| 1 | /* inftrees.c -- generate Huffman trees for efficient decoding | 
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| 2 | * Copyright (C) 1995-2002 Mark Adler | 
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| 3 | * For conditions of distribution and use, see copyright notice in zlib.h | 
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| 4 | */ | 
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| 5 |  | 
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| 6 | #include "zutil.h" | 
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| 7 | #include "inftrees.h" | 
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| 8 |  | 
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| 9 | #if !defined(BUILDFIXED) && !defined(STDC) | 
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| 10 | #  define BUILDFIXED   /* non ANSI compilers may not accept inffixed.h */ | 
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| 11 | #endif | 
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| 12 |  | 
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| 13 | const char inflate_copyright[] = | 
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| 14 | " inflate 1.1.4 Copyright 1995-2002 Mark Adler "; | 
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| 15 | /* | 
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| 16 | If you use the zlib library in a product, an acknowledgment is welcome | 
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| 17 | in the documentation of your product. If for some reason you cannot | 
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| 18 | include such an acknowledgment, I would appreciate that you keep this | 
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| 19 | copyright string in the executable of your product. | 
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| 20 | */ | 
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| 21 | struct internal_state  {int dummy;}; /* for buggy compilers */ | 
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| 22 |  | 
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| 23 | /* simplify the use of the inflate_huft type with some defines */ | 
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| 24 | #define exop word.what.Exop | 
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| 25 | #define bits word.what.Bits | 
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| 26 |  | 
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| 27 |  | 
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| 28 | local int huft_build OF(( | 
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| 29 | uIntf *,            /* code lengths in bits */ | 
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| 30 | uInt,               /* number of codes */ | 
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| 31 | uInt,               /* number of "simple" codes */ | 
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| 32 | const uIntf *,      /* list of base values for non-simple codes */ | 
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| 33 | const uIntf *,      /* list of extra bits for non-simple codes */ | 
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| 34 | inflate_huft * FAR*,/* result: starting table */ | 
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| 35 | uIntf *,            /* maximum lookup bits (returns actual) */ | 
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| 36 | inflate_huft *,     /* space for trees */ | 
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| 37 | uInt *,             /* hufts used in space */ | 
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| 38 | uIntf * ));         /* space for values */ | 
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| 39 |  | 
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| 40 | /* Tables for deflate from PKZIP's appnote.txt. */ | 
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| 41 | local const uInt cplens[31] = { /* Copy lengths for literal codes 257..285 */ | 
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| 42 | 3, 4, 5, 6, 7, 8, 9, 10, 11, 13, 15, 17, 19, 23, 27, 31, | 
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| 43 | 35, 43, 51, 59, 67, 83, 99, 115, 131, 163, 195, 227, 258, 0, 0}; | 
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| 44 | /* see note #13 above about 258 */ | 
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| 45 | local const uInt cplext[31] = { /* Extra bits for literal codes 257..285 */ | 
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| 46 | 0, 0, 0, 0, 0, 0, 0, 0, 1, 1, 1, 1, 2, 2, 2, 2, | 
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| 47 | 3, 3, 3, 3, 4, 4, 4, 4, 5, 5, 5, 5, 0, 112, 112}; /* 112==invalid */ | 
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| 48 | local const uInt cpdist[30] = { /* Copy offsets for distance codes 0..29 */ | 
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| 49 | 1, 2, 3, 4, 5, 7, 9, 13, 17, 25, 33, 49, 65, 97, 129, 193, | 
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| 50 | 257, 385, 513, 769, 1025, 1537, 2049, 3073, 4097, 6145, | 
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| 51 | 8193, 12289, 16385, 24577}; | 
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| 52 | local const uInt cpdext[30] = { /* Extra bits for distance codes */ | 
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| 53 | 0, 0, 0, 0, 1, 1, 2, 2, 3, 3, 4, 4, 5, 5, 6, 6, | 
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| 54 | 7, 7, 8, 8, 9, 9, 10, 10, 11, 11, | 
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| 55 | 12, 12, 13, 13}; | 
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| 56 |  | 
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| 57 | /* | 
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| 58 | Huffman code decoding is performed using a multi-level table lookup. | 
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| 59 | The fastest way to decode is to simply build a lookup table whose | 
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| 60 | size is determined by the longest code.  However, the time it takes | 
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| 61 | to build this table can also be a factor if the data being decoded | 
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| 62 | is not very long.  The most common codes are necessarily the | 
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| 63 | shortest codes, so those codes dominate the decoding time, and hence | 
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| 64 | the speed.  The idea is you can have a shorter table that decodes the | 
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| 65 | shorter, more probable codes, and then point to subsidiary tables for | 
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| 66 | the longer codes.  The time it costs to decode the longer codes is | 
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| 67 | then traded against the time it takes to make longer tables. | 
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| 68 |  | 
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| 69 | This results of this trade are in the variables lbits and dbits | 
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| 70 | below.  lbits is the number of bits the first level table for literal/ | 
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| 71 | length codes can decode in one step, and dbits is the same thing for | 
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| 72 | the distance codes.  Subsequent tables are also less than or equal to | 
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| 73 | those sizes.  These values may be adjusted either when all of the | 
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| 74 | codes are shorter than that, in which case the longest code length in | 
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| 75 | bits is used, or when the shortest code is *longer* than the requested | 
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| 76 | table size, in which case the length of the shortest code in bits is | 
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| 77 | used. | 
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| 78 |  | 
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| 79 | There are two different values for the two tables, since they code a | 
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| 80 | different number of possibilities each.  The literal/length table | 
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| 81 | codes 286 possible values, or in a flat code, a little over eight | 
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| 82 | bits.  The distance table codes 30 possible values, or a little less | 
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| 83 | than five bits, flat.  The optimum values for speed end up being | 
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| 84 | about one bit more than those, so lbits is 8+1 and dbits is 5+1. | 
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| 85 | The optimum values may differ though from machine to machine, and | 
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| 86 | possibly even between compilers.  Your mileage may vary. | 
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| 87 | */ | 
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| 88 |  | 
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| 89 |  | 
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| 90 | /* If BMAX needs to be larger than 16, then h and x[] should be uLong. */ | 
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| 91 | #define BMAX 15         /* maximum bit length of any code */ | 
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| 92 |  | 
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| 93 | local int huft_build(b, n, s, d, e, t, m, hp, hn, v) | 
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| 94 | uIntf *b;               /* code lengths in bits (all assumed <= BMAX) */ | 
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| 95 | uInt n;                 /* number of codes (assumed <= 288) */ | 
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| 96 | uInt s;                 /* number of simple-valued codes (0..s-1) */ | 
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| 97 | const uIntf *d;         /* list of base values for non-simple codes */ | 
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| 98 | const uIntf *e;         /* list of extra bits for non-simple codes */ | 
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| 99 | inflate_huft * FAR *t;  /* result: starting table */ | 
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| 100 | uIntf *m;               /* maximum lookup bits, returns actual */ | 
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| 101 | inflate_huft *hp;       /* space for trees */ | 
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| 102 | uInt *hn;               /* hufts used in space */ | 
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| 103 | uIntf *v;               /* working area: values in order of bit length */ | 
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| 104 | /* Given a list of code lengths and a maximum table size, make a set of | 
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| 105 | tables to decode that set of codes.  Return Z_OK on success, Z_BUF_ERROR | 
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| 106 | if the given code set is incomplete (the tables are still built in this | 
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| 107 | case), or Z_DATA_ERROR if the input is invalid. */ | 
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| 108 | { | 
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| 109 |  | 
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| 110 | uInt a;                       /* counter for codes of length k */ | 
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| 111 | uInt c[BMAX+1];               /* bit length count table */ | 
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| 112 | uInt f;                       /* i repeats in table every f entries */ | 
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| 113 | int g;                        /* maximum code length */ | 
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| 114 | int h;                        /* table level */ | 
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| 115 | register uInt i;              /* counter, current code */ | 
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| 116 | register uInt j;              /* counter */ | 
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| 117 | register int k;               /* number of bits in current code */ | 
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| 118 | int l;                        /* bits per table (returned in m) */ | 
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| 119 | uInt mask;                    /* (1 << w) - 1, to avoid cc -O bug on HP */ | 
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| 120 | register uIntf *p;            /* pointer into c[], b[], or v[] */ | 
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| 121 | inflate_huft *q;              /* points to current table */ | 
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| 122 | struct inflate_huft_s r;      /* table entry for structure assignment */ | 
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| 123 | inflate_huft *u[BMAX];        /* table stack */ | 
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| 124 | register int w;               /* bits before this table == (l * h) */ | 
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| 125 | uInt x[BMAX+1];               /* bit offsets, then code stack */ | 
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| 126 | uIntf *xp;                    /* pointer into x */ | 
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| 127 | int y;                        /* number of dummy codes added */ | 
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| 128 | uInt z;                       /* number of entries in current table */ | 
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| 129 |  | 
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| 130 |  | 
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| 131 | /* Generate counts for each bit length */ | 
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| 132 | p = c; | 
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| 133 | #define C0 *p++ = 0; | 
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| 134 | #define C2 C0 C0 C0 C0 | 
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| 135 | #define C4 C2 C2 C2 C2 | 
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| 136 | C4                            /* clear c[]--assume BMAX+1 is 16 */ | 
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| 137 | p = b;  i = n; | 
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| 138 | do { | 
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| 139 | c[*p++]++;                  /* assume all entries <= BMAX */ | 
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| 140 | } while (--i); | 
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| 141 | if (c[0] == n)                /* null input--all zero length codes */ | 
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| 142 | { | 
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| 143 | *t = (inflate_huft *)Z_NULL; | 
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| 144 | *m = 0; | 
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| 145 | return Z_OK; | 
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| 146 | } | 
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| 147 |  | 
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| 148 |  | 
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| 149 | /* Find minimum and maximum length, bound *m by those */ | 
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| 150 | l = *m; | 
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| 151 | for (j = 1; j <= BMAX; j++) | 
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| 152 | if (c[j]) | 
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| 153 | break; | 
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| 154 | k = j;                        /* minimum code length */ | 
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| 155 | if ((uInt)l < j) | 
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| 156 | l = j; | 
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| 157 | for (i = BMAX; i; i--) | 
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| 158 | if (c[i]) | 
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| 159 | break; | 
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| 160 | g = i;                        /* maximum code length */ | 
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| 161 | if ((uInt)l > i) | 
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| 162 | l = i; | 
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| 163 | *m = l; | 
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| 164 |  | 
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| 165 |  | 
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| 166 | /* Adjust last length count to fill out codes, if needed */ | 
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| 167 | for (y = 1 << j; j < i; j++, y <<= 1) | 
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| 168 | if ((y -= c[j]) < 0) | 
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| 169 | return Z_DATA_ERROR; | 
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| 170 | if ((y -= c[i]) < 0) | 
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| 171 | return Z_DATA_ERROR; | 
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| 172 | c[i] += y; | 
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| 173 |  | 
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| 174 |  | 
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| 175 | /* Generate starting offsets into the value table for each length */ | 
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| 176 | x[1] = j = 0; | 
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| 177 | p = c + 1;  xp = x + 2; | 
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| 178 | while (--i) {                 /* note that i == g from above */ | 
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| 179 | *xp++ = (j += *p++); | 
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| 180 | } | 
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| 181 |  | 
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| 182 |  | 
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| 183 | /* Make a table of values in order of bit lengths */ | 
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| 184 | p = b;  i = 0; | 
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| 185 | do { | 
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| 186 | if ((j = *p++) != 0) | 
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| 187 | v[x[j]++] = i; | 
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| 188 | } while (++i < n); | 
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| 189 | n = x[g];                     /* set n to length of v */ | 
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| 190 |  | 
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| 191 |  | 
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| 192 | /* Generate the Huffman codes and for each, make the table entries */ | 
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| 193 | x[0] = i = 0;                 /* first Huffman code is zero */ | 
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| 194 | p = v;                        /* grab values in bit order */ | 
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| 195 | h = -1;                       /* no tables yet--level -1 */ | 
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| 196 | w = -l;                       /* bits decoded == (l * h) */ | 
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| 197 | u[0] = (inflate_huft *)Z_NULL;        /* just to keep compilers happy */ | 
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| 198 | q = (inflate_huft *)Z_NULL;   /* ditto */ | 
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| 199 | z = 0;                        /* ditto */ | 
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| 200 |  | 
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| 201 | /* go through the bit lengths (k already is bits in shortest code) */ | 
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| 202 | for (; k <= g; k++) | 
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| 203 | { | 
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| 204 | a = c[k]; | 
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| 205 | while (a--) | 
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| 206 | { | 
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| 207 | /* here i is the Huffman code of length k bits for value *p */ | 
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| 208 | /* make tables up to required level */ | 
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| 209 | while (k > w + l) | 
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| 210 | { | 
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| 211 | h++; | 
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| 212 | w += l;                 /* previous table always l bits */ | 
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| 213 |  | 
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| 214 | /* compute minimum size table less than or equal to l bits */ | 
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| 215 | z = g - w; | 
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| 216 | z = z > (uInt)l ? l : z;        /* table size upper limit */ | 
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| 217 | if ((f = 1 << (j = k - w)) > a + 1)     /* try a k-w bit table */ | 
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| 218 | {                       /* too few codes for k-w bit table */ | 
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| 219 | f -= a + 1;           /* deduct codes from patterns left */ | 
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| 220 | xp = c + k; | 
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| 221 | if (j < z) | 
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| 222 | while (++j < z)     /* try smaller tables up to z bits */ | 
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| 223 | { | 
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| 224 | if ((f <<= 1) <= *++xp) | 
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| 225 | break;          /* enough codes to use up j bits */ | 
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| 226 | f -= *xp;         /* else deduct codes from patterns */ | 
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| 227 | } | 
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| 228 | } | 
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| 229 | z = 1 << j;             /* table entries for j-bit table */ | 
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| 230 |  | 
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| 231 | /* allocate new table */ | 
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| 232 | if (*hn + z > MANY)     /* (note: doesn't matter for fixed) */ | 
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| 233 | return Z_DATA_ERROR;  /* overflow of MANY */ | 
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| 234 | u[h] = q = hp + *hn; | 
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| 235 | *hn += z; | 
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| 236 |  | 
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| 237 | /* connect to last table, if there is one */ | 
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| 238 | if (h) | 
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| 239 | { | 
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| 240 | x[h] = i;             /* save pattern for backing up */ | 
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| 241 | r.bits = (Byte)l;     /* bits to dump before this table */ | 
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| 242 | r.exop = (Byte)j;     /* bits in this table */ | 
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| 243 | j = i >> (w - l); | 
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| 244 | r.base = (uInt)(q - u[h-1] - j);   /* offset to this table */ | 
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| 245 | u[h-1][j] = r;        /* connect to last table */ | 
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| 246 | } | 
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| 247 | else | 
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| 248 | *t = q;               /* first table is returned result */ | 
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| 249 | } | 
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| 250 |  | 
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| 251 | /* set up table entry in r */ | 
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| 252 | r.bits = (Byte)(k - w); | 
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| 253 | if (p >= v + n) | 
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| 254 | r.exop = 128 + 64;      /* out of values--invalid code */ | 
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| 255 | else if (*p < s) | 
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| 256 | { | 
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| 257 | r.exop = (Byte)(*p < 256 ? 0 : 32 + 64);     /* 256 is end-of-block */ | 
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| 258 | r.base = *p++;          /* simple code is just the value */ | 
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| 259 | } | 
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| 260 | else | 
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| 261 | { | 
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| 262 | r.exop = (Byte)(e[*p - s] + 16 + 64);/* non-simple--look up in lists */ | 
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| 263 | r.base = d[*p++ - s]; | 
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| 264 | } | 
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| 265 |  | 
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| 266 | /* fill code-like entries with r */ | 
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| 267 | f = 1 << (k - w); | 
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| 268 | for (j = i >> w; j < z; j += f) | 
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| 269 | q[j] = r; | 
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| 270 |  | 
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| 271 | /* backwards increment the k-bit code i */ | 
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| 272 | for (j = 1 << (k - 1); i & j; j >>= 1) | 
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| 273 | i ^= j; | 
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| 274 | i ^= j; | 
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| 275 |  | 
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| 276 | /* backup over finished tables */ | 
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| 277 | mask = (1 << w) - 1;      /* needed on HP, cc -O bug */ | 
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| 278 | while ((i & mask) != x[h]) | 
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| 279 | { | 
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| 280 | h--;                    /* don't need to update q */ | 
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| 281 | w -= l; | 
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| 282 | mask = (1 << w) - 1; | 
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| 283 | } | 
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| 284 | } | 
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| 285 | } | 
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| 286 |  | 
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| 287 |  | 
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| 288 | /* Return Z_BUF_ERROR if we were given an incomplete table */ | 
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| 289 | return y != 0 && g != 1 ? Z_BUF_ERROR : Z_OK; | 
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| 290 | } | 
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| 291 |  | 
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| 292 |  | 
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| 293 | int inflate_trees_bits(c, bb, tb, hp, z) | 
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| 294 | uIntf *c;               /* 19 code lengths */ | 
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| 295 | uIntf *bb;              /* bits tree desired/actual depth */ | 
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| 296 | inflate_huft * FAR *tb; /* bits tree result */ | 
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| 297 | inflate_huft *hp;       /* space for trees */ | 
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| 298 | z_streamp z;            /* for messages */ | 
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| 299 | { | 
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| 300 | int r; | 
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| 301 | uInt hn = 0;          /* hufts used in space */ | 
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| 302 | uIntf *v;             /* work area for huft_build */ | 
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| 303 |  | 
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| 304 | if ((v = (uIntf*)ZALLOC(z, 19, sizeof(uInt))) == Z_NULL) | 
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| 305 | return Z_MEM_ERROR; | 
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| 306 | r = huft_build(c, 19, 19, (uIntf*)Z_NULL, (uIntf*)Z_NULL, | 
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| 307 | tb, bb, hp, &hn, v); | 
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| 308 | if (r == Z_DATA_ERROR) | 
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| 309 | z->msg = (char*)"oversubscribed dynamic bit lengths tree"; | 
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| 310 | else if (r == Z_BUF_ERROR || *bb == 0) | 
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| 311 | { | 
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| 312 | z->msg = (char*)"incomplete dynamic bit lengths tree"; | 
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| 313 | r = Z_DATA_ERROR; | 
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| 314 | } | 
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| 315 | ZFREE(z, v); | 
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| 316 | return r; | 
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| 317 | } | 
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| 318 |  | 
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| 319 |  | 
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| 320 | int inflate_trees_dynamic(nl, nd, c, bl, bd, tl, td, hp, z) | 
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| 321 | uInt nl;                /* number of literal/length codes */ | 
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| 322 | uInt nd;                /* number of distance codes */ | 
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| 323 | uIntf *c;               /* that many (total) code lengths */ | 
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| 324 | uIntf *bl;              /* literal desired/actual bit depth */ | 
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| 325 | uIntf *bd;              /* distance desired/actual bit depth */ | 
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| 326 | inflate_huft * FAR *tl; /* literal/length tree result */ | 
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| 327 | inflate_huft * FAR *td; /* distance tree result */ | 
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| 328 | inflate_huft *hp;       /* space for trees */ | 
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| 329 | z_streamp z;            /* for messages */ | 
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| 330 | { | 
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| 331 | int r; | 
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| 332 | uInt hn = 0;          /* hufts used in space */ | 
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| 333 | uIntf *v;             /* work area for huft_build */ | 
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| 334 |  | 
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| 335 | /* allocate work area */ | 
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| 336 | if ((v = (uIntf*)ZALLOC(z, 288, sizeof(uInt))) == Z_NULL) | 
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| 337 | return Z_MEM_ERROR; | 
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| 338 |  | 
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| 339 | /* build literal/length tree */ | 
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| 340 | r = huft_build(c, nl, 257, cplens, cplext, tl, bl, hp, &hn, v); | 
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| 341 | if (r != Z_OK || *bl == 0) | 
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| 342 | { | 
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| 343 | if (r == Z_DATA_ERROR) | 
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| 344 | z->msg = (char*)"oversubscribed literal/length tree"; | 
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| 345 | else if (r != Z_MEM_ERROR) | 
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| 346 | { | 
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| 347 | z->msg = (char*)"incomplete literal/length tree"; | 
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| 348 | r = Z_DATA_ERROR; | 
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| 349 | } | 
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| 350 | ZFREE(z, v); | 
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| 351 | return r; | 
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| 352 | } | 
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| 353 |  | 
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| 354 | /* build distance tree */ | 
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| 355 | r = huft_build(c + nl, nd, 0, cpdist, cpdext, td, bd, hp, &hn, v); | 
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| 356 | if (r != Z_OK || (*bd == 0 && nl > 257)) | 
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| 357 | { | 
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| 358 | if (r == Z_DATA_ERROR) | 
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| 359 | z->msg = (char*)"oversubscribed distance tree"; | 
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| 360 | else if (r == Z_BUF_ERROR) { | 
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| 361 | #ifdef PKZIP_BUG_WORKAROUND | 
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| 362 | r = Z_OK; | 
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| 363 | } | 
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| 364 | #else | 
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| 365 | z->msg = (char*)"incomplete distance tree"; | 
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| 366 | r = Z_DATA_ERROR; | 
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| 367 | } | 
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| 368 | else if (r != Z_MEM_ERROR) | 
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| 369 | { | 
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| 370 | z->msg = (char*)"empty distance tree with lengths"; | 
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| 371 | r = Z_DATA_ERROR; | 
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| 372 | } | 
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| 373 | ZFREE(z, v); | 
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| 374 | return r; | 
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| 375 | #endif | 
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| 376 | } | 
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| 377 |  | 
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| 378 | /* done */ | 
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| 379 | ZFREE(z, v); | 
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| 380 | return Z_OK; | 
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| 381 | } | 
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| 382 |  | 
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| 383 |  | 
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| 384 | /* build fixed tables only once--keep them here */ | 
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| 385 | #ifdef BUILDFIXED | 
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| 386 | local int fixed_built = 0; | 
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| 387 | #define FIXEDH 544      /* number of hufts used by fixed tables */ | 
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| 388 | local inflate_huft fixed_mem[FIXEDH]; | 
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| 389 | local uInt fixed_bl; | 
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| 390 | local uInt fixed_bd; | 
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| 391 | local inflate_huft *fixed_tl; | 
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| 392 | local inflate_huft *fixed_td; | 
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| 393 | #else | 
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| 394 | #include "inffixed.h" | 
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| 395 | #endif | 
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| 396 |  | 
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| 397 |  | 
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| 398 | int inflate_trees_fixed(bl, bd, tl, td, z) | 
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| 399 | uIntf *bl;               /* literal desired/actual bit depth */ | 
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| 400 | uIntf *bd;               /* distance desired/actual bit depth */ | 
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| 401 | inflate_huft * FAR *tl;  /* literal/length tree result */ | 
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| 402 | inflate_huft * FAR *td;  /* distance tree result */ | 
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| 403 | z_streamp z;             /* for memory allocation */ | 
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| 404 | { | 
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| 405 | #ifdef BUILDFIXED | 
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| 406 | /* build fixed tables if not already */ | 
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| 407 | if (!fixed_built) | 
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| 408 | { | 
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| 409 | int k;              /* temporary variable */ | 
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| 410 | uInt f = 0;         /* number of hufts used in fixed_mem */ | 
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| 411 | uIntf *c;           /* length list for huft_build */ | 
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| 412 | uIntf *v;           /* work area for huft_build */ | 
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| 413 |  | 
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| 414 | /* allocate memory */ | 
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| 415 | if ((c = (uIntf*)ZALLOC(z, 288, sizeof(uInt))) == Z_NULL) | 
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| 416 | return Z_MEM_ERROR; | 
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| 417 | if ((v = (uIntf*)ZALLOC(z, 288, sizeof(uInt))) == Z_NULL) | 
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| 418 | { | 
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| 419 | ZFREE(z, c); | 
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| 420 | return Z_MEM_ERROR; | 
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| 421 | } | 
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| 422 |  | 
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| 423 | /* literal table */ | 
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| 424 | for (k = 0; k < 144; k++) | 
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| 425 | c[k] = 8; | 
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| 426 | for (; k < 256; k++) | 
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| 427 | c[k] = 9; | 
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| 428 | for (; k < 280; k++) | 
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| 429 | c[k] = 7; | 
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| 430 | for (; k < 288; k++) | 
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| 431 | c[k] = 8; | 
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| 432 | fixed_bl = 9; | 
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| 433 | huft_build(c, 288, 257, cplens, cplext, &fixed_tl, &fixed_bl, | 
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| 434 | fixed_mem, &f, v); | 
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| 435 |  | 
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| 436 | /* distance table */ | 
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| 437 | for (k = 0; k < 30; k++) | 
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| 438 | c[k] = 5; | 
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| 439 | fixed_bd = 5; | 
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| 440 | huft_build(c, 30, 0, cpdist, cpdext, &fixed_td, &fixed_bd, | 
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| 441 | fixed_mem, &f, v); | 
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| 442 |  | 
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| 443 | /* done */ | 
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| 444 | ZFREE(z, v); | 
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| 445 | ZFREE(z, c); | 
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| 446 | fixed_built = 1; | 
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| 447 | } | 
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| 448 | #endif | 
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| 449 | *bl = fixed_bl; | 
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| 450 | *bd = fixed_bd; | 
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| 451 | *tl = fixed_tl; | 
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| 452 | *td = fixed_td; | 
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| 453 | return Z_OK; | 
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| 454 | } | 
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