Geant4 11.4.0
Toolkit for the simulation of the passage of particles through matter
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adler32.c File Reference
#include "zutil.h"

Go to the source code of this file.

Macros

#define BASE   65521U /* largest prime smaller than 65536 */
#define NMAX   5552
#define DO1(buf, i)
#define DO2(buf, i)
#define DO4(buf, i)
#define DO8(buf, i)
#define DO16(buf)
#define MOD(a)
#define MOD28(a)
#define MOD63(a)

Functions

uLong ZEXPORT adler32_z (uLong adler, const Bytef *buf, z_size_t len)
uLong ZEXPORT adler32 (uLong adler, const Bytef *buf, uInt len)
local uLong adler32_combine_ (uLong adler1, uLong adler2, z_off64_t len2)
uLong ZEXPORT adler32_combine (uLong adler1, uLong adler2, z_off_t len2)
uLong ZEXPORT adler32_combine64 (uLong adler1, uLong adler2, z_off64_t len2)

Macro Definition Documentation

◆ BASE

#define BASE   65521U /* largest prime smaller than 65536 */

Definition at line 10 of file adler32.c.

Referenced by adler32_combine_(), and adler32_z().

◆ DO1

#define DO1 ( buf,
i )
Value:
{adler += (buf)[i]; sum2 += adler;}

Definition at line 14 of file adler32.c.

◆ DO16

#define DO16 ( buf)
Value:
DO8(buf,0); DO8(buf,8);
#define DO8(buf, i)
Definition adler32.c:17

Definition at line 18 of file adler32.c.

Referenced by adler32_z().

◆ DO2

#define DO2 ( buf,
i )
Value:
DO1(buf,i); DO1(buf,i+1);
#define DO1(buf, i)
Definition adler32.c:14

Definition at line 15 of file adler32.c.

◆ DO4

#define DO4 ( buf,
i )
Value:
DO2(buf,i); DO2(buf,i+2);
#define DO2(buf, i)
Definition adler32.c:15

Definition at line 16 of file adler32.c.

◆ DO8

#define DO8 ( buf,
i )
Value:
DO4(buf,i); DO4(buf,i+4);
#define DO4(buf, i)
Definition adler32.c:16

Definition at line 17 of file adler32.c.

◆ MOD

#define MOD ( a)
Value:
a %= BASE
#define BASE
Definition adler32.c:10

Definition at line 55 of file adler32.c.

Referenced by adler32_combine_(), and adler32_z().

◆ MOD28

#define MOD28 ( a)
Value:
a %= BASE

Definition at line 56 of file adler32.c.

Referenced by adler32_z().

◆ MOD63

#define MOD63 ( a)
Value:
a %= BASE

Definition at line 57 of file adler32.c.

Referenced by adler32_combine_().

◆ NMAX

#define NMAX   5552

Definition at line 11 of file adler32.c.

Referenced by adler32_z().

Function Documentation

◆ adler32()

uLong ZEXPORT adler32 ( uLong adler,
const Bytef * buf,
uInt len )

Definition at line 128 of file adler32.c.

128 {
129 return adler32_z(adler, buf, len);
130}
uLong ZEXPORT adler32_z(uLong adler, const Bytef *buf, z_size_t len)
Definition adler32.c:61

Referenced by deflate(), deflateResetKeep(), deflateSetDictionary(), inflate(), inflateSetDictionary(), and read_buf().

◆ adler32_combine()

uLong ZEXPORT adler32_combine ( uLong adler1,
uLong adler2,
z_off_t len2 )

Definition at line 158 of file adler32.c.

158 {
159 return adler32_combine_(adler1, adler2, len2);
160}
local uLong adler32_combine_(uLong adler1, uLong adler2, z_off64_t len2)
Definition adler32.c:133

◆ adler32_combine64()

uLong ZEXPORT adler32_combine64 ( uLong adler1,
uLong adler2,
z_off64_t len2 )

Definition at line 162 of file adler32.c.

162 {
163 return adler32_combine_(adler1, adler2, len2);
164}

◆ adler32_combine_()

local uLong adler32_combine_ ( uLong adler1,
uLong adler2,
z_off64_t len2 )

Definition at line 133 of file adler32.c.

133 {
134 unsigned long sum1;
135 unsigned long sum2;
136 unsigned rem;
137
138 /* for negative len, return invalid adler32 as a clue for debugging */
139 if (len2 < 0)
140 return 0xffffffffUL;
141
142 /* the derivation of this formula is left as an exercise for the reader */
143 MOD63(len2); /* assumes len2 >= 0 */
144 rem = (unsigned)len2;
145 sum1 = adler1 & 0xffff;
146 sum2 = rem * sum1;
147 MOD(sum2);
148 sum1 += (adler2 & 0xffff) + BASE - 1;
149 sum2 += ((adler1 >> 16) & 0xffff) + ((adler2 >> 16) & 0xffff) + BASE - rem;
150 if (sum1 >= BASE) sum1 -= BASE;
151 if (sum1 >= BASE) sum1 -= BASE;
152 if (sum2 >= ((unsigned long)BASE << 1)) sum2 -= ((unsigned long)BASE << 1);
153 if (sum2 >= BASE) sum2 -= BASE;
154 return sum1 | (sum2 << 16);
155}
#define MOD63(a)
Definition adler32.c:57
#define MOD(a)
Definition adler32.c:55

Referenced by adler32_combine(), and adler32_combine64().

◆ adler32_z()

uLong ZEXPORT adler32_z ( uLong adler,
const Bytef * buf,
z_size_t len )

Definition at line 61 of file adler32.c.

61 {
62 unsigned long sum2;
63 unsigned n;
64
65 /* split Adler-32 into component sums */
66 sum2 = (adler >> 16) & 0xffff;
67 adler &= 0xffff;
68
69 /* in case user likes doing a byte at a time, keep it fast */
70 if (len == 1) {
71 adler += buf[0];
72 if (adler >= BASE)
73 adler -= BASE;
74 sum2 += adler;
75 if (sum2 >= BASE)
76 sum2 -= BASE;
77 return adler | (sum2 << 16);
78 }
79
80 /* initial Adler-32 value (deferred check for len == 1 speed) */
81 if (buf == Z_NULL)
82 return 1L;
83
84 /* in case short lengths are provided, keep it somewhat fast */
85 if (len < 16) {
86 while (len--) {
87 adler += *buf++;
88 sum2 += adler;
89 }
90 if (adler >= BASE)
91 adler -= BASE;
92 MOD28(sum2); /* only added so many BASE's */
93 return adler | (sum2 << 16);
94 }
95
96 /* do length NMAX blocks -- requires just one modulo operation */
97 while (len >= NMAX) {
98 len -= NMAX;
99 n = NMAX / 16; /* NMAX is divisible by 16 */
100 do {
101 DO16(buf); /* 16 sums unrolled */
102 buf += 16;
103 } while (--n);
104 MOD(adler);
105 MOD(sum2);
106 }
107
108 /* do remaining bytes (less than NMAX, still just one modulo) */
109 if (len) { /* avoid modulos if none remaining */
110 while (len >= 16) {
111 len -= 16;
112 DO16(buf);
113 buf += 16;
114 }
115 while (len--) {
116 adler += *buf++;
117 sum2 += adler;
118 }
119 MOD(adler);
120 MOD(sum2);
121 }
122
123 /* return recombined sums */
124 return adler | (sum2 << 16);
125}
#define MOD28(a)
Definition adler32.c:56
#define NMAX
Definition adler32.c:11
#define DO16(buf)
Definition adler32.c:18
#define Z_NULL
Definition zlib.h:212

Referenced by adler32().