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bellard158142c2005-03-13 16:54:06 +00001/*============================================================================
2
3This C header file is part of the SoftFloat IEC/IEEE Floating-point Arithmetic
4Package, Release 2b.
5
6Written by John R. Hauser. This work was made possible in part by the
7International Computer Science Institute, located at Suite 600, 1947 Center
8Street, Berkeley, California 94704. Funding was partially provided by the
9National Science Foundation under grant MIP-9311980. The original version
10of this code was written as part of a project to build a fixed-point vector
11processor in collaboration with the University of California at Berkeley,
12overseen by Profs. Nelson Morgan and John Wawrzynek. More information
13is available through the Web page `http://www.cs.berkeley.edu/~jhauser/
14arithmetic/SoftFloat.html'.
15
16THIS SOFTWARE IS DISTRIBUTED AS IS, FOR FREE. Although reasonable effort has
17been made to avoid it, THIS SOFTWARE MAY CONTAIN FAULTS THAT WILL AT TIMES
18RESULT IN INCORRECT BEHAVIOR. USE OF THIS SOFTWARE IS RESTRICTED TO PERSONS
19AND ORGANIZATIONS WHO CAN AND WILL TAKE FULL RESPONSIBILITY FOR ALL LOSSES,
20COSTS, OR OTHER PROBLEMS THEY INCUR DUE TO THE SOFTWARE, AND WHO FURTHERMORE
21EFFECTIVELY INDEMNIFY JOHN HAUSER AND THE INTERNATIONAL COMPUTER SCIENCE
22INSTITUTE (possibly via similar legal warning) AGAINST ALL LOSSES, COSTS, OR
23OTHER PROBLEMS INCURRED BY THEIR CUSTOMERS AND CLIENTS DUE TO THE SOFTWARE.
24
25Derivative works are acceptable, even for commercial purposes, so long as
26(1) the source code for the derivative work includes prominent notice that
27the work is derivative, and (2) the source code includes prominent notice with
28these four paragraphs for those parts of this code that are retained.
29
30=============================================================================*/
31
32#ifndef SOFTFLOAT_H
33#define SOFTFLOAT_H
34
ths0475a5c2007-04-01 18:54:44 +000035#if defined(HOST_SOLARIS) && defined(NEEDS_LIBSUNMATH)
36#include <sunmath.h>
37#endif
38
bellard158142c2005-03-13 16:54:06 +000039#include <inttypes.h>
40#include "config.h"
41
42/*----------------------------------------------------------------------------
43| Each of the following `typedef's defines the most convenient type that holds
44| integers of at least as many bits as specified. For example, `uint8' should
45| be the most convenient type that can hold unsigned integers of as many as
46| 8 bits. The `flag' type must be able to hold either a 0 or 1. For most
47| implementations of C, `flag', `uint8', and `int8' should all be `typedef'ed
48| to the same as `int'.
49*----------------------------------------------------------------------------*/
bellard750afe92006-10-28 19:27:11 +000050typedef uint8_t flag;
bellard158142c2005-03-13 16:54:06 +000051typedef uint8_t uint8;
52typedef int8_t int8;
malcb29fe3e2008-11-18 01:42:22 +000053#ifndef _AIX
bellard158142c2005-03-13 16:54:06 +000054typedef int uint16;
55typedef int int16;
malcb29fe3e2008-11-18 01:42:22 +000056#endif
bellard158142c2005-03-13 16:54:06 +000057typedef unsigned int uint32;
58typedef signed int int32;
59typedef uint64_t uint64;
60typedef int64_t int64;
61
62/*----------------------------------------------------------------------------
63| Each of the following `typedef's defines a type that holds integers
64| of _exactly_ the number of bits specified. For instance, for most
65| implementation of C, `bits16' and `sbits16' should be `typedef'ed to
66| `unsigned short int' and `signed short int' (or `short int'), respectively.
67*----------------------------------------------------------------------------*/
68typedef uint8_t bits8;
69typedef int8_t sbits8;
70typedef uint16_t bits16;
71typedef int16_t sbits16;
72typedef uint32_t bits32;
73typedef int32_t sbits32;
74typedef uint64_t bits64;
75typedef int64_t sbits64;
76
77#define LIT64( a ) a##LL
78#define INLINE static inline
79
80/*----------------------------------------------------------------------------
81| The macro `FLOATX80' must be defined to enable the extended double-precision
82| floating-point format `floatx80'. If this macro is not defined, the
83| `floatx80' type will not be defined, and none of the functions that either
84| input or output the `floatx80' type will be defined. The same applies to
85| the `FLOAT128' macro and the quadruple-precision format `float128'.
86*----------------------------------------------------------------------------*/
87#ifdef CONFIG_SOFTFLOAT
88/* bit exact soft float support */
89#define FLOATX80
90#define FLOAT128
91#else
92/* native float support */
93#if (defined(__i386__) || defined(__x86_64__)) && !defined(_BSD)
94#define FLOATX80
95#endif
96#endif /* !CONFIG_SOFTFLOAT */
97
98#define STATUS_PARAM , float_status *status
99#define STATUS(field) status->field
100#define STATUS_VAR , status
101
bellard1d6bda32005-03-13 18:52:29 +0000102/*----------------------------------------------------------------------------
103| Software IEC/IEEE floating-point ordering relations
104*----------------------------------------------------------------------------*/
105enum {
106 float_relation_less = -1,
107 float_relation_equal = 0,
108 float_relation_greater = 1,
109 float_relation_unordered = 2
110};
111
bellard158142c2005-03-13 16:54:06 +0000112#ifdef CONFIG_SOFTFLOAT
113/*----------------------------------------------------------------------------
114| Software IEC/IEEE floating-point types.
115*----------------------------------------------------------------------------*/
pbrookf090c9d2007-11-18 14:33:24 +0000116/* Use structures for soft-float types. This prevents accidentally mixing
117 them with native int/float types. A sufficiently clever compiler and
118 sane ABI should be able to see though these structs. However
119 x86/gcc 3.x seems to struggle a bit, so leave them disabled by default. */
120//#define USE_SOFTFLOAT_STRUCT_TYPES
121#ifdef USE_SOFTFLOAT_STRUCT_TYPES
122typedef struct {
123 uint32_t v;
124} float32;
125/* The cast ensures an error if the wrong type is passed. */
126#define float32_val(x) (((float32)(x)).v)
127#define make_float32(x) __extension__ ({ float32 f32_val = {x}; f32_val; })
128typedef struct {
129 uint64_t v;
130} float64;
131#define float64_val(x) (((float64)(x)).v)
132#define make_float64(x) __extension__ ({ float64 f64_val = {x}; f64_val; })
133#else
bellard158142c2005-03-13 16:54:06 +0000134typedef uint32_t float32;
135typedef uint64_t float64;
pbrookf090c9d2007-11-18 14:33:24 +0000136#define float32_val(x) (x)
137#define float64_val(x) (x)
138#define make_float32(x) (x)
139#define make_float64(x) (x)
140#endif
bellard158142c2005-03-13 16:54:06 +0000141#ifdef FLOATX80
142typedef struct {
143 uint64_t low;
144 uint16_t high;
145} floatx80;
146#endif
147#ifdef FLOAT128
148typedef struct {
149#ifdef WORDS_BIGENDIAN
150 uint64_t high, low;
151#else
152 uint64_t low, high;
153#endif
154} float128;
155#endif
156
157/*----------------------------------------------------------------------------
158| Software IEC/IEEE floating-point underflow tininess-detection mode.
159*----------------------------------------------------------------------------*/
160enum {
161 float_tininess_after_rounding = 0,
162 float_tininess_before_rounding = 1
163};
164
165/*----------------------------------------------------------------------------
166| Software IEC/IEEE floating-point rounding mode.
167*----------------------------------------------------------------------------*/
168enum {
169 float_round_nearest_even = 0,
170 float_round_down = 1,
171 float_round_up = 2,
172 float_round_to_zero = 3
173};
174
175/*----------------------------------------------------------------------------
176| Software IEC/IEEE floating-point exception flags.
177*----------------------------------------------------------------------------*/
178enum {
179 float_flag_invalid = 1,
180 float_flag_divbyzero = 4,
181 float_flag_overflow = 8,
182 float_flag_underflow = 16,
183 float_flag_inexact = 32
184};
185
186typedef struct float_status {
187 signed char float_detect_tininess;
188 signed char float_rounding_mode;
189 signed char float_exception_flags;
190#ifdef FLOATX80
191 signed char floatx80_rounding_precision;
192#endif
193} float_status;
194
195void set_float_rounding_mode(int val STATUS_PARAM);
bellard1d6bda32005-03-13 18:52:29 +0000196void set_float_exception_flags(int val STATUS_PARAM);
197INLINE int get_float_exception_flags(float_status *status)
198{
199 return STATUS(float_exception_flags);
200}
bellard158142c2005-03-13 16:54:06 +0000201#ifdef FLOATX80
202void set_floatx80_rounding_precision(int val STATUS_PARAM);
203#endif
204
205/*----------------------------------------------------------------------------
206| Routine to raise any or all of the software IEC/IEEE floating-point
207| exception flags.
208*----------------------------------------------------------------------------*/
bellardec530c82006-04-25 22:36:06 +0000209void float_raise( int8 flags STATUS_PARAM);
bellard158142c2005-03-13 16:54:06 +0000210
211/*----------------------------------------------------------------------------
212| Software IEC/IEEE integer-to-floating-point conversion routines.
213*----------------------------------------------------------------------------*/
214float32 int32_to_float32( int STATUS_PARAM );
215float64 int32_to_float64( int STATUS_PARAM );
bellard1d6bda32005-03-13 18:52:29 +0000216float32 uint32_to_float32( unsigned int STATUS_PARAM );
217float64 uint32_to_float64( unsigned int STATUS_PARAM );
bellard158142c2005-03-13 16:54:06 +0000218#ifdef FLOATX80
219floatx80 int32_to_floatx80( int STATUS_PARAM );
220#endif
221#ifdef FLOAT128
222float128 int32_to_float128( int STATUS_PARAM );
223#endif
224float32 int64_to_float32( int64_t STATUS_PARAM );
j_mayer75d62a52007-03-20 22:10:42 +0000225float32 uint64_to_float32( uint64_t STATUS_PARAM );
bellard158142c2005-03-13 16:54:06 +0000226float64 int64_to_float64( int64_t STATUS_PARAM );
j_mayer75d62a52007-03-20 22:10:42 +0000227float64 uint64_to_float64( uint64_t STATUS_PARAM );
bellard158142c2005-03-13 16:54:06 +0000228#ifdef FLOATX80
229floatx80 int64_to_floatx80( int64_t STATUS_PARAM );
230#endif
231#ifdef FLOAT128
232float128 int64_to_float128( int64_t STATUS_PARAM );
233#endif
234
235/*----------------------------------------------------------------------------
236| Software IEC/IEEE single-precision conversion routines.
237*----------------------------------------------------------------------------*/
238int float32_to_int32( float32 STATUS_PARAM );
239int float32_to_int32_round_to_zero( float32 STATUS_PARAM );
bellard1d6bda32005-03-13 18:52:29 +0000240unsigned int float32_to_uint32( float32 STATUS_PARAM );
241unsigned int float32_to_uint32_round_to_zero( float32 STATUS_PARAM );
bellard158142c2005-03-13 16:54:06 +0000242int64_t float32_to_int64( float32 STATUS_PARAM );
243int64_t float32_to_int64_round_to_zero( float32 STATUS_PARAM );
244float64 float32_to_float64( float32 STATUS_PARAM );
245#ifdef FLOATX80
246floatx80 float32_to_floatx80( float32 STATUS_PARAM );
247#endif
248#ifdef FLOAT128
249float128 float32_to_float128( float32 STATUS_PARAM );
250#endif
251
252/*----------------------------------------------------------------------------
253| Software IEC/IEEE single-precision operations.
254*----------------------------------------------------------------------------*/
255float32 float32_round_to_int( float32 STATUS_PARAM );
256float32 float32_add( float32, float32 STATUS_PARAM );
257float32 float32_sub( float32, float32 STATUS_PARAM );
258float32 float32_mul( float32, float32 STATUS_PARAM );
259float32 float32_div( float32, float32 STATUS_PARAM );
260float32 float32_rem( float32, float32 STATUS_PARAM );
261float32 float32_sqrt( float32 STATUS_PARAM );
bellard750afe92006-10-28 19:27:11 +0000262int float32_eq( float32, float32 STATUS_PARAM );
263int float32_le( float32, float32 STATUS_PARAM );
264int float32_lt( float32, float32 STATUS_PARAM );
265int float32_eq_signaling( float32, float32 STATUS_PARAM );
266int float32_le_quiet( float32, float32 STATUS_PARAM );
267int float32_lt_quiet( float32, float32 STATUS_PARAM );
268int float32_compare( float32, float32 STATUS_PARAM );
269int float32_compare_quiet( float32, float32 STATUS_PARAM );
ths924b2c02007-05-31 16:17:52 +0000270int float32_is_nan( float32 );
bellard750afe92006-10-28 19:27:11 +0000271int float32_is_signaling_nan( float32 );
pbrook9ee6e8b2007-11-11 00:04:49 +0000272float32 float32_scalbn( float32, int STATUS_PARAM );
bellard158142c2005-03-13 16:54:06 +0000273
bellard1d6bda32005-03-13 18:52:29 +0000274INLINE float32 float32_abs(float32 a)
275{
pbrookf090c9d2007-11-18 14:33:24 +0000276 return make_float32(float32_val(a) & 0x7fffffff);
bellard1d6bda32005-03-13 18:52:29 +0000277}
278
279INLINE float32 float32_chs(float32 a)
280{
pbrookf090c9d2007-11-18 14:33:24 +0000281 return make_float32(float32_val(a) ^ 0x80000000);
bellard1d6bda32005-03-13 18:52:29 +0000282}
283
pbrookf090c9d2007-11-18 14:33:24 +0000284#define float32_zero make_float32(0)
285
bellard158142c2005-03-13 16:54:06 +0000286/*----------------------------------------------------------------------------
287| Software IEC/IEEE double-precision conversion routines.
288*----------------------------------------------------------------------------*/
289int float64_to_int32( float64 STATUS_PARAM );
290int float64_to_int32_round_to_zero( float64 STATUS_PARAM );
bellard1d6bda32005-03-13 18:52:29 +0000291unsigned int float64_to_uint32( float64 STATUS_PARAM );
292unsigned int float64_to_uint32_round_to_zero( float64 STATUS_PARAM );
bellard158142c2005-03-13 16:54:06 +0000293int64_t float64_to_int64( float64 STATUS_PARAM );
294int64_t float64_to_int64_round_to_zero( float64 STATUS_PARAM );
j_mayer75d62a52007-03-20 22:10:42 +0000295uint64_t float64_to_uint64 (float64 a STATUS_PARAM);
296uint64_t float64_to_uint64_round_to_zero (float64 a STATUS_PARAM);
bellard158142c2005-03-13 16:54:06 +0000297float32 float64_to_float32( float64 STATUS_PARAM );
298#ifdef FLOATX80
299floatx80 float64_to_floatx80( float64 STATUS_PARAM );
300#endif
301#ifdef FLOAT128
302float128 float64_to_float128( float64 STATUS_PARAM );
303#endif
304
305/*----------------------------------------------------------------------------
306| Software IEC/IEEE double-precision operations.
307*----------------------------------------------------------------------------*/
308float64 float64_round_to_int( float64 STATUS_PARAM );
pbrooke6e59062006-10-22 00:18:54 +0000309float64 float64_trunc_to_int( float64 STATUS_PARAM );
bellard158142c2005-03-13 16:54:06 +0000310float64 float64_add( float64, float64 STATUS_PARAM );
311float64 float64_sub( float64, float64 STATUS_PARAM );
312float64 float64_mul( float64, float64 STATUS_PARAM );
313float64 float64_div( float64, float64 STATUS_PARAM );
314float64 float64_rem( float64, float64 STATUS_PARAM );
315float64 float64_sqrt( float64 STATUS_PARAM );
bellard750afe92006-10-28 19:27:11 +0000316int float64_eq( float64, float64 STATUS_PARAM );
317int float64_le( float64, float64 STATUS_PARAM );
318int float64_lt( float64, float64 STATUS_PARAM );
319int float64_eq_signaling( float64, float64 STATUS_PARAM );
320int float64_le_quiet( float64, float64 STATUS_PARAM );
321int float64_lt_quiet( float64, float64 STATUS_PARAM );
322int float64_compare( float64, float64 STATUS_PARAM );
323int float64_compare_quiet( float64, float64 STATUS_PARAM );
ths924b2c02007-05-31 16:17:52 +0000324int float64_is_nan( float64 a );
bellard750afe92006-10-28 19:27:11 +0000325int float64_is_signaling_nan( float64 );
pbrook9ee6e8b2007-11-11 00:04:49 +0000326float64 float64_scalbn( float64, int STATUS_PARAM );
bellard158142c2005-03-13 16:54:06 +0000327
bellard1d6bda32005-03-13 18:52:29 +0000328INLINE float64 float64_abs(float64 a)
329{
pbrookf090c9d2007-11-18 14:33:24 +0000330 return make_float64(float64_val(a) & 0x7fffffffffffffffLL);
bellard1d6bda32005-03-13 18:52:29 +0000331}
332
333INLINE float64 float64_chs(float64 a)
334{
pbrookf090c9d2007-11-18 14:33:24 +0000335 return make_float64(float64_val(a) ^ 0x8000000000000000LL);
bellard1d6bda32005-03-13 18:52:29 +0000336}
337
pbrookf090c9d2007-11-18 14:33:24 +0000338#define float64_zero make_float64(0)
339
bellard158142c2005-03-13 16:54:06 +0000340#ifdef FLOATX80
341
342/*----------------------------------------------------------------------------
343| Software IEC/IEEE extended double-precision conversion routines.
344*----------------------------------------------------------------------------*/
345int floatx80_to_int32( floatx80 STATUS_PARAM );
346int floatx80_to_int32_round_to_zero( floatx80 STATUS_PARAM );
347int64_t floatx80_to_int64( floatx80 STATUS_PARAM );
348int64_t floatx80_to_int64_round_to_zero( floatx80 STATUS_PARAM );
349float32 floatx80_to_float32( floatx80 STATUS_PARAM );
350float64 floatx80_to_float64( floatx80 STATUS_PARAM );
351#ifdef FLOAT128
352float128 floatx80_to_float128( floatx80 STATUS_PARAM );
353#endif
354
355/*----------------------------------------------------------------------------
356| Software IEC/IEEE extended double-precision operations.
357*----------------------------------------------------------------------------*/
358floatx80 floatx80_round_to_int( floatx80 STATUS_PARAM );
359floatx80 floatx80_add( floatx80, floatx80 STATUS_PARAM );
360floatx80 floatx80_sub( floatx80, floatx80 STATUS_PARAM );
361floatx80 floatx80_mul( floatx80, floatx80 STATUS_PARAM );
362floatx80 floatx80_div( floatx80, floatx80 STATUS_PARAM );
363floatx80 floatx80_rem( floatx80, floatx80 STATUS_PARAM );
364floatx80 floatx80_sqrt( floatx80 STATUS_PARAM );
bellard750afe92006-10-28 19:27:11 +0000365int floatx80_eq( floatx80, floatx80 STATUS_PARAM );
366int floatx80_le( floatx80, floatx80 STATUS_PARAM );
367int floatx80_lt( floatx80, floatx80 STATUS_PARAM );
368int floatx80_eq_signaling( floatx80, floatx80 STATUS_PARAM );
369int floatx80_le_quiet( floatx80, floatx80 STATUS_PARAM );
370int floatx80_lt_quiet( floatx80, floatx80 STATUS_PARAM );
ths924b2c02007-05-31 16:17:52 +0000371int floatx80_is_nan( floatx80 );
bellard750afe92006-10-28 19:27:11 +0000372int floatx80_is_signaling_nan( floatx80 );
pbrook9ee6e8b2007-11-11 00:04:49 +0000373floatx80 floatx80_scalbn( floatx80, int STATUS_PARAM );
bellard158142c2005-03-13 16:54:06 +0000374
bellard1d6bda32005-03-13 18:52:29 +0000375INLINE floatx80 floatx80_abs(floatx80 a)
376{
377 a.high &= 0x7fff;
378 return a;
379}
380
381INLINE floatx80 floatx80_chs(floatx80 a)
382{
383 a.high ^= 0x8000;
384 return a;
385}
386
bellard158142c2005-03-13 16:54:06 +0000387#endif
388
389#ifdef FLOAT128
390
391/*----------------------------------------------------------------------------
392| Software IEC/IEEE quadruple-precision conversion routines.
393*----------------------------------------------------------------------------*/
394int float128_to_int32( float128 STATUS_PARAM );
395int float128_to_int32_round_to_zero( float128 STATUS_PARAM );
396int64_t float128_to_int64( float128 STATUS_PARAM );
397int64_t float128_to_int64_round_to_zero( float128 STATUS_PARAM );
398float32 float128_to_float32( float128 STATUS_PARAM );
399float64 float128_to_float64( float128 STATUS_PARAM );
400#ifdef FLOATX80
401floatx80 float128_to_floatx80( float128 STATUS_PARAM );
402#endif
403
404/*----------------------------------------------------------------------------
405| Software IEC/IEEE quadruple-precision operations.
406*----------------------------------------------------------------------------*/
407float128 float128_round_to_int( float128 STATUS_PARAM );
408float128 float128_add( float128, float128 STATUS_PARAM );
409float128 float128_sub( float128, float128 STATUS_PARAM );
410float128 float128_mul( float128, float128 STATUS_PARAM );
411float128 float128_div( float128, float128 STATUS_PARAM );
412float128 float128_rem( float128, float128 STATUS_PARAM );
413float128 float128_sqrt( float128 STATUS_PARAM );
bellard750afe92006-10-28 19:27:11 +0000414int float128_eq( float128, float128 STATUS_PARAM );
415int float128_le( float128, float128 STATUS_PARAM );
416int float128_lt( float128, float128 STATUS_PARAM );
417int float128_eq_signaling( float128, float128 STATUS_PARAM );
418int float128_le_quiet( float128, float128 STATUS_PARAM );
419int float128_lt_quiet( float128, float128 STATUS_PARAM );
blueswir11f587322007-11-25 18:40:20 +0000420int float128_compare( float128, float128 STATUS_PARAM );
421int float128_compare_quiet( float128, float128 STATUS_PARAM );
ths924b2c02007-05-31 16:17:52 +0000422int float128_is_nan( float128 );
bellard750afe92006-10-28 19:27:11 +0000423int float128_is_signaling_nan( float128 );
pbrook9ee6e8b2007-11-11 00:04:49 +0000424float128 float128_scalbn( float128, int STATUS_PARAM );
bellard158142c2005-03-13 16:54:06 +0000425
bellard1d6bda32005-03-13 18:52:29 +0000426INLINE float128 float128_abs(float128 a)
427{
428 a.high &= 0x7fffffffffffffffLL;
429 return a;
430}
431
432INLINE float128 float128_chs(float128 a)
433{
434 a.high ^= 0x8000000000000000LL;
435 return a;
436}
437
bellard158142c2005-03-13 16:54:06 +0000438#endif
439
440#else /* CONFIG_SOFTFLOAT */
441
442#include "softfloat-native.h"
443
444#endif /* !CONFIG_SOFTFLOAT */
445
446#endif /* !SOFTFLOAT_H */