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softfloat.h
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1 /*
2  * Copyright (c) 2006 Michael Niedermayer <michaelni@gmx.at>
3  *
4  * This file is part of FFmpeg.
5  *
6  * FFmpeg is free software; you can redistribute it and/or
7  * modify it under the terms of the GNU Lesser General Public
8  * License as published by the Free Software Foundation; either
9  * version 2.1 of the License, or (at your option) any later version.
10  *
11  * FFmpeg 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 GNU
14  * Lesser General Public License for more details.
15  *
16  * You should have received a copy of the GNU Lesser General Public
17  * License along with FFmpeg; if not, write to the Free Software
18  * Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA
19  */
20 
21 #ifndef AVUTIL_SOFTFLOAT_H
22 #define AVUTIL_SOFTFLOAT_H
23 
24 #include <stdint.h>
25 #include "common.h"
26 
27 #include "avassert.h"
28 #include "softfloat_tables.h"
29 
30 #define MIN_EXP -126
31 #define MAX_EXP 126
32 #define ONE_BITS 29
33 
34 typedef struct SoftFloat{
37 }SoftFloat;
38 
39 static const SoftFloat FLOAT_0 = { 0, MIN_EXP};
40 static const SoftFloat FLOAT_05 = { 0x20000000, 0};
41 static const SoftFloat FLOAT_1 = { 0x20000000, 1};
42 static const SoftFloat FLOAT_EPSILON = { 0x29F16B12, -16};
43 static const SoftFloat FLOAT_1584893192 = { 0x32B771ED, 1};
44 static const SoftFloat FLOAT_100000 = { 0x30D40000, 17};
45 static const SoftFloat FLOAT_0999999 = { 0x3FFFFBCE, 0};
46 
47 static inline av_const double av_sf2double(SoftFloat v) {
48  v.exp -= ONE_BITS +1;
49  if(v.exp > 0) return (double)v.mant * (double)(1 << v.exp);
50  else return (double)v.mant / (double)(1 << (-v.exp));
51 }
52 
54  if(a.mant){
55 #if 1
56  while((a.mant + 0x1FFFFFFFU)<0x3FFFFFFFU){
57  a.mant += a.mant;
58  a.exp -= 1;
59  }
60 #else
61  int s=ONE_BITS - av_log2(FFABS(a.mant));
62  a.exp -= s;
63  a.mant <<= s;
64 #endif
65  if(a.exp < MIN_EXP){
66  a.exp = MIN_EXP;
67  a.mant= 0;
68  }
69  }else{
70  a.exp= MIN_EXP;
71  }
72  return a;
73 }
74 
76 #if 1
77  if((int32_t)(a.mant + 0x40000000U) <= 0){
78  a.exp++;
79  a.mant>>=1;
80  }
81  av_assert2(a.mant < 0x40000000 && a.mant > -0x40000000);
82  av_assert2(a.exp <= MAX_EXP);
83  return a;
84 #elif 1
85  int t= a.mant + 0x40000000 < 0;
86  return (SoftFloat){ a.mant>>t, a.exp+t};
87 #else
88  int t= (a.mant + 0x3FFFFFFFU)>>31;
89  return (SoftFloat){a.mant>>t, a.exp+t};
90 #endif
91 }
92 
93 /**
94  * @return Will not be more denormalized than a*b. So if either input is
95  * normalized, then the output will not be worse then the other input.
96  * If both are normalized, then the output will be normalized.
97  */
99  a.exp += b.exp;
100  av_assert2((int32_t)((a.mant * (int64_t)b.mant) >> ONE_BITS) == (a.mant * (int64_t)b.mant) >> ONE_BITS);
101  a.mant = (a.mant * (int64_t)b.mant) >> ONE_BITS;
102  a = av_normalize1_sf((SoftFloat){a.mant, a.exp - 1});
103  if (!a.mant || a.exp < MIN_EXP)
104  return FLOAT_0;
105  return a;
106 }
107 
108 /**
109  * b has to be normalized and not zero.
110  * @return Will not be more denormalized than a.
111  */
113  a.exp -= b.exp;
114  a.mant = ((int64_t)a.mant<<(ONE_BITS+1)) / b.mant;
115  a = av_normalize1_sf(a);
116  if (!a.mant || a.exp < MIN_EXP)
117  return FLOAT_0;
118  return a;
119 }
120 
121 static inline av_const int av_cmp_sf(SoftFloat a, SoftFloat b){
122  int t= a.exp - b.exp;
123  if (t <-31) return - b.mant ;
124  else if (t < 0) return (a.mant >> (-t)) - b.mant ;
125  else if (t < 32) return a.mant - (b.mant >> t);
126  else return a.mant ;
127 }
128 
129 static inline av_const int av_gt_sf(SoftFloat a, SoftFloat b)
130 {
131  int t= a.exp - b.exp;
132  if (t <-31) return 0 > b.mant ;
133  else if (t < 0) return (a.mant >> (-t)) > b.mant ;
134  else if (t < 32) return a.mant > (b.mant >> t);
135  else return a.mant > 0 ;
136 }
137 
139  int t= a.exp - b.exp;
140  if (t <-31) return b;
141  else if (t < 0) return av_normalize_sf(av_normalize1_sf((SoftFloat){ b.mant + (a.mant >> (-t)), b.exp}));
142  else if (t < 32) return av_normalize_sf(av_normalize1_sf((SoftFloat){ a.mant + (b.mant >> t ), a.exp}));
143  else return a;
144 }
145 
147  return av_add_sf(a, (SoftFloat){ -b.mant, b.exp});
148 }
149 
150 //FIXME log, exp, pow
151 
152 /**
153  * Converts a mantisse and exponent to a SoftFloat
154  * @returns a SoftFloat with value v * 2^frac_bits
155  */
156 static inline av_const SoftFloat av_int2sf(int v, int frac_bits){
157  int exp_offset = 0;
158  if(v == INT_MIN){
159  exp_offset = 1;
160  v>>=1;
161  }
162  return av_normalize_sf(av_normalize1_sf((SoftFloat){v, ONE_BITS + 1 - frac_bits + exp_offset}));
163 }
164 
165 /**
166  * Rounding is to -inf.
167  */
168 static inline av_const int av_sf2int(SoftFloat v, int frac_bits){
169  v.exp += frac_bits - (ONE_BITS + 1);
170  if(v.exp >= 0) return v.mant << v.exp ;
171  else return v.mant >>(-v.exp);
172 }
173 
174 /**
175  * Rounding-to-nearest used.
176  */
178 {
179  int tabIndex, rem;
180 
181  if (val.mant == 0)
182  val.exp = MIN_EXP;
183  else if (val.mant < 0)
184  abort();
185  else
186  {
187  tabIndex = (val.mant - 0x20000000) >> 20;
188 
189  rem = val.mant & 0xFFFFF;
190  val.mant = (int)(((int64_t)av_sqrttbl_sf[tabIndex] * (0x100000 - rem) +
191  (int64_t)av_sqrttbl_sf[tabIndex + 1] * rem +
192  0x80000) >> 20);
193  val.mant = (int)(((int64_t)av_sqr_exp_multbl_sf[val.exp & 1] * val.mant +
194  0x10000000) >> 29);
195 
196  if (val.mant < 0x40000000)
197  val.exp -= 2;
198  else
199  val.mant >>= 1;
200 
201  val.exp = (val.exp >> 1) + 1;
202  }
203 
204  return val;
205 }
206 
207 /**
208  * Rounding-to-nearest used.
209  */
210 static av_unused void av_sincos_sf(int a, int *s, int *c)
211 {
212  int idx, sign;
213  int sv, cv;
214  int st, ct;
215 
216  idx = a >> 26;
217  sign = (idx << 27) >> 31;
218  cv = av_costbl_1_sf[idx & 0xf];
219  cv = (cv ^ sign) - sign;
220 
221  idx -= 8;
222  sign = (idx << 27) >> 31;
223  sv = av_costbl_1_sf[idx & 0xf];
224  sv = (sv ^ sign) - sign;
225 
226  idx = a >> 21;
227  ct = av_costbl_2_sf[idx & 0x1f];
228  st = av_sintbl_2_sf[idx & 0x1f];
229 
230  idx = (int)(((int64_t)cv * ct - (int64_t)sv * st + 0x20000000) >> 30);
231 
232  sv = (int)(((int64_t)cv * st + (int64_t)sv * ct + 0x20000000) >> 30);
233 
234  cv = idx;
235 
236  idx = a >> 16;
237  ct = av_costbl_3_sf[idx & 0x1f];
238  st = av_sintbl_3_sf[idx & 0x1f];
239 
240  idx = (int)(((int64_t)cv * ct - (int64_t)sv * st + 0x20000000) >> 30);
241 
242  sv = (int)(((int64_t)cv * st + (int64_t)sv * ct + 0x20000000) >> 30);
243  cv = idx;
244 
245  idx = a >> 11;
246 
247  ct = (int)(((int64_t)av_costbl_4_sf[idx & 0x1f] * (0x800 - (a & 0x7ff)) +
248  (int64_t)av_costbl_4_sf[(idx & 0x1f)+1]*(a & 0x7ff) +
249  0x400) >> 11);
250  st = (int)(((int64_t)av_sintbl_4_sf[idx & 0x1f] * (0x800 - (a & 0x7ff)) +
251  (int64_t)av_sintbl_4_sf[(idx & 0x1f) + 1] * (a & 0x7ff) +
252  0x400) >> 11);
253 
254  *c = (int)(((int64_t)cv * ct + (int64_t)sv * st + 0x20000000) >> 30);
255 
256  *s = (int)(((int64_t)cv * st + (int64_t)sv * ct + 0x20000000) >> 30);
257 }
258 
259 #endif /* AVUTIL_SOFTFLOAT_H */
#define av_const
Definition: attributes.h:76
static av_always_inline SoftFloat av_sqrt_sf(SoftFloat val)
Rounding-to-nearest used.
Definition: softfloat.h:177
const char const char void * val
Definition: avisynth_c.h:634
const char * s
Definition: avisynth_c.h:631
#define ONE_BITS
Definition: softfloat.h:32
static const int32_t av_costbl_4_sf[33]
static const SoftFloat FLOAT_05
Definition: softfloat.h:40
static av_const SoftFloat av_div_sf(SoftFloat a, SoftFloat b)
b has to be normalized and not zero.
Definition: softfloat.h:112
const char * b
Definition: vf_curves.c:109
int av_log2(unsigned v)
Definition: intmath.c:26
static const int32_t av_sintbl_3_sf[32]
static const SoftFloat FLOAT_0
Definition: softfloat.h:39
static av_const double av_sf2double(SoftFloat v)
Definition: softfloat.h:47
#define av_assert2(cond)
assert() equivalent, that does lie in speed critical code.
Definition: avassert.h:63
int32_t mant
Definition: softfloat.h:35
static const SoftFloat FLOAT_100000
Definition: softfloat.h:44
#define U(x)
Definition: vp56_arith.h:37
static av_const SoftFloat av_normalize_sf(SoftFloat a)
Definition: softfloat.h:53
static const SoftFloat FLOAT_1
Definition: softfloat.h:41
static const SoftFloat FLOAT_0999999
Definition: softfloat.h:45
simple assert() macros that are a bit more flexible than ISO C assert().
static av_unused void av_sincos_sf(int a, int *s, int *c)
Rounding-to-nearest used.
Definition: softfloat.h:210
int32_t
static av_const int av_cmp_sf(SoftFloat a, SoftFloat b)
Definition: softfloat.h:121
#define FFABS(a)
Absolute value, Note, INT_MIN / INT64_MIN result in undefined behavior as they are not representable ...
Definition: common.h:72
static av_const int av_gt_sf(SoftFloat a, SoftFloat b)
Definition: softfloat.h:129
static av_const SoftFloat av_normalize1_sf(SoftFloat a)
Definition: softfloat.h:75
static const int32_t av_sqrttbl_sf[512+1]
static av_const int av_sf2int(SoftFloat v, int frac_bits)
Rounding is to -inf.
Definition: softfloat.h:168
static const int32_t av_costbl_2_sf[32]
static const int32_t av_costbl_1_sf[16]
#define MIN_EXP
Definition: softfloat.h:30
static const int32_t av_sintbl_2_sf[32]
static av_const SoftFloat av_sub_sf(SoftFloat a, SoftFloat b)
Definition: softfloat.h:146
static av_const SoftFloat av_add_sf(SoftFloat a, SoftFloat b)
Definition: softfloat.h:138
static const int32_t av_sqr_exp_multbl_sf[2]
common internal and external API header
static const SoftFloat FLOAT_1584893192
Definition: softfloat.h:43
static av_const SoftFloat av_mul_sf(SoftFloat a, SoftFloat b)
Definition: softfloat.h:98
static double c[64]
int32_t exp
Definition: softfloat.h:36
static const SoftFloat FLOAT_EPSILON
Definition: softfloat.h:42
static const int32_t av_sintbl_4_sf[33]
#define MAX_EXP
Definition: softfloat.h:31
static const int32_t av_costbl_3_sf[32]
static av_const SoftFloat av_int2sf(int v, int frac_bits)
Converts a mantisse and exponent to a SoftFloat.
Definition: softfloat.h:156
#define av_always_inline
Definition: attributes.h:39
#define av_unused
Definition: attributes.h:126