arg
);
275 return make_float (d
);
278 DEFUN ("sin", Fsin
, Ssin
, 1, 1, 0,
279 "Return the sine of ARG.")
281 register Lisp_Object arg
;
283 double d
= extract_float (arg
);
284 IN_FLOAT (d
= sin (d
), "sin", arg
);
285 return make_float (d
);
288 DEFUN ("tan", Ftan
, Stan
, 1, 1, 0,
289 "Return the tangent of ARG.")
291 register Lisp_Object arg
;
293 double d
= extract_float (arg
);
295 #ifdef FLOAT_CHECK_DOMAIN
297 domain_error ("tan", arg
);
299 IN_FLOAT (d
= sin (d
) / c
, "tan", arg
);
300 return make_float (d
);
303 #if 0 /* Leave these out unless we find there's a reason for them. */
305 DEFUN ("bessel-j0", Fbessel_j0
, Sbessel_j0
, 1, 1, 0,
306 "Return the bessel function j0 of ARG.")
308 register Lisp_Object arg
;
310 double d
= extract_float (arg
);
311 IN_FLOAT (d
= j0 (d
), "bessel-j0", arg
);
312 return make_float (d
);
315 DEFUN ("bessel-j1", Fbessel_j1
, Sbessel_j1
, 1, 1, 0,
316 "Return the bessel function j1 of ARG.")
318 register Lisp_Object arg
;
320 double d
= extract_float (arg
);
321 IN_FLOAT (d
= j1 (d
), "bessel-j1", arg
);
322 return make_float (d
);
325 DEFUN ("bessel-jn", Fbessel_jn
, Sbessel_jn
, 2, 2, 0,
326 "Return the order N bessel function output jn of ARG.\n\
327 The first arg (the order) is truncated to an integer.")
329 register Lisp_Object arg1
, arg2
;
331 int i1
= extract_float (arg1
);
332 double f2
= extract_float (arg2
);
334 IN_FLOAT (f2
= jn (i1
, f2
), "bessel-jn", arg1
);
335 return make_float (f2
);
338 DEFUN ("bessel-y0", Fbessel_y0
, Sbessel_y0
, 1, 1, 0,
339 "Return the bessel function y0 of ARG.")
341 register Lisp_Object arg
;
343 double d
= extract_float (arg
);
344 IN_FLOAT (d
= y0 (d
), "bessel-y0", arg
);
345 return make_float (d
);
348 DEFUN ("bessel-y1", Fbessel_y1
, Sbessel_y1
, 1, 1, 0,
349 "Return the bessel function y1 of ARG.")
351 register Lisp_Object arg
;
353 double d
= extract_float (arg
);
354 IN_FLOAT (d
= y1 (d
), "bessel-y0", arg
);
355 return make_float (d
);
358 DEFUN ("bessel-yn", Fbessel_yn
, Sbessel_yn
, 2, 2, 0,
359 "Return the order N bessel function output yn of ARG.\n\
360 The first arg (the order) is truncated to an integer.")
362 register Lisp_Object arg1
, arg2
;
364 int i1
= extract_float (arg1
);
365 double f2
= extract_float (arg2
);
367 IN_FLOAT (f2
= yn (i1
, f2
), "bessel-yn", arg1
);
368 return make_float (f2
);
373 #if 0 /* Leave these out unless we see they are worth having. */
375 DEFUN ("erf", Ferf
, Serf
, 1, 1, 0,
376 "Return the mathematical error function of ARG.")
378 register Lisp_Object arg
;
380 double d
= extract_float (arg
);
381 IN_FLOAT (d
= erf (d
), "erf", arg
);
382 return make_float (d
);
385 DEFUN ("erfc", Ferfc
, Serfc
, 1, 1, 0,
386 "Return the complementary error function of ARG.")
388 register Lisp_Object arg
;
390 double d
= extract_float (arg
);
391 IN_FLOAT (d
= erfc (d
), "erfc", arg
);
392 return make_float (d
);
395 DEFUN ("log-gamma", Flog_gamma
, Slog_gamma
, 1, 1, 0,
396 "Return the log gamma of ARG.")
398 register Lisp_Object arg
;
400 double d
= extract_float (arg
);
401 IN_FLOAT (d
= lgamma (d
), "log-gamma", arg
);
402 return make_float (d
);
405 DEFUN ("cube-root", Fcube_root
, Scube_root
, 1, 1, 0,
406 "Return the cube root of ARG.")
408 register Lisp_Object arg
;
410 double d
= extract_float (arg
);
412 IN_FLOAT (d
= cbrt (d
), "cube-root", arg
);
415 IN_FLOAT (d
= pow (d
, 1.0/3.0), "cube-root", arg
);
417 IN_FLOAT (d
= -pow (-d
, 1.0/3.0), "cube-root", arg
);
419 return make_float (d
);
424 DEFUN ("exp", Fexp
, Sexp
, 1, 1, 0,
425 "Return the exponential base e of ARG.")
427 register Lisp_Object arg
;
429 double d
= extract_float (arg
);
430 #ifdef FLOAT_CHECK_DOMAIN
431 if (d
> 709.7827) /* Assume IEEE doubles here */
432 range_error ("exp", arg
);
434 return make_float (0.0);
437 IN_FLOAT (d
= exp (d
), "exp", arg
);
438 return make_float (d
);
441 DEFUN ("expt", Fexpt
, Sexpt
, 2, 2, 0,
442 "Return the exponential X ** Y.")
444 register Lisp_Object arg1
, arg2
;
448 CHECK_NUMBER_OR_FLOAT (arg1
, 0);
449 CHECK_NUMBER_OR_FLOAT (arg2
, 0);
450 if (XTYPE (arg1
) == Lisp_Int
/* common lisp spec */
451 && XTYPE (arg2
) == Lisp_Int
) /* don't promote, if both are ints */
452 { /* this can be improved by pre-calculating */
453 int acc
, x
, y
; /* some binary powers of x then accumulating */
465 acc
= (y
& 1) ? -1 : 1;
476 y
= (unsigned)y
>> 1;
479 XSET (val
, Lisp_Int
, acc
);
482 f1
= (XTYPE (arg1
) == Lisp_Float
) ? XFLOAT (arg1
)->data
: XINT (arg1
);
483 f2
= (XTYPE (arg2
) == Lisp_Float
) ? XFLOAT (arg2
)->data
: XINT (arg2
);
484 /* Really should check for overflow, too */
485 if (f1
== 0.0 && f2
== 0.0)
487 #ifdef FLOAT_CHECK_DOMAIN
488 else if ((f1
== 0.0 && f2
< 0.0) || (f1
< 0 && f2
!= floor(f2
)))
489 domain_error2 ("expt", arg1
, arg2
);
491 IN_FLOAT2 (f1
= pow (f1
, f2
), "expt", arg1
, arg2
);
492 return make_float (f1
);
495 DEFUN ("log", Flog
, Slog
, 1, 2, 0,
496 "Return the natural logarithm of ARG.\n\
497 If second optional argument BASE is given, return log ARG using that base.")
499 register Lisp_Object arg
, base
;
501 double d
= extract_float (arg
);
503 #ifdef FLOAT_CHECK_DOMAIN
505 domain_error2 ("log", arg
, base
);
508 IN_FLOAT (d
= log (d
), "log", arg
);
511 double b
= extract_float (base
);
513 #ifdef FLOAT_CHECK_DOMAIN
514 if (b
<= 0.0 || b
== 1.0)
515 domain_error2 ("log", arg
, base
);
518 IN_FLOAT2 (d
= log10 (d
), "log", arg
, base
);
520 IN_FLOAT2 (d
= log (d
) / log (b
), "log", arg
, base
);
522 return make_float (d
);
525 DEFUN ("log10", Flog10
, Slog10
, 1, 1, 0,
526 "Return the logarithm base 10 of ARG.")
528 register Lisp_Object arg
;
530 double d
= extract_float (arg
);
531 #ifdef FLOAT_CHECK_DOMAIN
533 domain_error ("log10", arg
);
535 IN_FLOAT (d
= log10 (d
), "log10", arg
);
536 return make_float (d
);
539 DEFUN ("sqrt", Fsqrt
, Ssqrt
, 1, 1, 0,
540 "Return the square root of ARG.")
542 register Lisp_Object arg
;
544 double d
= extract_float (arg
);
545 #ifdef FLOAT_CHECK_DOMAIN
547 domain_error ("sqrt", arg
);
549 IN_FLOAT (d
= sqrt (d
), "sqrt", arg
);
550 return make_float (d
);
553 #if 0 /* Not clearly worth adding. */
555 DEFUN ("acosh", Facosh
, Sacosh
, 1, 1, 0,
556 "Return the inverse hyperbolic cosine of ARG.")
558 register Lisp_Object arg
;
560 double d
= extract_float (arg
);
561 #ifdef FLOAT_CHECK_DOMAIN
563 domain_error ("acosh", arg
);
565 #ifdef HAVE_INVERSE_HYPERBOLIC
566 IN_FLOAT (d
= acosh (d
), "acosh", arg
);
568 IN_FLOAT (d
= log (d
+ sqrt (d
*d
- 1.0)), "acosh", arg
);
570 return make_float (d
);
573 DEFUN ("asinh", Fasinh
, Sasinh
, 1, 1, 0,
574 "Return the inverse hyperbolic sine of ARG.")
576 register Lisp_Object arg
;
578 double d
= extract_float (arg
);
579 #ifdef HAVE_INVERSE_HYPERBOLIC
580 IN_FLOAT (d
= asinh (d
), "asinh", arg
);
582 IN_FLOAT (d
= log (d
+ sqrt (d
*d
+ 1.0)), "asinh", arg
);
584 return make_float (d
);
587 DEFUN ("atanh", Fatanh
, Satanh
, 1, 1, 0,
588 "Return the inverse hyperbolic tangent of ARG.")
590 register Lisp_Object arg
;
592 double d
= extract_float (arg
);
593 #ifdef FLOAT_CHECK_DOMAIN
594 if (d
>= 1.0 || d
<= -1.0)
595 domain_error ("atanh", arg
);
597 #ifdef HAVE_INVERSE_HYPERBOLIC
598 IN_FLOAT (d
= atanh (d
), "atanh", arg
);
600 IN_FLOAT (d
= 0.5 * log ((1.0 + d
) / (1.0 - d
)), "atanh", arg
);
602 return make_float (d
);
605 DEFUN ("cosh", Fcosh
, Scosh
, 1, 1, 0,
606 "Return the hyperbolic cosine of ARG.")
608 register Lisp_Object arg
;
610 double d
= extract_float (arg
);
611 #ifdef FLOAT_CHECK_DOMAIN
612 if (d
> 710.0 || d
< -710.0)
613 range_error ("cosh", arg
);
615 IN_FLOAT (d
= cosh (d
), "cosh", arg
);
616 return make_float (d
);
619 DEFUN ("sinh", Fsinh
, Ssinh
, 1, 1, 0,
620 "Return the hyperbolic sine of ARG.")
622 register Lisp_Object arg
;
624 double d
= extract_float (arg
);
625 #ifdef FLOAT_CHECK_DOMAIN
626 if (d
> 710.0 || d
< -710.0)
627 range_error ("sinh", arg
);
629 IN_FLOAT (d
= sinh (d
), "sinh", arg
);
630 return make_float (d
);
633 DEFUN ("tanh", Ftanh
, Stanh
, 1, 1, 0,
634 "Return the hyperbolic tangent of ARG.")
636 register Lisp_Object arg
;
638 double d
= extract_float (arg
);
639 IN_FLOAT (d
= tanh (d
), "tanh", arg
);
640 return make_float (d
);
644 DEFUN ("abs", Fabs
, Sabs
, 1, 1, 0,
645 "Return the absolute value of ARG.")
647 register Lisp_Object arg
;
649 CHECK_NUMBER_OR_FLOAT (arg
, 0);
651 if (XTYPE (arg
) == Lisp_Float
)
652 IN_FLOAT (arg
= make_float (fabs (XFLOAT (arg
)->data
)), "abs", arg
);
653 else if (XINT (arg
) < 0)
654 XSETINT (arg
, - XFASTINT (arg
));
659 DEFUN ("float", Ffloat
, Sfloat
, 1, 1, 0,
660 "Return the floating point number equal to ARG.")
662 register Lisp_Object arg
;
664 CHECK_NUMBER_OR_FLOAT (arg
, 0);
666 if (XTYPE (arg
) == Lisp_Int
)
667 return make_float ((double) XINT (arg
));
668 else /* give 'em the same float back */
672 DEFUN ("logb", Flogb
, Slogb
, 1, 1, 0,
673 "Returns largest integer <= the base 2 log of the magnitude of ARG.\n\
674 This is the same as the exponent of a float.")
680 double f
= extract_float (arg
);
683 value
= -(VALMASK
>> 1);
687 IN_FLOAT (value
= logb (f
), "logb", arg
);
690 IN_FLOAT (frexp (f
, &value
), "logb", arg
);
700 for (i
= 1, d
= 0.5; d
* d
>= f
; i
+= i
)
707 for (i
= 1, d
= 2.0; d
* d
<= f
; i
+= i
)
715 XSET (val
, Lisp_Int
, value
);
719 /* the rounding functions */
721 DEFUN ("ceiling", Fceiling
, Sceiling
, 1, 1, 0,
722 "Return the smallest integer no less than ARG. (Round toward +inf.)")
724 register Lisp_Object arg
;
726 CHECK_NUMBER_OR_FLOAT (arg
, 0);
728 if (XTYPE (arg
) == Lisp_Float
)
732 IN_FLOAT (d
= ceil (XFLOAT (arg
)->data
), "ceiling", arg
);
733 FLOAT_TO_INT (d
, arg
, "ceiling", arg
);
739 #endif /* LISP_FLOAT_TYPE */
742 DEFUN ("floor", Ffloor
, Sfloor
, 1, 2, 0,
743 "Return the largest integer no greater than ARG. (Round towards -inf.)\n\
744 With optional DIVISOR, return the largest integer no greater than ARG/DIVISOR.")
746 register Lisp_Object arg
, divisor
;
748 CHECK_NUMBER_OR_FLOAT (arg
, 0);
750 if (! NILP (divisor
))
754 CHECK_NUMBER_OR_FLOAT (divisor
, 1);
756 #ifdef LISP_FLOAT_TYPE
757 if (XTYPE (arg
) == Lisp_Float
|| XTYPE (divisor
) == Lisp_Float
)
761 f1
= XTYPE (arg
) == Lisp_Float
? XFLOAT (arg
)->data
: XINT (arg
);
762 f2
= (XTYPE (divisor
) == Lisp_Float
763 ? XFLOAT (divisor
)->data
: XINT (divisor
));
765 Fsignal (Qarith_error
, Qnil
);
767 IN_FLOAT2 (f1
= floor (f1
/ f2
), "floor", arg
, divisor
);
768 FLOAT_TO_INT2 (f1
, arg
, "floor", arg
, divisor
);
777 Fsignal (Qarith_error
, Qnil
);
779 /* With C's /, the result is implementation-defined if either operand
780 is negative, so use only nonnegative operands. */
782 ? (i1
<= 0 ? -i1
/ -i2
: -1 - ((i1
- 1) / -i2
))
783 : (i1
< 0 ? -1 - ((-1 - i1
) / i2
) : i1
/ i2
));
785 XSET (arg
, Lisp_Int
, i1
);
789 #ifdef LISP_FLOAT_TYPE
790 if (XTYPE (arg
) == Lisp_Float
)
793 IN_FLOAT (d
= floor (XFLOAT (arg
)->data
), "floor", arg
);
794 FLOAT_TO_INT (d
, arg
, "floor", arg
);
801 #ifdef LISP_FLOAT_TYPE
803 DEFUN ("round", Fround
, Sround
, 1, 1, 0,
804 "Return the nearest integer to ARG.")
806 register Lisp_Object arg
;
808 CHECK_NUMBER_OR_FLOAT (arg
, 0);
810 if (XTYPE (arg
) == Lisp_Float
)
814 /* Screw the prevailing rounding mode. */
815 IN_FLOAT (d
= rint (XFLOAT (arg
)->data
), "round", arg
);
816 FLOAT_TO_INT (d
, arg
, "round", arg
);
822 DEFUN ("truncate", Ftruncate
, Struncate
, 1, 1, 0,
823 "Truncate a floating point number to an int.\n\
824 Rounds the value toward zero.")
826 register Lisp_Object arg
;
828 CHECK_NUMBER_OR_FLOAT (arg
, 0);
830 if (XTYPE (arg
) == Lisp_Float
)
834 d
= XFLOAT (arg
)->data
;
835 FLOAT_TO_INT (d
, arg
, "truncate", arg
);
841 /* It's not clear these are worth adding. */
843 DEFUN ("fceiling", Ffceiling
, Sfceiling
, 1, 1, 0,
844 "Return the smallest integer no less than ARG, as a float.\n\
845 \(Round toward +inf.\)")
847 register Lisp_Object arg
;
849 double d
= extract_float (arg
);
850 IN_FLOAT (d
= ceil (d
), "fceiling", arg
);
851 return make_float (d
);
854 DEFUN ("ffloor", Fffloor
, Sffloor
, 1, 1, 0,
855 "Return the largest integer no greater than ARG, as a float.\n\
856 \(Round towards -inf.\)")
858 register Lisp_Object arg
;
860 double d
= extract_float (arg
);
861 IN_FLOAT (d
= floor (d
), "ffloor", arg
);
862 return make_float (d
);
865 DEFUN ("fround", Ffround
, Sfround
, 1, 1, 0,
866 "Return the nearest integer to ARG, as a float.")
868 register Lisp_Object arg
;
870 double d
= extract_float (arg
);
871 IN_FLOAT (d
= rint (d
), "fround", arg
);
872 return make_float (d
);
875 DEFUN ("ftruncate", Fftruncate
, Sftruncate
, 1, 1, 0,
876 "Truncate a floating point number to an integral float value.\n\
877 Rounds the value toward zero.")
879 register Lisp_Object arg
;
881 double d
= extract_float (arg
);
883 IN_FLOAT (d
= floor (d
), "ftruncate", arg
);
885 IN_FLOAT (d
= ceil (d
), "ftruncate", arg
);
886 return make_float (d
);
889 #ifdef FLOAT_CATCH_SIGILL
895 fatal_error_signal (signo
);
900 #else /* not BSD4_1 */
901 sigsetmask (SIGEMPTYMASK
);
902 #endif /* not BSD4_1 */
904 /* Must reestablish handler each time it is called. */
905 signal (SIGILL
, float_error
);
910 Fsignal (Qarith_error
, Fcons (float_error_arg
, Qnil
));
913 /* Another idea was to replace the library function `infnan'
914 where SIGILL is signaled. */
916 #endif /* FLOAT_CATCH_SIGILL */
925 /* Not called from emacs-lisp float routines; do the default thing. */
927 if (!strcmp (x
->name
, "pow"))
931 = Fcons (build_string (x
->name
),
932 Fcons (make_float (x
->arg1
),
933 ((!strcmp (x
->name
, "log") || !strcmp (x
->name
, "pow"))
934 ? Fcons (make_float (x
->arg2
), Qnil
)
938 case DOMAIN
: Fsignal (Qdomain_error
, args
); break;
939 case SING
: Fsignal (Qsingularity_error
, args
); break;
940 case OVERFLOW
: Fsignal (Qoverflow_error
, args
); break;
941 case UNDERFLOW
: Fsignal (Qunderflow_error
, args
); break;
942 default: Fsignal (Qarith_error
, args
); break;
944 return (1); /* don't set errno or print a message */
946 #endif /* HAVE_MATHERR */
950 #ifdef FLOAT_CATCH_SIGILL
951 signal (SIGILL
, float_error
);
956 #else /* not LISP_FLOAT_TYPE */
961 #endif /* not LISP_FLOAT_TYPE */
965 #ifdef LISP_FLOAT_TYPE
979 defsubr (&Sbessel_y0
);
980 defsubr (&Sbessel_y1
);
981 defsubr (&Sbessel_yn
);
982 defsubr (&Sbessel_j0
);
983 defsubr (&Sbessel_j1
);
984 defsubr (&Sbessel_jn
);
987 defsubr (&Slog_gamma
);
988 defsubr (&Scube_root
);
990 defsubr (&Sfceiling
);
993 defsubr (&Sftruncate
);
1003 defsubr (&Sceiling
);
1005 defsubr (&Struncate
);
1006 #endif /* LISP_FLOAT_TYPE */