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Commit | Line | Data |
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8d725fac AF |
1 | /* |
2 | * QEMU float support | |
3 | * | |
4 | * Derived from SoftFloat. | |
5 | */ | |
6 | ||
158142c2 FB |
7 | /*============================================================================ |
8 | ||
9 | This C header file is part of the SoftFloat IEC/IEEE Floating-point Arithmetic | |
10 | Package, Release 2b. | |
11 | ||
12 | Written by John R. Hauser. This work was made possible in part by the | |
13 | International Computer Science Institute, located at Suite 600, 1947 Center | |
14 | Street, Berkeley, California 94704. Funding was partially provided by the | |
15 | National Science Foundation under grant MIP-9311980. The original version | |
16 | of this code was written as part of a project to build a fixed-point vector | |
17 | processor in collaboration with the University of California at Berkeley, | |
18 | overseen by Profs. Nelson Morgan and John Wawrzynek. More information | |
19 | is available through the Web page `http://www.cs.berkeley.edu/~jhauser/ | |
20 | arithmetic/SoftFloat.html'. | |
21 | ||
22 | THIS SOFTWARE IS DISTRIBUTED AS IS, FOR FREE. Although reasonable effort has | |
23 | been made to avoid it, THIS SOFTWARE MAY CONTAIN FAULTS THAT WILL AT TIMES | |
24 | RESULT IN INCORRECT BEHAVIOR. USE OF THIS SOFTWARE IS RESTRICTED TO PERSONS | |
25 | AND ORGANIZATIONS WHO CAN AND WILL TAKE FULL RESPONSIBILITY FOR ALL LOSSES, | |
26 | COSTS, OR OTHER PROBLEMS THEY INCUR DUE TO THE SOFTWARE, AND WHO FURTHERMORE | |
27 | EFFECTIVELY INDEMNIFY JOHN HAUSER AND THE INTERNATIONAL COMPUTER SCIENCE | |
28 | INSTITUTE (possibly via similar legal warning) AGAINST ALL LOSSES, COSTS, OR | |
29 | OTHER PROBLEMS INCURRED BY THEIR CUSTOMERS AND CLIENTS DUE TO THE SOFTWARE. | |
30 | ||
31 | Derivative works are acceptable, even for commercial purposes, so long as | |
32 | (1) the source code for the derivative work includes prominent notice that | |
33 | the work is derivative, and (2) the source code includes prominent notice with | |
34 | these four paragraphs for those parts of this code that are retained. | |
35 | ||
36 | =============================================================================*/ | |
37 | ||
38 | #ifndef SOFTFLOAT_H | |
39 | #define SOFTFLOAT_H | |
40 | ||
75b5a697 | 41 | #if defined(CONFIG_SOLARIS) && defined(CONFIG_NEEDS_LIBSUNMATH) |
0475a5ca TS |
42 | #include <sunmath.h> |
43 | #endif | |
44 | ||
158142c2 | 45 | #include <inttypes.h> |
789ec7ce | 46 | #include "config-host.h" |
158142c2 FB |
47 | |
48 | /*---------------------------------------------------------------------------- | |
49 | | Each of the following `typedef's defines the most convenient type that holds | |
50 | | integers of at least as many bits as specified. For example, `uint8' should | |
51 | | be the most convenient type that can hold unsigned integers of as many as | |
52 | | 8 bits. The `flag' type must be able to hold either a 0 or 1. For most | |
53 | | implementations of C, `flag', `uint8', and `int8' should all be `typedef'ed | |
54 | | to the same as `int'. | |
55 | *----------------------------------------------------------------------------*/ | |
750afe93 | 56 | typedef uint8_t flag; |
158142c2 FB |
57 | typedef uint8_t uint8; |
58 | typedef int8_t int8; | |
b29fe3ed | 59 | #ifndef _AIX |
158142c2 FB |
60 | typedef int uint16; |
61 | typedef int int16; | |
b29fe3ed | 62 | #endif |
158142c2 FB |
63 | typedef unsigned int uint32; |
64 | typedef signed int int32; | |
65 | typedef uint64_t uint64; | |
66 | typedef int64_t int64; | |
67 | ||
158142c2 FB |
68 | #define LIT64( a ) a##LL |
69 | #define INLINE static inline | |
70 | ||
158142c2 FB |
71 | #define STATUS_PARAM , float_status *status |
72 | #define STATUS(field) status->field | |
73 | #define STATUS_VAR , status | |
74 | ||
1d6bda35 FB |
75 | /*---------------------------------------------------------------------------- |
76 | | Software IEC/IEEE floating-point ordering relations | |
77 | *----------------------------------------------------------------------------*/ | |
78 | enum { | |
79 | float_relation_less = -1, | |
80 | float_relation_equal = 0, | |
81 | float_relation_greater = 1, | |
82 | float_relation_unordered = 2 | |
83 | }; | |
84 | ||
158142c2 FB |
85 | /*---------------------------------------------------------------------------- |
86 | | Software IEC/IEEE floating-point types. | |
87 | *----------------------------------------------------------------------------*/ | |
f090c9d4 PB |
88 | /* Use structures for soft-float types. This prevents accidentally mixing |
89 | them with native int/float types. A sufficiently clever compiler and | |
90 | sane ABI should be able to see though these structs. However | |
91 | x86/gcc 3.x seems to struggle a bit, so leave them disabled by default. */ | |
92 | //#define USE_SOFTFLOAT_STRUCT_TYPES | |
93 | #ifdef USE_SOFTFLOAT_STRUCT_TYPES | |
bb4d4bb3 PM |
94 | typedef struct { |
95 | uint16_t v; | |
96 | } float16; | |
97 | #define float16_val(x) (((float16)(x)).v) | |
98 | #define make_float16(x) __extension__ ({ float16 f16_val = {x}; f16_val; }) | |
d5138cf4 | 99 | #define const_float16(x) { x } |
f090c9d4 PB |
100 | typedef struct { |
101 | uint32_t v; | |
102 | } float32; | |
103 | /* The cast ensures an error if the wrong type is passed. */ | |
104 | #define float32_val(x) (((float32)(x)).v) | |
105 | #define make_float32(x) __extension__ ({ float32 f32_val = {x}; f32_val; }) | |
d5138cf4 | 106 | #define const_float32(x) { x } |
f090c9d4 PB |
107 | typedef struct { |
108 | uint64_t v; | |
109 | } float64; | |
110 | #define float64_val(x) (((float64)(x)).v) | |
111 | #define make_float64(x) __extension__ ({ float64 f64_val = {x}; f64_val; }) | |
d5138cf4 | 112 | #define const_float64(x) { x } |
f090c9d4 | 113 | #else |
bb4d4bb3 | 114 | typedef uint16_t float16; |
158142c2 FB |
115 | typedef uint32_t float32; |
116 | typedef uint64_t float64; | |
bb4d4bb3 | 117 | #define float16_val(x) (x) |
f090c9d4 PB |
118 | #define float32_val(x) (x) |
119 | #define float64_val(x) (x) | |
bb4d4bb3 | 120 | #define make_float16(x) (x) |
f090c9d4 PB |
121 | #define make_float32(x) (x) |
122 | #define make_float64(x) (x) | |
d5138cf4 PM |
123 | #define const_float16(x) (x) |
124 | #define const_float32(x) (x) | |
125 | #define const_float64(x) (x) | |
f090c9d4 | 126 | #endif |
158142c2 FB |
127 | typedef struct { |
128 | uint64_t low; | |
129 | uint16_t high; | |
130 | } floatx80; | |
f3218a8d | 131 | #define make_floatx80(exp, mant) ((floatx80) { mant, exp }) |
3bf7e40a | 132 | #define make_floatx80_init(exp, mant) { .low = mant, .high = exp } |
158142c2 | 133 | typedef struct { |
e2542fe2 | 134 | #ifdef HOST_WORDS_BIGENDIAN |
158142c2 FB |
135 | uint64_t high, low; |
136 | #else | |
137 | uint64_t low, high; | |
138 | #endif | |
139 | } float128; | |
789ec7ce | 140 | #define make_float128(high_, low_) ((float128) { .high = high_, .low = low_ }) |
3bf7e40a | 141 | #define make_float128_init(high_, low_) { .high = high_, .low = low_ } |
158142c2 FB |
142 | |
143 | /*---------------------------------------------------------------------------- | |
144 | | Software IEC/IEEE floating-point underflow tininess-detection mode. | |
145 | *----------------------------------------------------------------------------*/ | |
146 | enum { | |
147 | float_tininess_after_rounding = 0, | |
148 | float_tininess_before_rounding = 1 | |
149 | }; | |
150 | ||
151 | /*---------------------------------------------------------------------------- | |
152 | | Software IEC/IEEE floating-point rounding mode. | |
153 | *----------------------------------------------------------------------------*/ | |
154 | enum { | |
155 | float_round_nearest_even = 0, | |
156 | float_round_down = 1, | |
157 | float_round_up = 2, | |
158 | float_round_to_zero = 3 | |
159 | }; | |
160 | ||
161 | /*---------------------------------------------------------------------------- | |
162 | | Software IEC/IEEE floating-point exception flags. | |
163 | *----------------------------------------------------------------------------*/ | |
164 | enum { | |
165 | float_flag_invalid = 1, | |
166 | float_flag_divbyzero = 4, | |
167 | float_flag_overflow = 8, | |
168 | float_flag_underflow = 16, | |
37d18660 | 169 | float_flag_inexact = 32, |
e6afc87f PM |
170 | float_flag_input_denormal = 64, |
171 | float_flag_output_denormal = 128 | |
158142c2 FB |
172 | }; |
173 | ||
174 | typedef struct float_status { | |
175 | signed char float_detect_tininess; | |
176 | signed char float_rounding_mode; | |
177 | signed char float_exception_flags; | |
158142c2 | 178 | signed char floatx80_rounding_precision; |
37d18660 | 179 | /* should denormalised results go to zero and set the inexact flag? */ |
fe76d976 | 180 | flag flush_to_zero; |
37d18660 PM |
181 | /* should denormalised inputs go to zero and set the input_denormal flag? */ |
182 | flag flush_inputs_to_zero; | |
5c7908ed | 183 | flag default_nan_mode; |
158142c2 FB |
184 | } float_status; |
185 | ||
186 | void set_float_rounding_mode(int val STATUS_PARAM); | |
1d6bda35 | 187 | void set_float_exception_flags(int val STATUS_PARAM); |
c29aca44 PM |
188 | INLINE void set_float_detect_tininess(int val STATUS_PARAM) |
189 | { | |
190 | STATUS(float_detect_tininess) = val; | |
191 | } | |
fe76d976 PB |
192 | INLINE void set_flush_to_zero(flag val STATUS_PARAM) |
193 | { | |
194 | STATUS(flush_to_zero) = val; | |
195 | } | |
37d18660 PM |
196 | INLINE void set_flush_inputs_to_zero(flag val STATUS_PARAM) |
197 | { | |
198 | STATUS(flush_inputs_to_zero) = val; | |
199 | } | |
5c7908ed PB |
200 | INLINE void set_default_nan_mode(flag val STATUS_PARAM) |
201 | { | |
202 | STATUS(default_nan_mode) = val; | |
203 | } | |
1d6bda35 FB |
204 | INLINE int get_float_exception_flags(float_status *status) |
205 | { | |
206 | return STATUS(float_exception_flags); | |
207 | } | |
158142c2 | 208 | void set_floatx80_rounding_precision(int val STATUS_PARAM); |
158142c2 FB |
209 | |
210 | /*---------------------------------------------------------------------------- | |
211 | | Routine to raise any or all of the software IEC/IEEE floating-point | |
212 | | exception flags. | |
213 | *----------------------------------------------------------------------------*/ | |
ec530c81 | 214 | void float_raise( int8 flags STATUS_PARAM); |
158142c2 | 215 | |
369be8f6 PM |
216 | /*---------------------------------------------------------------------------- |
217 | | Options to indicate which negations to perform in float*_muladd() | |
218 | | Using these differs from negating an input or output before calling | |
219 | | the muladd function in that this means that a NaN doesn't have its | |
220 | | sign bit inverted before it is propagated. | |
221 | *----------------------------------------------------------------------------*/ | |
222 | enum { | |
223 | float_muladd_negate_c = 1, | |
224 | float_muladd_negate_product = 2, | |
225 | float_muladd_negate_result = 3, | |
226 | }; | |
227 | ||
158142c2 FB |
228 | /*---------------------------------------------------------------------------- |
229 | | Software IEC/IEEE integer-to-floating-point conversion routines. | |
230 | *----------------------------------------------------------------------------*/ | |
87b8cc3c AF |
231 | float32 int32_to_float32( int32 STATUS_PARAM ); |
232 | float64 int32_to_float64( int32 STATUS_PARAM ); | |
9f8d2a09 AF |
233 | float32 uint32_to_float32( uint32 STATUS_PARAM ); |
234 | float64 uint32_to_float64( uint32 STATUS_PARAM ); | |
87b8cc3c | 235 | floatx80 int32_to_floatx80( int32 STATUS_PARAM ); |
87b8cc3c | 236 | float128 int32_to_float128( int32 STATUS_PARAM ); |
87b8cc3c AF |
237 | float32 int64_to_float32( int64 STATUS_PARAM ); |
238 | float32 uint64_to_float32( uint64 STATUS_PARAM ); | |
239 | float64 int64_to_float64( int64 STATUS_PARAM ); | |
240 | float64 uint64_to_float64( uint64 STATUS_PARAM ); | |
87b8cc3c | 241 | floatx80 int64_to_floatx80( int64 STATUS_PARAM ); |
87b8cc3c | 242 | float128 int64_to_float128( int64 STATUS_PARAM ); |
158142c2 | 243 | |
60011498 PB |
244 | /*---------------------------------------------------------------------------- |
245 | | Software half-precision conversion routines. | |
246 | *----------------------------------------------------------------------------*/ | |
bb4d4bb3 PM |
247 | float16 float32_to_float16( float32, flag STATUS_PARAM ); |
248 | float32 float16_to_float32( float16, flag STATUS_PARAM ); | |
249 | ||
250 | /*---------------------------------------------------------------------------- | |
251 | | Software half-precision operations. | |
252 | *----------------------------------------------------------------------------*/ | |
253 | int float16_is_quiet_nan( float16 ); | |
254 | int float16_is_signaling_nan( float16 ); | |
255 | float16 float16_maybe_silence_nan( float16 ); | |
60011498 | 256 | |
8559666d CL |
257 | /*---------------------------------------------------------------------------- |
258 | | The pattern for a default generated half-precision NaN. | |
259 | *----------------------------------------------------------------------------*/ | |
789ec7ce | 260 | extern const float16 float16_default_nan; |
8559666d | 261 | |
158142c2 FB |
262 | /*---------------------------------------------------------------------------- |
263 | | Software IEC/IEEE single-precision conversion routines. | |
264 | *----------------------------------------------------------------------------*/ | |
87b8cc3c | 265 | int16 float32_to_int16_round_to_zero( float32 STATUS_PARAM ); |
38641f8f | 266 | uint16 float32_to_uint16_round_to_zero( float32 STATUS_PARAM ); |
87b8cc3c AF |
267 | int32 float32_to_int32( float32 STATUS_PARAM ); |
268 | int32 float32_to_int32_round_to_zero( float32 STATUS_PARAM ); | |
269 | uint32 float32_to_uint32( float32 STATUS_PARAM ); | |
270 | uint32 float32_to_uint32_round_to_zero( float32 STATUS_PARAM ); | |
271 | int64 float32_to_int64( float32 STATUS_PARAM ); | |
272 | int64 float32_to_int64_round_to_zero( float32 STATUS_PARAM ); | |
158142c2 | 273 | float64 float32_to_float64( float32 STATUS_PARAM ); |
158142c2 | 274 | floatx80 float32_to_floatx80( float32 STATUS_PARAM ); |
158142c2 | 275 | float128 float32_to_float128( float32 STATUS_PARAM ); |
158142c2 FB |
276 | |
277 | /*---------------------------------------------------------------------------- | |
278 | | Software IEC/IEEE single-precision operations. | |
279 | *----------------------------------------------------------------------------*/ | |
280 | float32 float32_round_to_int( float32 STATUS_PARAM ); | |
281 | float32 float32_add( float32, float32 STATUS_PARAM ); | |
282 | float32 float32_sub( float32, float32 STATUS_PARAM ); | |
283 | float32 float32_mul( float32, float32 STATUS_PARAM ); | |
284 | float32 float32_div( float32, float32 STATUS_PARAM ); | |
285 | float32 float32_rem( float32, float32 STATUS_PARAM ); | |
369be8f6 | 286 | float32 float32_muladd(float32, float32, float32, int STATUS_PARAM); |
158142c2 | 287 | float32 float32_sqrt( float32 STATUS_PARAM ); |
8229c991 | 288 | float32 float32_exp2( float32 STATUS_PARAM ); |
374dfc33 | 289 | float32 float32_log2( float32 STATUS_PARAM ); |
b689362d | 290 | int float32_eq( float32, float32 STATUS_PARAM ); |
750afe93 FB |
291 | int float32_le( float32, float32 STATUS_PARAM ); |
292 | int float32_lt( float32, float32 STATUS_PARAM ); | |
67b7861d | 293 | int float32_unordered( float32, float32 STATUS_PARAM ); |
b689362d | 294 | int float32_eq_quiet( float32, float32 STATUS_PARAM ); |
750afe93 FB |
295 | int float32_le_quiet( float32, float32 STATUS_PARAM ); |
296 | int float32_lt_quiet( float32, float32 STATUS_PARAM ); | |
67b7861d | 297 | int float32_unordered_quiet( float32, float32 STATUS_PARAM ); |
750afe93 FB |
298 | int float32_compare( float32, float32 STATUS_PARAM ); |
299 | int float32_compare_quiet( float32, float32 STATUS_PARAM ); | |
274f1b04 PM |
300 | float32 float32_min(float32, float32 STATUS_PARAM); |
301 | float32 float32_max(float32, float32 STATUS_PARAM); | |
18569871 | 302 | int float32_is_quiet_nan( float32 ); |
750afe93 | 303 | int float32_is_signaling_nan( float32 ); |
b408dbde | 304 | float32 float32_maybe_silence_nan( float32 ); |
9ee6e8bb | 305 | float32 float32_scalbn( float32, int STATUS_PARAM ); |
158142c2 | 306 | |
1d6bda35 FB |
307 | INLINE float32 float32_abs(float32 a) |
308 | { | |
37d18660 PM |
309 | /* Note that abs does *not* handle NaN specially, nor does |
310 | * it flush denormal inputs to zero. | |
311 | */ | |
f090c9d4 | 312 | return make_float32(float32_val(a) & 0x7fffffff); |
1d6bda35 FB |
313 | } |
314 | ||
315 | INLINE float32 float32_chs(float32 a) | |
316 | { | |
37d18660 PM |
317 | /* Note that chs does *not* handle NaN specially, nor does |
318 | * it flush denormal inputs to zero. | |
319 | */ | |
f090c9d4 | 320 | return make_float32(float32_val(a) ^ 0x80000000); |
1d6bda35 FB |
321 | } |
322 | ||
c52ab6f5 AJ |
323 | INLINE int float32_is_infinity(float32 a) |
324 | { | |
dadd71a7 | 325 | return (float32_val(a) & 0x7fffffff) == 0x7f800000; |
c52ab6f5 AJ |
326 | } |
327 | ||
328 | INLINE int float32_is_neg(float32 a) | |
329 | { | |
330 | return float32_val(a) >> 31; | |
331 | } | |
332 | ||
333 | INLINE int float32_is_zero(float32 a) | |
334 | { | |
335 | return (float32_val(a) & 0x7fffffff) == 0; | |
336 | } | |
337 | ||
21d6ebde PM |
338 | INLINE int float32_is_any_nan(float32 a) |
339 | { | |
340 | return ((float32_val(a) & ~(1 << 31)) > 0x7f800000UL); | |
341 | } | |
342 | ||
6f3300ad PM |
343 | INLINE int float32_is_zero_or_denormal(float32 a) |
344 | { | |
345 | return (float32_val(a) & 0x7f800000) == 0; | |
346 | } | |
347 | ||
c30fe7df CL |
348 | INLINE float32 float32_set_sign(float32 a, int sign) |
349 | { | |
350 | return make_float32((float32_val(a) & 0x7fffffff) | (sign << 31)); | |
351 | } | |
352 | ||
f090c9d4 | 353 | #define float32_zero make_float32(0) |
196cfc89 | 354 | #define float32_one make_float32(0x3f800000) |
8229c991 | 355 | #define float32_ln2 make_float32(0x3f317218) |
c4b4c77a | 356 | #define float32_pi make_float32(0x40490fdb) |
c30fe7df CL |
357 | #define float32_half make_float32(0x3f000000) |
358 | #define float32_infinity make_float32(0x7f800000) | |
f090c9d4 | 359 | |
8559666d CL |
360 | |
361 | /*---------------------------------------------------------------------------- | |
362 | | The pattern for a default generated single-precision NaN. | |
363 | *----------------------------------------------------------------------------*/ | |
789ec7ce | 364 | extern const float32 float32_default_nan; |
8559666d | 365 | |
158142c2 FB |
366 | /*---------------------------------------------------------------------------- |
367 | | Software IEC/IEEE double-precision conversion routines. | |
368 | *----------------------------------------------------------------------------*/ | |
87b8cc3c | 369 | int16 float64_to_int16_round_to_zero( float64 STATUS_PARAM ); |
38641f8f | 370 | uint16 float64_to_uint16_round_to_zero( float64 STATUS_PARAM ); |
87b8cc3c AF |
371 | int32 float64_to_int32( float64 STATUS_PARAM ); |
372 | int32 float64_to_int32_round_to_zero( float64 STATUS_PARAM ); | |
373 | uint32 float64_to_uint32( float64 STATUS_PARAM ); | |
374 | uint32 float64_to_uint32_round_to_zero( float64 STATUS_PARAM ); | |
375 | int64 float64_to_int64( float64 STATUS_PARAM ); | |
376 | int64 float64_to_int64_round_to_zero( float64 STATUS_PARAM ); | |
377 | uint64 float64_to_uint64 (float64 a STATUS_PARAM); | |
378 | uint64 float64_to_uint64_round_to_zero (float64 a STATUS_PARAM); | |
158142c2 | 379 | float32 float64_to_float32( float64 STATUS_PARAM ); |
158142c2 | 380 | floatx80 float64_to_floatx80( float64 STATUS_PARAM ); |
158142c2 | 381 | float128 float64_to_float128( float64 STATUS_PARAM ); |
158142c2 FB |
382 | |
383 | /*---------------------------------------------------------------------------- | |
384 | | Software IEC/IEEE double-precision operations. | |
385 | *----------------------------------------------------------------------------*/ | |
386 | float64 float64_round_to_int( float64 STATUS_PARAM ); | |
e6e5906b | 387 | float64 float64_trunc_to_int( float64 STATUS_PARAM ); |
158142c2 FB |
388 | float64 float64_add( float64, float64 STATUS_PARAM ); |
389 | float64 float64_sub( float64, float64 STATUS_PARAM ); | |
390 | float64 float64_mul( float64, float64 STATUS_PARAM ); | |
391 | float64 float64_div( float64, float64 STATUS_PARAM ); | |
392 | float64 float64_rem( float64, float64 STATUS_PARAM ); | |
369be8f6 | 393 | float64 float64_muladd(float64, float64, float64, int STATUS_PARAM); |
158142c2 | 394 | float64 float64_sqrt( float64 STATUS_PARAM ); |
374dfc33 | 395 | float64 float64_log2( float64 STATUS_PARAM ); |
b689362d | 396 | int float64_eq( float64, float64 STATUS_PARAM ); |
750afe93 FB |
397 | int float64_le( float64, float64 STATUS_PARAM ); |
398 | int float64_lt( float64, float64 STATUS_PARAM ); | |
67b7861d | 399 | int float64_unordered( float64, float64 STATUS_PARAM ); |
b689362d | 400 | int float64_eq_quiet( float64, float64 STATUS_PARAM ); |
750afe93 FB |
401 | int float64_le_quiet( float64, float64 STATUS_PARAM ); |
402 | int float64_lt_quiet( float64, float64 STATUS_PARAM ); | |
67b7861d | 403 | int float64_unordered_quiet( float64, float64 STATUS_PARAM ); |
750afe93 FB |
404 | int float64_compare( float64, float64 STATUS_PARAM ); |
405 | int float64_compare_quiet( float64, float64 STATUS_PARAM ); | |
274f1b04 PM |
406 | float64 float64_min(float64, float64 STATUS_PARAM); |
407 | float64 float64_max(float64, float64 STATUS_PARAM); | |
18569871 | 408 | int float64_is_quiet_nan( float64 a ); |
750afe93 | 409 | int float64_is_signaling_nan( float64 ); |
b408dbde | 410 | float64 float64_maybe_silence_nan( float64 ); |
9ee6e8bb | 411 | float64 float64_scalbn( float64, int STATUS_PARAM ); |
158142c2 | 412 | |
1d6bda35 FB |
413 | INLINE float64 float64_abs(float64 a) |
414 | { | |
37d18660 PM |
415 | /* Note that abs does *not* handle NaN specially, nor does |
416 | * it flush denormal inputs to zero. | |
417 | */ | |
f090c9d4 | 418 | return make_float64(float64_val(a) & 0x7fffffffffffffffLL); |
1d6bda35 FB |
419 | } |
420 | ||
421 | INLINE float64 float64_chs(float64 a) | |
422 | { | |
37d18660 PM |
423 | /* Note that chs does *not* handle NaN specially, nor does |
424 | * it flush denormal inputs to zero. | |
425 | */ | |
f090c9d4 | 426 | return make_float64(float64_val(a) ^ 0x8000000000000000LL); |
1d6bda35 FB |
427 | } |
428 | ||
c52ab6f5 AJ |
429 | INLINE int float64_is_infinity(float64 a) |
430 | { | |
431 | return (float64_val(a) & 0x7fffffffffffffffLL ) == 0x7ff0000000000000LL; | |
432 | } | |
433 | ||
434 | INLINE int float64_is_neg(float64 a) | |
435 | { | |
436 | return float64_val(a) >> 63; | |
437 | } | |
438 | ||
439 | INLINE int float64_is_zero(float64 a) | |
440 | { | |
441 | return (float64_val(a) & 0x7fffffffffffffffLL) == 0; | |
442 | } | |
443 | ||
21d6ebde PM |
444 | INLINE int float64_is_any_nan(float64 a) |
445 | { | |
446 | return ((float64_val(a) & ~(1ULL << 63)) > 0x7ff0000000000000ULL); | |
447 | } | |
448 | ||
587eabfa AJ |
449 | INLINE int float64_is_zero_or_denormal(float64 a) |
450 | { | |
451 | return (float64_val(a) & 0x7ff0000000000000LL) == 0; | |
452 | } | |
453 | ||
c30fe7df CL |
454 | INLINE float64 float64_set_sign(float64 a, int sign) |
455 | { | |
456 | return make_float64((float64_val(a) & 0x7fffffffffffffffULL) | |
457 | | ((int64_t)sign << 63)); | |
458 | } | |
459 | ||
f090c9d4 | 460 | #define float64_zero make_float64(0) |
196cfc89 | 461 | #define float64_one make_float64(0x3ff0000000000000LL) |
8229c991 | 462 | #define float64_ln2 make_float64(0x3fe62e42fefa39efLL) |
c4b4c77a | 463 | #define float64_pi make_float64(0x400921fb54442d18LL) |
c30fe7df CL |
464 | #define float64_half make_float64(0x3fe0000000000000LL) |
465 | #define float64_infinity make_float64(0x7ff0000000000000LL) | |
f090c9d4 | 466 | |
8559666d CL |
467 | /*---------------------------------------------------------------------------- |
468 | | The pattern for a default generated double-precision NaN. | |
469 | *----------------------------------------------------------------------------*/ | |
789ec7ce | 470 | extern const float64 float64_default_nan; |
8559666d | 471 | |
158142c2 FB |
472 | /*---------------------------------------------------------------------------- |
473 | | Software IEC/IEEE extended double-precision conversion routines. | |
474 | *----------------------------------------------------------------------------*/ | |
87b8cc3c AF |
475 | int32 floatx80_to_int32( floatx80 STATUS_PARAM ); |
476 | int32 floatx80_to_int32_round_to_zero( floatx80 STATUS_PARAM ); | |
477 | int64 floatx80_to_int64( floatx80 STATUS_PARAM ); | |
478 | int64 floatx80_to_int64_round_to_zero( floatx80 STATUS_PARAM ); | |
158142c2 FB |
479 | float32 floatx80_to_float32( floatx80 STATUS_PARAM ); |
480 | float64 floatx80_to_float64( floatx80 STATUS_PARAM ); | |
158142c2 | 481 | float128 floatx80_to_float128( floatx80 STATUS_PARAM ); |
158142c2 FB |
482 | |
483 | /*---------------------------------------------------------------------------- | |
484 | | Software IEC/IEEE extended double-precision operations. | |
485 | *----------------------------------------------------------------------------*/ | |
486 | floatx80 floatx80_round_to_int( floatx80 STATUS_PARAM ); | |
487 | floatx80 floatx80_add( floatx80, floatx80 STATUS_PARAM ); | |
488 | floatx80 floatx80_sub( floatx80, floatx80 STATUS_PARAM ); | |
489 | floatx80 floatx80_mul( floatx80, floatx80 STATUS_PARAM ); | |
490 | floatx80 floatx80_div( floatx80, floatx80 STATUS_PARAM ); | |
491 | floatx80 floatx80_rem( floatx80, floatx80 STATUS_PARAM ); | |
492 | floatx80 floatx80_sqrt( floatx80 STATUS_PARAM ); | |
b689362d | 493 | int floatx80_eq( floatx80, floatx80 STATUS_PARAM ); |
750afe93 FB |
494 | int floatx80_le( floatx80, floatx80 STATUS_PARAM ); |
495 | int floatx80_lt( floatx80, floatx80 STATUS_PARAM ); | |
67b7861d | 496 | int floatx80_unordered( floatx80, floatx80 STATUS_PARAM ); |
b689362d | 497 | int floatx80_eq_quiet( floatx80, floatx80 STATUS_PARAM ); |
750afe93 FB |
498 | int floatx80_le_quiet( floatx80, floatx80 STATUS_PARAM ); |
499 | int floatx80_lt_quiet( floatx80, floatx80 STATUS_PARAM ); | |
67b7861d | 500 | int floatx80_unordered_quiet( floatx80, floatx80 STATUS_PARAM ); |
f6714d36 AJ |
501 | int floatx80_compare( floatx80, floatx80 STATUS_PARAM ); |
502 | int floatx80_compare_quiet( floatx80, floatx80 STATUS_PARAM ); | |
18569871 | 503 | int floatx80_is_quiet_nan( floatx80 ); |
750afe93 | 504 | int floatx80_is_signaling_nan( floatx80 ); |
f6a7d92a | 505 | floatx80 floatx80_maybe_silence_nan( floatx80 ); |
9ee6e8bb | 506 | floatx80 floatx80_scalbn( floatx80, int STATUS_PARAM ); |
158142c2 | 507 | |
1d6bda35 FB |
508 | INLINE floatx80 floatx80_abs(floatx80 a) |
509 | { | |
510 | a.high &= 0x7fff; | |
511 | return a; | |
512 | } | |
513 | ||
514 | INLINE floatx80 floatx80_chs(floatx80 a) | |
515 | { | |
516 | a.high ^= 0x8000; | |
517 | return a; | |
518 | } | |
519 | ||
c52ab6f5 AJ |
520 | INLINE int floatx80_is_infinity(floatx80 a) |
521 | { | |
b76235e4 | 522 | return (a.high & 0x7fff) == 0x7fff && a.low == 0x8000000000000000LL; |
c52ab6f5 AJ |
523 | } |
524 | ||
525 | INLINE int floatx80_is_neg(floatx80 a) | |
526 | { | |
527 | return a.high >> 15; | |
528 | } | |
529 | ||
530 | INLINE int floatx80_is_zero(floatx80 a) | |
531 | { | |
532 | return (a.high & 0x7fff) == 0 && a.low == 0; | |
533 | } | |
534 | ||
587eabfa AJ |
535 | INLINE int floatx80_is_zero_or_denormal(floatx80 a) |
536 | { | |
537 | return (a.high & 0x7fff) == 0; | |
538 | } | |
539 | ||
2bed652f PM |
540 | INLINE int floatx80_is_any_nan(floatx80 a) |
541 | { | |
542 | return ((a.high & 0x7fff) == 0x7fff) && (a.low<<1); | |
543 | } | |
544 | ||
f3218a8d AJ |
545 | #define floatx80_zero make_floatx80(0x0000, 0x0000000000000000LL) |
546 | #define floatx80_one make_floatx80(0x3fff, 0x8000000000000000LL) | |
547 | #define floatx80_ln2 make_floatx80(0x3ffe, 0xb17217f7d1cf79acLL) | |
c4b4c77a | 548 | #define floatx80_pi make_floatx80(0x4000, 0xc90fdaa22168c235LL) |
f3218a8d AJ |
549 | #define floatx80_half make_floatx80(0x3ffe, 0x8000000000000000LL) |
550 | #define floatx80_infinity make_floatx80(0x7fff, 0x8000000000000000LL) | |
551 | ||
8559666d | 552 | /*---------------------------------------------------------------------------- |
789ec7ce | 553 | | The pattern for a default generated extended double-precision NaN. |
8559666d | 554 | *----------------------------------------------------------------------------*/ |
789ec7ce | 555 | extern const floatx80 floatx80_default_nan; |
8559666d | 556 | |
158142c2 FB |
557 | /*---------------------------------------------------------------------------- |
558 | | Software IEC/IEEE quadruple-precision conversion routines. | |
559 | *----------------------------------------------------------------------------*/ | |
87b8cc3c AF |
560 | int32 float128_to_int32( float128 STATUS_PARAM ); |
561 | int32 float128_to_int32_round_to_zero( float128 STATUS_PARAM ); | |
562 | int64 float128_to_int64( float128 STATUS_PARAM ); | |
563 | int64 float128_to_int64_round_to_zero( float128 STATUS_PARAM ); | |
158142c2 FB |
564 | float32 float128_to_float32( float128 STATUS_PARAM ); |
565 | float64 float128_to_float64( float128 STATUS_PARAM ); | |
158142c2 | 566 | floatx80 float128_to_floatx80( float128 STATUS_PARAM ); |
158142c2 FB |
567 | |
568 | /*---------------------------------------------------------------------------- | |
569 | | Software IEC/IEEE quadruple-precision operations. | |
570 | *----------------------------------------------------------------------------*/ | |
571 | float128 float128_round_to_int( float128 STATUS_PARAM ); | |
572 | float128 float128_add( float128, float128 STATUS_PARAM ); | |
573 | float128 float128_sub( float128, float128 STATUS_PARAM ); | |
574 | float128 float128_mul( float128, float128 STATUS_PARAM ); | |
575 | float128 float128_div( float128, float128 STATUS_PARAM ); | |
576 | float128 float128_rem( float128, float128 STATUS_PARAM ); | |
577 | float128 float128_sqrt( float128 STATUS_PARAM ); | |
b689362d | 578 | int float128_eq( float128, float128 STATUS_PARAM ); |
750afe93 FB |
579 | int float128_le( float128, float128 STATUS_PARAM ); |
580 | int float128_lt( float128, float128 STATUS_PARAM ); | |
67b7861d | 581 | int float128_unordered( float128, float128 STATUS_PARAM ); |
b689362d | 582 | int float128_eq_quiet( float128, float128 STATUS_PARAM ); |
750afe93 FB |
583 | int float128_le_quiet( float128, float128 STATUS_PARAM ); |
584 | int float128_lt_quiet( float128, float128 STATUS_PARAM ); | |
67b7861d | 585 | int float128_unordered_quiet( float128, float128 STATUS_PARAM ); |
1f587329 BS |
586 | int float128_compare( float128, float128 STATUS_PARAM ); |
587 | int float128_compare_quiet( float128, float128 STATUS_PARAM ); | |
18569871 | 588 | int float128_is_quiet_nan( float128 ); |
750afe93 | 589 | int float128_is_signaling_nan( float128 ); |
f6a7d92a | 590 | float128 float128_maybe_silence_nan( float128 ); |
9ee6e8bb | 591 | float128 float128_scalbn( float128, int STATUS_PARAM ); |
158142c2 | 592 | |
1d6bda35 FB |
593 | INLINE float128 float128_abs(float128 a) |
594 | { | |
595 | a.high &= 0x7fffffffffffffffLL; | |
596 | return a; | |
597 | } | |
598 | ||
599 | INLINE float128 float128_chs(float128 a) | |
600 | { | |
601 | a.high ^= 0x8000000000000000LL; | |
602 | return a; | |
603 | } | |
604 | ||
c52ab6f5 AJ |
605 | INLINE int float128_is_infinity(float128 a) |
606 | { | |
607 | return (a.high & 0x7fffffffffffffffLL) == 0x7fff000000000000LL && a.low == 0; | |
608 | } | |
609 | ||
610 | INLINE int float128_is_neg(float128 a) | |
611 | { | |
612 | return a.high >> 63; | |
613 | } | |
614 | ||
615 | INLINE int float128_is_zero(float128 a) | |
616 | { | |
617 | return (a.high & 0x7fffffffffffffffLL) == 0 && a.low == 0; | |
618 | } | |
619 | ||
587eabfa AJ |
620 | INLINE int float128_is_zero_or_denormal(float128 a) |
621 | { | |
622 | return (a.high & 0x7fff000000000000LL) == 0; | |
623 | } | |
624 | ||
2bed652f PM |
625 | INLINE int float128_is_any_nan(float128 a) |
626 | { | |
627 | return ((a.high >> 48) & 0x7fff) == 0x7fff && | |
628 | ((a.low != 0) || ((a.high & 0xffffffffffffLL) != 0)); | |
629 | } | |
630 | ||
8559666d | 631 | /*---------------------------------------------------------------------------- |
789ec7ce | 632 | | The pattern for a default generated quadruple-precision NaN. |
8559666d | 633 | *----------------------------------------------------------------------------*/ |
789ec7ce | 634 | extern const float128 float128_default_nan; |
8559666d | 635 | |
158142c2 | 636 | #endif /* !SOFTFLOAT_H */ |