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8d725fac
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1/*
2 * QEMU float support
3 *
4 * Derived from SoftFloat.
5 */
6
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7/*============================================================================
8
9This C header file is part of the SoftFloat IEC/IEEE Floating-point Arithmetic
10Package, Release 2b.
11
12Written by John R. Hauser. This work was made possible in part by the
13International Computer Science Institute, located at Suite 600, 1947 Center
14Street, Berkeley, California 94704. Funding was partially provided by the
15National Science Foundation under grant MIP-9311980. The original version
16of this code was written as part of a project to build a fixed-point vector
17processor in collaboration with the University of California at Berkeley,
18overseen by Profs. Nelson Morgan and John Wawrzynek. More information
19is available through the Web page `http://www.cs.berkeley.edu/~jhauser/
20arithmetic/SoftFloat.html'.
21
22THIS SOFTWARE IS DISTRIBUTED AS IS, FOR FREE. Although reasonable effort has
23been made to avoid it, THIS SOFTWARE MAY CONTAIN FAULTS THAT WILL AT TIMES
24RESULT IN INCORRECT BEHAVIOR. USE OF THIS SOFTWARE IS RESTRICTED TO PERSONS
25AND ORGANIZATIONS WHO CAN AND WILL TAKE FULL RESPONSIBILITY FOR ALL LOSSES,
26COSTS, OR OTHER PROBLEMS THEY INCUR DUE TO THE SOFTWARE, AND WHO FURTHERMORE
27EFFECTIVELY INDEMNIFY JOHN HAUSER AND THE INTERNATIONAL COMPUTER SCIENCE
28INSTITUTE (possibly via similar legal warning) AGAINST ALL LOSSES, COSTS, OR
29OTHER PROBLEMS INCURRED BY THEIR CUSTOMERS AND CLIENTS DUE TO THE SOFTWARE.
30
31Derivative works are acceptable, even for commercial purposes, so long as
32(1) the source code for the derivative work includes prominent notice that
33the work is derivative, and (2) the source code includes prominent notice with
34these 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
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42#include <sunmath.h>
43#endif
44
158142c2 45#include <inttypes.h>
789ec7ce 46#include "config-host.h"
5aea4c58 47#include "osdep.h"
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48
49/*----------------------------------------------------------------------------
50| Each of the following `typedef's defines the most convenient type that holds
51| integers of at least as many bits as specified. For example, `uint8' should
52| be the most convenient type that can hold unsigned integers of as many as
53| 8 bits. The `flag' type must be able to hold either a 0 or 1. For most
54| implementations of C, `flag', `uint8', and `int8' should all be `typedef'ed
55| to the same as `int'.
56*----------------------------------------------------------------------------*/
750afe93 57typedef uint8_t flag;
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58typedef uint8_t uint8;
59typedef int8_t int8;
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60typedef unsigned int uint32;
61typedef signed int int32;
62typedef uint64_t uint64;
63typedef int64_t int64;
64
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65#define LIT64( a ) a##LL
66#define INLINE static inline
67
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68#define STATUS_PARAM , float_status *status
69#define STATUS(field) status->field
70#define STATUS_VAR , status
71
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72/*----------------------------------------------------------------------------
73| Software IEC/IEEE floating-point ordering relations
74*----------------------------------------------------------------------------*/
75enum {
76 float_relation_less = -1,
77 float_relation_equal = 0,
78 float_relation_greater = 1,
79 float_relation_unordered = 2
80};
81
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82/*----------------------------------------------------------------------------
83| Software IEC/IEEE floating-point types.
84*----------------------------------------------------------------------------*/
f090c9d4
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85/* Use structures for soft-float types. This prevents accidentally mixing
86 them with native int/float types. A sufficiently clever compiler and
87 sane ABI should be able to see though these structs. However
88 x86/gcc 3.x seems to struggle a bit, so leave them disabled by default. */
89//#define USE_SOFTFLOAT_STRUCT_TYPES
90#ifdef USE_SOFTFLOAT_STRUCT_TYPES
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91typedef struct {
92 uint16_t v;
93} float16;
94#define float16_val(x) (((float16)(x)).v)
95#define make_float16(x) __extension__ ({ float16 f16_val = {x}; f16_val; })
d5138cf4 96#define const_float16(x) { x }
f090c9d4
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97typedef struct {
98 uint32_t v;
99} float32;
100/* The cast ensures an error if the wrong type is passed. */
101#define float32_val(x) (((float32)(x)).v)
102#define make_float32(x) __extension__ ({ float32 f32_val = {x}; f32_val; })
d5138cf4 103#define const_float32(x) { x }
f090c9d4
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104typedef struct {
105 uint64_t v;
106} float64;
107#define float64_val(x) (((float64)(x)).v)
108#define make_float64(x) __extension__ ({ float64 f64_val = {x}; f64_val; })
d5138cf4 109#define const_float64(x) { x }
f090c9d4 110#else
bb4d4bb3 111typedef uint16_t float16;
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112typedef uint32_t float32;
113typedef uint64_t float64;
bb4d4bb3 114#define float16_val(x) (x)
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115#define float32_val(x) (x)
116#define float64_val(x) (x)
bb4d4bb3 117#define make_float16(x) (x)
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118#define make_float32(x) (x)
119#define make_float64(x) (x)
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120#define const_float16(x) (x)
121#define const_float32(x) (x)
122#define const_float64(x) (x)
f090c9d4 123#endif
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124typedef struct {
125 uint64_t low;
126 uint16_t high;
127} floatx80;
f3218a8d 128#define make_floatx80(exp, mant) ((floatx80) { mant, exp })
3bf7e40a 129#define make_floatx80_init(exp, mant) { .low = mant, .high = exp }
158142c2 130typedef struct {
e2542fe2 131#ifdef HOST_WORDS_BIGENDIAN
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132 uint64_t high, low;
133#else
134 uint64_t low, high;
135#endif
136} float128;
789ec7ce 137#define make_float128(high_, low_) ((float128) { .high = high_, .low = low_ })
3bf7e40a 138#define make_float128_init(high_, low_) { .high = high_, .low = low_ }
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139
140/*----------------------------------------------------------------------------
141| Software IEC/IEEE floating-point underflow tininess-detection mode.
142*----------------------------------------------------------------------------*/
143enum {
144 float_tininess_after_rounding = 0,
145 float_tininess_before_rounding = 1
146};
147
148/*----------------------------------------------------------------------------
149| Software IEC/IEEE floating-point rounding mode.
150*----------------------------------------------------------------------------*/
151enum {
152 float_round_nearest_even = 0,
153 float_round_down = 1,
154 float_round_up = 2,
155 float_round_to_zero = 3
156};
157
158/*----------------------------------------------------------------------------
159| Software IEC/IEEE floating-point exception flags.
160*----------------------------------------------------------------------------*/
161enum {
162 float_flag_invalid = 1,
163 float_flag_divbyzero = 4,
164 float_flag_overflow = 8,
165 float_flag_underflow = 16,
37d18660 166 float_flag_inexact = 32,
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167 float_flag_input_denormal = 64,
168 float_flag_output_denormal = 128
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169};
170
171typedef struct float_status {
172 signed char float_detect_tininess;
173 signed char float_rounding_mode;
174 signed char float_exception_flags;
158142c2 175 signed char floatx80_rounding_precision;
37d18660 176 /* should denormalised results go to zero and set the inexact flag? */
fe76d976 177 flag flush_to_zero;
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178 /* should denormalised inputs go to zero and set the input_denormal flag? */
179 flag flush_inputs_to_zero;
5c7908ed 180 flag default_nan_mode;
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181} float_status;
182
183void set_float_rounding_mode(int val STATUS_PARAM);
1d6bda35 184void set_float_exception_flags(int val STATUS_PARAM);
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185INLINE void set_float_detect_tininess(int val STATUS_PARAM)
186{
187 STATUS(float_detect_tininess) = val;
188}
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189INLINE void set_flush_to_zero(flag val STATUS_PARAM)
190{
191 STATUS(flush_to_zero) = val;
192}
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193INLINE void set_flush_inputs_to_zero(flag val STATUS_PARAM)
194{
195 STATUS(flush_inputs_to_zero) = val;
196}
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197INLINE void set_default_nan_mode(flag val STATUS_PARAM)
198{
199 STATUS(default_nan_mode) = val;
200}
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201INLINE int get_float_exception_flags(float_status *status)
202{
203 return STATUS(float_exception_flags);
204}
158142c2 205void set_floatx80_rounding_precision(int val STATUS_PARAM);
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206
207/*----------------------------------------------------------------------------
208| Routine to raise any or all of the software IEC/IEEE floating-point
209| exception flags.
210*----------------------------------------------------------------------------*/
ec530c81 211void float_raise( int8 flags STATUS_PARAM);
158142c2 212
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213/*----------------------------------------------------------------------------
214| Options to indicate which negations to perform in float*_muladd()
215| Using these differs from negating an input or output before calling
216| the muladd function in that this means that a NaN doesn't have its
217| sign bit inverted before it is propagated.
218*----------------------------------------------------------------------------*/
219enum {
220 float_muladd_negate_c = 1,
221 float_muladd_negate_product = 2,
66176802 222 float_muladd_negate_result = 4,
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223};
224
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225/*----------------------------------------------------------------------------
226| Software IEC/IEEE integer-to-floating-point conversion routines.
227*----------------------------------------------------------------------------*/
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228float32 int32_to_float32( int32 STATUS_PARAM );
229float64 int32_to_float64( int32 STATUS_PARAM );
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230float32 uint32_to_float32( uint32 STATUS_PARAM );
231float64 uint32_to_float64( uint32 STATUS_PARAM );
87b8cc3c 232floatx80 int32_to_floatx80( int32 STATUS_PARAM );
87b8cc3c 233float128 int32_to_float128( int32 STATUS_PARAM );
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234float32 int64_to_float32( int64 STATUS_PARAM );
235float32 uint64_to_float32( uint64 STATUS_PARAM );
236float64 int64_to_float64( int64 STATUS_PARAM );
237float64 uint64_to_float64( uint64 STATUS_PARAM );
87b8cc3c 238floatx80 int64_to_floatx80( int64 STATUS_PARAM );
87b8cc3c 239float128 int64_to_float128( int64 STATUS_PARAM );
158142c2 240
60011498
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241/*----------------------------------------------------------------------------
242| Software half-precision conversion routines.
243*----------------------------------------------------------------------------*/
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244float16 float32_to_float16( float32, flag STATUS_PARAM );
245float32 float16_to_float32( float16, flag STATUS_PARAM );
246
247/*----------------------------------------------------------------------------
248| Software half-precision operations.
249*----------------------------------------------------------------------------*/
250int float16_is_quiet_nan( float16 );
251int float16_is_signaling_nan( float16 );
252float16 float16_maybe_silence_nan( float16 );
60011498 253
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254INLINE int float16_is_any_nan(float16 a)
255{
256 return ((float16_val(a) & ~0x8000) > 0x7c00);
257}
258
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259/*----------------------------------------------------------------------------
260| The pattern for a default generated half-precision NaN.
261*----------------------------------------------------------------------------*/
789ec7ce 262extern const float16 float16_default_nan;
8559666d 263
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264/*----------------------------------------------------------------------------
265| Software IEC/IEEE single-precision conversion routines.
266*----------------------------------------------------------------------------*/
94a49d86 267int_fast16_t float32_to_int16_round_to_zero(float32 STATUS_PARAM);
5aea4c58 268uint_fast16_t float32_to_uint16_round_to_zero(float32 STATUS_PARAM);
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269int32 float32_to_int32( float32 STATUS_PARAM );
270int32 float32_to_int32_round_to_zero( float32 STATUS_PARAM );
271uint32 float32_to_uint32( float32 STATUS_PARAM );
272uint32 float32_to_uint32_round_to_zero( float32 STATUS_PARAM );
273int64 float32_to_int64( float32 STATUS_PARAM );
274int64 float32_to_int64_round_to_zero( float32 STATUS_PARAM );
158142c2 275float64 float32_to_float64( float32 STATUS_PARAM );
158142c2 276floatx80 float32_to_floatx80( float32 STATUS_PARAM );
158142c2 277float128 float32_to_float128( float32 STATUS_PARAM );
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278
279/*----------------------------------------------------------------------------
280| Software IEC/IEEE single-precision operations.
281*----------------------------------------------------------------------------*/
282float32 float32_round_to_int( float32 STATUS_PARAM );
283float32 float32_add( float32, float32 STATUS_PARAM );
284float32 float32_sub( float32, float32 STATUS_PARAM );
285float32 float32_mul( float32, float32 STATUS_PARAM );
286float32 float32_div( float32, float32 STATUS_PARAM );
287float32 float32_rem( float32, float32 STATUS_PARAM );
369be8f6 288float32 float32_muladd(float32, float32, float32, int STATUS_PARAM);
158142c2 289float32 float32_sqrt( float32 STATUS_PARAM );
8229c991 290float32 float32_exp2( float32 STATUS_PARAM );
374dfc33 291float32 float32_log2( float32 STATUS_PARAM );
b689362d 292int float32_eq( float32, float32 STATUS_PARAM );
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293int float32_le( float32, float32 STATUS_PARAM );
294int float32_lt( float32, float32 STATUS_PARAM );
67b7861d 295int float32_unordered( float32, float32 STATUS_PARAM );
b689362d 296int float32_eq_quiet( float32, float32 STATUS_PARAM );
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297int float32_le_quiet( float32, float32 STATUS_PARAM );
298int float32_lt_quiet( float32, float32 STATUS_PARAM );
67b7861d 299int float32_unordered_quiet( float32, float32 STATUS_PARAM );
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300int float32_compare( float32, float32 STATUS_PARAM );
301int float32_compare_quiet( float32, float32 STATUS_PARAM );
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302float32 float32_min(float32, float32 STATUS_PARAM);
303float32 float32_max(float32, float32 STATUS_PARAM);
18569871 304int float32_is_quiet_nan( float32 );
750afe93 305int float32_is_signaling_nan( float32 );
b408dbde 306float32 float32_maybe_silence_nan( float32 );
9ee6e8bb 307float32 float32_scalbn( float32, int STATUS_PARAM );
158142c2 308
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309INLINE float32 float32_abs(float32 a)
310{
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311 /* Note that abs does *not* handle NaN specially, nor does
312 * it flush denormal inputs to zero.
313 */
f090c9d4 314 return make_float32(float32_val(a) & 0x7fffffff);
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315}
316
317INLINE float32 float32_chs(float32 a)
318{
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319 /* Note that chs does *not* handle NaN specially, nor does
320 * it flush denormal inputs to zero.
321 */
f090c9d4 322 return make_float32(float32_val(a) ^ 0x80000000);
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323}
324
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325INLINE int float32_is_infinity(float32 a)
326{
dadd71a7 327 return (float32_val(a) & 0x7fffffff) == 0x7f800000;
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328}
329
330INLINE int float32_is_neg(float32 a)
331{
332 return float32_val(a) >> 31;
333}
334
335INLINE int float32_is_zero(float32 a)
336{
337 return (float32_val(a) & 0x7fffffff) == 0;
338}
339
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340INLINE int float32_is_any_nan(float32 a)
341{
342 return ((float32_val(a) & ~(1 << 31)) > 0x7f800000UL);
343}
344
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345INLINE int float32_is_zero_or_denormal(float32 a)
346{
347 return (float32_val(a) & 0x7f800000) == 0;
348}
349
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350INLINE float32 float32_set_sign(float32 a, int sign)
351{
352 return make_float32((float32_val(a) & 0x7fffffff) | (sign << 31));
353}
354
f090c9d4 355#define float32_zero make_float32(0)
196cfc89 356#define float32_one make_float32(0x3f800000)
8229c991 357#define float32_ln2 make_float32(0x3f317218)
c4b4c77a 358#define float32_pi make_float32(0x40490fdb)
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359#define float32_half make_float32(0x3f000000)
360#define float32_infinity make_float32(0x7f800000)
f090c9d4 361
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362
363/*----------------------------------------------------------------------------
364| The pattern for a default generated single-precision NaN.
365*----------------------------------------------------------------------------*/
789ec7ce 366extern const float32 float32_default_nan;
8559666d 367
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368/*----------------------------------------------------------------------------
369| Software IEC/IEEE double-precision conversion routines.
370*----------------------------------------------------------------------------*/
94a49d86 371int_fast16_t float64_to_int16_round_to_zero(float64 STATUS_PARAM);
5aea4c58 372uint_fast16_t float64_to_uint16_round_to_zero(float64 STATUS_PARAM);
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373int32 float64_to_int32( float64 STATUS_PARAM );
374int32 float64_to_int32_round_to_zero( float64 STATUS_PARAM );
375uint32 float64_to_uint32( float64 STATUS_PARAM );
376uint32 float64_to_uint32_round_to_zero( float64 STATUS_PARAM );
377int64 float64_to_int64( float64 STATUS_PARAM );
378int64 float64_to_int64_round_to_zero( float64 STATUS_PARAM );
379uint64 float64_to_uint64 (float64 a STATUS_PARAM);
380uint64 float64_to_uint64_round_to_zero (float64 a STATUS_PARAM);
158142c2 381float32 float64_to_float32( float64 STATUS_PARAM );
158142c2 382floatx80 float64_to_floatx80( float64 STATUS_PARAM );
158142c2 383float128 float64_to_float128( float64 STATUS_PARAM );
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384
385/*----------------------------------------------------------------------------
386| Software IEC/IEEE double-precision operations.
387*----------------------------------------------------------------------------*/
388float64 float64_round_to_int( float64 STATUS_PARAM );
e6e5906b 389float64 float64_trunc_to_int( float64 STATUS_PARAM );
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390float64 float64_add( float64, float64 STATUS_PARAM );
391float64 float64_sub( float64, float64 STATUS_PARAM );
392float64 float64_mul( float64, float64 STATUS_PARAM );
393float64 float64_div( float64, float64 STATUS_PARAM );
394float64 float64_rem( float64, float64 STATUS_PARAM );
369be8f6 395float64 float64_muladd(float64, float64, float64, int STATUS_PARAM);
158142c2 396float64 float64_sqrt( float64 STATUS_PARAM );
374dfc33 397float64 float64_log2( float64 STATUS_PARAM );
b689362d 398int float64_eq( float64, float64 STATUS_PARAM );
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399int float64_le( float64, float64 STATUS_PARAM );
400int float64_lt( float64, float64 STATUS_PARAM );
67b7861d 401int float64_unordered( float64, float64 STATUS_PARAM );
b689362d 402int float64_eq_quiet( float64, float64 STATUS_PARAM );
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403int float64_le_quiet( float64, float64 STATUS_PARAM );
404int float64_lt_quiet( float64, float64 STATUS_PARAM );
67b7861d 405int float64_unordered_quiet( float64, float64 STATUS_PARAM );
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406int float64_compare( float64, float64 STATUS_PARAM );
407int float64_compare_quiet( float64, float64 STATUS_PARAM );
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408float64 float64_min(float64, float64 STATUS_PARAM);
409float64 float64_max(float64, float64 STATUS_PARAM);
18569871 410int float64_is_quiet_nan( float64 a );
750afe93 411int float64_is_signaling_nan( float64 );
b408dbde 412float64 float64_maybe_silence_nan( float64 );
9ee6e8bb 413float64 float64_scalbn( float64, int STATUS_PARAM );
158142c2 414
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415INLINE float64 float64_abs(float64 a)
416{
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417 /* Note that abs does *not* handle NaN specially, nor does
418 * it flush denormal inputs to zero.
419 */
f090c9d4 420 return make_float64(float64_val(a) & 0x7fffffffffffffffLL);
1d6bda35
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421}
422
423INLINE float64 float64_chs(float64 a)
424{
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425 /* Note that chs does *not* handle NaN specially, nor does
426 * it flush denormal inputs to zero.
427 */
f090c9d4 428 return make_float64(float64_val(a) ^ 0x8000000000000000LL);
1d6bda35
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429}
430
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431INLINE int float64_is_infinity(float64 a)
432{
433 return (float64_val(a) & 0x7fffffffffffffffLL ) == 0x7ff0000000000000LL;
434}
435
436INLINE int float64_is_neg(float64 a)
437{
438 return float64_val(a) >> 63;
439}
440
441INLINE int float64_is_zero(float64 a)
442{
443 return (float64_val(a) & 0x7fffffffffffffffLL) == 0;
444}
445
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446INLINE int float64_is_any_nan(float64 a)
447{
448 return ((float64_val(a) & ~(1ULL << 63)) > 0x7ff0000000000000ULL);
449}
450
587eabfa
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451INLINE int float64_is_zero_or_denormal(float64 a)
452{
453 return (float64_val(a) & 0x7ff0000000000000LL) == 0;
454}
455
c30fe7df
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456INLINE float64 float64_set_sign(float64 a, int sign)
457{
458 return make_float64((float64_val(a) & 0x7fffffffffffffffULL)
459 | ((int64_t)sign << 63));
460}
461
f090c9d4 462#define float64_zero make_float64(0)
196cfc89 463#define float64_one make_float64(0x3ff0000000000000LL)
8229c991 464#define float64_ln2 make_float64(0x3fe62e42fefa39efLL)
c4b4c77a 465#define float64_pi make_float64(0x400921fb54442d18LL)
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466#define float64_half make_float64(0x3fe0000000000000LL)
467#define float64_infinity make_float64(0x7ff0000000000000LL)
f090c9d4 468
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469/*----------------------------------------------------------------------------
470| The pattern for a default generated double-precision NaN.
471*----------------------------------------------------------------------------*/
789ec7ce 472extern const float64 float64_default_nan;
8559666d 473
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474/*----------------------------------------------------------------------------
475| Software IEC/IEEE extended double-precision conversion routines.
476*----------------------------------------------------------------------------*/
87b8cc3c
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477int32 floatx80_to_int32( floatx80 STATUS_PARAM );
478int32 floatx80_to_int32_round_to_zero( floatx80 STATUS_PARAM );
479int64 floatx80_to_int64( floatx80 STATUS_PARAM );
480int64 floatx80_to_int64_round_to_zero( floatx80 STATUS_PARAM );
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481float32 floatx80_to_float32( floatx80 STATUS_PARAM );
482float64 floatx80_to_float64( floatx80 STATUS_PARAM );
158142c2 483float128 floatx80_to_float128( floatx80 STATUS_PARAM );
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484
485/*----------------------------------------------------------------------------
486| Software IEC/IEEE extended double-precision operations.
487*----------------------------------------------------------------------------*/
488floatx80 floatx80_round_to_int( floatx80 STATUS_PARAM );
489floatx80 floatx80_add( floatx80, floatx80 STATUS_PARAM );
490floatx80 floatx80_sub( floatx80, floatx80 STATUS_PARAM );
491floatx80 floatx80_mul( floatx80, floatx80 STATUS_PARAM );
492floatx80 floatx80_div( floatx80, floatx80 STATUS_PARAM );
493floatx80 floatx80_rem( floatx80, floatx80 STATUS_PARAM );
494floatx80 floatx80_sqrt( floatx80 STATUS_PARAM );
b689362d 495int floatx80_eq( floatx80, floatx80 STATUS_PARAM );
750afe93
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496int floatx80_le( floatx80, floatx80 STATUS_PARAM );
497int floatx80_lt( floatx80, floatx80 STATUS_PARAM );
67b7861d 498int floatx80_unordered( floatx80, floatx80 STATUS_PARAM );
b689362d 499int floatx80_eq_quiet( floatx80, floatx80 STATUS_PARAM );
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500int floatx80_le_quiet( floatx80, floatx80 STATUS_PARAM );
501int floatx80_lt_quiet( floatx80, floatx80 STATUS_PARAM );
67b7861d 502int floatx80_unordered_quiet( floatx80, floatx80 STATUS_PARAM );
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503int floatx80_compare( floatx80, floatx80 STATUS_PARAM );
504int floatx80_compare_quiet( floatx80, floatx80 STATUS_PARAM );
18569871 505int floatx80_is_quiet_nan( floatx80 );
750afe93 506int floatx80_is_signaling_nan( floatx80 );
f6a7d92a 507floatx80 floatx80_maybe_silence_nan( floatx80 );
9ee6e8bb 508floatx80 floatx80_scalbn( floatx80, int STATUS_PARAM );
158142c2 509
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510INLINE floatx80 floatx80_abs(floatx80 a)
511{
512 a.high &= 0x7fff;
513 return a;
514}
515
516INLINE floatx80 floatx80_chs(floatx80 a)
517{
518 a.high ^= 0x8000;
519 return a;
520}
521
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522INLINE int floatx80_is_infinity(floatx80 a)
523{
b76235e4 524 return (a.high & 0x7fff) == 0x7fff && a.low == 0x8000000000000000LL;
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525}
526
527INLINE int floatx80_is_neg(floatx80 a)
528{
529 return a.high >> 15;
530}
531
532INLINE int floatx80_is_zero(floatx80 a)
533{
534 return (a.high & 0x7fff) == 0 && a.low == 0;
535}
536
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537INLINE int floatx80_is_zero_or_denormal(floatx80 a)
538{
539 return (a.high & 0x7fff) == 0;
540}
541
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542INLINE int floatx80_is_any_nan(floatx80 a)
543{
544 return ((a.high & 0x7fff) == 0x7fff) && (a.low<<1);
545}
546
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547#define floatx80_zero make_floatx80(0x0000, 0x0000000000000000LL)
548#define floatx80_one make_floatx80(0x3fff, 0x8000000000000000LL)
549#define floatx80_ln2 make_floatx80(0x3ffe, 0xb17217f7d1cf79acLL)
c4b4c77a 550#define floatx80_pi make_floatx80(0x4000, 0xc90fdaa22168c235LL)
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551#define floatx80_half make_floatx80(0x3ffe, 0x8000000000000000LL)
552#define floatx80_infinity make_floatx80(0x7fff, 0x8000000000000000LL)
553
8559666d 554/*----------------------------------------------------------------------------
789ec7ce 555| The pattern for a default generated extended double-precision NaN.
8559666d 556*----------------------------------------------------------------------------*/
789ec7ce 557extern const floatx80 floatx80_default_nan;
8559666d 558
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559/*----------------------------------------------------------------------------
560| Software IEC/IEEE quadruple-precision conversion routines.
561*----------------------------------------------------------------------------*/
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562int32 float128_to_int32( float128 STATUS_PARAM );
563int32 float128_to_int32_round_to_zero( float128 STATUS_PARAM );
564int64 float128_to_int64( float128 STATUS_PARAM );
565int64 float128_to_int64_round_to_zero( float128 STATUS_PARAM );
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566float32 float128_to_float32( float128 STATUS_PARAM );
567float64 float128_to_float64( float128 STATUS_PARAM );
158142c2 568floatx80 float128_to_floatx80( float128 STATUS_PARAM );
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569
570/*----------------------------------------------------------------------------
571| Software IEC/IEEE quadruple-precision operations.
572*----------------------------------------------------------------------------*/
573float128 float128_round_to_int( float128 STATUS_PARAM );
574float128 float128_add( float128, float128 STATUS_PARAM );
575float128 float128_sub( float128, float128 STATUS_PARAM );
576float128 float128_mul( float128, float128 STATUS_PARAM );
577float128 float128_div( float128, float128 STATUS_PARAM );
578float128 float128_rem( float128, float128 STATUS_PARAM );
579float128 float128_sqrt( float128 STATUS_PARAM );
b689362d 580int float128_eq( float128, float128 STATUS_PARAM );
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581int float128_le( float128, float128 STATUS_PARAM );
582int float128_lt( float128, float128 STATUS_PARAM );
67b7861d 583int float128_unordered( float128, float128 STATUS_PARAM );
b689362d 584int float128_eq_quiet( float128, float128 STATUS_PARAM );
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585int float128_le_quiet( float128, float128 STATUS_PARAM );
586int float128_lt_quiet( float128, float128 STATUS_PARAM );
67b7861d 587int float128_unordered_quiet( float128, float128 STATUS_PARAM );
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588int float128_compare( float128, float128 STATUS_PARAM );
589int float128_compare_quiet( float128, float128 STATUS_PARAM );
18569871 590int float128_is_quiet_nan( float128 );
750afe93 591int float128_is_signaling_nan( float128 );
f6a7d92a 592float128 float128_maybe_silence_nan( float128 );
9ee6e8bb 593float128 float128_scalbn( float128, int STATUS_PARAM );
158142c2 594
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595INLINE float128 float128_abs(float128 a)
596{
597 a.high &= 0x7fffffffffffffffLL;
598 return a;
599}
600
601INLINE float128 float128_chs(float128 a)
602{
603 a.high ^= 0x8000000000000000LL;
604 return a;
605}
606
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607INLINE int float128_is_infinity(float128 a)
608{
609 return (a.high & 0x7fffffffffffffffLL) == 0x7fff000000000000LL && a.low == 0;
610}
611
612INLINE int float128_is_neg(float128 a)
613{
614 return a.high >> 63;
615}
616
617INLINE int float128_is_zero(float128 a)
618{
619 return (a.high & 0x7fffffffffffffffLL) == 0 && a.low == 0;
620}
621
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622INLINE int float128_is_zero_or_denormal(float128 a)
623{
624 return (a.high & 0x7fff000000000000LL) == 0;
625}
626
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627INLINE int float128_is_any_nan(float128 a)
628{
629 return ((a.high >> 48) & 0x7fff) == 0x7fff &&
630 ((a.low != 0) || ((a.high & 0xffffffffffffLL) != 0));
631}
632
8559666d 633/*----------------------------------------------------------------------------
789ec7ce 634| The pattern for a default generated quadruple-precision NaN.
8559666d 635*----------------------------------------------------------------------------*/
789ec7ce 636extern const float128 float128_default_nan;
8559666d 637
158142c2 638#endif /* !SOFTFLOAT_H */