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zlib.c revision 1.2
      1  1.2  christos /*	$NetBSD: zlib.c,v 1.2 1996/03/16 23:55:40 christos Exp $	*/
      2  1.1    paulus 
      3  1.1    paulus /*
      4  1.1    paulus  * This file is derived from various .h and .c files from the zlib-0.95
      5  1.1    paulus  * distribution by Jean-loup Gailly and Mark Adler, with some additions
      6  1.1    paulus  * by Paul Mackerras to aid in implementing Deflate compression and
      7  1.1    paulus  * decompression for PPP packets.  See zlib.h for conditions of
      8  1.1    paulus  * distribution and use.
      9  1.1    paulus  *
     10  1.1    paulus  * Changes that have been made include:
     11  1.1    paulus  * - changed functions not used outside this file to "local"
     12  1.1    paulus  * - added minCompression parameter to deflateInit2
     13  1.1    paulus  * - added Z_PACKET_FLUSH (see zlib.h for details)
     14  1.1    paulus  * - added inflateIncomp
     15  1.1    paulus  */
     16  1.1    paulus 
     17  1.1    paulus 
     18  1.1    paulus /*+++++*/
     19  1.1    paulus /* zutil.h -- internal interface and configuration of the compression library
     20  1.1    paulus  * Copyright (C) 1995 Jean-loup Gailly.
     21  1.1    paulus  * For conditions of distribution and use, see copyright notice in zlib.h
     22  1.1    paulus  */
     23  1.1    paulus 
     24  1.1    paulus /* WARNING: this file should *not* be used by applications. It is
     25  1.1    paulus    part of the implementation of the compression library and is
     26  1.1    paulus    subject to change. Applications should only use zlib.h.
     27  1.1    paulus  */
     28  1.1    paulus 
     29  1.1    paulus /* From: zutil.h,v 1.9 1995/05/03 17:27:12 jloup Exp */
     30  1.1    paulus 
     31  1.1    paulus #define _Z_UTIL_H
     32  1.1    paulus 
     33  1.1    paulus #include "zlib.h"
     34  1.1    paulus 
     35  1.1    paulus #ifdef STDC
     36  1.1    paulus #  include <string.h>
     37  1.1    paulus #endif
     38  1.1    paulus 
     39  1.1    paulus #ifndef local
     40  1.1    paulus #  define local static
     41  1.1    paulus #endif
     42  1.1    paulus /* compile with -Dlocal if your debugger can't find static symbols */
     43  1.1    paulus 
     44  1.1    paulus #define FAR
     45  1.1    paulus 
     46  1.1    paulus typedef unsigned char  uch;
     47  1.1    paulus typedef uch FAR uchf;
     48  1.1    paulus typedef unsigned short ush;
     49  1.1    paulus typedef ush FAR ushf;
     50  1.1    paulus typedef unsigned long  ulg;
     51  1.1    paulus 
     52  1.1    paulus extern char *z_errmsg[]; /* indexed by 1-zlib_error */
     53  1.1    paulus 
     54  1.1    paulus #define ERR_RETURN(strm,err) return (strm->msg=z_errmsg[1-err], err)
     55  1.1    paulus /* To be used only when the state is known to be valid */
     56  1.1    paulus 
     57  1.1    paulus #ifndef NULL
     58  1.1    paulus #define NULL	((void *) 0)
     59  1.1    paulus #endif
     60  1.1    paulus 
     61  1.1    paulus         /* common constants */
     62  1.1    paulus 
     63  1.1    paulus #define DEFLATED   8
     64  1.1    paulus 
     65  1.1    paulus #ifndef DEF_WBITS
     66  1.1    paulus #  define DEF_WBITS MAX_WBITS
     67  1.1    paulus #endif
     68  1.1    paulus /* default windowBits for decompression. MAX_WBITS is for compression only */
     69  1.1    paulus 
     70  1.1    paulus #if MAX_MEM_LEVEL >= 8
     71  1.1    paulus #  define DEF_MEM_LEVEL 8
     72  1.1    paulus #else
     73  1.1    paulus #  define DEF_MEM_LEVEL  MAX_MEM_LEVEL
     74  1.1    paulus #endif
     75  1.1    paulus /* default memLevel */
     76  1.1    paulus 
     77  1.1    paulus #define STORED_BLOCK 0
     78  1.1    paulus #define STATIC_TREES 1
     79  1.1    paulus #define DYN_TREES    2
     80  1.1    paulus /* The three kinds of block type */
     81  1.1    paulus 
     82  1.1    paulus #define MIN_MATCH  3
     83  1.1    paulus #define MAX_MATCH  258
     84  1.1    paulus /* The minimum and maximum match lengths */
     85  1.1    paulus 
     86  1.1    paulus          /* functions */
     87  1.1    paulus 
     88  1.1    paulus #if defined(KERNEL) || defined(_KERNEL)
     89  1.1    paulus #  define zmemcpy(d, s, n)	bcopy((s), (d), (n))
     90  1.1    paulus #  define zmemzero		bzero
     91  1.1    paulus #else
     92  1.1    paulus #if defined(STDC) && !defined(HAVE_MEMCPY) && !defined(NO_MEMCPY)
     93  1.1    paulus #  define HAVE_MEMCPY
     94  1.1    paulus #endif
     95  1.1    paulus #ifdef HAVE_MEMCPY
     96  1.1    paulus #    define zmemcpy memcpy
     97  1.1    paulus #    define zmemzero(dest, len) memset(dest, 0, len)
     98  1.1    paulus #else
     99  1.1    paulus    extern void zmemcpy  OF((Bytef* dest, Bytef* source, uInt len));
    100  1.1    paulus    extern void zmemzero OF((Bytef* dest, uInt len));
    101  1.1    paulus #endif
    102  1.1    paulus #endif
    103  1.1    paulus 
    104  1.1    paulus /* Diagnostic functions */
    105  1.1    paulus #ifdef DEBUG_ZLIB
    106  1.1    paulus #  include <stdio.h>
    107  1.1    paulus #  ifndef verbose
    108  1.1    paulus #    define verbose 0
    109  1.1    paulus #  endif
    110  1.1    paulus #  define Assert(cond,msg) {if(!(cond)) z_error(msg);}
    111  1.1    paulus #  define Trace(x) fprintf x
    112  1.1    paulus #  define Tracev(x) {if (verbose) fprintf x ;}
    113  1.1    paulus #  define Tracevv(x) {if (verbose>1) fprintf x ;}
    114  1.1    paulus #  define Tracec(c,x) {if (verbose && (c)) fprintf x ;}
    115  1.1    paulus #  define Tracecv(c,x) {if (verbose>1 && (c)) fprintf x ;}
    116  1.1    paulus #else
    117  1.1    paulus #  define Assert(cond,msg)
    118  1.1    paulus #  define Trace(x)
    119  1.1    paulus #  define Tracev(x)
    120  1.1    paulus #  define Tracevv(x)
    121  1.1    paulus #  define Tracec(c,x)
    122  1.1    paulus #  define Tracecv(c,x)
    123  1.1    paulus #endif
    124  1.1    paulus 
    125  1.1    paulus 
    126  1.1    paulus typedef uLong (*check_func) OF((uLong check, Bytef *buf, uInt len));
    127  1.1    paulus 
    128  1.1    paulus /* voidpf zcalloc OF((voidpf opaque, unsigned items, unsigned size)); */
    129  1.1    paulus /* void   zcfree  OF((voidpf opaque, voidpf ptr)); */
    130  1.1    paulus 
    131  1.1    paulus #define ZALLOC(strm, items, size) \
    132  1.1    paulus            (*((strm)->zalloc))((strm)->opaque, (items), (size))
    133  1.1    paulus #define ZFREE(strm, addr, size)	\
    134  1.1    paulus 	   (*((strm)->zfree))((strm)->opaque, (voidpf)(addr), (size))
    135  1.1    paulus #define TRY_FREE(s, p, n) {if (p) ZFREE(s, p, n);}
    136  1.1    paulus 
    137  1.1    paulus /* deflate.h -- internal compression state
    138  1.1    paulus  * Copyright (C) 1995 Jean-loup Gailly
    139  1.1    paulus  * For conditions of distribution and use, see copyright notice in zlib.h
    140  1.1    paulus  */
    141  1.1    paulus 
    142  1.1    paulus /* WARNING: this file should *not* be used by applications. It is
    143  1.1    paulus    part of the implementation of the compression library and is
    144  1.1    paulus    subject to change. Applications should only use zlib.h.
    145  1.1    paulus  */
    146  1.1    paulus 
    147  1.1    paulus 
    148  1.1    paulus /*+++++*/
    149  1.1    paulus /* From: deflate.h,v 1.5 1995/05/03 17:27:09 jloup Exp */
    150  1.1    paulus 
    151  1.1    paulus /* ===========================================================================
    152  1.1    paulus  * Internal compression state.
    153  1.1    paulus  */
    154  1.1    paulus 
    155  1.1    paulus /* Data type */
    156  1.1    paulus #define BINARY  0
    157  1.1    paulus #define ASCII   1
    158  1.1    paulus #define UNKNOWN 2
    159  1.1    paulus 
    160  1.1    paulus #define LENGTH_CODES 29
    161  1.1    paulus /* number of length codes, not counting the special END_BLOCK code */
    162  1.1    paulus 
    163  1.1    paulus #define LITERALS  256
    164  1.1    paulus /* number of literal bytes 0..255 */
    165  1.1    paulus 
    166  1.1    paulus #define L_CODES (LITERALS+1+LENGTH_CODES)
    167  1.1    paulus /* number of Literal or Length codes, including the END_BLOCK code */
    168  1.1    paulus 
    169  1.1    paulus #define D_CODES   30
    170  1.1    paulus /* number of distance codes */
    171  1.1    paulus 
    172  1.1    paulus #define BL_CODES  19
    173  1.1    paulus /* number of codes used to transfer the bit lengths */
    174  1.1    paulus 
    175  1.1    paulus #define HEAP_SIZE (2*L_CODES+1)
    176  1.1    paulus /* maximum heap size */
    177  1.1    paulus 
    178  1.1    paulus #define MAX_BITS 15
    179  1.1    paulus /* All codes must not exceed MAX_BITS bits */
    180  1.1    paulus 
    181  1.1    paulus #define INIT_STATE    42
    182  1.1    paulus #define BUSY_STATE   113
    183  1.1    paulus #define FLUSH_STATE  124
    184  1.1    paulus #define FINISH_STATE 666
    185  1.1    paulus /* Stream status */
    186  1.1    paulus 
    187  1.1    paulus 
    188  1.1    paulus /* Data structure describing a single value and its code string. */
    189  1.1    paulus typedef struct ct_data_s {
    190  1.1    paulus     union {
    191  1.1    paulus         ush  freq;       /* frequency count */
    192  1.1    paulus         ush  code;       /* bit string */
    193  1.1    paulus     } fc;
    194  1.1    paulus     union {
    195  1.1    paulus         ush  dad;        /* father node in Huffman tree */
    196  1.1    paulus         ush  len;        /* length of bit string */
    197  1.1    paulus     } dl;
    198  1.1    paulus } FAR ct_data;
    199  1.1    paulus 
    200  1.1    paulus #define Freq fc.freq
    201  1.1    paulus #define Code fc.code
    202  1.1    paulus #define Dad  dl.dad
    203  1.1    paulus #define Len  dl.len
    204  1.1    paulus 
    205  1.1    paulus typedef struct static_tree_desc_s  static_tree_desc;
    206  1.1    paulus 
    207  1.1    paulus typedef struct tree_desc_s {
    208  1.1    paulus     ct_data *dyn_tree;           /* the dynamic tree */
    209  1.1    paulus     int     max_code;            /* largest code with non zero frequency */
    210  1.1    paulus     static_tree_desc *stat_desc; /* the corresponding static tree */
    211  1.1    paulus } FAR tree_desc;
    212  1.1    paulus 
    213  1.1    paulus typedef ush Pos;
    214  1.1    paulus typedef Pos FAR Posf;
    215  1.1    paulus typedef unsigned IPos;
    216  1.1    paulus 
    217  1.1    paulus /* A Pos is an index in the character window. We use short instead of int to
    218  1.1    paulus  * save space in the various tables. IPos is used only for parameter passing.
    219  1.1    paulus  */
    220  1.1    paulus 
    221  1.1    paulus typedef struct deflate_state {
    222  1.1    paulus     z_stream *strm;      /* pointer back to this zlib stream */
    223  1.1    paulus     int   status;        /* as the name implies */
    224  1.1    paulus     Bytef *pending_buf;  /* output still pending */
    225  1.1    paulus     Bytef *pending_out;  /* next pending byte to output to the stream */
    226  1.1    paulus     int   pending;       /* nb of bytes in the pending buffer */
    227  1.1    paulus     uLong adler;         /* adler32 of uncompressed data */
    228  1.1    paulus     int   noheader;      /* suppress zlib header and adler32 */
    229  1.1    paulus     Byte  data_type;     /* UNKNOWN, BINARY or ASCII */
    230  1.1    paulus     Byte  method;        /* STORED (for zip only) or DEFLATED */
    231  1.1    paulus     int	  minCompr;	 /* min size decrease for Z_FLUSH_NOSTORE */
    232  1.1    paulus 
    233  1.1    paulus                 /* used by deflate.c: */
    234  1.1    paulus 
    235  1.1    paulus     uInt  w_size;        /* LZ77 window size (32K by default) */
    236  1.1    paulus     uInt  w_bits;        /* log2(w_size)  (8..16) */
    237  1.1    paulus     uInt  w_mask;        /* w_size - 1 */
    238  1.1    paulus 
    239  1.1    paulus     Bytef *window;
    240  1.1    paulus     /* Sliding window. Input bytes are read into the second half of the window,
    241  1.1    paulus      * and move to the first half later to keep a dictionary of at least wSize
    242  1.1    paulus      * bytes. With this organization, matches are limited to a distance of
    243  1.1    paulus      * wSize-MAX_MATCH bytes, but this ensures that IO is always
    244  1.1    paulus      * performed with a length multiple of the block size. Also, it limits
    245  1.1    paulus      * the window size to 64K, which is quite useful on MSDOS.
    246  1.1    paulus      * To do: use the user input buffer as sliding window.
    247  1.1    paulus      */
    248  1.1    paulus 
    249  1.1    paulus     ulg window_size;
    250  1.1    paulus     /* Actual size of window: 2*wSize, except when the user input buffer
    251  1.1    paulus      * is directly used as sliding window.
    252  1.1    paulus      */
    253  1.1    paulus 
    254  1.1    paulus     Posf *prev;
    255  1.1    paulus     /* Link to older string with same hash index. To limit the size of this
    256  1.1    paulus      * array to 64K, this link is maintained only for the last 32K strings.
    257  1.1    paulus      * An index in this array is thus a window index modulo 32K.
    258  1.1    paulus      */
    259  1.1    paulus 
    260  1.1    paulus     Posf *head; /* Heads of the hash chains or NIL. */
    261  1.1    paulus 
    262  1.1    paulus     uInt  ins_h;          /* hash index of string to be inserted */
    263  1.1    paulus     uInt  hash_size;      /* number of elements in hash table */
    264  1.1    paulus     uInt  hash_bits;      /* log2(hash_size) */
    265  1.1    paulus     uInt  hash_mask;      /* hash_size-1 */
    266  1.1    paulus 
    267  1.1    paulus     uInt  hash_shift;
    268  1.1    paulus     /* Number of bits by which ins_h must be shifted at each input
    269  1.1    paulus      * step. It must be such that after MIN_MATCH steps, the oldest
    270  1.1    paulus      * byte no longer takes part in the hash key, that is:
    271  1.1    paulus      *   hash_shift * MIN_MATCH >= hash_bits
    272  1.1    paulus      */
    273  1.1    paulus 
    274  1.1    paulus     long block_start;
    275  1.1    paulus     /* Window position at the beginning of the current output block. Gets
    276  1.1    paulus      * negative when the window is moved backwards.
    277  1.1    paulus      */
    278  1.1    paulus 
    279  1.1    paulus     uInt match_length;           /* length of best match */
    280  1.1    paulus     IPos prev_match;             /* previous match */
    281  1.1    paulus     int match_available;         /* set if previous match exists */
    282  1.1    paulus     uInt strstart;               /* start of string to insert */
    283  1.1    paulus     uInt match_start;            /* start of matching string */
    284  1.1    paulus     uInt lookahead;              /* number of valid bytes ahead in window */
    285  1.1    paulus 
    286  1.1    paulus     uInt prev_length;
    287  1.1    paulus     /* Length of the best match at previous step. Matches not greater than this
    288  1.1    paulus      * are discarded. This is used in the lazy match evaluation.
    289  1.1    paulus      */
    290  1.1    paulus 
    291  1.1    paulus     uInt max_chain_length;
    292  1.1    paulus     /* To speed up deflation, hash chains are never searched beyond this
    293  1.1    paulus      * length.  A higher limit improves compression ratio but degrades the
    294  1.1    paulus      * speed.
    295  1.1    paulus      */
    296  1.1    paulus 
    297  1.1    paulus     uInt max_lazy_match;
    298  1.1    paulus     /* Attempt to find a better match only when the current match is strictly
    299  1.1    paulus      * smaller than this value. This mechanism is used only for compression
    300  1.1    paulus      * levels >= 4.
    301  1.1    paulus      */
    302  1.1    paulus #   define max_insert_length  max_lazy_match
    303  1.1    paulus     /* Insert new strings in the hash table only if the match length is not
    304  1.1    paulus      * greater than this length. This saves time but degrades compression.
    305  1.1    paulus      * max_insert_length is used only for compression levels <= 3.
    306  1.1    paulus      */
    307  1.1    paulus 
    308  1.1    paulus     int level;    /* compression level (1..9) */
    309  1.1    paulus     int strategy; /* favor or force Huffman coding*/
    310  1.1    paulus 
    311  1.1    paulus     uInt good_match;
    312  1.1    paulus     /* Use a faster search when the previous match is longer than this */
    313  1.1    paulus 
    314  1.1    paulus      int nice_match; /* Stop searching when current match exceeds this */
    315  1.1    paulus 
    316  1.1    paulus                 /* used by trees.c: */
    317  1.1    paulus     /* Didn't use ct_data typedef below to supress compiler warning */
    318  1.1    paulus     struct ct_data_s dyn_ltree[HEAP_SIZE];   /* literal and length tree */
    319  1.1    paulus     struct ct_data_s dyn_dtree[2*D_CODES+1]; /* distance tree */
    320  1.1    paulus     struct ct_data_s bl_tree[2*BL_CODES+1];  /* Huffman tree for bit lengths */
    321  1.1    paulus 
    322  1.1    paulus     struct tree_desc_s l_desc;               /* desc. for literal tree */
    323  1.1    paulus     struct tree_desc_s d_desc;               /* desc. for distance tree */
    324  1.1    paulus     struct tree_desc_s bl_desc;              /* desc. for bit length tree */
    325  1.1    paulus 
    326  1.1    paulus     ush bl_count[MAX_BITS+1];
    327  1.1    paulus     /* number of codes at each bit length for an optimal tree */
    328  1.1    paulus 
    329  1.1    paulus     int heap[2*L_CODES+1];      /* heap used to build the Huffman trees */
    330  1.1    paulus     int heap_len;               /* number of elements in the heap */
    331  1.1    paulus     int heap_max;               /* element of largest frequency */
    332  1.1    paulus     /* The sons of heap[n] are heap[2*n] and heap[2*n+1]. heap[0] is not used.
    333  1.1    paulus      * The same heap array is used to build all trees.
    334  1.1    paulus      */
    335  1.1    paulus 
    336  1.1    paulus     uch depth[2*L_CODES+1];
    337  1.1    paulus     /* Depth of each subtree used as tie breaker for trees of equal frequency
    338  1.1    paulus      */
    339  1.1    paulus 
    340  1.1    paulus     uchf *l_buf;          /* buffer for literals or lengths */
    341  1.1    paulus 
    342  1.1    paulus     uInt  lit_bufsize;
    343  1.1    paulus     /* Size of match buffer for literals/lengths.  There are 4 reasons for
    344  1.1    paulus      * limiting lit_bufsize to 64K:
    345  1.1    paulus      *   - frequencies can be kept in 16 bit counters
    346  1.1    paulus      *   - if compression is not successful for the first block, all input
    347  1.1    paulus      *     data is still in the window so we can still emit a stored block even
    348  1.1    paulus      *     when input comes from standard input.  (This can also be done for
    349  1.1    paulus      *     all blocks if lit_bufsize is not greater than 32K.)
    350  1.1    paulus      *   - if compression is not successful for a file smaller than 64K, we can
    351  1.1    paulus      *     even emit a stored file instead of a stored block (saving 5 bytes).
    352  1.1    paulus      *     This is applicable only for zip (not gzip or zlib).
    353  1.1    paulus      *   - creating new Huffman trees less frequently may not provide fast
    354  1.1    paulus      *     adaptation to changes in the input data statistics. (Take for
    355  1.1    paulus      *     example a binary file with poorly compressible code followed by
    356  1.1    paulus      *     a highly compressible string table.) Smaller buffer sizes give
    357  1.1    paulus      *     fast adaptation but have of course the overhead of transmitting
    358  1.1    paulus      *     trees more frequently.
    359  1.1    paulus      *   - I can't count above 4
    360  1.1    paulus      */
    361  1.1    paulus 
    362  1.1    paulus     uInt last_lit;      /* running index in l_buf */
    363  1.1    paulus 
    364  1.1    paulus     ushf *d_buf;
    365  1.1    paulus     /* Buffer for distances. To simplify the code, d_buf and l_buf have
    366  1.1    paulus      * the same number of elements. To use different lengths, an extra flag
    367  1.1    paulus      * array would be necessary.
    368  1.1    paulus      */
    369  1.1    paulus 
    370  1.1    paulus     ulg opt_len;        /* bit length of current block with optimal trees */
    371  1.1    paulus     ulg static_len;     /* bit length of current block with static trees */
    372  1.1    paulus     ulg compressed_len; /* total bit length of compressed file */
    373  1.1    paulus     uInt matches;       /* number of string matches in current block */
    374  1.1    paulus     int last_eob_len;   /* bit length of EOB code for last block */
    375  1.1    paulus 
    376  1.1    paulus #ifdef DEBUG_ZLIB
    377  1.1    paulus     ulg bits_sent;      /* bit length of the compressed data */
    378  1.1    paulus #endif
    379  1.1    paulus 
    380  1.1    paulus     ush bi_buf;
    381  1.1    paulus     /* Output buffer. bits are inserted starting at the bottom (least
    382  1.1    paulus      * significant bits).
    383  1.1    paulus      */
    384  1.1    paulus     int bi_valid;
    385  1.1    paulus     /* Number of valid bits in bi_buf.  All bits above the last valid bit
    386  1.1    paulus      * are always zero.
    387  1.1    paulus      */
    388  1.1    paulus 
    389  1.1    paulus     uInt blocks_in_packet;
    390  1.1    paulus     /* Number of blocks produced since the last time Z_PACKET_FLUSH
    391  1.1    paulus      * was used.
    392  1.1    paulus      */
    393  1.1    paulus 
    394  1.1    paulus } FAR deflate_state;
    395  1.1    paulus 
    396  1.1    paulus /* Output a byte on the stream.
    397  1.1    paulus  * IN assertion: there is enough room in pending_buf.
    398  1.1    paulus  */
    399  1.1    paulus #define put_byte(s, c) {s->pending_buf[s->pending++] = (c);}
    400  1.1    paulus 
    401  1.1    paulus 
    402  1.1    paulus #define MIN_LOOKAHEAD (MAX_MATCH+MIN_MATCH+1)
    403  1.1    paulus /* Minimum amount of lookahead, except at the end of the input file.
    404  1.1    paulus  * See deflate.c for comments about the MIN_MATCH+1.
    405  1.1    paulus  */
    406  1.1    paulus 
    407  1.1    paulus #define MAX_DIST(s)  ((s)->w_size-MIN_LOOKAHEAD)
    408  1.1    paulus /* In order to simplify the code, particularly on 16 bit machines, match
    409  1.1    paulus  * distances are limited to MAX_DIST instead of WSIZE.
    410  1.1    paulus  */
    411  1.1    paulus 
    412  1.1    paulus         /* in trees.c */
    413  1.1    paulus local void ct_init       OF((deflate_state *s));
    414  1.1    paulus local int  ct_tally      OF((deflate_state *s, int dist, int lc));
    415  1.1    paulus local ulg ct_flush_block OF((deflate_state *s, charf *buf, ulg stored_len,
    416  1.1    paulus 			     int flush));
    417  1.1    paulus local void ct_align      OF((deflate_state *s));
    418  1.1    paulus local void ct_stored_block OF((deflate_state *s, charf *buf, ulg stored_len,
    419  1.1    paulus                           int eof));
    420  1.1    paulus local void ct_stored_type_only OF((deflate_state *s));
    421  1.1    paulus 
    422  1.1    paulus 
    423  1.1    paulus /*+++++*/
    424  1.1    paulus /* deflate.c -- compress data using the deflation algorithm
    425  1.1    paulus  * Copyright (C) 1995 Jean-loup Gailly.
    426  1.1    paulus  * For conditions of distribution and use, see copyright notice in zlib.h
    427  1.1    paulus  */
    428  1.1    paulus 
    429  1.1    paulus /*
    430  1.1    paulus  *  ALGORITHM
    431  1.1    paulus  *
    432  1.1    paulus  *      The "deflation" process depends on being able to identify portions
    433  1.1    paulus  *      of the input text which are identical to earlier input (within a
    434  1.1    paulus  *      sliding window trailing behind the input currently being processed).
    435  1.1    paulus  *
    436  1.1    paulus  *      The most straightforward technique turns out to be the fastest for
    437  1.1    paulus  *      most input files: try all possible matches and select the longest.
    438  1.1    paulus  *      The key feature of this algorithm is that insertions into the string
    439  1.1    paulus  *      dictionary are very simple and thus fast, and deletions are avoided
    440  1.1    paulus  *      completely. Insertions are performed at each input character, whereas
    441  1.1    paulus  *      string matches are performed only when the previous match ends. So it
    442  1.1    paulus  *      is preferable to spend more time in matches to allow very fast string
    443  1.1    paulus  *      insertions and avoid deletions. The matching algorithm for small
    444  1.1    paulus  *      strings is inspired from that of Rabin & Karp. A brute force approach
    445  1.1    paulus  *      is used to find longer strings when a small match has been found.
    446  1.1    paulus  *      A similar algorithm is used in comic (by Jan-Mark Wams) and freeze
    447  1.1    paulus  *      (by Leonid Broukhis).
    448  1.1    paulus  *         A previous version of this file used a more sophisticated algorithm
    449  1.1    paulus  *      (by Fiala and Greene) which is guaranteed to run in linear amortized
    450  1.1    paulus  *      time, but has a larger average cost, uses more memory and is patented.
    451  1.1    paulus  *      However the F&G algorithm may be faster for some highly redundant
    452  1.1    paulus  *      files if the parameter max_chain_length (described below) is too large.
    453  1.1    paulus  *
    454  1.1    paulus  *  ACKNOWLEDGEMENTS
    455  1.1    paulus  *
    456  1.1    paulus  *      The idea of lazy evaluation of matches is due to Jan-Mark Wams, and
    457  1.1    paulus  *      I found it in 'freeze' written by Leonid Broukhis.
    458  1.1    paulus  *      Thanks to many people for bug reports and testing.
    459  1.1    paulus  *
    460  1.1    paulus  *  REFERENCES
    461  1.1    paulus  *
    462  1.1    paulus  *      Deutsch, L.P.,"'Deflate' Compressed Data Format Specification".
    463  1.1    paulus  *      Available in ftp.uu.net:/pub/archiving/zip/doc/deflate-1.1.doc
    464  1.1    paulus  *
    465  1.1    paulus  *      A description of the Rabin and Karp algorithm is given in the book
    466  1.1    paulus  *         "Algorithms" by R. Sedgewick, Addison-Wesley, p252.
    467  1.1    paulus  *
    468  1.1    paulus  *      Fiala,E.R., and Greene,D.H.
    469  1.1    paulus  *         Data Compression with Finite Windows, Comm.ACM, 32,4 (1989) 490-595
    470  1.1    paulus  *
    471  1.1    paulus  */
    472  1.1    paulus 
    473  1.1    paulus /* From: deflate.c,v 1.8 1995/05/03 17:27:08 jloup Exp */
    474  1.1    paulus 
    475  1.2  christos #if 0
    476  1.1    paulus local char zlib_copyright[] = " deflate Copyright 1995 Jean-loup Gailly ";
    477  1.2  christos #endif
    478  1.1    paulus /*
    479  1.1    paulus   If you use the zlib library in a product, an acknowledgment is welcome
    480  1.1    paulus   in the documentation of your product. If for some reason you cannot
    481  1.1    paulus   include such an acknowledgment, I would appreciate that you keep this
    482  1.1    paulus   copyright string in the executable of your product.
    483  1.1    paulus  */
    484  1.1    paulus 
    485  1.1    paulus #define NIL 0
    486  1.1    paulus /* Tail of hash chains */
    487  1.1    paulus 
    488  1.1    paulus #ifndef TOO_FAR
    489  1.1    paulus #  define TOO_FAR 4096
    490  1.1    paulus #endif
    491  1.1    paulus /* Matches of length 3 are discarded if their distance exceeds TOO_FAR */
    492  1.1    paulus 
    493  1.1    paulus #define MIN_LOOKAHEAD (MAX_MATCH+MIN_MATCH+1)
    494  1.1    paulus /* Minimum amount of lookahead, except at the end of the input file.
    495  1.1    paulus  * See deflate.c for comments about the MIN_MATCH+1.
    496  1.1    paulus  */
    497  1.1    paulus 
    498  1.1    paulus /* Values for max_lazy_match, good_match and max_chain_length, depending on
    499  1.1    paulus  * the desired pack level (0..9). The values given below have been tuned to
    500  1.1    paulus  * exclude worst case performance for pathological files. Better values may be
    501  1.1    paulus  * found for specific files.
    502  1.1    paulus  */
    503  1.1    paulus 
    504  1.1    paulus typedef struct config_s {
    505  1.1    paulus    ush good_length; /* reduce lazy search above this match length */
    506  1.1    paulus    ush max_lazy;    /* do not perform lazy search above this match length */
    507  1.1    paulus    ush nice_length; /* quit search above this match length */
    508  1.1    paulus    ush max_chain;
    509  1.1    paulus } config;
    510  1.1    paulus 
    511  1.1    paulus local config configuration_table[10] = {
    512  1.1    paulus /*      good lazy nice chain */
    513  1.1    paulus /* 0 */ {0,    0,  0,    0},  /* store only */
    514  1.1    paulus /* 1 */ {4,    4,  8,    4},  /* maximum speed, no lazy matches */
    515  1.1    paulus /* 2 */ {4,    5, 16,    8},
    516  1.1    paulus /* 3 */ {4,    6, 32,   32},
    517  1.1    paulus 
    518  1.1    paulus /* 4 */ {4,    4, 16,   16},  /* lazy matches */
    519  1.1    paulus /* 5 */ {8,   16, 32,   32},
    520  1.1    paulus /* 6 */ {8,   16, 128, 128},
    521  1.1    paulus /* 7 */ {8,   32, 128, 256},
    522  1.1    paulus /* 8 */ {32, 128, 258, 1024},
    523  1.1    paulus /* 9 */ {32, 258, 258, 4096}}; /* maximum compression */
    524  1.1    paulus 
    525  1.1    paulus /* Note: the deflate() code requires max_lazy >= MIN_MATCH and max_chain >= 4
    526  1.1    paulus  * For deflate_fast() (levels <= 3) good is ignored and lazy has a different
    527  1.1    paulus  * meaning.
    528  1.1    paulus  */
    529  1.1    paulus 
    530  1.1    paulus #define EQUAL 0
    531  1.1    paulus /* result of memcmp for equal strings */
    532  1.1    paulus 
    533  1.1    paulus /* ===========================================================================
    534  1.1    paulus  *  Prototypes for local functions.
    535  1.1    paulus  */
    536  1.1    paulus 
    537  1.1    paulus local void fill_window   OF((deflate_state *s));
    538  1.1    paulus local int  deflate_fast  OF((deflate_state *s, int flush));
    539  1.1    paulus local int  deflate_slow  OF((deflate_state *s, int flush));
    540  1.1    paulus local void lm_init       OF((deflate_state *s));
    541  1.1    paulus local int longest_match  OF((deflate_state *s, IPos cur_match));
    542  1.1    paulus local void putShortMSB   OF((deflate_state *s, uInt b));
    543  1.1    paulus local void flush_pending OF((z_stream *strm));
    544  1.1    paulus local int read_buf       OF((z_stream *strm, charf *buf, unsigned size));
    545  1.1    paulus #ifdef ASMV
    546  1.1    paulus       void match_init OF((void)); /* asm code initialization */
    547  1.1    paulus #endif
    548  1.1    paulus 
    549  1.1    paulus #ifdef DEBUG_ZLIB
    550  1.1    paulus local  void check_match OF((deflate_state *s, IPos start, IPos match,
    551  1.1    paulus                             int length));
    552  1.1    paulus #endif
    553  1.1    paulus 
    554  1.1    paulus 
    555  1.1    paulus /* ===========================================================================
    556  1.1    paulus  * Update a hash value with the given input byte
    557  1.1    paulus  * IN  assertion: all calls to to UPDATE_HASH are made with consecutive
    558  1.1    paulus  *    input characters, so that a running hash key can be computed from the
    559  1.1    paulus  *    previous key instead of complete recalculation each time.
    560  1.1    paulus  */
    561  1.1    paulus #define UPDATE_HASH(s,h,c) (h = (((h)<<s->hash_shift) ^ (c)) & s->hash_mask)
    562  1.1    paulus 
    563  1.1    paulus 
    564  1.1    paulus /* ===========================================================================
    565  1.1    paulus  * Insert string str in the dictionary and set match_head to the previous head
    566  1.1    paulus  * of the hash chain (the most recent string with same hash key). Return
    567  1.1    paulus  * the previous length of the hash chain.
    568  1.1    paulus  * IN  assertion: all calls to to INSERT_STRING are made with consecutive
    569  1.1    paulus  *    input characters and the first MIN_MATCH bytes of str are valid
    570  1.1    paulus  *    (except for the last MIN_MATCH-1 bytes of the input file).
    571  1.1    paulus  */
    572  1.1    paulus #define INSERT_STRING(s, str, match_head) \
    573  1.1    paulus    (UPDATE_HASH(s, s->ins_h, s->window[(str) + (MIN_MATCH-1)]), \
    574  1.1    paulus     s->prev[(str) & s->w_mask] = match_head = s->head[s->ins_h], \
    575  1.1    paulus     s->head[s->ins_h] = (str))
    576  1.1    paulus 
    577  1.1    paulus /* ===========================================================================
    578  1.1    paulus  * Initialize the hash table (avoiding 64K overflow for 16 bit systems).
    579  1.1    paulus  * prev[] will be initialized on the fly.
    580  1.1    paulus  */
    581  1.1    paulus #define CLEAR_HASH(s) \
    582  1.1    paulus     s->head[s->hash_size-1] = NIL; \
    583  1.1    paulus     zmemzero((charf *)s->head, (unsigned)(s->hash_size-1)*sizeof(*s->head));
    584  1.1    paulus 
    585  1.1    paulus /* ========================================================================= */
    586  1.1    paulus int deflateInit (strm, level)
    587  1.1    paulus     z_stream *strm;
    588  1.1    paulus     int level;
    589  1.1    paulus {
    590  1.1    paulus     return deflateInit2 (strm, level, DEFLATED, MAX_WBITS, DEF_MEM_LEVEL,
    591  1.1    paulus 			 0, 0);
    592  1.1    paulus     /* To do: ignore strm->next_in if we use it as window */
    593  1.1    paulus }
    594  1.1    paulus 
    595  1.1    paulus /* ========================================================================= */
    596  1.1    paulus int deflateInit2 (strm, level, method, windowBits, memLevel,
    597  1.1    paulus 		  strategy, minCompression)
    598  1.1    paulus     z_stream *strm;
    599  1.1    paulus     int  level;
    600  1.1    paulus     int  method;
    601  1.1    paulus     int  windowBits;
    602  1.1    paulus     int  memLevel;
    603  1.1    paulus     int  strategy;
    604  1.1    paulus     int  minCompression;
    605  1.1    paulus {
    606  1.1    paulus     deflate_state *s;
    607  1.1    paulus     int noheader = 0;
    608  1.1    paulus 
    609  1.1    paulus     if (strm == Z_NULL) return Z_STREAM_ERROR;
    610  1.1    paulus 
    611  1.1    paulus     strm->msg = Z_NULL;
    612  1.1    paulus /*    if (strm->zalloc == Z_NULL) strm->zalloc = zcalloc; */
    613  1.1    paulus /*    if (strm->zfree == Z_NULL) strm->zfree = zcfree; */
    614  1.1    paulus 
    615  1.1    paulus     if (level == Z_DEFAULT_COMPRESSION) level = 6;
    616  1.1    paulus 
    617  1.1    paulus     if (windowBits < 0) { /* undocumented feature: suppress zlib header */
    618  1.1    paulus         noheader = 1;
    619  1.1    paulus         windowBits = -windowBits;
    620  1.1    paulus     }
    621  1.1    paulus     if (memLevel < 1 || memLevel > MAX_MEM_LEVEL || method != DEFLATED ||
    622  1.1    paulus         windowBits < 8 || windowBits > 15 || level < 1 || level > 9) {
    623  1.1    paulus         return Z_STREAM_ERROR;
    624  1.1    paulus     }
    625  1.1    paulus     s = (deflate_state *) ZALLOC(strm, 1, sizeof(deflate_state));
    626  1.1    paulus     if (s == Z_NULL) return Z_MEM_ERROR;
    627  1.1    paulus     strm->state = (struct internal_state FAR *)s;
    628  1.1    paulus     s->strm = strm;
    629  1.1    paulus 
    630  1.1    paulus     s->noheader = noheader;
    631  1.1    paulus     s->w_bits = windowBits;
    632  1.1    paulus     s->w_size = 1 << s->w_bits;
    633  1.1    paulus     s->w_mask = s->w_size - 1;
    634  1.1    paulus 
    635  1.1    paulus     s->hash_bits = memLevel + 7;
    636  1.1    paulus     s->hash_size = 1 << s->hash_bits;
    637  1.1    paulus     s->hash_mask = s->hash_size - 1;
    638  1.1    paulus     s->hash_shift =  ((s->hash_bits+MIN_MATCH-1)/MIN_MATCH);
    639  1.1    paulus 
    640  1.1    paulus     s->window = (Bytef *) ZALLOC(strm, s->w_size, 2*sizeof(Byte));
    641  1.1    paulus     s->prev   = (Posf *)  ZALLOC(strm, s->w_size, sizeof(Pos));
    642  1.1    paulus     s->head   = (Posf *)  ZALLOC(strm, s->hash_size, sizeof(Pos));
    643  1.1    paulus 
    644  1.1    paulus     s->lit_bufsize = 1 << (memLevel + 6); /* 16K elements by default */
    645  1.1    paulus 
    646  1.1    paulus     s->pending_buf = (uchf *) ZALLOC(strm, s->lit_bufsize, 2*sizeof(ush));
    647  1.1    paulus 
    648  1.1    paulus     if (s->window == Z_NULL || s->prev == Z_NULL || s->head == Z_NULL ||
    649  1.1    paulus         s->pending_buf == Z_NULL) {
    650  1.1    paulus         strm->msg = z_errmsg[1-Z_MEM_ERROR];
    651  1.1    paulus         deflateEnd (strm);
    652  1.1    paulus         return Z_MEM_ERROR;
    653  1.1    paulus     }
    654  1.1    paulus     s->d_buf = (ushf *) &(s->pending_buf[s->lit_bufsize]);
    655  1.1    paulus     s->l_buf = (uchf *) &(s->pending_buf[3*s->lit_bufsize]);
    656  1.1    paulus     /* We overlay pending_buf and d_buf+l_buf. This works since the average
    657  1.1    paulus      * output size for (length,distance) codes is <= 32 bits (worst case
    658  1.1    paulus      * is 15+15+13=33).
    659  1.1    paulus      */
    660  1.1    paulus 
    661  1.1    paulus     s->level = level;
    662  1.1    paulus     s->strategy = strategy;
    663  1.1    paulus     s->method = (Byte)method;
    664  1.1    paulus     s->minCompr = minCompression;
    665  1.1    paulus     s->blocks_in_packet = 0;
    666  1.1    paulus 
    667  1.1    paulus     return deflateReset(strm);
    668  1.1    paulus }
    669  1.1    paulus 
    670  1.1    paulus /* ========================================================================= */
    671  1.1    paulus int deflateReset (strm)
    672  1.1    paulus     z_stream *strm;
    673  1.1    paulus {
    674  1.1    paulus     deflate_state *s;
    675  1.1    paulus 
    676  1.1    paulus     if (strm == Z_NULL || strm->state == Z_NULL ||
    677  1.1    paulus         strm->zalloc == Z_NULL || strm->zfree == Z_NULL) return Z_STREAM_ERROR;
    678  1.1    paulus 
    679  1.1    paulus     strm->total_in = strm->total_out = 0;
    680  1.1    paulus     strm->msg = Z_NULL; /* use zfree if we ever allocate msg dynamically */
    681  1.1    paulus     strm->data_type = Z_UNKNOWN;
    682  1.1    paulus 
    683  1.1    paulus     s = (deflate_state *)strm->state;
    684  1.1    paulus     s->pending = 0;
    685  1.1    paulus     s->pending_out = s->pending_buf;
    686  1.1    paulus 
    687  1.1    paulus     if (s->noheader < 0) {
    688  1.1    paulus         s->noheader = 0; /* was set to -1 by deflate(..., Z_FINISH); */
    689  1.1    paulus     }
    690  1.1    paulus     s->status = s->noheader ? BUSY_STATE : INIT_STATE;
    691  1.1    paulus     s->adler = 1;
    692  1.1    paulus 
    693  1.1    paulus     ct_init(s);
    694  1.1    paulus     lm_init(s);
    695  1.1    paulus 
    696  1.1    paulus     return Z_OK;
    697  1.1    paulus }
    698  1.1    paulus 
    699  1.1    paulus /* =========================================================================
    700  1.1    paulus  * Put a short in the pending buffer. The 16-bit value is put in MSB order.
    701  1.1    paulus  * IN assertion: the stream state is correct and there is enough room in
    702  1.1    paulus  * pending_buf.
    703  1.1    paulus  */
    704  1.1    paulus local void putShortMSB (s, b)
    705  1.1    paulus     deflate_state *s;
    706  1.1    paulus     uInt b;
    707  1.1    paulus {
    708  1.1    paulus     put_byte(s, (Byte)(b >> 8));
    709  1.1    paulus     put_byte(s, (Byte)(b & 0xff));
    710  1.1    paulus }
    711  1.1    paulus 
    712  1.1    paulus /* =========================================================================
    713  1.1    paulus  * Flush as much pending output as possible.
    714  1.1    paulus  */
    715  1.1    paulus local void flush_pending(strm)
    716  1.1    paulus     z_stream *strm;
    717  1.1    paulus {
    718  1.1    paulus     deflate_state *state = (deflate_state *) strm->state;
    719  1.1    paulus     unsigned len = state->pending;
    720  1.1    paulus 
    721  1.1    paulus     if (len > strm->avail_out) len = strm->avail_out;
    722  1.1    paulus     if (len == 0) return;
    723  1.1    paulus 
    724  1.1    paulus     if (strm->next_out != NULL) {
    725  1.1    paulus 	zmemcpy(strm->next_out, state->pending_out, len);
    726  1.1    paulus 	strm->next_out += len;
    727  1.1    paulus     }
    728  1.1    paulus     state->pending_out += len;
    729  1.1    paulus     strm->total_out += len;
    730  1.1    paulus     strm->avail_out -= len;
    731  1.1    paulus     state->pending -= len;
    732  1.1    paulus     if (state->pending == 0) {
    733  1.1    paulus         state->pending_out = state->pending_buf;
    734  1.1    paulus     }
    735  1.1    paulus }
    736  1.1    paulus 
    737  1.1    paulus /* ========================================================================= */
    738  1.1    paulus int deflate (strm, flush)
    739  1.1    paulus     z_stream *strm;
    740  1.1    paulus     int flush;
    741  1.1    paulus {
    742  1.1    paulus     deflate_state *state = (deflate_state *) strm->state;
    743  1.1    paulus 
    744  1.1    paulus     if (strm == Z_NULL || state == Z_NULL) return Z_STREAM_ERROR;
    745  1.1    paulus 
    746  1.1    paulus     if (strm->next_in == Z_NULL && strm->avail_in != 0) {
    747  1.1    paulus         ERR_RETURN(strm, Z_STREAM_ERROR);
    748  1.1    paulus     }
    749  1.1    paulus     if (strm->avail_out == 0) ERR_RETURN(strm, Z_BUF_ERROR);
    750  1.1    paulus 
    751  1.1    paulus     state->strm = strm; /* just in case */
    752  1.1    paulus 
    753  1.1    paulus     /* Write the zlib header */
    754  1.1    paulus     if (state->status == INIT_STATE) {
    755  1.1    paulus 
    756  1.1    paulus         uInt header = (DEFLATED + ((state->w_bits-8)<<4)) << 8;
    757  1.1    paulus         uInt level_flags = (state->level-1) >> 1;
    758  1.1    paulus 
    759  1.1    paulus         if (level_flags > 3) level_flags = 3;
    760  1.1    paulus         header |= (level_flags << 6);
    761  1.1    paulus         header += 31 - (header % 31);
    762  1.1    paulus 
    763  1.1    paulus         state->status = BUSY_STATE;
    764  1.1    paulus         putShortMSB(state, header);
    765  1.1    paulus     }
    766  1.1    paulus 
    767  1.1    paulus     /* Flush as much pending output as possible */
    768  1.1    paulus     if (state->pending != 0) {
    769  1.1    paulus         flush_pending(strm);
    770  1.1    paulus         if (strm->avail_out == 0) return Z_OK;
    771  1.1    paulus     }
    772  1.1    paulus 
    773  1.1    paulus     /* If we came back in here to get the last output from
    774  1.1    paulus      * a previous flush, we're done for now.
    775  1.1    paulus      */
    776  1.1    paulus     if (state->status == FLUSH_STATE) {
    777  1.1    paulus 	state->status = BUSY_STATE;
    778  1.1    paulus 	if (flush != Z_NO_FLUSH && flush != Z_FINISH)
    779  1.1    paulus 	    return Z_OK;
    780  1.1    paulus     }
    781  1.1    paulus 
    782  1.1    paulus     /* User must not provide more input after the first FINISH: */
    783  1.1    paulus     if (state->status == FINISH_STATE && strm->avail_in != 0) {
    784  1.1    paulus         ERR_RETURN(strm, Z_BUF_ERROR);
    785  1.1    paulus     }
    786  1.1    paulus 
    787  1.1    paulus     /* Start a new block or continue the current one.
    788  1.1    paulus      */
    789  1.1    paulus     if (strm->avail_in != 0 || state->lookahead != 0 ||
    790  1.1    paulus         (flush == Z_FINISH && state->status != FINISH_STATE)) {
    791  1.1    paulus         int quit;
    792  1.1    paulus 
    793  1.1    paulus         if (flush == Z_FINISH) {
    794  1.1    paulus             state->status = FINISH_STATE;
    795  1.1    paulus         }
    796  1.1    paulus         if (state->level <= 3) {
    797  1.1    paulus             quit = deflate_fast(state, flush);
    798  1.1    paulus         } else {
    799  1.1    paulus             quit = deflate_slow(state, flush);
    800  1.1    paulus         }
    801  1.1    paulus         if (quit || strm->avail_out == 0)
    802  1.1    paulus 	    return Z_OK;
    803  1.1    paulus         /* If flush != Z_NO_FLUSH && avail_out == 0, the next call
    804  1.1    paulus          * of deflate should use the same flush parameter to make sure
    805  1.1    paulus          * that the flush is complete. So we don't have to output an
    806  1.1    paulus          * empty block here, this will be done at next call. This also
    807  1.1    paulus          * ensures that for a very small output buffer, we emit at most
    808  1.1    paulus          * one empty block.
    809  1.1    paulus          */
    810  1.1    paulus     }
    811  1.1    paulus 
    812  1.1    paulus     /* If a flush was requested, we have a little more to output now. */
    813  1.1    paulus     if (flush != Z_NO_FLUSH && flush != Z_FINISH
    814  1.1    paulus 	&& state->status != FINISH_STATE) {
    815  1.1    paulus 	switch (flush) {
    816  1.1    paulus 	case Z_PARTIAL_FLUSH:
    817  1.1    paulus 	    ct_align(state);
    818  1.1    paulus 	    break;
    819  1.1    paulus 	case Z_PACKET_FLUSH:
    820  1.1    paulus 	    /* Output just the 3-bit `stored' block type value,
    821  1.1    paulus 	       but not a zero length. */
    822  1.1    paulus 	    ct_stored_type_only(state);
    823  1.1    paulus 	    break;
    824  1.1    paulus 	default:
    825  1.1    paulus 	    ct_stored_block(state, (char*)0, 0L, 0);
    826  1.1    paulus 	    /* For a full flush, this empty block will be recognized
    827  1.1    paulus 	     * as a special marker by inflate_sync().
    828  1.1    paulus 	     */
    829  1.1    paulus 	    if (flush == Z_FULL_FLUSH) {
    830  1.1    paulus 		CLEAR_HASH(state);             /* forget history */
    831  1.1    paulus 	    }
    832  1.1    paulus 	}
    833  1.1    paulus 	flush_pending(strm);
    834  1.1    paulus 	if (strm->avail_out == 0) {
    835  1.1    paulus 	    /* We'll have to come back to get the rest of the output;
    836  1.1    paulus 	     * this ensures we don't output a second zero-length stored
    837  1.1    paulus 	     * block (or whatever).
    838  1.1    paulus 	     */
    839  1.1    paulus 	    state->status = FLUSH_STATE;
    840  1.1    paulus 	    return Z_OK;
    841  1.1    paulus 	}
    842  1.1    paulus     }
    843  1.1    paulus 
    844  1.1    paulus     Assert(strm->avail_out > 0, "bug2");
    845  1.1    paulus 
    846  1.1    paulus     if (flush != Z_FINISH) return Z_OK;
    847  1.1    paulus     if (state->noheader) return Z_STREAM_END;
    848  1.1    paulus 
    849  1.1    paulus     /* Write the zlib trailer (adler32) */
    850  1.1    paulus     putShortMSB(state, (uInt)(state->adler >> 16));
    851  1.1    paulus     putShortMSB(state, (uInt)(state->adler & 0xffff));
    852  1.1    paulus     flush_pending(strm);
    853  1.1    paulus     /* If avail_out is zero, the application will call deflate again
    854  1.1    paulus      * to flush the rest.
    855  1.1    paulus      */
    856  1.1    paulus     state->noheader = -1; /* write the trailer only once! */
    857  1.1    paulus     return state->pending != 0 ? Z_OK : Z_STREAM_END;
    858  1.1    paulus }
    859  1.1    paulus 
    860  1.1    paulus /* ========================================================================= */
    861  1.1    paulus int deflateEnd (strm)
    862  1.1    paulus     z_stream *strm;
    863  1.1    paulus {
    864  1.1    paulus     deflate_state *state = (deflate_state *) strm->state;
    865  1.1    paulus 
    866  1.1    paulus     if (strm == Z_NULL || state == Z_NULL) return Z_STREAM_ERROR;
    867  1.1    paulus 
    868  1.1    paulus     TRY_FREE(strm, state->window, state->w_size * 2 * sizeof(Byte));
    869  1.1    paulus     TRY_FREE(strm, state->prev, state->w_size * sizeof(Pos));
    870  1.1    paulus     TRY_FREE(strm, state->head, state->hash_size * sizeof(Pos));
    871  1.1    paulus     TRY_FREE(strm, state->pending_buf, state->lit_bufsize * 2 * sizeof(ush));
    872  1.1    paulus 
    873  1.1    paulus     ZFREE(strm, state, sizeof(deflate_state));
    874  1.1    paulus     strm->state = Z_NULL;
    875  1.1    paulus 
    876  1.1    paulus     return Z_OK;
    877  1.1    paulus }
    878  1.1    paulus 
    879  1.1    paulus /* ===========================================================================
    880  1.1    paulus  * Read a new buffer from the current input stream, update the adler32
    881  1.1    paulus  * and total number of bytes read.
    882  1.1    paulus  */
    883  1.1    paulus local int read_buf(strm, buf, size)
    884  1.1    paulus     z_stream *strm;
    885  1.1    paulus     charf *buf;
    886  1.1    paulus     unsigned size;
    887  1.1    paulus {
    888  1.1    paulus     unsigned len = strm->avail_in;
    889  1.1    paulus     deflate_state *state = (deflate_state *) strm->state;
    890  1.1    paulus 
    891  1.1    paulus     if (len > size) len = size;
    892  1.1    paulus     if (len == 0) return 0;
    893  1.1    paulus 
    894  1.1    paulus     strm->avail_in  -= len;
    895  1.1    paulus 
    896  1.1    paulus     if (!state->noheader) {
    897  1.1    paulus         state->adler = adler32(state->adler, strm->next_in, len);
    898  1.1    paulus     }
    899  1.1    paulus     zmemcpy(buf, strm->next_in, len);
    900  1.1    paulus     strm->next_in  += len;
    901  1.1    paulus     strm->total_in += len;
    902  1.1    paulus 
    903  1.1    paulus     return (int)len;
    904  1.1    paulus }
    905  1.1    paulus 
    906  1.1    paulus /* ===========================================================================
    907  1.1    paulus  * Initialize the "longest match" routines for a new zlib stream
    908  1.1    paulus  */
    909  1.1    paulus local void lm_init (s)
    910  1.1    paulus     deflate_state *s;
    911  1.1    paulus {
    912  1.1    paulus     s->window_size = (ulg)2L*s->w_size;
    913  1.1    paulus 
    914  1.1    paulus     CLEAR_HASH(s);
    915  1.1    paulus 
    916  1.1    paulus     /* Set the default configuration parameters:
    917  1.1    paulus      */
    918  1.1    paulus     s->max_lazy_match   = configuration_table[s->level].max_lazy;
    919  1.1    paulus     s->good_match       = configuration_table[s->level].good_length;
    920  1.1    paulus     s->nice_match       = configuration_table[s->level].nice_length;
    921  1.1    paulus     s->max_chain_length = configuration_table[s->level].max_chain;
    922  1.1    paulus 
    923  1.1    paulus     s->strstart = 0;
    924  1.1    paulus     s->block_start = 0L;
    925  1.1    paulus     s->lookahead = 0;
    926  1.1    paulus     s->match_length = MIN_MATCH-1;
    927  1.1    paulus     s->match_available = 0;
    928  1.1    paulus     s->ins_h = 0;
    929  1.1    paulus #ifdef ASMV
    930  1.1    paulus     match_init(); /* initialize the asm code */
    931  1.1    paulus #endif
    932  1.1    paulus }
    933  1.1    paulus 
    934  1.1    paulus /* ===========================================================================
    935  1.1    paulus  * Set match_start to the longest match starting at the given string and
    936  1.1    paulus  * return its length. Matches shorter or equal to prev_length are discarded,
    937  1.1    paulus  * in which case the result is equal to prev_length and match_start is
    938  1.1    paulus  * garbage.
    939  1.1    paulus  * IN assertions: cur_match is the head of the hash chain for the current
    940  1.1    paulus  *   string (strstart) and its distance is <= MAX_DIST, and prev_length >= 1
    941  1.1    paulus  */
    942  1.1    paulus #ifndef ASMV
    943  1.1    paulus /* For 80x86 and 680x0, an optimized version will be provided in match.asm or
    944  1.1    paulus  * match.S. The code will be functionally equivalent.
    945  1.1    paulus  */
    946  1.1    paulus local int longest_match(s, cur_match)
    947  1.1    paulus     deflate_state *s;
    948  1.1    paulus     IPos cur_match;                             /* current match */
    949  1.1    paulus {
    950  1.1    paulus     unsigned chain_length = s->max_chain_length;/* max hash chain length */
    951  1.1    paulus     register Bytef *scan = s->window + s->strstart; /* current string */
    952  1.1    paulus     register Bytef *match;                       /* matched string */
    953  1.1    paulus     register int len;                           /* length of current match */
    954  1.1    paulus     int best_len = s->prev_length;              /* best match length so far */
    955  1.1    paulus     IPos limit = s->strstart > (IPos)MAX_DIST(s) ?
    956  1.1    paulus         s->strstart - (IPos)MAX_DIST(s) : NIL;
    957  1.1    paulus     /* Stop when cur_match becomes <= limit. To simplify the code,
    958  1.1    paulus      * we prevent matches with the string of window index 0.
    959  1.1    paulus      */
    960  1.1    paulus     Posf *prev = s->prev;
    961  1.1    paulus     uInt wmask = s->w_mask;
    962  1.1    paulus 
    963  1.1    paulus #ifdef UNALIGNED_OK
    964  1.1    paulus     /* Compare two bytes at a time. Note: this is not always beneficial.
    965  1.1    paulus      * Try with and without -DUNALIGNED_OK to check.
    966  1.1    paulus      */
    967  1.1    paulus     register Bytef *strend = s->window + s->strstart + MAX_MATCH - 1;
    968  1.1    paulus     register ush scan_start = *(ushf*)scan;
    969  1.1    paulus     register ush scan_end   = *(ushf*)(scan+best_len-1);
    970  1.1    paulus #else
    971  1.1    paulus     register Bytef *strend = s->window + s->strstart + MAX_MATCH;
    972  1.1    paulus     register Byte scan_end1  = scan[best_len-1];
    973  1.1    paulus     register Byte scan_end   = scan[best_len];
    974  1.1    paulus #endif
    975  1.1    paulus 
    976  1.1    paulus     /* The code is optimized for HASH_BITS >= 8 and MAX_MATCH-2 multiple of 16.
    977  1.1    paulus      * It is easy to get rid of this optimization if necessary.
    978  1.1    paulus      */
    979  1.1    paulus     Assert(s->hash_bits >= 8 && MAX_MATCH == 258, "Code too clever");
    980  1.1    paulus 
    981  1.1    paulus     /* Do not waste too much time if we already have a good match: */
    982  1.1    paulus     if (s->prev_length >= s->good_match) {
    983  1.1    paulus         chain_length >>= 2;
    984  1.1    paulus     }
    985  1.1    paulus     Assert((ulg)s->strstart <= s->window_size-MIN_LOOKAHEAD, "need lookahead");
    986  1.1    paulus 
    987  1.1    paulus     do {
    988  1.1    paulus         Assert(cur_match < s->strstart, "no future");
    989  1.1    paulus         match = s->window + cur_match;
    990  1.1    paulus 
    991  1.1    paulus         /* Skip to next match if the match length cannot increase
    992  1.1    paulus          * or if the match length is less than 2:
    993  1.1    paulus          */
    994  1.1    paulus #if (defined(UNALIGNED_OK) && MAX_MATCH == 258)
    995  1.1    paulus         /* This code assumes sizeof(unsigned short) == 2. Do not use
    996  1.1    paulus          * UNALIGNED_OK if your compiler uses a different size.
    997  1.1    paulus          */
    998  1.1    paulus         if (*(ushf*)(match+best_len-1) != scan_end ||
    999  1.1    paulus             *(ushf*)match != scan_start) continue;
   1000  1.1    paulus 
   1001  1.1    paulus         /* It is not necessary to compare scan[2] and match[2] since they are
   1002  1.1    paulus          * always equal when the other bytes match, given that the hash keys
   1003  1.1    paulus          * are equal and that HASH_BITS >= 8. Compare 2 bytes at a time at
   1004  1.1    paulus          * strstart+3, +5, ... up to strstart+257. We check for insufficient
   1005  1.1    paulus          * lookahead only every 4th comparison; the 128th check will be made
   1006  1.1    paulus          * at strstart+257. If MAX_MATCH-2 is not a multiple of 8, it is
   1007  1.1    paulus          * necessary to put more guard bytes at the end of the window, or
   1008  1.1    paulus          * to check more often for insufficient lookahead.
   1009  1.1    paulus          */
   1010  1.1    paulus         Assert(scan[2] == match[2], "scan[2]?");
   1011  1.1    paulus         scan++, match++;
   1012  1.1    paulus         do {
   1013  1.1    paulus         } while (*(ushf*)(scan+=2) == *(ushf*)(match+=2) &&
   1014  1.1    paulus                  *(ushf*)(scan+=2) == *(ushf*)(match+=2) &&
   1015  1.1    paulus                  *(ushf*)(scan+=2) == *(ushf*)(match+=2) &&
   1016  1.1    paulus                  *(ushf*)(scan+=2) == *(ushf*)(match+=2) &&
   1017  1.1    paulus                  scan < strend);
   1018  1.1    paulus         /* The funny "do {}" generates better code on most compilers */
   1019  1.1    paulus 
   1020  1.1    paulus         /* Here, scan <= window+strstart+257 */
   1021  1.1    paulus         Assert(scan <= s->window+(unsigned)(s->window_size-1), "wild scan");
   1022  1.1    paulus         if (*scan == *match) scan++;
   1023  1.1    paulus 
   1024  1.1    paulus         len = (MAX_MATCH - 1) - (int)(strend-scan);
   1025  1.1    paulus         scan = strend - (MAX_MATCH-1);
   1026  1.1    paulus 
   1027  1.1    paulus #else /* UNALIGNED_OK */
   1028  1.1    paulus 
   1029  1.1    paulus         if (match[best_len]   != scan_end  ||
   1030  1.1    paulus             match[best_len-1] != scan_end1 ||
   1031  1.1    paulus             *match            != *scan     ||
   1032  1.1    paulus             *++match          != scan[1])      continue;
   1033  1.1    paulus 
   1034  1.1    paulus         /* The check at best_len-1 can be removed because it will be made
   1035  1.1    paulus          * again later. (This heuristic is not always a win.)
   1036  1.1    paulus          * It is not necessary to compare scan[2] and match[2] since they
   1037  1.1    paulus          * are always equal when the other bytes match, given that
   1038  1.1    paulus          * the hash keys are equal and that HASH_BITS >= 8.
   1039  1.1    paulus          */
   1040  1.1    paulus         scan += 2, match++;
   1041  1.1    paulus         Assert(*scan == *match, "match[2]?");
   1042  1.1    paulus 
   1043  1.1    paulus         /* We check for insufficient lookahead only every 8th comparison;
   1044  1.1    paulus          * the 256th check will be made at strstart+258.
   1045  1.1    paulus          */
   1046  1.1    paulus         do {
   1047  1.1    paulus         } while (*++scan == *++match && *++scan == *++match &&
   1048  1.1    paulus                  *++scan == *++match && *++scan == *++match &&
   1049  1.1    paulus                  *++scan == *++match && *++scan == *++match &&
   1050  1.1    paulus                  *++scan == *++match && *++scan == *++match &&
   1051  1.1    paulus                  scan < strend);
   1052  1.1    paulus 
   1053  1.1    paulus         Assert(scan <= s->window+(unsigned)(s->window_size-1), "wild scan");
   1054  1.1    paulus 
   1055  1.1    paulus         len = MAX_MATCH - (int)(strend - scan);
   1056  1.1    paulus         scan = strend - MAX_MATCH;
   1057  1.1    paulus 
   1058  1.1    paulus #endif /* UNALIGNED_OK */
   1059  1.1    paulus 
   1060  1.1    paulus         if (len > best_len) {
   1061  1.1    paulus             s->match_start = cur_match;
   1062  1.1    paulus             best_len = len;
   1063  1.1    paulus             if (len >= s->nice_match) break;
   1064  1.1    paulus #ifdef UNALIGNED_OK
   1065  1.1    paulus             scan_end = *(ushf*)(scan+best_len-1);
   1066  1.1    paulus #else
   1067  1.1    paulus             scan_end1  = scan[best_len-1];
   1068  1.1    paulus             scan_end   = scan[best_len];
   1069  1.1    paulus #endif
   1070  1.1    paulus         }
   1071  1.1    paulus     } while ((cur_match = prev[cur_match & wmask]) > limit
   1072  1.1    paulus              && --chain_length != 0);
   1073  1.1    paulus 
   1074  1.1    paulus     return best_len;
   1075  1.1    paulus }
   1076  1.1    paulus #endif /* ASMV */
   1077  1.1    paulus 
   1078  1.1    paulus #ifdef DEBUG_ZLIB
   1079  1.1    paulus /* ===========================================================================
   1080  1.1    paulus  * Check that the match at match_start is indeed a match.
   1081  1.1    paulus  */
   1082  1.1    paulus local void check_match(s, start, match, length)
   1083  1.1    paulus     deflate_state *s;
   1084  1.1    paulus     IPos start, match;
   1085  1.1    paulus     int length;
   1086  1.1    paulus {
   1087  1.1    paulus     /* check that the match is indeed a match */
   1088  1.1    paulus     if (memcmp((charf *)s->window + match,
   1089  1.1    paulus                 (charf *)s->window + start, length) != EQUAL) {
   1090  1.1    paulus         fprintf(stderr,
   1091  1.1    paulus             " start %u, match %u, length %d\n",
   1092  1.1    paulus             start, match, length);
   1093  1.1    paulus         do { fprintf(stderr, "%c%c", s->window[match++],
   1094  1.1    paulus                      s->window[start++]); } while (--length != 0);
   1095  1.1    paulus         z_error("invalid match");
   1096  1.1    paulus     }
   1097  1.1    paulus     if (verbose > 1) {
   1098  1.1    paulus         fprintf(stderr,"\\[%d,%d]", start-match, length);
   1099  1.1    paulus         do { putc(s->window[start++], stderr); } while (--length != 0);
   1100  1.1    paulus     }
   1101  1.1    paulus }
   1102  1.1    paulus #else
   1103  1.1    paulus #  define check_match(s, start, match, length)
   1104  1.1    paulus #endif
   1105  1.1    paulus 
   1106  1.1    paulus /* ===========================================================================
   1107  1.1    paulus  * Fill the window when the lookahead becomes insufficient.
   1108  1.1    paulus  * Updates strstart and lookahead.
   1109  1.1    paulus  *
   1110  1.1    paulus  * IN assertion: lookahead < MIN_LOOKAHEAD
   1111  1.1    paulus  * OUT assertions: strstart <= window_size-MIN_LOOKAHEAD
   1112  1.1    paulus  *    At least one byte has been read, or avail_in == 0; reads are
   1113  1.1    paulus  *    performed for at least two bytes (required for the zip translate_eol
   1114  1.1    paulus  *    option -- not supported here).
   1115  1.1    paulus  */
   1116  1.1    paulus local void fill_window(s)
   1117  1.1    paulus     deflate_state *s;
   1118  1.1    paulus {
   1119  1.1    paulus     register unsigned n, m;
   1120  1.1    paulus     register Posf *p;
   1121  1.1    paulus     unsigned more;    /* Amount of free space at the end of the window. */
   1122  1.1    paulus     uInt wsize = s->w_size;
   1123  1.1    paulus 
   1124  1.1    paulus     do {
   1125  1.1    paulus         more = (unsigned)(s->window_size -(ulg)s->lookahead -(ulg)s->strstart);
   1126  1.1    paulus 
   1127  1.1    paulus         /* Deal with !@#$% 64K limit: */
   1128  1.1    paulus         if (more == 0 && s->strstart == 0 && s->lookahead == 0) {
   1129  1.1    paulus             more = wsize;
   1130  1.1    paulus         } else if (more == (unsigned)(-1)) {
   1131  1.1    paulus             /* Very unlikely, but possible on 16 bit machine if strstart == 0
   1132  1.1    paulus              * and lookahead == 1 (input done one byte at time)
   1133  1.1    paulus              */
   1134  1.1    paulus             more--;
   1135  1.1    paulus 
   1136  1.1    paulus         /* If the window is almost full and there is insufficient lookahead,
   1137  1.1    paulus          * move the upper half to the lower one to make room in the upper half.
   1138  1.1    paulus          */
   1139  1.1    paulus         } else if (s->strstart >= wsize+MAX_DIST(s)) {
   1140  1.1    paulus 
   1141  1.1    paulus             /* By the IN assertion, the window is not empty so we can't confuse
   1142  1.1    paulus              * more == 0 with more == 64K on a 16 bit machine.
   1143  1.1    paulus              */
   1144  1.1    paulus             zmemcpy((charf *)s->window, (charf *)s->window+wsize,
   1145  1.1    paulus                    (unsigned)wsize);
   1146  1.1    paulus             s->match_start -= wsize;
   1147  1.1    paulus             s->strstart    -= wsize; /* we now have strstart >= MAX_DIST */
   1148  1.1    paulus 
   1149  1.1    paulus             s->block_start -= (long) wsize;
   1150  1.1    paulus 
   1151  1.1    paulus             /* Slide the hash table (could be avoided with 32 bit values
   1152  1.1    paulus                at the expense of memory usage):
   1153  1.1    paulus              */
   1154  1.1    paulus             n = s->hash_size;
   1155  1.1    paulus             p = &s->head[n];
   1156  1.1    paulus             do {
   1157  1.1    paulus                 m = *--p;
   1158  1.1    paulus                 *p = (Pos)(m >= wsize ? m-wsize : NIL);
   1159  1.1    paulus             } while (--n);
   1160  1.1    paulus 
   1161  1.1    paulus             n = wsize;
   1162  1.1    paulus             p = &s->prev[n];
   1163  1.1    paulus             do {
   1164  1.1    paulus                 m = *--p;
   1165  1.1    paulus                 *p = (Pos)(m >= wsize ? m-wsize : NIL);
   1166  1.1    paulus                 /* If n is not on any hash chain, prev[n] is garbage but
   1167  1.1    paulus                  * its value will never be used.
   1168  1.1    paulus                  */
   1169  1.1    paulus             } while (--n);
   1170  1.1    paulus 
   1171  1.1    paulus             more += wsize;
   1172  1.1    paulus         }
   1173  1.1    paulus         if (s->strm->avail_in == 0) return;
   1174  1.1    paulus 
   1175  1.1    paulus         /* If there was no sliding:
   1176  1.1    paulus          *    strstart <= WSIZE+MAX_DIST-1 && lookahead <= MIN_LOOKAHEAD - 1 &&
   1177  1.1    paulus          *    more == window_size - lookahead - strstart
   1178  1.1    paulus          * => more >= window_size - (MIN_LOOKAHEAD-1 + WSIZE + MAX_DIST-1)
   1179  1.1    paulus          * => more >= window_size - 2*WSIZE + 2
   1180  1.1    paulus          * In the BIG_MEM or MMAP case (not yet supported),
   1181  1.1    paulus          *   window_size == input_size + MIN_LOOKAHEAD  &&
   1182  1.1    paulus          *   strstart + s->lookahead <= input_size => more >= MIN_LOOKAHEAD.
   1183  1.1    paulus          * Otherwise, window_size == 2*WSIZE so more >= 2.
   1184  1.1    paulus          * If there was sliding, more >= WSIZE. So in all cases, more >= 2.
   1185  1.1    paulus          */
   1186  1.1    paulus         Assert(more >= 2, "more < 2");
   1187  1.1    paulus 
   1188  1.1    paulus         n = read_buf(s->strm, (charf *)s->window + s->strstart + s->lookahead,
   1189  1.1    paulus                      more);
   1190  1.1    paulus         s->lookahead += n;
   1191  1.1    paulus 
   1192  1.1    paulus         /* Initialize the hash value now that we have some input: */
   1193  1.1    paulus         if (s->lookahead >= MIN_MATCH) {
   1194  1.1    paulus             s->ins_h = s->window[s->strstart];
   1195  1.1    paulus             UPDATE_HASH(s, s->ins_h, s->window[s->strstart+1]);
   1196  1.1    paulus #if MIN_MATCH != 3
   1197  1.1    paulus             Call UPDATE_HASH() MIN_MATCH-3 more times
   1198  1.1    paulus #endif
   1199  1.1    paulus         }
   1200  1.1    paulus         /* If the whole input has less than MIN_MATCH bytes, ins_h is garbage,
   1201  1.1    paulus          * but this is not important since only literal bytes will be emitted.
   1202  1.1    paulus          */
   1203  1.1    paulus 
   1204  1.1    paulus     } while (s->lookahead < MIN_LOOKAHEAD && s->strm->avail_in != 0);
   1205  1.1    paulus }
   1206  1.1    paulus 
   1207  1.1    paulus /* ===========================================================================
   1208  1.1    paulus  * Flush the current block, with given end-of-file flag.
   1209  1.1    paulus  * IN assertion: strstart is set to the end of the current match.
   1210  1.1    paulus  */
   1211  1.1    paulus #define FLUSH_BLOCK_ONLY(s, flush) { \
   1212  1.1    paulus    ct_flush_block(s, (s->block_start >= 0L ? \
   1213  1.1    paulus            (charf *)&s->window[(unsigned)s->block_start] : \
   1214  1.1    paulus            (charf *)Z_NULL), (long)s->strstart - s->block_start, (flush)); \
   1215  1.1    paulus    s->block_start = s->strstart; \
   1216  1.1    paulus    flush_pending(s->strm); \
   1217  1.1    paulus    Tracev((stderr,"[FLUSH]")); \
   1218  1.1    paulus }
   1219  1.1    paulus 
   1220  1.1    paulus /* Same but force premature exit if necessary. */
   1221  1.1    paulus #define FLUSH_BLOCK(s, flush) { \
   1222  1.1    paulus    FLUSH_BLOCK_ONLY(s, flush); \
   1223  1.1    paulus    if (s->strm->avail_out == 0) return 1; \
   1224  1.1    paulus }
   1225  1.1    paulus 
   1226  1.1    paulus /* ===========================================================================
   1227  1.1    paulus  * Compress as much as possible from the input stream, return true if
   1228  1.1    paulus  * processing was terminated prematurely (no more input or output space).
   1229  1.1    paulus  * This function does not perform lazy evaluationof matches and inserts
   1230  1.1    paulus  * new strings in the dictionary only for unmatched strings or for short
   1231  1.1    paulus  * matches. It is used only for the fast compression options.
   1232  1.1    paulus  */
   1233  1.1    paulus local int deflate_fast(s, flush)
   1234  1.1    paulus     deflate_state *s;
   1235  1.1    paulus     int flush;
   1236  1.1    paulus {
   1237  1.1    paulus     IPos hash_head = NIL; /* head of the hash chain */
   1238  1.1    paulus     int bflush;     /* set if current block must be flushed */
   1239  1.1    paulus 
   1240  1.1    paulus     s->prev_length = MIN_MATCH-1;
   1241  1.1    paulus 
   1242  1.1    paulus     for (;;) {
   1243  1.1    paulus         /* Make sure that we always have enough lookahead, except
   1244  1.1    paulus          * at the end of the input file. We need MAX_MATCH bytes
   1245  1.1    paulus          * for the next match, plus MIN_MATCH bytes to insert the
   1246  1.1    paulus          * string following the next match.
   1247  1.1    paulus          */
   1248  1.1    paulus         if (s->lookahead < MIN_LOOKAHEAD) {
   1249  1.1    paulus             fill_window(s);
   1250  1.1    paulus             if (s->lookahead < MIN_LOOKAHEAD && flush == Z_NO_FLUSH) return 1;
   1251  1.1    paulus 
   1252  1.1    paulus             if (s->lookahead == 0) break; /* flush the current block */
   1253  1.1    paulus         }
   1254  1.1    paulus 
   1255  1.1    paulus         /* Insert the string window[strstart .. strstart+2] in the
   1256  1.1    paulus          * dictionary, and set hash_head to the head of the hash chain:
   1257  1.1    paulus          */
   1258  1.1    paulus         if (s->lookahead >= MIN_MATCH) {
   1259  1.1    paulus             INSERT_STRING(s, s->strstart, hash_head);
   1260  1.1    paulus         }
   1261  1.1    paulus 
   1262  1.1    paulus         /* Find the longest match, discarding those <= prev_length.
   1263  1.1    paulus          * At this point we have always match_length < MIN_MATCH
   1264  1.1    paulus          */
   1265  1.1    paulus         if (hash_head != NIL && s->strstart - hash_head <= MAX_DIST(s)) {
   1266  1.1    paulus             /* To simplify the code, we prevent matches with the string
   1267  1.1    paulus              * of window index 0 (in particular we have to avoid a match
   1268  1.1    paulus              * of the string with itself at the start of the input file).
   1269  1.1    paulus              */
   1270  1.1    paulus             if (s->strategy != Z_HUFFMAN_ONLY) {
   1271  1.1    paulus                 s->match_length = longest_match (s, hash_head);
   1272  1.1    paulus             }
   1273  1.1    paulus             /* longest_match() sets match_start */
   1274  1.1    paulus 
   1275  1.1    paulus             if (s->match_length > s->lookahead) s->match_length = s->lookahead;
   1276  1.1    paulus         }
   1277  1.1    paulus         if (s->match_length >= MIN_MATCH) {
   1278  1.1    paulus             check_match(s, s->strstart, s->match_start, s->match_length);
   1279  1.1    paulus 
   1280  1.1    paulus             bflush = ct_tally(s, s->strstart - s->match_start,
   1281  1.1    paulus                               s->match_length - MIN_MATCH);
   1282  1.1    paulus 
   1283  1.1    paulus             s->lookahead -= s->match_length;
   1284  1.1    paulus 
   1285  1.1    paulus             /* Insert new strings in the hash table only if the match length
   1286  1.1    paulus              * is not too large. This saves time but degrades compression.
   1287  1.1    paulus              */
   1288  1.1    paulus             if (s->match_length <= s->max_insert_length &&
   1289  1.1    paulus                 s->lookahead >= MIN_MATCH) {
   1290  1.1    paulus                 s->match_length--; /* string at strstart already in hash table */
   1291  1.1    paulus                 do {
   1292  1.1    paulus                     s->strstart++;
   1293  1.1    paulus                     INSERT_STRING(s, s->strstart, hash_head);
   1294  1.1    paulus                     /* strstart never exceeds WSIZE-MAX_MATCH, so there are
   1295  1.1    paulus                      * always MIN_MATCH bytes ahead.
   1296  1.1    paulus                      */
   1297  1.1    paulus                 } while (--s->match_length != 0);
   1298  1.1    paulus                 s->strstart++;
   1299  1.1    paulus             } else {
   1300  1.1    paulus                 s->strstart += s->match_length;
   1301  1.1    paulus                 s->match_length = 0;
   1302  1.1    paulus                 s->ins_h = s->window[s->strstart];
   1303  1.1    paulus                 UPDATE_HASH(s, s->ins_h, s->window[s->strstart+1]);
   1304  1.1    paulus #if MIN_MATCH != 3
   1305  1.1    paulus                 Call UPDATE_HASH() MIN_MATCH-3 more times
   1306  1.1    paulus #endif
   1307  1.1    paulus                 /* If lookahead < MIN_MATCH, ins_h is garbage, but it does not
   1308  1.1    paulus                  * matter since it will be recomputed at next deflate call.
   1309  1.1    paulus                  */
   1310  1.1    paulus             }
   1311  1.1    paulus         } else {
   1312  1.1    paulus             /* No match, output a literal byte */
   1313  1.1    paulus             Tracevv((stderr,"%c", s->window[s->strstart]));
   1314  1.1    paulus             bflush = ct_tally (s, 0, s->window[s->strstart]);
   1315  1.1    paulus             s->lookahead--;
   1316  1.1    paulus             s->strstart++;
   1317  1.1    paulus         }
   1318  1.1    paulus         if (bflush) FLUSH_BLOCK(s, Z_NO_FLUSH);
   1319  1.1    paulus     }
   1320  1.1    paulus     FLUSH_BLOCK(s, flush);
   1321  1.1    paulus     return 0; /* normal exit */
   1322  1.1    paulus }
   1323  1.1    paulus 
   1324  1.1    paulus /* ===========================================================================
   1325  1.1    paulus  * Same as above, but achieves better compression. We use a lazy
   1326  1.1    paulus  * evaluation for matches: a match is finally adopted only if there is
   1327  1.1    paulus  * no better match at the next window position.
   1328  1.1    paulus  */
   1329  1.1    paulus local int deflate_slow(s, flush)
   1330  1.1    paulus     deflate_state *s;
   1331  1.1    paulus     int flush;
   1332  1.1    paulus {
   1333  1.1    paulus     IPos hash_head = NIL;    /* head of hash chain */
   1334  1.1    paulus     int bflush;              /* set if current block must be flushed */
   1335  1.1    paulus 
   1336  1.1    paulus     /* Process the input block. */
   1337  1.1    paulus     for (;;) {
   1338  1.1    paulus         /* Make sure that we always have enough lookahead, except
   1339  1.1    paulus          * at the end of the input file. We need MAX_MATCH bytes
   1340  1.1    paulus          * for the next match, plus MIN_MATCH bytes to insert the
   1341  1.1    paulus          * string following the next match.
   1342  1.1    paulus          */
   1343  1.1    paulus         if (s->lookahead < MIN_LOOKAHEAD) {
   1344  1.1    paulus             fill_window(s);
   1345  1.1    paulus             if (s->lookahead < MIN_LOOKAHEAD && flush == Z_NO_FLUSH) return 1;
   1346  1.1    paulus 
   1347  1.1    paulus             if (s->lookahead == 0) break; /* flush the current block */
   1348  1.1    paulus         }
   1349  1.1    paulus 
   1350  1.1    paulus         /* Insert the string window[strstart .. strstart+2] in the
   1351  1.1    paulus          * dictionary, and set hash_head to the head of the hash chain:
   1352  1.1    paulus          */
   1353  1.1    paulus         if (s->lookahead >= MIN_MATCH) {
   1354  1.1    paulus             INSERT_STRING(s, s->strstart, hash_head);
   1355  1.1    paulus         }
   1356  1.1    paulus 
   1357  1.1    paulus         /* Find the longest match, discarding those <= prev_length.
   1358  1.1    paulus          */
   1359  1.1    paulus         s->prev_length = s->match_length, s->prev_match = s->match_start;
   1360  1.1    paulus         s->match_length = MIN_MATCH-1;
   1361  1.1    paulus 
   1362  1.1    paulus         if (hash_head != NIL && s->prev_length < s->max_lazy_match &&
   1363  1.1    paulus             s->strstart - hash_head <= MAX_DIST(s)) {
   1364  1.1    paulus             /* To simplify the code, we prevent matches with the string
   1365  1.1    paulus              * of window index 0 (in particular we have to avoid a match
   1366  1.1    paulus              * of the string with itself at the start of the input file).
   1367  1.1    paulus              */
   1368  1.1    paulus             if (s->strategy != Z_HUFFMAN_ONLY) {
   1369  1.1    paulus                 s->match_length = longest_match (s, hash_head);
   1370  1.1    paulus             }
   1371  1.1    paulus             /* longest_match() sets match_start */
   1372  1.1    paulus             if (s->match_length > s->lookahead) s->match_length = s->lookahead;
   1373  1.1    paulus 
   1374  1.1    paulus             if (s->match_length <= 5 && (s->strategy == Z_FILTERED ||
   1375  1.1    paulus                  (s->match_length == MIN_MATCH &&
   1376  1.1    paulus                   s->strstart - s->match_start > TOO_FAR))) {
   1377  1.1    paulus 
   1378  1.1    paulus                 /* If prev_match is also MIN_MATCH, match_start is garbage
   1379  1.1    paulus                  * but we will ignore the current match anyway.
   1380  1.1    paulus                  */
   1381  1.1    paulus                 s->match_length = MIN_MATCH-1;
   1382  1.1    paulus             }
   1383  1.1    paulus         }
   1384  1.1    paulus         /* If there was a match at the previous step and the current
   1385  1.1    paulus          * match is not better, output the previous match:
   1386  1.1    paulus          */
   1387  1.1    paulus         if (s->prev_length >= MIN_MATCH && s->match_length <= s->prev_length) {
   1388  1.1    paulus             uInt max_insert = s->strstart + s->lookahead - MIN_MATCH;
   1389  1.1    paulus             /* Do not insert strings in hash table beyond this. */
   1390  1.1    paulus 
   1391  1.1    paulus             check_match(s, s->strstart-1, s->prev_match, s->prev_length);
   1392  1.1    paulus 
   1393  1.1    paulus             bflush = ct_tally(s, s->strstart -1 - s->prev_match,
   1394  1.1    paulus                               s->prev_length - MIN_MATCH);
   1395  1.1    paulus 
   1396  1.1    paulus             /* Insert in hash table all strings up to the end of the match.
   1397  1.1    paulus              * strstart-1 and strstart are already inserted. If there is not
   1398  1.1    paulus              * enough lookahead, the last two strings are not inserted in
   1399  1.1    paulus              * the hash table.
   1400  1.1    paulus              */
   1401  1.1    paulus             s->lookahead -= s->prev_length-1;
   1402  1.1    paulus             s->prev_length -= 2;
   1403  1.1    paulus             do {
   1404  1.1    paulus                 if (++s->strstart <= max_insert) {
   1405  1.1    paulus                     INSERT_STRING(s, s->strstart, hash_head);
   1406  1.1    paulus                 }
   1407  1.1    paulus             } while (--s->prev_length != 0);
   1408  1.1    paulus             s->match_available = 0;
   1409  1.1    paulus             s->match_length = MIN_MATCH-1;
   1410  1.1    paulus             s->strstart++;
   1411  1.1    paulus 
   1412  1.1    paulus             if (bflush) FLUSH_BLOCK(s, Z_NO_FLUSH);
   1413  1.1    paulus 
   1414  1.1    paulus         } else if (s->match_available) {
   1415  1.1    paulus             /* If there was no match at the previous position, output a
   1416  1.1    paulus              * single literal. If there was a match but the current match
   1417  1.1    paulus              * is longer, truncate the previous match to a single literal.
   1418  1.1    paulus              */
   1419  1.1    paulus             Tracevv((stderr,"%c", s->window[s->strstart-1]));
   1420  1.1    paulus             if (ct_tally (s, 0, s->window[s->strstart-1])) {
   1421  1.1    paulus                 FLUSH_BLOCK_ONLY(s, Z_NO_FLUSH);
   1422  1.1    paulus             }
   1423  1.1    paulus             s->strstart++;
   1424  1.1    paulus             s->lookahead--;
   1425  1.1    paulus             if (s->strm->avail_out == 0) return 1;
   1426  1.1    paulus         } else {
   1427  1.1    paulus             /* There is no previous match to compare with, wait for
   1428  1.1    paulus              * the next step to decide.
   1429  1.1    paulus              */
   1430  1.1    paulus             s->match_available = 1;
   1431  1.1    paulus             s->strstart++;
   1432  1.1    paulus             s->lookahead--;
   1433  1.1    paulus         }
   1434  1.1    paulus     }
   1435  1.1    paulus     Assert (flush != Z_NO_FLUSH, "no flush?");
   1436  1.1    paulus     if (s->match_available) {
   1437  1.1    paulus         Tracevv((stderr,"%c", s->window[s->strstart-1]));
   1438  1.1    paulus         ct_tally (s, 0, s->window[s->strstart-1]);
   1439  1.1    paulus         s->match_available = 0;
   1440  1.1    paulus     }
   1441  1.1    paulus     FLUSH_BLOCK(s, flush);
   1442  1.1    paulus     return 0;
   1443  1.1    paulus }
   1444  1.1    paulus 
   1445  1.1    paulus 
   1446  1.1    paulus /*+++++*/
   1447  1.1    paulus /* trees.c -- output deflated data using Huffman coding
   1448  1.1    paulus  * Copyright (C) 1995 Jean-loup Gailly
   1449  1.1    paulus  * For conditions of distribution and use, see copyright notice in zlib.h
   1450  1.1    paulus  */
   1451  1.1    paulus 
   1452  1.1    paulus /*
   1453  1.1    paulus  *  ALGORITHM
   1454  1.1    paulus  *
   1455  1.1    paulus  *      The "deflation" process uses several Huffman trees. The more
   1456  1.1    paulus  *      common source values are represented by shorter bit sequences.
   1457  1.1    paulus  *
   1458  1.1    paulus  *      Each code tree is stored in a compressed form which is itself
   1459  1.1    paulus  * a Huffman encoding of the lengths of all the code strings (in
   1460  1.1    paulus  * ascending order by source values).  The actual code strings are
   1461  1.1    paulus  * reconstructed from the lengths in the inflate process, as described
   1462  1.1    paulus  * in the deflate specification.
   1463  1.1    paulus  *
   1464  1.1    paulus  *  REFERENCES
   1465  1.1    paulus  *
   1466  1.1    paulus  *      Deutsch, L.P.,"'Deflate' Compressed Data Format Specification".
   1467  1.1    paulus  *      Available in ftp.uu.net:/pub/archiving/zip/doc/deflate-1.1.doc
   1468  1.1    paulus  *
   1469  1.1    paulus  *      Storer, James A.
   1470  1.1    paulus  *          Data Compression:  Methods and Theory, pp. 49-50.
   1471  1.1    paulus  *          Computer Science Press, 1988.  ISBN 0-7167-8156-5.
   1472  1.1    paulus  *
   1473  1.1    paulus  *      Sedgewick, R.
   1474  1.1    paulus  *          Algorithms, p290.
   1475  1.1    paulus  *          Addison-Wesley, 1983. ISBN 0-201-06672-6.
   1476  1.1    paulus  */
   1477  1.1    paulus 
   1478  1.1    paulus /* From: trees.c,v 1.5 1995/05/03 17:27:12 jloup Exp */
   1479  1.1    paulus 
   1480  1.1    paulus #ifdef DEBUG_ZLIB
   1481  1.1    paulus #  include <ctype.h>
   1482  1.1    paulus #endif
   1483  1.1    paulus 
   1484  1.1    paulus /* ===========================================================================
   1485  1.1    paulus  * Constants
   1486  1.1    paulus  */
   1487  1.1    paulus 
   1488  1.1    paulus #define MAX_BL_BITS 7
   1489  1.1    paulus /* Bit length codes must not exceed MAX_BL_BITS bits */
   1490  1.1    paulus 
   1491  1.1    paulus #define END_BLOCK 256
   1492  1.1    paulus /* end of block literal code */
   1493  1.1    paulus 
   1494  1.1    paulus #define REP_3_6      16
   1495  1.1    paulus /* repeat previous bit length 3-6 times (2 bits of repeat count) */
   1496  1.1    paulus 
   1497  1.1    paulus #define REPZ_3_10    17
   1498  1.1    paulus /* repeat a zero length 3-10 times  (3 bits of repeat count) */
   1499  1.1    paulus 
   1500  1.1    paulus #define REPZ_11_138  18
   1501  1.1    paulus /* repeat a zero length 11-138 times  (7 bits of repeat count) */
   1502  1.1    paulus 
   1503  1.1    paulus local int extra_lbits[LENGTH_CODES] /* extra bits for each length code */
   1504  1.1    paulus    = {0,0,0,0,0,0,0,0,1,1,1,1,2,2,2,2,3,3,3,3,4,4,4,4,5,5,5,5,0};
   1505  1.1    paulus 
   1506  1.1    paulus local int extra_dbits[D_CODES] /* extra bits for each distance code */
   1507  1.1    paulus    = {0,0,0,0,1,1,2,2,3,3,4,4,5,5,6,6,7,7,8,8,9,9,10,10,11,11,12,12,13,13};
   1508  1.1    paulus 
   1509  1.1    paulus local int extra_blbits[BL_CODES]/* extra bits for each bit length code */
   1510  1.1    paulus    = {0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,2,3,7};
   1511  1.1    paulus 
   1512  1.1    paulus local uch bl_order[BL_CODES]
   1513  1.1    paulus    = {16,17,18,0,8,7,9,6,10,5,11,4,12,3,13,2,14,1,15};
   1514  1.1    paulus /* The lengths of the bit length codes are sent in order of decreasing
   1515  1.1    paulus  * probability, to avoid transmitting the lengths for unused bit length codes.
   1516  1.1    paulus  */
   1517  1.1    paulus 
   1518  1.1    paulus #define Buf_size (8 * 2*sizeof(char))
   1519  1.1    paulus /* Number of bits used within bi_buf. (bi_buf might be implemented on
   1520  1.1    paulus  * more than 16 bits on some systems.)
   1521  1.1    paulus  */
   1522  1.1    paulus 
   1523  1.1    paulus /* ===========================================================================
   1524  1.1    paulus  * Local data. These are initialized only once.
   1525  1.1    paulus  * To do: initialize at compile time to be completely reentrant. ???
   1526  1.1    paulus  */
   1527  1.1    paulus 
   1528  1.1    paulus local ct_data static_ltree[L_CODES+2];
   1529  1.1    paulus /* The static literal tree. Since the bit lengths are imposed, there is no
   1530  1.1    paulus  * need for the L_CODES extra codes used during heap construction. However
   1531  1.1    paulus  * The codes 286 and 287 are needed to build a canonical tree (see ct_init
   1532  1.1    paulus  * below).
   1533  1.1    paulus  */
   1534  1.1    paulus 
   1535  1.1    paulus local ct_data static_dtree[D_CODES];
   1536  1.1    paulus /* The static distance tree. (Actually a trivial tree since all codes use
   1537  1.1    paulus  * 5 bits.)
   1538  1.1    paulus  */
   1539  1.1    paulus 
   1540  1.1    paulus local uch dist_code[512];
   1541  1.1    paulus /* distance codes. The first 256 values correspond to the distances
   1542  1.1    paulus  * 3 .. 258, the last 256 values correspond to the top 8 bits of
   1543  1.1    paulus  * the 15 bit distances.
   1544  1.1    paulus  */
   1545  1.1    paulus 
   1546  1.1    paulus local uch length_code[MAX_MATCH-MIN_MATCH+1];
   1547  1.1    paulus /* length code for each normalized match length (0 == MIN_MATCH) */
   1548  1.1    paulus 
   1549  1.1    paulus local int base_length[LENGTH_CODES];
   1550  1.1    paulus /* First normalized length for each code (0 = MIN_MATCH) */
   1551  1.1    paulus 
   1552  1.1    paulus local int base_dist[D_CODES];
   1553  1.1    paulus /* First normalized distance for each code (0 = distance of 1) */
   1554  1.1    paulus 
   1555  1.1    paulus struct static_tree_desc_s {
   1556  1.1    paulus     ct_data *static_tree;        /* static tree or NULL */
   1557  1.1    paulus     intf    *extra_bits;         /* extra bits for each code or NULL */
   1558  1.1    paulus     int     extra_base;          /* base index for extra_bits */
   1559  1.1    paulus     int     elems;               /* max number of elements in the tree */
   1560  1.1    paulus     int     max_length;          /* max bit length for the codes */
   1561  1.1    paulus };
   1562  1.1    paulus 
   1563  1.1    paulus local static_tree_desc  static_l_desc =
   1564  1.1    paulus {static_ltree, extra_lbits, LITERALS+1, L_CODES, MAX_BITS};
   1565  1.1    paulus 
   1566  1.1    paulus local static_tree_desc  static_d_desc =
   1567  1.1    paulus {static_dtree, extra_dbits, 0,          D_CODES, MAX_BITS};
   1568  1.1    paulus 
   1569  1.1    paulus local static_tree_desc  static_bl_desc =
   1570  1.1    paulus {(ct_data *)0, extra_blbits, 0,      BL_CODES, MAX_BL_BITS};
   1571  1.1    paulus 
   1572  1.1    paulus /* ===========================================================================
   1573  1.1    paulus  * Local (static) routines in this file.
   1574  1.1    paulus  */
   1575  1.1    paulus 
   1576  1.1    paulus local void ct_static_init OF((void));
   1577  1.1    paulus local void init_block     OF((deflate_state *s));
   1578  1.1    paulus local void pqdownheap     OF((deflate_state *s, ct_data *tree, int k));
   1579  1.1    paulus local void gen_bitlen     OF((deflate_state *s, tree_desc *desc));
   1580  1.1    paulus local void gen_codes      OF((ct_data *tree, int max_code, ushf *bl_count));
   1581  1.1    paulus local void build_tree     OF((deflate_state *s, tree_desc *desc));
   1582  1.1    paulus local void scan_tree      OF((deflate_state *s, ct_data *tree, int max_code));
   1583  1.1    paulus local void send_tree      OF((deflate_state *s, ct_data *tree, int max_code));
   1584  1.1    paulus local int  build_bl_tree  OF((deflate_state *s));
   1585  1.1    paulus local void send_all_trees OF((deflate_state *s, int lcodes, int dcodes,
   1586  1.1    paulus                               int blcodes));
   1587  1.1    paulus local void compress_block OF((deflate_state *s, ct_data *ltree,
   1588  1.1    paulus                               ct_data *dtree));
   1589  1.1    paulus local void set_data_type  OF((deflate_state *s));
   1590  1.1    paulus local unsigned bi_reverse OF((unsigned value, int length));
   1591  1.1    paulus local void bi_windup      OF((deflate_state *s));
   1592  1.1    paulus local void bi_flush       OF((deflate_state *s));
   1593  1.1    paulus local void copy_block     OF((deflate_state *s, charf *buf, unsigned len,
   1594  1.1    paulus                               int header));
   1595  1.1    paulus 
   1596  1.1    paulus #ifndef DEBUG_ZLIB
   1597  1.1    paulus #  define send_code(s, c, tree) send_bits(s, tree[c].Code, tree[c].Len)
   1598  1.1    paulus    /* Send a code of the given tree. c and tree must not have side effects */
   1599  1.1    paulus 
   1600  1.1    paulus #else /* DEBUG_ZLIB */
   1601  1.1    paulus #  define send_code(s, c, tree) \
   1602  1.1    paulus      { if (verbose>1) fprintf(stderr,"\ncd %3d ",(c)); \
   1603  1.1    paulus        send_bits(s, tree[c].Code, tree[c].Len); }
   1604  1.1    paulus #endif
   1605  1.1    paulus 
   1606  1.1    paulus #define d_code(dist) \
   1607  1.1    paulus    ((dist) < 256 ? dist_code[dist] : dist_code[256+((dist)>>7)])
   1608  1.1    paulus /* Mapping from a distance to a distance code. dist is the distance - 1 and
   1609  1.1    paulus  * must not have side effects. dist_code[256] and dist_code[257] are never
   1610  1.1    paulus  * used.
   1611  1.1    paulus  */
   1612  1.1    paulus 
   1613  1.1    paulus /* ===========================================================================
   1614  1.1    paulus  * Output a short LSB first on the stream.
   1615  1.1    paulus  * IN assertion: there is enough room in pendingBuf.
   1616  1.1    paulus  */
   1617  1.1    paulus #define put_short(s, w) { \
   1618  1.1    paulus     put_byte(s, (uch)((w) & 0xff)); \
   1619  1.1    paulus     put_byte(s, (uch)((ush)(w) >> 8)); \
   1620  1.1    paulus }
   1621  1.1    paulus 
   1622  1.1    paulus /* ===========================================================================
   1623  1.1    paulus  * Send a value on a given number of bits.
   1624  1.1    paulus  * IN assertion: length <= 16 and value fits in length bits.
   1625  1.1    paulus  */
   1626  1.1    paulus #ifdef DEBUG_ZLIB
   1627  1.1    paulus local void send_bits      OF((deflate_state *s, int value, int length));
   1628  1.1    paulus 
   1629  1.1    paulus local void send_bits(s, value, length)
   1630  1.1    paulus     deflate_state *s;
   1631  1.1    paulus     int value;  /* value to send */
   1632  1.1    paulus     int length; /* number of bits */
   1633  1.1    paulus {
   1634  1.1    paulus     Tracev((stderr," l %2d v %4x ", length, value));
   1635  1.1    paulus     Assert(length > 0 && length <= 15, "invalid length");
   1636  1.1    paulus     s->bits_sent += (ulg)length;
   1637  1.1    paulus 
   1638  1.1    paulus     /* If not enough room in bi_buf, use (valid) bits from bi_buf and
   1639  1.1    paulus      * (16 - bi_valid) bits from value, leaving (width - (16-bi_valid))
   1640  1.1    paulus      * unused bits in value.
   1641  1.1    paulus      */
   1642  1.1    paulus     if (s->bi_valid > (int)Buf_size - length) {
   1643  1.1    paulus         s->bi_buf |= (value << s->bi_valid);
   1644  1.1    paulus         put_short(s, s->bi_buf);
   1645  1.1    paulus         s->bi_buf = (ush)value >> (Buf_size - s->bi_valid);
   1646  1.1    paulus         s->bi_valid += length - Buf_size;
   1647  1.1    paulus     } else {
   1648  1.1    paulus         s->bi_buf |= value << s->bi_valid;
   1649  1.1    paulus         s->bi_valid += length;
   1650  1.1    paulus     }
   1651  1.1    paulus }
   1652  1.1    paulus #else /* !DEBUG_ZLIB */
   1653  1.1    paulus 
   1654  1.1    paulus #define send_bits(s, value, length) \
   1655  1.1    paulus { int len = length;\
   1656  1.1    paulus   if (s->bi_valid > (int)Buf_size - len) {\
   1657  1.1    paulus     int val = value;\
   1658  1.1    paulus     s->bi_buf |= (val << s->bi_valid);\
   1659  1.1    paulus     put_short(s, s->bi_buf);\
   1660  1.1    paulus     s->bi_buf = (ush)val >> (Buf_size - s->bi_valid);\
   1661  1.1    paulus     s->bi_valid += len - Buf_size;\
   1662  1.1    paulus   } else {\
   1663  1.1    paulus     s->bi_buf |= (value) << s->bi_valid;\
   1664  1.1    paulus     s->bi_valid += len;\
   1665  1.1    paulus   }\
   1666  1.1    paulus }
   1667  1.1    paulus #endif /* DEBUG_ZLIB */
   1668  1.1    paulus 
   1669  1.1    paulus 
   1670  1.1    paulus #define MAX(a,b) (a >= b ? a : b)
   1671  1.1    paulus /* the arguments must not have side effects */
   1672  1.1    paulus 
   1673  1.1    paulus /* ===========================================================================
   1674  1.1    paulus  * Initialize the various 'constant' tables.
   1675  1.1    paulus  * To do: do this at compile time.
   1676  1.1    paulus  */
   1677  1.1    paulus local void ct_static_init()
   1678  1.1    paulus {
   1679  1.1    paulus     int n;        /* iterates over tree elements */
   1680  1.1    paulus     int bits;     /* bit counter */
   1681  1.1    paulus     int length;   /* length value */
   1682  1.1    paulus     int code;     /* code value */
   1683  1.1    paulus     int dist;     /* distance index */
   1684  1.1    paulus     ush bl_count[MAX_BITS+1];
   1685  1.1    paulus     /* number of codes at each bit length for an optimal tree */
   1686  1.1    paulus 
   1687  1.1    paulus     /* Initialize the mapping length (0..255) -> length code (0..28) */
   1688  1.1    paulus     length = 0;
   1689  1.1    paulus     for (code = 0; code < LENGTH_CODES-1; code++) {
   1690  1.1    paulus         base_length[code] = length;
   1691  1.1    paulus         for (n = 0; n < (1<<extra_lbits[code]); n++) {
   1692  1.1    paulus             length_code[length++] = (uch)code;
   1693  1.1    paulus         }
   1694  1.1    paulus     }
   1695  1.1    paulus     Assert (length == 256, "ct_static_init: length != 256");
   1696  1.1    paulus     /* Note that the length 255 (match length 258) can be represented
   1697  1.1    paulus      * in two different ways: code 284 + 5 bits or code 285, so we
   1698  1.1    paulus      * overwrite length_code[255] to use the best encoding:
   1699  1.1    paulus      */
   1700  1.1    paulus     length_code[length-1] = (uch)code;
   1701  1.1    paulus 
   1702  1.1    paulus     /* Initialize the mapping dist (0..32K) -> dist code (0..29) */
   1703  1.1    paulus     dist = 0;
   1704  1.1    paulus     for (code = 0 ; code < 16; code++) {
   1705  1.1    paulus         base_dist[code] = dist;
   1706  1.1    paulus         for (n = 0; n < (1<<extra_dbits[code]); n++) {
   1707  1.1    paulus             dist_code[dist++] = (uch)code;
   1708  1.1    paulus         }
   1709  1.1    paulus     }
   1710  1.1    paulus     Assert (dist == 256, "ct_static_init: dist != 256");
   1711  1.1    paulus     dist >>= 7; /* from now on, all distances are divided by 128 */
   1712  1.1    paulus     for ( ; code < D_CODES; code++) {
   1713  1.1    paulus         base_dist[code] = dist << 7;
   1714  1.1    paulus         for (n = 0; n < (1<<(extra_dbits[code]-7)); n++) {
   1715  1.1    paulus             dist_code[256 + dist++] = (uch)code;
   1716  1.1    paulus         }
   1717  1.1    paulus     }
   1718  1.1    paulus     Assert (dist == 256, "ct_static_init: 256+dist != 512");
   1719  1.1    paulus 
   1720  1.1    paulus     /* Construct the codes of the static literal tree */
   1721  1.1    paulus     for (bits = 0; bits <= MAX_BITS; bits++) bl_count[bits] = 0;
   1722  1.1    paulus     n = 0;
   1723  1.1    paulus     while (n <= 143) static_ltree[n++].Len = 8, bl_count[8]++;
   1724  1.1    paulus     while (n <= 255) static_ltree[n++].Len = 9, bl_count[9]++;
   1725  1.1    paulus     while (n <= 279) static_ltree[n++].Len = 7, bl_count[7]++;
   1726  1.1    paulus     while (n <= 287) static_ltree[n++].Len = 8, bl_count[8]++;
   1727  1.1    paulus     /* Codes 286 and 287 do not exist, but we must include them in the
   1728  1.1    paulus      * tree construction to get a canonical Huffman tree (longest code
   1729  1.1    paulus      * all ones)
   1730  1.1    paulus      */
   1731  1.1    paulus     gen_codes((ct_data *)static_ltree, L_CODES+1, bl_count);
   1732  1.1    paulus 
   1733  1.1    paulus     /* The static distance tree is trivial: */
   1734  1.1    paulus     for (n = 0; n < D_CODES; n++) {
   1735  1.1    paulus         static_dtree[n].Len = 5;
   1736  1.1    paulus         static_dtree[n].Code = bi_reverse(n, 5);
   1737  1.1    paulus     }
   1738  1.1    paulus }
   1739  1.1    paulus 
   1740  1.1    paulus /* ===========================================================================
   1741  1.1    paulus  * Initialize the tree data structures for a new zlib stream.
   1742  1.1    paulus  */
   1743  1.1    paulus local void ct_init(s)
   1744  1.1    paulus     deflate_state *s;
   1745  1.1    paulus {
   1746  1.1    paulus     if (static_dtree[0].Len == 0) {
   1747  1.1    paulus         ct_static_init();              /* To do: at compile time */
   1748  1.1    paulus     }
   1749  1.1    paulus 
   1750  1.1    paulus     s->compressed_len = 0L;
   1751  1.1    paulus 
   1752  1.1    paulus     s->l_desc.dyn_tree = s->dyn_ltree;
   1753  1.1    paulus     s->l_desc.stat_desc = &static_l_desc;
   1754  1.1    paulus 
   1755  1.1    paulus     s->d_desc.dyn_tree = s->dyn_dtree;
   1756  1.1    paulus     s->d_desc.stat_desc = &static_d_desc;
   1757  1.1    paulus 
   1758  1.1    paulus     s->bl_desc.dyn_tree = s->bl_tree;
   1759  1.1    paulus     s->bl_desc.stat_desc = &static_bl_desc;
   1760  1.1    paulus 
   1761  1.1    paulus     s->bi_buf = 0;
   1762  1.1    paulus     s->bi_valid = 0;
   1763  1.1    paulus     s->last_eob_len = 8; /* enough lookahead for inflate */
   1764  1.1    paulus #ifdef DEBUG_ZLIB
   1765  1.1    paulus     s->bits_sent = 0L;
   1766  1.1    paulus #endif
   1767  1.1    paulus     s->blocks_in_packet = 0;
   1768  1.1    paulus 
   1769  1.1    paulus     /* Initialize the first block of the first file: */
   1770  1.1    paulus     init_block(s);
   1771  1.1    paulus }
   1772  1.1    paulus 
   1773  1.1    paulus /* ===========================================================================
   1774  1.1    paulus  * Initialize a new block.
   1775  1.1    paulus  */
   1776  1.1    paulus local void init_block(s)
   1777  1.1    paulus     deflate_state *s;
   1778  1.1    paulus {
   1779  1.1    paulus     int n; /* iterates over tree elements */
   1780  1.1    paulus 
   1781  1.1    paulus     /* Initialize the trees. */
   1782  1.1    paulus     for (n = 0; n < L_CODES;  n++) s->dyn_ltree[n].Freq = 0;
   1783  1.1    paulus     for (n = 0; n < D_CODES;  n++) s->dyn_dtree[n].Freq = 0;
   1784  1.1    paulus     for (n = 0; n < BL_CODES; n++) s->bl_tree[n].Freq = 0;
   1785  1.1    paulus 
   1786  1.1    paulus     s->dyn_ltree[END_BLOCK].Freq = 1;
   1787  1.1    paulus     s->opt_len = s->static_len = 0L;
   1788  1.1    paulus     s->last_lit = s->matches = 0;
   1789  1.1    paulus }
   1790  1.1    paulus 
   1791  1.1    paulus #define SMALLEST 1
   1792  1.1    paulus /* Index within the heap array of least frequent node in the Huffman tree */
   1793  1.1    paulus 
   1794  1.1    paulus 
   1795  1.1    paulus /* ===========================================================================
   1796  1.1    paulus  * Remove the smallest element from the heap and recreate the heap with
   1797  1.1    paulus  * one less element. Updates heap and heap_len.
   1798  1.1    paulus  */
   1799  1.1    paulus #define pqremove(s, tree, top) \
   1800  1.1    paulus {\
   1801  1.1    paulus     top = s->heap[SMALLEST]; \
   1802  1.1    paulus     s->heap[SMALLEST] = s->heap[s->heap_len--]; \
   1803  1.1    paulus     pqdownheap(s, tree, SMALLEST); \
   1804  1.1    paulus }
   1805  1.1    paulus 
   1806  1.1    paulus /* ===========================================================================
   1807  1.1    paulus  * Compares to subtrees, using the tree depth as tie breaker when
   1808  1.1    paulus  * the subtrees have equal frequency. This minimizes the worst case length.
   1809  1.1    paulus  */
   1810  1.1    paulus #define smaller(tree, n, m, depth) \
   1811  1.1    paulus    (tree[n].Freq < tree[m].Freq || \
   1812  1.1    paulus    (tree[n].Freq == tree[m].Freq && depth[n] <= depth[m]))
   1813  1.1    paulus 
   1814  1.1    paulus /* ===========================================================================
   1815  1.1    paulus  * Restore the heap property by moving down the tree starting at node k,
   1816  1.1    paulus  * exchanging a node with the smallest of its two sons if necessary, stopping
   1817  1.1    paulus  * when the heap property is re-established (each father smaller than its
   1818  1.1    paulus  * two sons).
   1819  1.1    paulus  */
   1820  1.1    paulus local void pqdownheap(s, tree, k)
   1821  1.1    paulus     deflate_state *s;
   1822  1.1    paulus     ct_data *tree;  /* the tree to restore */
   1823  1.1    paulus     int k;               /* node to move down */
   1824  1.1    paulus {
   1825  1.1    paulus     int v = s->heap[k];
   1826  1.1    paulus     int j = k << 1;  /* left son of k */
   1827  1.1    paulus     while (j <= s->heap_len) {
   1828  1.1    paulus         /* Set j to the smallest of the two sons: */
   1829  1.1    paulus         if (j < s->heap_len &&
   1830  1.1    paulus             smaller(tree, s->heap[j+1], s->heap[j], s->depth)) {
   1831  1.1    paulus             j++;
   1832  1.1    paulus         }
   1833  1.1    paulus         /* Exit if v is smaller than both sons */
   1834  1.1    paulus         if (smaller(tree, v, s->heap[j], s->depth)) break;
   1835  1.1    paulus 
   1836  1.1    paulus         /* Exchange v with the smallest son */
   1837  1.1    paulus         s->heap[k] = s->heap[j];  k = j;
   1838  1.1    paulus 
   1839  1.1    paulus         /* And continue down the tree, setting j to the left son of k */
   1840  1.1    paulus         j <<= 1;
   1841  1.1    paulus     }
   1842  1.1    paulus     s->heap[k] = v;
   1843  1.1    paulus }
   1844  1.1    paulus 
   1845  1.1    paulus /* ===========================================================================
   1846  1.1    paulus  * Compute the optimal bit lengths for a tree and update the total bit length
   1847  1.1    paulus  * for the current block.
   1848  1.1    paulus  * IN assertion: the fields freq and dad are set, heap[heap_max] and
   1849  1.1    paulus  *    above are the tree nodes sorted by increasing frequency.
   1850  1.1    paulus  * OUT assertions: the field len is set to the optimal bit length, the
   1851  1.1    paulus  *     array bl_count contains the frequencies for each bit length.
   1852  1.1    paulus  *     The length opt_len is updated; static_len is also updated if stree is
   1853  1.1    paulus  *     not null.
   1854  1.1    paulus  */
   1855  1.1    paulus local void gen_bitlen(s, desc)
   1856  1.1    paulus     deflate_state *s;
   1857  1.1    paulus     tree_desc *desc;    /* the tree descriptor */
   1858  1.1    paulus {
   1859  1.1    paulus     ct_data *tree  = desc->dyn_tree;
   1860  1.1    paulus     int max_code   = desc->max_code;
   1861  1.1    paulus     ct_data *stree = desc->stat_desc->static_tree;
   1862  1.1    paulus     intf *extra    = desc->stat_desc->extra_bits;
   1863  1.1    paulus     int base       = desc->stat_desc->extra_base;
   1864  1.1    paulus     int max_length = desc->stat_desc->max_length;
   1865  1.1    paulus     int h;              /* heap index */
   1866  1.1    paulus     int n, m;           /* iterate over the tree elements */
   1867  1.1    paulus     int bits;           /* bit length */
   1868  1.1    paulus     int xbits;          /* extra bits */
   1869  1.1    paulus     ush f;              /* frequency */
   1870  1.1    paulus     int overflow = 0;   /* number of elements with bit length too large */
   1871  1.1    paulus 
   1872  1.1    paulus     for (bits = 0; bits <= MAX_BITS; bits++) s->bl_count[bits] = 0;
   1873  1.1    paulus 
   1874  1.1    paulus     /* In a first pass, compute the optimal bit lengths (which may
   1875  1.1    paulus      * overflow in the case of the bit length tree).
   1876  1.1    paulus      */
   1877  1.1    paulus     tree[s->heap[s->heap_max]].Len = 0; /* root of the heap */
   1878  1.1    paulus 
   1879  1.1    paulus     for (h = s->heap_max+1; h < HEAP_SIZE; h++) {
   1880  1.1    paulus         n = s->heap[h];
   1881  1.1    paulus         bits = tree[tree[n].Dad].Len + 1;
   1882  1.1    paulus         if (bits > max_length) bits = max_length, overflow++;
   1883  1.1    paulus         tree[n].Len = (ush)bits;
   1884  1.1    paulus         /* We overwrite tree[n].Dad which is no longer needed */
   1885  1.1    paulus 
   1886  1.1    paulus         if (n > max_code) continue; /* not a leaf node */
   1887  1.1    paulus 
   1888  1.1    paulus         s->bl_count[bits]++;
   1889  1.1    paulus         xbits = 0;
   1890  1.1    paulus         if (n >= base) xbits = extra[n-base];
   1891  1.1    paulus         f = tree[n].Freq;
   1892  1.1    paulus         s->opt_len += (ulg)f * (bits + xbits);
   1893  1.1    paulus         if (stree) s->static_len += (ulg)f * (stree[n].Len + xbits);
   1894  1.1    paulus     }
   1895  1.1    paulus     if (overflow == 0) return;
   1896  1.1    paulus 
   1897  1.1    paulus     Trace((stderr,"\nbit length overflow\n"));
   1898  1.1    paulus     /* This happens for example on obj2 and pic of the Calgary corpus */
   1899  1.1    paulus 
   1900  1.1    paulus     /* Find the first bit length which could increase: */
   1901  1.1    paulus     do {
   1902  1.1    paulus         bits = max_length-1;
   1903  1.1    paulus         while (s->bl_count[bits] == 0) bits--;
   1904  1.1    paulus         s->bl_count[bits]--;      /* move one leaf down the tree */
   1905  1.1    paulus         s->bl_count[bits+1] += 2; /* move one overflow item as its brother */
   1906  1.1    paulus         s->bl_count[max_length]--;
   1907  1.1    paulus         /* The brother of the overflow item also moves one step up,
   1908  1.1    paulus          * but this does not affect bl_count[max_length]
   1909  1.1    paulus          */
   1910  1.1    paulus         overflow -= 2;
   1911  1.1    paulus     } while (overflow > 0);
   1912  1.1    paulus 
   1913  1.1    paulus     /* Now recompute all bit lengths, scanning in increasing frequency.
   1914  1.1    paulus      * h is still equal to HEAP_SIZE. (It is simpler to reconstruct all
   1915  1.1    paulus      * lengths instead of fixing only the wrong ones. This idea is taken
   1916  1.1    paulus      * from 'ar' written by Haruhiko Okumura.)
   1917  1.1    paulus      */
   1918  1.1    paulus     for (bits = max_length; bits != 0; bits--) {
   1919  1.1    paulus         n = s->bl_count[bits];
   1920  1.1    paulus         while (n != 0) {
   1921  1.1    paulus             m = s->heap[--h];
   1922  1.1    paulus             if (m > max_code) continue;
   1923  1.1    paulus             if (tree[m].Len != (unsigned) bits) {
   1924  1.1    paulus                 Trace((stderr,"code %d bits %d->%d\n", m, tree[m].Len, bits));
   1925  1.1    paulus                 s->opt_len += ((long)bits - (long)tree[m].Len)
   1926  1.1    paulus                               *(long)tree[m].Freq;
   1927  1.1    paulus                 tree[m].Len = (ush)bits;
   1928  1.1    paulus             }
   1929  1.1    paulus             n--;
   1930  1.1    paulus         }
   1931  1.1    paulus     }
   1932  1.1    paulus }
   1933  1.1    paulus 
   1934  1.1    paulus /* ===========================================================================
   1935  1.1    paulus  * Generate the codes for a given tree and bit counts (which need not be
   1936  1.1    paulus  * optimal).
   1937  1.1    paulus  * IN assertion: the array bl_count contains the bit length statistics for
   1938  1.1    paulus  * the given tree and the field len is set for all tree elements.
   1939  1.1    paulus  * OUT assertion: the field code is set for all tree elements of non
   1940  1.1    paulus  *     zero code length.
   1941  1.1    paulus  */
   1942  1.1    paulus local void gen_codes (tree, max_code, bl_count)
   1943  1.1    paulus     ct_data *tree;             /* the tree to decorate */
   1944  1.1    paulus     int max_code;              /* largest code with non zero frequency */
   1945  1.1    paulus     ushf *bl_count;            /* number of codes at each bit length */
   1946  1.1    paulus {
   1947  1.1    paulus     ush next_code[MAX_BITS+1]; /* next code value for each bit length */
   1948  1.1    paulus     ush code = 0;              /* running code value */
   1949  1.1    paulus     int bits;                  /* bit index */
   1950  1.1    paulus     int n;                     /* code index */
   1951  1.1    paulus 
   1952  1.1    paulus     /* The distribution counts are first used to generate the code values
   1953  1.1    paulus      * without bit reversal.
   1954  1.1    paulus      */
   1955  1.1    paulus     for (bits = 1; bits <= MAX_BITS; bits++) {
   1956  1.1    paulus         next_code[bits] = code = (code + bl_count[bits-1]) << 1;
   1957  1.1    paulus     }
   1958  1.1    paulus     /* Check that the bit counts in bl_count are consistent. The last code
   1959  1.1    paulus      * must be all ones.
   1960  1.1    paulus      */
   1961  1.1    paulus     Assert (code + bl_count[MAX_BITS]-1 == (1<<MAX_BITS)-1,
   1962  1.1    paulus             "inconsistent bit counts");
   1963  1.1    paulus     Tracev((stderr,"\ngen_codes: max_code %d ", max_code));
   1964  1.1    paulus 
   1965  1.1    paulus     for (n = 0;  n <= max_code; n++) {
   1966  1.1    paulus         int len = tree[n].Len;
   1967  1.1    paulus         if (len == 0) continue;
   1968  1.1    paulus         /* Now reverse the bits */
   1969  1.1    paulus         tree[n].Code = bi_reverse(next_code[len]++, len);
   1970  1.1    paulus 
   1971  1.1    paulus         Tracec(tree != static_ltree, (stderr,"\nn %3d %c l %2d c %4x (%x) ",
   1972  1.1    paulus              n, (isgraph(n) ? n : ' '), len, tree[n].Code, next_code[len]-1));
   1973  1.1    paulus     }
   1974  1.1    paulus }
   1975  1.1    paulus 
   1976  1.1    paulus /* ===========================================================================
   1977  1.1    paulus  * Construct one Huffman tree and assigns the code bit strings and lengths.
   1978  1.1    paulus  * Update the total bit length for the current block.
   1979  1.1    paulus  * IN assertion: the field freq is set for all tree elements.
   1980  1.1    paulus  * OUT assertions: the fields len and code are set to the optimal bit length
   1981  1.1    paulus  *     and corresponding code. The length opt_len is updated; static_len is
   1982  1.1    paulus  *     also updated if stree is not null. The field max_code is set.
   1983  1.1    paulus  */
   1984  1.1    paulus local void build_tree(s, desc)
   1985  1.1    paulus     deflate_state *s;
   1986  1.1    paulus     tree_desc *desc; /* the tree descriptor */
   1987  1.1    paulus {
   1988  1.1    paulus     ct_data *tree   = desc->dyn_tree;
   1989  1.1    paulus     ct_data *stree  = desc->stat_desc->static_tree;
   1990  1.1    paulus     int elems       = desc->stat_desc->elems;
   1991  1.1    paulus     int n, m;          /* iterate over heap elements */
   1992  1.1    paulus     int max_code = -1; /* largest code with non zero frequency */
   1993  1.1    paulus     int node;          /* new node being created */
   1994  1.1    paulus 
   1995  1.1    paulus     /* Construct the initial heap, with least frequent element in
   1996  1.1    paulus      * heap[SMALLEST]. The sons of heap[n] are heap[2*n] and heap[2*n+1].
   1997  1.1    paulus      * heap[0] is not used.
   1998  1.1    paulus      */
   1999  1.1    paulus     s->heap_len = 0, s->heap_max = HEAP_SIZE;
   2000  1.1    paulus 
   2001  1.1    paulus     for (n = 0; n < elems; n++) {
   2002  1.1    paulus         if (tree[n].Freq != 0) {
   2003  1.1    paulus             s->heap[++(s->heap_len)] = max_code = n;
   2004  1.1    paulus             s->depth[n] = 0;
   2005  1.1    paulus         } else {
   2006  1.1    paulus             tree[n].Len = 0;
   2007  1.1    paulus         }
   2008  1.1    paulus     }
   2009  1.1    paulus 
   2010  1.1    paulus     /* The pkzip format requires that at least one distance code exists,
   2011  1.1    paulus      * and that at least one bit should be sent even if there is only one
   2012  1.1    paulus      * possible code. So to avoid special checks later on we force at least
   2013  1.1    paulus      * two codes of non zero frequency.
   2014  1.1    paulus      */
   2015  1.1    paulus     while (s->heap_len < 2) {
   2016  1.1    paulus         node = s->heap[++(s->heap_len)] = (max_code < 2 ? ++max_code : 0);
   2017  1.1    paulus         tree[node].Freq = 1;
   2018  1.1    paulus         s->depth[node] = 0;
   2019  1.1    paulus         s->opt_len--; if (stree) s->static_len -= stree[node].Len;
   2020  1.1    paulus         /* node is 0 or 1 so it does not have extra bits */
   2021  1.1    paulus     }
   2022  1.1    paulus     desc->max_code = max_code;
   2023  1.1    paulus 
   2024  1.1    paulus     /* The elements heap[heap_len/2+1 .. heap_len] are leaves of the tree,
   2025  1.1    paulus      * establish sub-heaps of increasing lengths:
   2026  1.1    paulus      */
   2027  1.1    paulus     for (n = s->heap_len/2; n >= 1; n--) pqdownheap(s, tree, n);
   2028  1.1    paulus 
   2029  1.1    paulus     /* Construct the Huffman tree by repeatedly combining the least two
   2030  1.1    paulus      * frequent nodes.
   2031  1.1    paulus      */
   2032  1.1    paulus     node = elems;              /* next internal node of the tree */
   2033  1.1    paulus     do {
   2034  1.1    paulus         pqremove(s, tree, n);  /* n = node of least frequency */
   2035  1.1    paulus         m = s->heap[SMALLEST]; /* m = node of next least frequency */
   2036  1.1    paulus 
   2037  1.1    paulus         s->heap[--(s->heap_max)] = n; /* keep the nodes sorted by frequency */
   2038  1.1    paulus         s->heap[--(s->heap_max)] = m;
   2039  1.1    paulus 
   2040  1.1    paulus         /* Create a new node father of n and m */
   2041  1.1    paulus         tree[node].Freq = tree[n].Freq + tree[m].Freq;
   2042  1.1    paulus         s->depth[node] = (uch) (MAX(s->depth[n], s->depth[m]) + 1);
   2043  1.1    paulus         tree[n].Dad = tree[m].Dad = (ush)node;
   2044  1.1    paulus #ifdef DUMP_BL_TREE
   2045  1.1    paulus         if (tree == s->bl_tree) {
   2046  1.1    paulus             fprintf(stderr,"\nnode %d(%d), sons %d(%d) %d(%d)",
   2047  1.1    paulus                     node, tree[node].Freq, n, tree[n].Freq, m, tree[m].Freq);
   2048  1.1    paulus         }
   2049  1.1    paulus #endif
   2050  1.1    paulus         /* and insert the new node in the heap */
   2051  1.1    paulus         s->heap[SMALLEST] = node++;
   2052  1.1    paulus         pqdownheap(s, tree, SMALLEST);
   2053  1.1    paulus 
   2054  1.1    paulus     } while (s->heap_len >= 2);
   2055  1.1    paulus 
   2056  1.1    paulus     s->heap[--(s->heap_max)] = s->heap[SMALLEST];
   2057  1.1    paulus 
   2058  1.1    paulus     /* At this point, the fields freq and dad are set. We can now
   2059  1.1    paulus      * generate the bit lengths.
   2060  1.1    paulus      */
   2061  1.1    paulus     gen_bitlen(s, (tree_desc *)desc);
   2062  1.1    paulus 
   2063  1.1    paulus     /* The field len is now set, we can generate the bit codes */
   2064  1.1    paulus     gen_codes ((ct_data *)tree, max_code, s->bl_count);
   2065  1.1    paulus }
   2066  1.1    paulus 
   2067  1.1    paulus /* ===========================================================================
   2068  1.1    paulus  * Scan a literal or distance tree to determine the frequencies of the codes
   2069  1.1    paulus  * in the bit length tree.
   2070  1.1    paulus  */
   2071  1.1    paulus local void scan_tree (s, tree, max_code)
   2072  1.1    paulus     deflate_state *s;
   2073  1.1    paulus     ct_data *tree;   /* the tree to be scanned */
   2074  1.1    paulus     int max_code;    /* and its largest code of non zero frequency */
   2075  1.1    paulus {
   2076  1.1    paulus     int n;                     /* iterates over all tree elements */
   2077  1.1    paulus     int prevlen = -1;          /* last emitted length */
   2078  1.1    paulus     int curlen;                /* length of current code */
   2079  1.1    paulus     int nextlen = tree[0].Len; /* length of next code */
   2080  1.1    paulus     int count = 0;             /* repeat count of the current code */
   2081  1.1    paulus     int max_count = 7;         /* max repeat count */
   2082  1.1    paulus     int min_count = 4;         /* min repeat count */
   2083  1.1    paulus 
   2084  1.1    paulus     if (nextlen == 0) max_count = 138, min_count = 3;
   2085  1.1    paulus     tree[max_code+1].Len = (ush)0xffff; /* guard */
   2086  1.1    paulus 
   2087  1.1    paulus     for (n = 0; n <= max_code; n++) {
   2088  1.1    paulus         curlen = nextlen; nextlen = tree[n+1].Len;
   2089  1.1    paulus         if (++count < max_count && curlen == nextlen) {
   2090  1.1    paulus             continue;
   2091  1.1    paulus         } else if (count < min_count) {
   2092  1.1    paulus             s->bl_tree[curlen].Freq += count;
   2093  1.1    paulus         } else if (curlen != 0) {
   2094  1.1    paulus             if (curlen != prevlen) s->bl_tree[curlen].Freq++;
   2095  1.1    paulus             s->bl_tree[REP_3_6].Freq++;
   2096  1.1    paulus         } else if (count <= 10) {
   2097  1.1    paulus             s->bl_tree[REPZ_3_10].Freq++;
   2098  1.1    paulus         } else {
   2099  1.1    paulus             s->bl_tree[REPZ_11_138].Freq++;
   2100  1.1    paulus         }
   2101  1.1    paulus         count = 0; prevlen = curlen;
   2102  1.1    paulus         if (nextlen == 0) {
   2103  1.1    paulus             max_count = 138, min_count = 3;
   2104  1.1    paulus         } else if (curlen == nextlen) {
   2105  1.1    paulus             max_count = 6, min_count = 3;
   2106  1.1    paulus         } else {
   2107  1.1    paulus             max_count = 7, min_count = 4;
   2108  1.1    paulus         }
   2109  1.1    paulus     }
   2110  1.1    paulus }
   2111  1.1    paulus 
   2112  1.1    paulus /* ===========================================================================
   2113  1.1    paulus  * Send a literal or distance tree in compressed form, using the codes in
   2114  1.1    paulus  * bl_tree.
   2115  1.1    paulus  */
   2116  1.1    paulus local void send_tree (s, tree, max_code)
   2117  1.1    paulus     deflate_state *s;
   2118  1.1    paulus     ct_data *tree; /* the tree to be scanned */
   2119  1.1    paulus     int max_code;       /* and its largest code of non zero frequency */
   2120  1.1    paulus {
   2121  1.1    paulus     int n;                     /* iterates over all tree elements */
   2122  1.1    paulus     int prevlen = -1;          /* last emitted length */
   2123  1.1    paulus     int curlen;                /* length of current code */
   2124  1.1    paulus     int nextlen = tree[0].Len; /* length of next code */
   2125  1.1    paulus     int count = 0;             /* repeat count of the current code */
   2126  1.1    paulus     int max_count = 7;         /* max repeat count */
   2127  1.1    paulus     int min_count = 4;         /* min repeat count */
   2128  1.1    paulus 
   2129  1.1    paulus     /* tree[max_code+1].Len = -1; */  /* guard already set */
   2130  1.1    paulus     if (nextlen == 0) max_count = 138, min_count = 3;
   2131  1.1    paulus 
   2132  1.1    paulus     for (n = 0; n <= max_code; n++) {
   2133  1.1    paulus         curlen = nextlen; nextlen = tree[n+1].Len;
   2134  1.1    paulus         if (++count < max_count && curlen == nextlen) {
   2135  1.1    paulus             continue;
   2136  1.1    paulus         } else if (count < min_count) {
   2137  1.1    paulus             do { send_code(s, curlen, s->bl_tree); } while (--count != 0);
   2138  1.1    paulus 
   2139  1.1    paulus         } else if (curlen != 0) {
   2140  1.1    paulus             if (curlen != prevlen) {
   2141  1.1    paulus                 send_code(s, curlen, s->bl_tree); count--;
   2142  1.1    paulus             }
   2143  1.1    paulus             Assert(count >= 3 && count <= 6, " 3_6?");
   2144  1.1    paulus             send_code(s, REP_3_6, s->bl_tree); send_bits(s, count-3, 2);
   2145  1.1    paulus 
   2146  1.1    paulus         } else if (count <= 10) {
   2147  1.1    paulus             send_code(s, REPZ_3_10, s->bl_tree); send_bits(s, count-3, 3);
   2148  1.1    paulus 
   2149  1.1    paulus         } else {
   2150  1.1    paulus             send_code(s, REPZ_11_138, s->bl_tree); send_bits(s, count-11, 7);
   2151  1.1    paulus         }
   2152  1.1    paulus         count = 0; prevlen = curlen;
   2153  1.1    paulus         if (nextlen == 0) {
   2154  1.1    paulus             max_count = 138, min_count = 3;
   2155  1.1    paulus         } else if (curlen == nextlen) {
   2156  1.1    paulus             max_count = 6, min_count = 3;
   2157  1.1    paulus         } else {
   2158  1.1    paulus             max_count = 7, min_count = 4;
   2159  1.1    paulus         }
   2160  1.1    paulus     }
   2161  1.1    paulus }
   2162  1.1    paulus 
   2163  1.1    paulus /* ===========================================================================
   2164  1.1    paulus  * Construct the Huffman tree for the bit lengths and return the index in
   2165  1.1    paulus  * bl_order of the last bit length code to send.
   2166  1.1    paulus  */
   2167  1.1    paulus local int build_bl_tree(s)
   2168  1.1    paulus     deflate_state *s;
   2169  1.1    paulus {
   2170  1.1    paulus     int max_blindex;  /* index of last bit length code of non zero freq */
   2171  1.1    paulus 
   2172  1.1    paulus     /* Determine the bit length frequencies for literal and distance trees */
   2173  1.1    paulus     scan_tree(s, (ct_data *)s->dyn_ltree, s->l_desc.max_code);
   2174  1.1    paulus     scan_tree(s, (ct_data *)s->dyn_dtree, s->d_desc.max_code);
   2175  1.1    paulus 
   2176  1.1    paulus     /* Build the bit length tree: */
   2177  1.1    paulus     build_tree(s, (tree_desc *)(&(s->bl_desc)));
   2178  1.1    paulus     /* opt_len now includes the length of the tree representations, except
   2179  1.1    paulus      * the lengths of the bit lengths codes and the 5+5+4 bits for the counts.
   2180  1.1    paulus      */
   2181  1.1    paulus 
   2182  1.1    paulus     /* Determine the number of bit length codes to send. The pkzip format
   2183  1.1    paulus      * requires that at least 4 bit length codes be sent. (appnote.txt says
   2184  1.1    paulus      * 3 but the actual value used is 4.)
   2185  1.1    paulus      */
   2186  1.1    paulus     for (max_blindex = BL_CODES-1; max_blindex >= 3; max_blindex--) {
   2187  1.1    paulus         if (s->bl_tree[bl_order[max_blindex]].Len != 0) break;
   2188  1.1    paulus     }
   2189  1.1    paulus     /* Update opt_len to include the bit length tree and counts */
   2190  1.1    paulus     s->opt_len += 3*(max_blindex+1) + 5+5+4;
   2191  1.1    paulus     Tracev((stderr, "\ndyn trees: dyn %ld, stat %ld",
   2192  1.1    paulus             s->opt_len, s->static_len));
   2193  1.1    paulus 
   2194  1.1    paulus     return max_blindex;
   2195  1.1    paulus }
   2196  1.1    paulus 
   2197  1.1    paulus /* ===========================================================================
   2198  1.1    paulus  * Send the header for a block using dynamic Huffman trees: the counts, the
   2199  1.1    paulus  * lengths of the bit length codes, the literal tree and the distance tree.
   2200  1.1    paulus  * IN assertion: lcodes >= 257, dcodes >= 1, blcodes >= 4.
   2201  1.1    paulus  */
   2202  1.1    paulus local void send_all_trees(s, lcodes, dcodes, blcodes)
   2203  1.1    paulus     deflate_state *s;
   2204  1.1    paulus     int lcodes, dcodes, blcodes; /* number of codes for each tree */
   2205  1.1    paulus {
   2206  1.1    paulus     int rank;                    /* index in bl_order */
   2207  1.1    paulus 
   2208  1.1    paulus     Assert (lcodes >= 257 && dcodes >= 1 && blcodes >= 4, "not enough codes");
   2209  1.1    paulus     Assert (lcodes <= L_CODES && dcodes <= D_CODES && blcodes <= BL_CODES,
   2210  1.1    paulus             "too many codes");
   2211  1.1    paulus     Tracev((stderr, "\nbl counts: "));
   2212  1.1    paulus     send_bits(s, lcodes-257, 5); /* not +255 as stated in appnote.txt */
   2213  1.1    paulus     send_bits(s, dcodes-1,   5);
   2214  1.1    paulus     send_bits(s, blcodes-4,  4); /* not -3 as stated in appnote.txt */
   2215  1.1    paulus     for (rank = 0; rank < blcodes; rank++) {
   2216  1.1    paulus         Tracev((stderr, "\nbl code %2d ", bl_order[rank]));
   2217  1.1    paulus         send_bits(s, s->bl_tree[bl_order[rank]].Len, 3);
   2218  1.1    paulus     }
   2219  1.1    paulus     Tracev((stderr, "\nbl tree: sent %ld", s->bits_sent));
   2220  1.1    paulus 
   2221  1.1    paulus     send_tree(s, (ct_data *)s->dyn_ltree, lcodes-1); /* literal tree */
   2222  1.1    paulus     Tracev((stderr, "\nlit tree: sent %ld", s->bits_sent));
   2223  1.1    paulus 
   2224  1.1    paulus     send_tree(s, (ct_data *)s->dyn_dtree, dcodes-1); /* distance tree */
   2225  1.1    paulus     Tracev((stderr, "\ndist tree: sent %ld", s->bits_sent));
   2226  1.1    paulus }
   2227  1.1    paulus 
   2228  1.1    paulus /* ===========================================================================
   2229  1.1    paulus  * Send a stored block
   2230  1.1    paulus  */
   2231  1.1    paulus local void ct_stored_block(s, buf, stored_len, eof)
   2232  1.1    paulus     deflate_state *s;
   2233  1.1    paulus     charf *buf;       /* input block */
   2234  1.1    paulus     ulg stored_len;   /* length of input block */
   2235  1.1    paulus     int eof;          /* true if this is the last block for a file */
   2236  1.1    paulus {
   2237  1.1    paulus     send_bits(s, (STORED_BLOCK<<1)+eof, 3);  /* send block type */
   2238  1.1    paulus     s->compressed_len = (s->compressed_len + 3 + 7) & ~7L;
   2239  1.1    paulus     s->compressed_len += (stored_len + 4) << 3;
   2240  1.1    paulus 
   2241  1.1    paulus     copy_block(s, buf, (unsigned)stored_len, 1); /* with header */
   2242  1.1    paulus }
   2243  1.1    paulus 
   2244  1.1    paulus /* Send just the `stored block' type code without any length bytes or data.
   2245  1.1    paulus  */
   2246  1.1    paulus local void ct_stored_type_only(s)
   2247  1.1    paulus     deflate_state *s;
   2248  1.1    paulus {
   2249  1.1    paulus     send_bits(s, (STORED_BLOCK << 1), 3);
   2250  1.1    paulus     bi_windup(s);
   2251  1.1    paulus     s->compressed_len = (s->compressed_len + 3) & ~7L;
   2252  1.1    paulus }
   2253  1.1    paulus 
   2254  1.1    paulus 
   2255  1.1    paulus /* ===========================================================================
   2256  1.1    paulus  * Send one empty static block to give enough lookahead for inflate.
   2257  1.1    paulus  * This takes 10 bits, of which 7 may remain in the bit buffer.
   2258  1.1    paulus  * The current inflate code requires 9 bits of lookahead. If the EOB
   2259  1.1    paulus  * code for the previous block was coded on 5 bits or less, inflate
   2260  1.1    paulus  * may have only 5+3 bits of lookahead to decode this EOB.
   2261  1.1    paulus  * (There are no problems if the previous block is stored or fixed.)
   2262  1.1    paulus  */
   2263  1.1    paulus local void ct_align(s)
   2264  1.1    paulus     deflate_state *s;
   2265  1.1    paulus {
   2266  1.1    paulus     send_bits(s, STATIC_TREES<<1, 3);
   2267  1.1    paulus     send_code(s, END_BLOCK, static_ltree);
   2268  1.1    paulus     s->compressed_len += 10L; /* 3 for block type, 7 for EOB */
   2269  1.1    paulus     bi_flush(s);
   2270  1.1    paulus     /* Of the 10 bits for the empty block, we have already sent
   2271  1.1    paulus      * (10 - bi_valid) bits. The lookahead for the EOB of the previous
   2272  1.1    paulus      * block was thus its length plus what we have just sent.
   2273  1.1    paulus      */
   2274  1.1    paulus     if (s->last_eob_len + 10 - s->bi_valid < 9) {
   2275  1.1    paulus         send_bits(s, STATIC_TREES<<1, 3);
   2276  1.1    paulus         send_code(s, END_BLOCK, static_ltree);
   2277  1.1    paulus         s->compressed_len += 10L;
   2278  1.1    paulus         bi_flush(s);
   2279  1.1    paulus     }
   2280  1.1    paulus     s->last_eob_len = 7;
   2281  1.1    paulus }
   2282  1.1    paulus 
   2283  1.1    paulus /* ===========================================================================
   2284  1.1    paulus  * Determine the best encoding for the current block: dynamic trees, static
   2285  1.1    paulus  * trees or store, and output the encoded block to the zip file. This function
   2286  1.1    paulus  * returns the total compressed length for the file so far.
   2287  1.1    paulus  */
   2288  1.1    paulus local ulg ct_flush_block(s, buf, stored_len, flush)
   2289  1.1    paulus     deflate_state *s;
   2290  1.1    paulus     charf *buf;       /* input block, or NULL if too old */
   2291  1.1    paulus     ulg stored_len;   /* length of input block */
   2292  1.1    paulus     int flush;        /* Z_FINISH if this is the last block for a file */
   2293  1.1    paulus {
   2294  1.1    paulus     ulg opt_lenb, static_lenb; /* opt_len and static_len in bytes */
   2295  1.1    paulus     int max_blindex;  /* index of last bit length code of non zero freq */
   2296  1.1    paulus     int eof = flush == Z_FINISH;
   2297  1.1    paulus 
   2298  1.1    paulus     ++s->blocks_in_packet;
   2299  1.1    paulus 
   2300  1.1    paulus     /* Check if the file is ascii or binary */
   2301  1.1    paulus     if (s->data_type == UNKNOWN) set_data_type(s);
   2302  1.1    paulus 
   2303  1.1    paulus     /* Construct the literal and distance trees */
   2304  1.1    paulus     build_tree(s, (tree_desc *)(&(s->l_desc)));
   2305  1.1    paulus     Tracev((stderr, "\nlit data: dyn %ld, stat %ld", s->opt_len,
   2306  1.1    paulus             s->static_len));
   2307  1.1    paulus 
   2308  1.1    paulus     build_tree(s, (tree_desc *)(&(s->d_desc)));
   2309  1.1    paulus     Tracev((stderr, "\ndist data: dyn %ld, stat %ld", s->opt_len,
   2310  1.1    paulus             s->static_len));
   2311  1.1    paulus     /* At this point, opt_len and static_len are the total bit lengths of
   2312  1.1    paulus      * the compressed block data, excluding the tree representations.
   2313  1.1    paulus      */
   2314  1.1    paulus 
   2315  1.1    paulus     /* Build the bit length tree for the above two trees, and get the index
   2316  1.1    paulus      * in bl_order of the last bit length code to send.
   2317  1.1    paulus      */
   2318  1.1    paulus     max_blindex = build_bl_tree(s);
   2319  1.1    paulus 
   2320  1.1    paulus     /* Determine the best encoding. Compute first the block length in bytes */
   2321  1.1    paulus     opt_lenb = (s->opt_len+3+7)>>3;
   2322  1.1    paulus     static_lenb = (s->static_len+3+7)>>3;
   2323  1.1    paulus 
   2324  1.1    paulus     Tracev((stderr, "\nopt %lu(%lu) stat %lu(%lu) stored %lu lit %u ",
   2325  1.1    paulus             opt_lenb, s->opt_len, static_lenb, s->static_len, stored_len,
   2326  1.1    paulus             s->last_lit));
   2327  1.1    paulus 
   2328  1.1    paulus     if (static_lenb <= opt_lenb) opt_lenb = static_lenb;
   2329  1.1    paulus 
   2330  1.1    paulus     /* If compression failed and this is the first and last block,
   2331  1.1    paulus      * and if the .zip file can be seeked (to rewrite the local header),
   2332  1.1    paulus      * the whole file is transformed into a stored file:
   2333  1.1    paulus      */
   2334  1.1    paulus #ifdef STORED_FILE_OK
   2335  1.1    paulus #  ifdef FORCE_STORED_FILE
   2336  1.1    paulus     if (eof && compressed_len == 0L) /* force stored file */
   2337  1.1    paulus #  else
   2338  1.1    paulus     if (stored_len <= opt_lenb && eof && s->compressed_len==0L && seekable())
   2339  1.1    paulus #  endif
   2340  1.1    paulus     {
   2341  1.1    paulus         /* Since LIT_BUFSIZE <= 2*WSIZE, the input data must be there: */
   2342  1.1    paulus         if (buf == (charf*)0) error ("block vanished");
   2343  1.1    paulus 
   2344  1.1    paulus         copy_block(buf, (unsigned)stored_len, 0); /* without header */
   2345  1.1    paulus         s->compressed_len = stored_len << 3;
   2346  1.1    paulus         s->method = STORED;
   2347  1.1    paulus     } else
   2348  1.1    paulus #endif /* STORED_FILE_OK */
   2349  1.1    paulus 
   2350  1.1    paulus     /* For Z_PACKET_FLUSH, if we don't achieve the required minimum
   2351  1.1    paulus      * compression, and this block contains all the data since the last
   2352  1.1    paulus      * time we used Z_PACKET_FLUSH, then just omit this block completely
   2353  1.1    paulus      * from the output.
   2354  1.1    paulus      */
   2355  1.1    paulus     if (flush == Z_PACKET_FLUSH && s->blocks_in_packet == 1
   2356  1.1    paulus 	&& opt_lenb > stored_len - s->minCompr) {
   2357  1.1    paulus 	s->blocks_in_packet = 0;
   2358  1.1    paulus 	/* output nothing */
   2359  1.1    paulus     } else
   2360  1.1    paulus 
   2361  1.1    paulus #ifdef FORCE_STORED
   2362  1.1    paulus     if (buf != (char*)0) /* force stored block */
   2363  1.1    paulus #else
   2364  1.1    paulus     if (stored_len+4 <= opt_lenb && buf != (char*)0)
   2365  1.1    paulus                        /* 4: two words for the lengths */
   2366  1.1    paulus #endif
   2367  1.1    paulus     {
   2368  1.1    paulus         /* The test buf != NULL is only necessary if LIT_BUFSIZE > WSIZE.
   2369  1.1    paulus          * Otherwise we can't have processed more than WSIZE input bytes since
   2370  1.1    paulus          * the last block flush, because compression would have been
   2371  1.1    paulus          * successful. If LIT_BUFSIZE <= WSIZE, it is never too late to
   2372  1.1    paulus          * transform a block into a stored block.
   2373  1.1    paulus          */
   2374  1.1    paulus         ct_stored_block(s, buf, stored_len, eof);
   2375  1.1    paulus     } else
   2376  1.1    paulus 
   2377  1.1    paulus #ifdef FORCE_STATIC
   2378  1.1    paulus     if (static_lenb >= 0) /* force static trees */
   2379  1.1    paulus #else
   2380  1.1    paulus     if (static_lenb == opt_lenb)
   2381  1.1    paulus #endif
   2382  1.1    paulus     {
   2383  1.1    paulus         send_bits(s, (STATIC_TREES<<1)+eof, 3);
   2384  1.1    paulus         compress_block(s, (ct_data *)static_ltree, (ct_data *)static_dtree);
   2385  1.1    paulus         s->compressed_len += 3 + s->static_len;
   2386  1.1    paulus     } else {
   2387  1.1    paulus         send_bits(s, (DYN_TREES<<1)+eof, 3);
   2388  1.1    paulus         send_all_trees(s, s->l_desc.max_code+1, s->d_desc.max_code+1,
   2389  1.1    paulus                        max_blindex+1);
   2390  1.1    paulus         compress_block(s, (ct_data *)s->dyn_ltree, (ct_data *)s->dyn_dtree);
   2391  1.1    paulus         s->compressed_len += 3 + s->opt_len;
   2392  1.1    paulus     }
   2393  1.1    paulus     Assert (s->compressed_len == s->bits_sent, "bad compressed size");
   2394  1.1    paulus     init_block(s);
   2395  1.1    paulus 
   2396  1.1    paulus     if (eof) {
   2397  1.1    paulus         bi_windup(s);
   2398  1.1    paulus         s->compressed_len += 7;  /* align on byte boundary */
   2399  1.1    paulus     }
   2400  1.1    paulus     Tracev((stderr,"\ncomprlen %lu(%lu) ", s->compressed_len>>3,
   2401  1.1    paulus            s->compressed_len-7*eof));
   2402  1.1    paulus 
   2403  1.1    paulus     return s->compressed_len >> 3;
   2404  1.1    paulus }
   2405  1.1    paulus 
   2406  1.1    paulus /* ===========================================================================
   2407  1.1    paulus  * Save the match info and tally the frequency counts. Return true if
   2408  1.1    paulus  * the current block must be flushed.
   2409  1.1    paulus  */
   2410  1.1    paulus local int ct_tally (s, dist, lc)
   2411  1.1    paulus     deflate_state *s;
   2412  1.1    paulus     int dist;  /* distance of matched string */
   2413  1.1    paulus     int lc;    /* match length-MIN_MATCH or unmatched char (if dist==0) */
   2414  1.1    paulus {
   2415  1.1    paulus     s->d_buf[s->last_lit] = (ush)dist;
   2416  1.1    paulus     s->l_buf[s->last_lit++] = (uch)lc;
   2417  1.1    paulus     if (dist == 0) {
   2418  1.1    paulus         /* lc is the unmatched char */
   2419  1.1    paulus         s->dyn_ltree[lc].Freq++;
   2420  1.1    paulus     } else {
   2421  1.1    paulus         s->matches++;
   2422  1.1    paulus         /* Here, lc is the match length - MIN_MATCH */
   2423  1.1    paulus         dist--;             /* dist = match distance - 1 */
   2424  1.1    paulus         Assert((ush)dist < (ush)MAX_DIST(s) &&
   2425  1.1    paulus                (ush)lc <= (ush)(MAX_MATCH-MIN_MATCH) &&
   2426  1.1    paulus                (ush)d_code(dist) < (ush)D_CODES,  "ct_tally: bad match");
   2427  1.1    paulus 
   2428  1.1    paulus         s->dyn_ltree[length_code[lc]+LITERALS+1].Freq++;
   2429  1.1    paulus         s->dyn_dtree[d_code(dist)].Freq++;
   2430  1.1    paulus     }
   2431  1.1    paulus 
   2432  1.1    paulus     /* Try to guess if it is profitable to stop the current block here */
   2433  1.1    paulus     if (s->level > 2 && (s->last_lit & 0xfff) == 0) {
   2434  1.1    paulus         /* Compute an upper bound for the compressed length */
   2435  1.1    paulus         ulg out_length = (ulg)s->last_lit*8L;
   2436  1.1    paulus         ulg in_length = (ulg)s->strstart - s->block_start;
   2437  1.1    paulus         int dcode;
   2438  1.1    paulus         for (dcode = 0; dcode < D_CODES; dcode++) {
   2439  1.1    paulus             out_length += (ulg)s->dyn_dtree[dcode].Freq *
   2440  1.1    paulus                 (5L+extra_dbits[dcode]);
   2441  1.1    paulus         }
   2442  1.1    paulus         out_length >>= 3;
   2443  1.1    paulus         Tracev((stderr,"\nlast_lit %u, in %ld, out ~%ld(%ld%%) ",
   2444  1.1    paulus                s->last_lit, in_length, out_length,
   2445  1.1    paulus                100L - out_length*100L/in_length));
   2446  1.1    paulus         if (s->matches < s->last_lit/2 && out_length < in_length/2) return 1;
   2447  1.1    paulus     }
   2448  1.1    paulus     return (s->last_lit == s->lit_bufsize-1);
   2449  1.1    paulus     /* We avoid equality with lit_bufsize because of wraparound at 64K
   2450  1.1    paulus      * on 16 bit machines and because stored blocks are restricted to
   2451  1.1    paulus      * 64K-1 bytes.
   2452  1.1    paulus      */
   2453  1.1    paulus }
   2454  1.1    paulus 
   2455  1.1    paulus /* ===========================================================================
   2456  1.1    paulus  * Send the block data compressed using the given Huffman trees
   2457  1.1    paulus  */
   2458  1.1    paulus local void compress_block(s, ltree, dtree)
   2459  1.1    paulus     deflate_state *s;
   2460  1.1    paulus     ct_data *ltree; /* literal tree */
   2461  1.1    paulus     ct_data *dtree; /* distance tree */
   2462  1.1    paulus {
   2463  1.1    paulus     unsigned dist;      /* distance of matched string */
   2464  1.1    paulus     int lc;             /* match length or unmatched char (if dist == 0) */
   2465  1.1    paulus     unsigned lx = 0;    /* running index in l_buf */
   2466  1.1    paulus     unsigned code;      /* the code to send */
   2467  1.1    paulus     int extra;          /* number of extra bits to send */
   2468  1.1    paulus 
   2469  1.1    paulus     if (s->last_lit != 0) do {
   2470  1.1    paulus         dist = s->d_buf[lx];
   2471  1.1    paulus         lc = s->l_buf[lx++];
   2472  1.1    paulus         if (dist == 0) {
   2473  1.1    paulus             send_code(s, lc, ltree); /* send a literal byte */
   2474  1.1    paulus             Tracecv(isgraph(lc), (stderr," '%c' ", lc));
   2475  1.1    paulus         } else {
   2476  1.1    paulus             /* Here, lc is the match length - MIN_MATCH */
   2477  1.1    paulus             code = length_code[lc];
   2478  1.1    paulus             send_code(s, code+LITERALS+1, ltree); /* send the length code */
   2479  1.1    paulus             extra = extra_lbits[code];
   2480  1.1    paulus             if (extra != 0) {
   2481  1.1    paulus                 lc -= base_length[code];
   2482  1.1    paulus                 send_bits(s, lc, extra);       /* send the extra length bits */
   2483  1.1    paulus             }
   2484  1.1    paulus             dist--; /* dist is now the match distance - 1 */
   2485  1.1    paulus             code = d_code(dist);
   2486  1.1    paulus             Assert (code < D_CODES, "bad d_code");
   2487  1.1    paulus 
   2488  1.1    paulus             send_code(s, code, dtree);       /* send the distance code */
   2489  1.1    paulus             extra = extra_dbits[code];
   2490  1.1    paulus             if (extra != 0) {
   2491  1.1    paulus                 dist -= base_dist[code];
   2492  1.1    paulus                 send_bits(s, dist, extra);   /* send the extra distance bits */
   2493  1.1    paulus             }
   2494  1.1    paulus         } /* literal or match pair ? */
   2495  1.1    paulus 
   2496  1.1    paulus         /* Check that the overlay between pending_buf and d_buf+l_buf is ok: */
   2497  1.1    paulus         Assert(s->pending < s->lit_bufsize + 2*lx, "pendingBuf overflow");
   2498  1.1    paulus 
   2499  1.1    paulus     } while (lx < s->last_lit);
   2500  1.1    paulus 
   2501  1.1    paulus     send_code(s, END_BLOCK, ltree);
   2502  1.1    paulus     s->last_eob_len = ltree[END_BLOCK].Len;
   2503  1.1    paulus }
   2504  1.1    paulus 
   2505  1.1    paulus /* ===========================================================================
   2506  1.1    paulus  * Set the data type to ASCII or BINARY, using a crude approximation:
   2507  1.1    paulus  * binary if more than 20% of the bytes are <= 6 or >= 128, ascii otherwise.
   2508  1.1    paulus  * IN assertion: the fields freq of dyn_ltree are set and the total of all
   2509  1.1    paulus  * frequencies does not exceed 64K (to fit in an int on 16 bit machines).
   2510  1.1    paulus  */
   2511  1.1    paulus local void set_data_type(s)
   2512  1.1    paulus     deflate_state *s;
   2513  1.1    paulus {
   2514  1.1    paulus     int n = 0;
   2515  1.1    paulus     unsigned ascii_freq = 0;
   2516  1.1    paulus     unsigned bin_freq = 0;
   2517  1.1    paulus     while (n < 7)        bin_freq += s->dyn_ltree[n++].Freq;
   2518  1.1    paulus     while (n < 128)    ascii_freq += s->dyn_ltree[n++].Freq;
   2519  1.1    paulus     while (n < LITERALS) bin_freq += s->dyn_ltree[n++].Freq;
   2520  1.1    paulus     s->data_type = (Byte)(bin_freq > (ascii_freq >> 2) ? BINARY : ASCII);
   2521  1.1    paulus }
   2522  1.1    paulus 
   2523  1.1    paulus /* ===========================================================================
   2524  1.1    paulus  * Reverse the first len bits of a code, using straightforward code (a faster
   2525  1.1    paulus  * method would use a table)
   2526  1.1    paulus  * IN assertion: 1 <= len <= 15
   2527  1.1    paulus  */
   2528  1.1    paulus local unsigned bi_reverse(code, len)
   2529  1.1    paulus     unsigned code; /* the value to invert */
   2530  1.1    paulus     int len;       /* its bit length */
   2531  1.1    paulus {
   2532  1.1    paulus     register unsigned res = 0;
   2533  1.1    paulus     do {
   2534  1.1    paulus         res |= code & 1;
   2535  1.1    paulus         code >>= 1, res <<= 1;
   2536  1.1    paulus     } while (--len > 0);
   2537  1.1    paulus     return res >> 1;
   2538  1.1    paulus }
   2539  1.1    paulus 
   2540  1.1    paulus /* ===========================================================================
   2541  1.1    paulus  * Flush the bit buffer, keeping at most 7 bits in it.
   2542  1.1    paulus  */
   2543  1.1    paulus local void bi_flush(s)
   2544  1.1    paulus     deflate_state *s;
   2545  1.1    paulus {
   2546  1.1    paulus     if (s->bi_valid == 16) {
   2547  1.1    paulus         put_short(s, s->bi_buf);
   2548  1.1    paulus         s->bi_buf = 0;
   2549  1.1    paulus         s->bi_valid = 0;
   2550  1.1    paulus     } else if (s->bi_valid >= 8) {
   2551  1.1    paulus         put_byte(s, (Byte)s->bi_buf);
   2552  1.1    paulus         s->bi_buf >>= 8;
   2553  1.1    paulus         s->bi_valid -= 8;
   2554  1.1    paulus     }
   2555  1.1    paulus }
   2556  1.1    paulus 
   2557  1.1    paulus /* ===========================================================================
   2558  1.1    paulus  * Flush the bit buffer and align the output on a byte boundary
   2559  1.1    paulus  */
   2560  1.1    paulus local void bi_windup(s)
   2561  1.1    paulus     deflate_state *s;
   2562  1.1    paulus {
   2563  1.1    paulus     if (s->bi_valid > 8) {
   2564  1.1    paulus         put_short(s, s->bi_buf);
   2565  1.1    paulus     } else if (s->bi_valid > 0) {
   2566  1.1    paulus         put_byte(s, (Byte)s->bi_buf);
   2567  1.1    paulus     }
   2568  1.1    paulus     s->bi_buf = 0;
   2569  1.1    paulus     s->bi_valid = 0;
   2570  1.1    paulus #ifdef DEBUG_ZLIB
   2571  1.1    paulus     s->bits_sent = (s->bits_sent+7) & ~7;
   2572  1.1    paulus #endif
   2573  1.1    paulus }
   2574  1.1    paulus 
   2575  1.1    paulus /* ===========================================================================
   2576  1.1    paulus  * Copy a stored block, storing first the length and its
   2577  1.1    paulus  * one's complement if requested.
   2578  1.1    paulus  */
   2579  1.1    paulus local void copy_block(s, buf, len, header)
   2580  1.1    paulus     deflate_state *s;
   2581  1.1    paulus     charf    *buf;    /* the input data */
   2582  1.1    paulus     unsigned len;     /* its length */
   2583  1.1    paulus     int      header;  /* true if block header must be written */
   2584  1.1    paulus {
   2585  1.1    paulus     bi_windup(s);        /* align on byte boundary */
   2586  1.1    paulus     s->last_eob_len = 8; /* enough lookahead for inflate */
   2587  1.1    paulus 
   2588  1.1    paulus     if (header) {
   2589  1.1    paulus         put_short(s, (ush)len);
   2590  1.1    paulus         put_short(s, (ush)~len);
   2591  1.1    paulus #ifdef DEBUG_ZLIB
   2592  1.1    paulus         s->bits_sent += 2*16;
   2593  1.1    paulus #endif
   2594  1.1    paulus     }
   2595  1.1    paulus #ifdef DEBUG_ZLIB
   2596  1.1    paulus     s->bits_sent += (ulg)len<<3;
   2597  1.1    paulus #endif
   2598  1.1    paulus     while (len--) {
   2599  1.1    paulus         put_byte(s, *buf++);
   2600  1.1    paulus     }
   2601  1.1    paulus }
   2602  1.1    paulus 
   2603  1.1    paulus 
   2604  1.1    paulus /*+++++*/
   2605  1.1    paulus /* infblock.h -- header to use infblock.c
   2606  1.1    paulus  * Copyright (C) 1995 Mark Adler
   2607  1.1    paulus  * For conditions of distribution and use, see copyright notice in zlib.h
   2608  1.1    paulus  */
   2609  1.1    paulus 
   2610  1.1    paulus /* WARNING: this file should *not* be used by applications. It is
   2611  1.1    paulus    part of the implementation of the compression library and is
   2612  1.1    paulus    subject to change. Applications should only use zlib.h.
   2613  1.1    paulus  */
   2614  1.1    paulus 
   2615  1.1    paulus struct inflate_blocks_state;
   2616  1.1    paulus typedef struct inflate_blocks_state FAR inflate_blocks_statef;
   2617  1.1    paulus 
   2618  1.1    paulus local inflate_blocks_statef * inflate_blocks_new OF((
   2619  1.1    paulus     z_stream *z,
   2620  1.1    paulus     check_func c,               /* check function */
   2621  1.1    paulus     uInt w));                   /* window size */
   2622  1.1    paulus 
   2623  1.1    paulus local int inflate_blocks OF((
   2624  1.1    paulus     inflate_blocks_statef *,
   2625  1.1    paulus     z_stream *,
   2626  1.1    paulus     int));                      /* initial return code */
   2627  1.1    paulus 
   2628  1.1    paulus local void inflate_blocks_reset OF((
   2629  1.1    paulus     inflate_blocks_statef *,
   2630  1.1    paulus     z_stream *,
   2631  1.1    paulus     uLongf *));                  /* check value on output */
   2632  1.1    paulus 
   2633  1.1    paulus local int inflate_blocks_free OF((
   2634  1.1    paulus     inflate_blocks_statef *,
   2635  1.1    paulus     z_stream *,
   2636  1.1    paulus     uLongf *));                  /* check value on output */
   2637  1.1    paulus 
   2638  1.1    paulus local int inflate_addhistory OF((
   2639  1.1    paulus     inflate_blocks_statef *,
   2640  1.1    paulus     z_stream *));
   2641  1.1    paulus 
   2642  1.1    paulus local int inflate_packet_flush OF((
   2643  1.1    paulus     inflate_blocks_statef *));
   2644  1.1    paulus 
   2645  1.1    paulus /*+++++*/
   2646  1.1    paulus /* inftrees.h -- header to use inftrees.c
   2647  1.1    paulus  * Copyright (C) 1995 Mark Adler
   2648  1.1    paulus  * For conditions of distribution and use, see copyright notice in zlib.h
   2649  1.1    paulus  */
   2650  1.1    paulus 
   2651  1.1    paulus /* WARNING: this file should *not* be used by applications. It is
   2652  1.1    paulus    part of the implementation of the compression library and is
   2653  1.1    paulus    subject to change. Applications should only use zlib.h.
   2654  1.1    paulus  */
   2655  1.1    paulus 
   2656  1.1    paulus /* Huffman code lookup table entry--this entry is four bytes for machines
   2657  1.1    paulus    that have 16-bit pointers (e.g. PC's in the small or medium model). */
   2658  1.1    paulus 
   2659  1.1    paulus typedef struct inflate_huft_s FAR inflate_huft;
   2660  1.1    paulus 
   2661  1.1    paulus struct inflate_huft_s {
   2662  1.1    paulus   union {
   2663  1.1    paulus     struct {
   2664  1.1    paulus       Byte Exop;        /* number of extra bits or operation */
   2665  1.1    paulus       Byte Bits;        /* number of bits in this code or subcode */
   2666  1.1    paulus     } what;
   2667  1.1    paulus     uInt Nalloc;	/* number of these allocated here */
   2668  1.1    paulus     Bytef *pad;         /* pad structure to a power of 2 (4 bytes for */
   2669  1.1    paulus   } word;               /*  16-bit, 8 bytes for 32-bit machines) */
   2670  1.1    paulus   union {
   2671  1.1    paulus     uInt Base;          /* literal, length base, or distance base */
   2672  1.1    paulus     inflate_huft *Next; /* pointer to next level of table */
   2673  1.1    paulus   } more;
   2674  1.1    paulus };
   2675  1.1    paulus 
   2676  1.1    paulus #ifdef DEBUG_ZLIB
   2677  1.1    paulus   local uInt inflate_hufts;
   2678  1.1    paulus #endif
   2679  1.1    paulus 
   2680  1.1    paulus local int inflate_trees_bits OF((
   2681  1.1    paulus     uIntf *,                    /* 19 code lengths */
   2682  1.1    paulus     uIntf *,                    /* bits tree desired/actual depth */
   2683  1.1    paulus     inflate_huft * FAR *,       /* bits tree result */
   2684  1.1    paulus     z_stream *));               /* for zalloc, zfree functions */
   2685  1.1    paulus 
   2686  1.1    paulus local int inflate_trees_dynamic OF((
   2687  1.1    paulus     uInt,                       /* number of literal/length codes */
   2688  1.1    paulus     uInt,                       /* number of distance codes */
   2689  1.1    paulus     uIntf *,                    /* that many (total) code lengths */
   2690  1.1    paulus     uIntf *,                    /* literal desired/actual bit depth */
   2691  1.1    paulus     uIntf *,                    /* distance desired/actual bit depth */
   2692  1.1    paulus     inflate_huft * FAR *,       /* literal/length tree result */
   2693  1.1    paulus     inflate_huft * FAR *,       /* distance tree result */
   2694  1.1    paulus     z_stream *));               /* for zalloc, zfree functions */
   2695  1.1    paulus 
   2696  1.1    paulus local int inflate_trees_fixed OF((
   2697  1.1    paulus     uIntf *,                    /* literal desired/actual bit depth */
   2698  1.1    paulus     uIntf *,                    /* distance desired/actual bit depth */
   2699  1.1    paulus     inflate_huft * FAR *,       /* literal/length tree result */
   2700  1.1    paulus     inflate_huft * FAR *));     /* distance tree result */
   2701  1.1    paulus 
   2702  1.1    paulus local int inflate_trees_free OF((
   2703  1.1    paulus     inflate_huft *,             /* tables to free */
   2704  1.1    paulus     z_stream *));               /* for zfree function */
   2705  1.1    paulus 
   2706  1.1    paulus 
   2707  1.1    paulus /*+++++*/
   2708  1.1    paulus /* infcodes.h -- header to use infcodes.c
   2709  1.1    paulus  * Copyright (C) 1995 Mark Adler
   2710  1.1    paulus  * For conditions of distribution and use, see copyright notice in zlib.h
   2711  1.1    paulus  */
   2712  1.1    paulus 
   2713  1.1    paulus /* WARNING: this file should *not* be used by applications. It is
   2714  1.1    paulus    part of the implementation of the compression library and is
   2715  1.1    paulus    subject to change. Applications should only use zlib.h.
   2716  1.1    paulus  */
   2717  1.1    paulus 
   2718  1.1    paulus struct inflate_codes_state;
   2719  1.1    paulus typedef struct inflate_codes_state FAR inflate_codes_statef;
   2720  1.1    paulus 
   2721  1.1    paulus local inflate_codes_statef *inflate_codes_new OF((
   2722  1.1    paulus     uInt, uInt,
   2723  1.1    paulus     inflate_huft *, inflate_huft *,
   2724  1.1    paulus     z_stream *));
   2725  1.1    paulus 
   2726  1.1    paulus local int inflate_codes OF((
   2727  1.1    paulus     inflate_blocks_statef *,
   2728  1.1    paulus     z_stream *,
   2729  1.1    paulus     int));
   2730  1.1    paulus 
   2731  1.1    paulus local void inflate_codes_free OF((
   2732  1.1    paulus     inflate_codes_statef *,
   2733  1.1    paulus     z_stream *));
   2734  1.1    paulus 
   2735  1.1    paulus 
   2736  1.1    paulus /*+++++*/
   2737  1.1    paulus /* inflate.c -- zlib interface to inflate modules
   2738  1.1    paulus  * Copyright (C) 1995 Mark Adler
   2739  1.1    paulus  * For conditions of distribution and use, see copyright notice in zlib.h
   2740  1.1    paulus  */
   2741  1.1    paulus 
   2742  1.1    paulus /* inflate private state */
   2743  1.1    paulus struct internal_state {
   2744  1.1    paulus 
   2745  1.1    paulus   /* mode */
   2746  1.1    paulus   enum {
   2747  1.1    paulus       METHOD,   /* waiting for method byte */
   2748  1.1    paulus       FLAG,     /* waiting for flag byte */
   2749  1.1    paulus       BLOCKS,   /* decompressing blocks */
   2750  1.1    paulus       CHECK4,   /* four check bytes to go */
   2751  1.1    paulus       CHECK3,   /* three check bytes to go */
   2752  1.1    paulus       CHECK2,   /* two check bytes to go */
   2753  1.1    paulus       CHECK1,   /* one check byte to go */
   2754  1.1    paulus       DONE,     /* finished check, done */
   2755  1.1    paulus       BAD}      /* got an error--stay here */
   2756  1.1    paulus     mode;               /* current inflate mode */
   2757  1.1    paulus 
   2758  1.1    paulus   /* mode dependent information */
   2759  1.1    paulus   union {
   2760  1.1    paulus     uInt method;        /* if FLAGS, method byte */
   2761  1.1    paulus     struct {
   2762  1.1    paulus       uLong was;                /* computed check value */
   2763  1.1    paulus       uLong need;               /* stream check value */
   2764  1.1    paulus     } check;            /* if CHECK, check values to compare */
   2765  1.1    paulus     uInt marker;        /* if BAD, inflateSync's marker bytes count */
   2766  1.1    paulus   } sub;        /* submode */
   2767  1.1    paulus 
   2768  1.1    paulus   /* mode independent information */
   2769  1.1    paulus   int  nowrap;          /* flag for no wrapper */
   2770  1.1    paulus   uInt wbits;           /* log2(window size)  (8..15, defaults to 15) */
   2771  1.1    paulus   inflate_blocks_statef
   2772  1.1    paulus     *blocks;            /* current inflate_blocks state */
   2773  1.1    paulus 
   2774  1.1    paulus };
   2775  1.1    paulus 
   2776  1.1    paulus 
   2777  1.1    paulus int inflateReset(z)
   2778  1.1    paulus z_stream *z;
   2779  1.1    paulus {
   2780  1.1    paulus   uLong c;
   2781  1.1    paulus 
   2782  1.1    paulus   if (z == Z_NULL || z->state == Z_NULL)
   2783  1.1    paulus     return Z_STREAM_ERROR;
   2784  1.1    paulus   z->total_in = z->total_out = 0;
   2785  1.1    paulus   z->msg = Z_NULL;
   2786  1.1    paulus   z->state->mode = z->state->nowrap ? BLOCKS : METHOD;
   2787  1.1    paulus   inflate_blocks_reset(z->state->blocks, z, &c);
   2788  1.1    paulus   Trace((stderr, "inflate: reset\n"));
   2789  1.1    paulus   return Z_OK;
   2790  1.1    paulus }
   2791  1.1    paulus 
   2792  1.1    paulus 
   2793  1.1    paulus int inflateEnd(z)
   2794  1.1    paulus z_stream *z;
   2795  1.1    paulus {
   2796  1.1    paulus   uLong c;
   2797  1.1    paulus 
   2798  1.1    paulus   if (z == Z_NULL || z->state == Z_NULL || z->zfree == Z_NULL)
   2799  1.1    paulus     return Z_STREAM_ERROR;
   2800  1.1    paulus   if (z->state->blocks != Z_NULL)
   2801  1.1    paulus     inflate_blocks_free(z->state->blocks, z, &c);
   2802  1.1    paulus   ZFREE(z, z->state, sizeof(struct internal_state));
   2803  1.1    paulus   z->state = Z_NULL;
   2804  1.1    paulus   Trace((stderr, "inflate: end\n"));
   2805  1.1    paulus   return Z_OK;
   2806  1.1    paulus }
   2807  1.1    paulus 
   2808  1.1    paulus 
   2809  1.1    paulus int inflateInit2(z, w)
   2810  1.1    paulus z_stream *z;
   2811  1.1    paulus int w;
   2812  1.1    paulus {
   2813  1.1    paulus   /* initialize state */
   2814  1.1    paulus   if (z == Z_NULL)
   2815  1.1    paulus     return Z_STREAM_ERROR;
   2816  1.1    paulus /*  if (z->zalloc == Z_NULL) z->zalloc = zcalloc; */
   2817  1.1    paulus /*  if (z->zfree == Z_NULL) z->zfree = zcfree; */
   2818  1.1    paulus   if ((z->state = (struct internal_state FAR *)
   2819  1.1    paulus        ZALLOC(z,1,sizeof(struct internal_state))) == Z_NULL)
   2820  1.1    paulus     return Z_MEM_ERROR;
   2821  1.1    paulus   z->state->blocks = Z_NULL;
   2822  1.1    paulus 
   2823  1.1    paulus   /* handle undocumented nowrap option (no zlib header or check) */
   2824  1.1    paulus   z->state->nowrap = 0;
   2825  1.1    paulus   if (w < 0)
   2826  1.1    paulus   {
   2827  1.1    paulus     w = - w;
   2828  1.1    paulus     z->state->nowrap = 1;
   2829  1.1    paulus   }
   2830  1.1    paulus 
   2831  1.1    paulus   /* set window size */
   2832  1.1    paulus   if (w < 8 || w > 15)
   2833  1.1    paulus   {
   2834  1.1    paulus     inflateEnd(z);
   2835  1.1    paulus     return Z_STREAM_ERROR;
   2836  1.1    paulus   }
   2837  1.1    paulus   z->state->wbits = (uInt)w;
   2838  1.1    paulus 
   2839  1.1    paulus   /* create inflate_blocks state */
   2840  1.1    paulus   if ((z->state->blocks =
   2841  1.1    paulus        inflate_blocks_new(z, z->state->nowrap ? Z_NULL : adler32, 1 << w))
   2842  1.1    paulus       == Z_NULL)
   2843  1.1    paulus   {
   2844  1.1    paulus     inflateEnd(z);
   2845  1.1    paulus     return Z_MEM_ERROR;
   2846  1.1    paulus   }
   2847  1.1    paulus   Trace((stderr, "inflate: allocated\n"));
   2848  1.1    paulus 
   2849  1.1    paulus   /* reset state */
   2850  1.1    paulus   inflateReset(z);
   2851  1.1    paulus   return Z_OK;
   2852  1.1    paulus }
   2853  1.1    paulus 
   2854  1.1    paulus 
   2855  1.1    paulus int inflateInit(z)
   2856  1.1    paulus z_stream *z;
   2857  1.1    paulus {
   2858  1.1    paulus   return inflateInit2(z, DEF_WBITS);
   2859  1.1    paulus }
   2860  1.1    paulus 
   2861  1.1    paulus 
   2862  1.1    paulus #define NEEDBYTE {if(z->avail_in==0)goto empty;r=Z_OK;}
   2863  1.1    paulus #define NEXTBYTE (z->avail_in--,z->total_in++,*z->next_in++)
   2864  1.1    paulus 
   2865  1.1    paulus int inflate(z, f)
   2866  1.1    paulus z_stream *z;
   2867  1.1    paulus int f;
   2868  1.1    paulus {
   2869  1.1    paulus   int r;
   2870  1.1    paulus   uInt b;
   2871  1.1    paulus 
   2872  1.1    paulus   if (z == Z_NULL || z->next_in == Z_NULL)
   2873  1.1    paulus     return Z_STREAM_ERROR;
   2874  1.1    paulus   r = Z_BUF_ERROR;
   2875  1.1    paulus   while (1) switch (z->state->mode)
   2876  1.1    paulus   {
   2877  1.1    paulus     case METHOD:
   2878  1.1    paulus       NEEDBYTE
   2879  1.1    paulus       if (((z->state->sub.method = NEXTBYTE) & 0xf) != DEFLATED)
   2880  1.1    paulus       {
   2881  1.1    paulus         z->state->mode = BAD;
   2882  1.1    paulus         z->msg = "unknown compression method";
   2883  1.1    paulus         z->state->sub.marker = 5;       /* can't try inflateSync */
   2884  1.1    paulus         break;
   2885  1.1    paulus       }
   2886  1.1    paulus       if ((z->state->sub.method >> 4) + 8 > z->state->wbits)
   2887  1.1    paulus       {
   2888  1.1    paulus         z->state->mode = BAD;
   2889  1.1    paulus         z->msg = "invalid window size";
   2890  1.1    paulus         z->state->sub.marker = 5;       /* can't try inflateSync */
   2891  1.1    paulus         break;
   2892  1.1    paulus       }
   2893  1.1    paulus       z->state->mode = FLAG;
   2894  1.1    paulus     case FLAG:
   2895  1.1    paulus       NEEDBYTE
   2896  1.1    paulus       if ((b = NEXTBYTE) & 0x20)
   2897  1.1    paulus       {
   2898  1.1    paulus         z->state->mode = BAD;
   2899  1.1    paulus         z->msg = "invalid reserved bit";
   2900  1.1    paulus         z->state->sub.marker = 5;       /* can't try inflateSync */
   2901  1.1    paulus         break;
   2902  1.1    paulus       }
   2903  1.1    paulus       if (((z->state->sub.method << 8) + b) % 31)
   2904  1.1    paulus       {
   2905  1.1    paulus         z->state->mode = BAD;
   2906  1.1    paulus         z->msg = "incorrect header check";
   2907  1.1    paulus         z->state->sub.marker = 5;       /* can't try inflateSync */
   2908  1.1    paulus         break;
   2909  1.1    paulus       }
   2910  1.1    paulus       Trace((stderr, "inflate: zlib header ok\n"));
   2911  1.1    paulus       z->state->mode = BLOCKS;
   2912  1.1    paulus     case BLOCKS:
   2913  1.1    paulus       r = inflate_blocks(z->state->blocks, z, r);
   2914  1.1    paulus       if (f == Z_PACKET_FLUSH && z->avail_in == 0 && z->avail_out != 0)
   2915  1.1    paulus 	  r = inflate_packet_flush(z->state->blocks);
   2916  1.1    paulus       if (r == Z_DATA_ERROR)
   2917  1.1    paulus       {
   2918  1.1    paulus         z->state->mode = BAD;
   2919  1.1    paulus         z->state->sub.marker = 0;       /* can try inflateSync */
   2920  1.1    paulus         break;
   2921  1.1    paulus       }
   2922  1.1    paulus       if (r != Z_STREAM_END)
   2923  1.1    paulus         return r;
   2924  1.1    paulus       r = Z_OK;
   2925  1.1    paulus       inflate_blocks_reset(z->state->blocks, z, &z->state->sub.check.was);
   2926  1.1    paulus       if (z->state->nowrap)
   2927  1.1    paulus       {
   2928  1.1    paulus         z->state->mode = DONE;
   2929  1.1    paulus         break;
   2930  1.1    paulus       }
   2931  1.1    paulus       z->state->mode = CHECK4;
   2932  1.1    paulus     case CHECK4:
   2933  1.1    paulus       NEEDBYTE
   2934  1.1    paulus       z->state->sub.check.need = (uLong)NEXTBYTE << 24;
   2935  1.1    paulus       z->state->mode = CHECK3;
   2936  1.1    paulus     case CHECK3:
   2937  1.1    paulus       NEEDBYTE
   2938  1.1    paulus       z->state->sub.check.need += (uLong)NEXTBYTE << 16;
   2939  1.1    paulus       z->state->mode = CHECK2;
   2940  1.1    paulus     case CHECK2:
   2941  1.1    paulus       NEEDBYTE
   2942  1.1    paulus       z->state->sub.check.need += (uLong)NEXTBYTE << 8;
   2943  1.1    paulus       z->state->mode = CHECK1;
   2944  1.1    paulus     case CHECK1:
   2945  1.1    paulus       NEEDBYTE
   2946  1.1    paulus       z->state->sub.check.need += (uLong)NEXTBYTE;
   2947  1.1    paulus 
   2948  1.1    paulus       if (z->state->sub.check.was != z->state->sub.check.need)
   2949  1.1    paulus       {
   2950  1.1    paulus         z->state->mode = BAD;
   2951  1.1    paulus         z->msg = "incorrect data check";
   2952  1.1    paulus         z->state->sub.marker = 5;       /* can't try inflateSync */
   2953  1.1    paulus         break;
   2954  1.1    paulus       }
   2955  1.1    paulus       Trace((stderr, "inflate: zlib check ok\n"));
   2956  1.1    paulus       z->state->mode = DONE;
   2957  1.1    paulus     case DONE:
   2958  1.1    paulus       return Z_STREAM_END;
   2959  1.1    paulus     case BAD:
   2960  1.1    paulus       return Z_DATA_ERROR;
   2961  1.1    paulus     default:
   2962  1.1    paulus       return Z_STREAM_ERROR;
   2963  1.1    paulus   }
   2964  1.1    paulus 
   2965  1.1    paulus  empty:
   2966  1.1    paulus   if (f != Z_PACKET_FLUSH)
   2967  1.1    paulus     return r;
   2968  1.1    paulus   z->state->mode = BAD;
   2969  1.1    paulus   z->state->sub.marker = 0;       /* can try inflateSync */
   2970  1.1    paulus   return Z_DATA_ERROR;
   2971  1.1    paulus }
   2972  1.1    paulus 
   2973  1.1    paulus /*
   2974  1.1    paulus  * This subroutine adds the data at next_in/avail_in to the output history
   2975  1.1    paulus  * without performing any output.  The output buffer must be "caught up";
   2976  1.1    paulus  * i.e. no pending output (hence s->read equals s->write), and the state must
   2977  1.1    paulus  * be BLOCKS (i.e. we should be willing to see the start of a series of
   2978  1.1    paulus  * BLOCKS).  On exit, the output will also be caught up, and the checksum
   2979  1.1    paulus  * will have been updated if need be.
   2980  1.1    paulus  */
   2981  1.1    paulus 
   2982  1.1    paulus int inflateIncomp(z)
   2983  1.1    paulus z_stream *z;
   2984  1.1    paulus {
   2985  1.1    paulus     if (z->state->mode != BLOCKS)
   2986  1.1    paulus 	return Z_DATA_ERROR;
   2987  1.1    paulus     return inflate_addhistory(z->state->blocks, z);
   2988  1.1    paulus }
   2989  1.1    paulus 
   2990  1.1    paulus 
   2991  1.1    paulus int inflateSync(z)
   2992  1.1    paulus z_stream *z;
   2993  1.1    paulus {
   2994  1.1    paulus   uInt n;       /* number of bytes to look at */
   2995  1.1    paulus   Bytef *p;     /* pointer to bytes */
   2996  1.1    paulus   uInt m;       /* number of marker bytes found in a row */
   2997  1.1    paulus   uLong r, w;   /* temporaries to save total_in and total_out */
   2998  1.1    paulus 
   2999  1.1    paulus   /* set up */
   3000  1.1    paulus   if (z == Z_NULL || z->state == Z_NULL)
   3001  1.1    paulus     return Z_STREAM_ERROR;
   3002  1.1    paulus   if (z->state->mode != BAD)
   3003  1.1    paulus   {
   3004  1.1    paulus     z->state->mode = BAD;
   3005  1.1    paulus     z->state->sub.marker = 0;
   3006  1.1    paulus   }
   3007  1.1    paulus   if ((n = z->avail_in) == 0)
   3008  1.1    paulus     return Z_BUF_ERROR;
   3009  1.1    paulus   p = z->next_in;
   3010  1.1    paulus   m = z->state->sub.marker;
   3011  1.1    paulus 
   3012  1.1    paulus   /* search */
   3013  1.1    paulus   while (n && m < 4)
   3014  1.1    paulus   {
   3015  1.1    paulus     if (*p == (Byte)(m < 2 ? 0 : 0xff))
   3016  1.1    paulus       m++;
   3017  1.1    paulus     else if (*p)
   3018  1.1    paulus       m = 0;
   3019  1.1    paulus     else
   3020  1.1    paulus       m = 4 - m;
   3021  1.1    paulus     p++, n--;
   3022  1.1    paulus   }
   3023  1.1    paulus 
   3024  1.1    paulus   /* restore */
   3025  1.1    paulus   z->total_in += p - z->next_in;
   3026  1.1    paulus   z->next_in = p;
   3027  1.1    paulus   z->avail_in = n;
   3028  1.1    paulus   z->state->sub.marker = m;
   3029  1.1    paulus 
   3030  1.1    paulus   /* return no joy or set up to restart on a new block */
   3031  1.1    paulus   if (m != 4)
   3032  1.1    paulus     return Z_DATA_ERROR;
   3033  1.1    paulus   r = z->total_in;  w = z->total_out;
   3034  1.1    paulus   inflateReset(z);
   3035  1.1    paulus   z->total_in = r;  z->total_out = w;
   3036  1.1    paulus   z->state->mode = BLOCKS;
   3037  1.1    paulus   return Z_OK;
   3038  1.1    paulus }
   3039  1.1    paulus 
   3040  1.1    paulus #undef NEEDBYTE
   3041  1.1    paulus #undef NEXTBYTE
   3042  1.1    paulus 
   3043  1.1    paulus /*+++++*/
   3044  1.1    paulus /* infutil.h -- types and macros common to blocks and codes
   3045  1.1    paulus  * Copyright (C) 1995 Mark Adler
   3046  1.1    paulus  * For conditions of distribution and use, see copyright notice in zlib.h
   3047  1.1    paulus  */
   3048  1.1    paulus 
   3049  1.1    paulus /* WARNING: this file should *not* be used by applications. It is
   3050  1.1    paulus    part of the implementation of the compression library and is
   3051  1.1    paulus    subject to change. Applications should only use zlib.h.
   3052  1.1    paulus  */
   3053  1.1    paulus 
   3054  1.1    paulus /* inflate blocks semi-private state */
   3055  1.1    paulus struct inflate_blocks_state {
   3056  1.1    paulus 
   3057  1.1    paulus   /* mode */
   3058  1.1    paulus   enum {
   3059  1.1    paulus       TYPE,     /* get type bits (3, including end bit) */
   3060  1.1    paulus       LENS,     /* get lengths for stored */
   3061  1.1    paulus       STORED,   /* processing stored block */
   3062  1.1    paulus       TABLE,    /* get table lengths */
   3063  1.1    paulus       BTREE,    /* get bit lengths tree for a dynamic block */
   3064  1.1    paulus       DTREE,    /* get length, distance trees for a dynamic block */
   3065  1.1    paulus       CODES,    /* processing fixed or dynamic block */
   3066  1.1    paulus       DRY,      /* output remaining window bytes */
   3067  1.1    paulus       DONEB,     /* finished last block, done */
   3068  1.1    paulus       BADB}      /* got a data error--stuck here */
   3069  1.1    paulus     mode;               /* current inflate_block mode */
   3070  1.1    paulus 
   3071  1.1    paulus   /* mode dependent information */
   3072  1.1    paulus   union {
   3073  1.1    paulus     uInt left;          /* if STORED, bytes left to copy */
   3074  1.1    paulus     struct {
   3075  1.1    paulus       uInt table;               /* table lengths (14 bits) */
   3076  1.1    paulus       uInt index;               /* index into blens (or border) */
   3077  1.1    paulus       uIntf *blens;             /* bit lengths of codes */
   3078  1.1    paulus       uInt bb;                  /* bit length tree depth */
   3079  1.1    paulus       inflate_huft *tb;         /* bit length decoding tree */
   3080  1.1    paulus       int nblens;		/* # elements allocated at blens */
   3081  1.1    paulus     } trees;            /* if DTREE, decoding info for trees */
   3082  1.1    paulus     struct {
   3083  1.1    paulus       inflate_huft *tl, *td;    /* trees to free */
   3084  1.1    paulus       inflate_codes_statef
   3085  1.1    paulus          *codes;
   3086  1.1    paulus     } decode;           /* if CODES, current state */
   3087  1.1    paulus   } sub;                /* submode */
   3088  1.1    paulus   uInt last;            /* true if this block is the last block */
   3089  1.1    paulus 
   3090  1.1    paulus   /* mode independent information */
   3091  1.1    paulus   uInt bitk;            /* bits in bit buffer */
   3092  1.1    paulus   uLong bitb;           /* bit buffer */
   3093  1.1    paulus   Bytef *window;        /* sliding window */
   3094  1.1    paulus   Bytef *end;           /* one byte after sliding window */
   3095  1.1    paulus   Bytef *read;          /* window read pointer */
   3096  1.1    paulus   Bytef *write;         /* window write pointer */
   3097  1.1    paulus   check_func checkfn;   /* check function */
   3098  1.1    paulus   uLong check;          /* check on output */
   3099  1.1    paulus 
   3100  1.1    paulus };
   3101  1.1    paulus 
   3102  1.1    paulus 
   3103  1.1    paulus /* defines for inflate input/output */
   3104  1.1    paulus /*   update pointers and return */
   3105  1.1    paulus #define UPDBITS {s->bitb=b;s->bitk=k;}
   3106  1.1    paulus #define UPDIN {z->avail_in=n;z->total_in+=p-z->next_in;z->next_in=p;}
   3107  1.1    paulus #define UPDOUT {s->write=q;}
   3108  1.1    paulus #define UPDATE {UPDBITS UPDIN UPDOUT}
   3109  1.1    paulus #define LEAVE {UPDATE return inflate_flush(s,z,r);}
   3110  1.1    paulus /*   get bytes and bits */
   3111  1.1    paulus #define LOADIN {p=z->next_in;n=z->avail_in;b=s->bitb;k=s->bitk;}
   3112  1.1    paulus #define NEEDBYTE {if(n)r=Z_OK;else LEAVE}
   3113  1.1    paulus #define NEXTBYTE (n--,*p++)
   3114  1.1    paulus #define NEEDBITS(j) {while(k<(j)){NEEDBYTE;b|=((uLong)NEXTBYTE)<<k;k+=8;}}
   3115  1.1    paulus #define DUMPBITS(j) {b>>=(j);k-=(j);}
   3116  1.1    paulus /*   output bytes */
   3117  1.1    paulus #define WAVAIL (q<s->read?s->read-q-1:s->end-q)
   3118  1.1    paulus #define LOADOUT {q=s->write;m=WAVAIL;}
   3119  1.1    paulus #define WRAP {if(q==s->end&&s->read!=s->window){q=s->window;m=WAVAIL;}}
   3120  1.1    paulus #define FLUSH {UPDOUT r=inflate_flush(s,z,r); LOADOUT}
   3121  1.1    paulus #define NEEDOUT {if(m==0){WRAP if(m==0){FLUSH WRAP if(m==0) LEAVE}}r=Z_OK;}
   3122  1.1    paulus #define OUTBYTE(a) {*q++=(Byte)(a);m--;}
   3123  1.1    paulus /*   load local pointers */
   3124  1.1    paulus #define LOAD {LOADIN LOADOUT}
   3125  1.1    paulus 
   3126  1.1    paulus /* And'ing with mask[n] masks the lower n bits */
   3127  1.1    paulus local uInt inflate_mask[] = {
   3128  1.1    paulus     0x0000,
   3129  1.1    paulus     0x0001, 0x0003, 0x0007, 0x000f, 0x001f, 0x003f, 0x007f, 0x00ff,
   3130  1.1    paulus     0x01ff, 0x03ff, 0x07ff, 0x0fff, 0x1fff, 0x3fff, 0x7fff, 0xffff
   3131  1.1    paulus };
   3132  1.1    paulus 
   3133  1.1    paulus /* copy as much as possible from the sliding window to the output area */
   3134  1.1    paulus local int inflate_flush OF((
   3135  1.1    paulus     inflate_blocks_statef *,
   3136  1.1    paulus     z_stream *,
   3137  1.1    paulus     int));
   3138  1.1    paulus 
   3139  1.1    paulus /*+++++*/
   3140  1.1    paulus /* inffast.h -- header to use inffast.c
   3141  1.1    paulus  * Copyright (C) 1995 Mark Adler
   3142  1.1    paulus  * For conditions of distribution and use, see copyright notice in zlib.h
   3143  1.1    paulus  */
   3144  1.1    paulus 
   3145  1.1    paulus /* WARNING: this file should *not* be used by applications. It is
   3146  1.1    paulus    part of the implementation of the compression library and is
   3147  1.1    paulus    subject to change. Applications should only use zlib.h.
   3148  1.1    paulus  */
   3149  1.1    paulus 
   3150  1.1    paulus local int inflate_fast OF((
   3151  1.1    paulus     uInt,
   3152  1.1    paulus     uInt,
   3153  1.1    paulus     inflate_huft *,
   3154  1.1    paulus     inflate_huft *,
   3155  1.1    paulus     inflate_blocks_statef *,
   3156  1.1    paulus     z_stream *));
   3157  1.1    paulus 
   3158  1.1    paulus 
   3159  1.1    paulus /*+++++*/
   3160  1.1    paulus /* infblock.c -- interpret and process block types to last block
   3161  1.1    paulus  * Copyright (C) 1995 Mark Adler
   3162  1.1    paulus  * For conditions of distribution and use, see copyright notice in zlib.h
   3163  1.1    paulus  */
   3164  1.1    paulus 
   3165  1.1    paulus /* Table for deflate from PKZIP's appnote.txt. */
   3166  1.1    paulus local uInt border[] = { /* Order of the bit length code lengths */
   3167  1.1    paulus         16, 17, 18, 0, 8, 7, 9, 6, 10, 5, 11, 4, 12, 3, 13, 2, 14, 1, 15};
   3168  1.1    paulus 
   3169  1.1    paulus /*
   3170  1.1    paulus    Notes beyond the 1.93a appnote.txt:
   3171  1.1    paulus 
   3172  1.1    paulus    1. Distance pointers never point before the beginning of the output
   3173  1.1    paulus       stream.
   3174  1.1    paulus    2. Distance pointers can point back across blocks, up to 32k away.
   3175  1.1    paulus    3. There is an implied maximum of 7 bits for the bit length table and
   3176  1.1    paulus       15 bits for the actual data.
   3177  1.1    paulus    4. If only one code exists, then it is encoded using one bit.  (Zero
   3178  1.1    paulus       would be more efficient, but perhaps a little confusing.)  If two
   3179  1.1    paulus       codes exist, they are coded using one bit each (0 and 1).
   3180  1.1    paulus    5. There is no way of sending zero distance codes--a dummy must be
   3181  1.1    paulus       sent if there are none.  (History: a pre 2.0 version of PKZIP would
   3182  1.1    paulus       store blocks with no distance codes, but this was discovered to be
   3183  1.1    paulus       too harsh a criterion.)  Valid only for 1.93a.  2.04c does allow
   3184  1.1    paulus       zero distance codes, which is sent as one code of zero bits in
   3185  1.1    paulus       length.
   3186  1.1    paulus    6. There are up to 286 literal/length codes.  Code 256 represents the
   3187  1.1    paulus       end-of-block.  Note however that the static length tree defines
   3188  1.1    paulus       288 codes just to fill out the Huffman codes.  Codes 286 and 287
   3189  1.1    paulus       cannot be used though, since there is no length base or extra bits
   3190  1.1    paulus       defined for them.  Similarily, there are up to 30 distance codes.
   3191  1.1    paulus       However, static trees define 32 codes (all 5 bits) to fill out the
   3192  1.1    paulus       Huffman codes, but the last two had better not show up in the data.
   3193  1.1    paulus    7. Unzip can check dynamic Huffman blocks for complete code sets.
   3194  1.1    paulus       The exception is that a single code would not be complete (see #4).
   3195  1.1    paulus    8. The five bits following the block type is really the number of
   3196  1.1    paulus       literal codes sent minus 257.
   3197  1.1    paulus    9. Length codes 8,16,16 are interpreted as 13 length codes of 8 bits
   3198  1.1    paulus       (1+6+6).  Therefore, to output three times the length, you output
   3199  1.1    paulus       three codes (1+1+1), whereas to output four times the same length,
   3200  1.1    paulus       you only need two codes (1+3).  Hmm.
   3201  1.1    paulus   10. In the tree reconstruction algorithm, Code = Code + Increment
   3202  1.1    paulus       only if BitLength(i) is not zero.  (Pretty obvious.)
   3203  1.1    paulus   11. Correction: 4 Bits: # of Bit Length codes - 4     (4 - 19)
   3204  1.1    paulus   12. Note: length code 284 can represent 227-258, but length code 285
   3205  1.1    paulus       really is 258.  The last length deserves its own, short code
   3206  1.1    paulus       since it gets used a lot in very redundant files.  The length
   3207  1.1    paulus       258 is special since 258 - 3 (the min match length) is 255.
   3208  1.1    paulus   13. The literal/length and distance code bit lengths are read as a
   3209  1.1    paulus       single stream of lengths.  It is possible (and advantageous) for
   3210  1.1    paulus       a repeat code (16, 17, or 18) to go across the boundary between
   3211  1.1    paulus       the two sets of lengths.
   3212  1.1    paulus  */
   3213  1.1    paulus 
   3214  1.1    paulus 
   3215  1.1    paulus local void inflate_blocks_reset(s, z, c)
   3216  1.1    paulus inflate_blocks_statef *s;
   3217  1.1    paulus z_stream *z;
   3218  1.1    paulus uLongf *c;
   3219  1.1    paulus {
   3220  1.1    paulus   if (s->checkfn != Z_NULL)
   3221  1.1    paulus     *c = s->check;
   3222  1.1    paulus   if (s->mode == BTREE || s->mode == DTREE)
   3223  1.1    paulus     ZFREE(z, s->sub.trees.blens, s->sub.trees.nblens * sizeof(uInt));
   3224  1.1    paulus   if (s->mode == CODES)
   3225  1.1    paulus   {
   3226  1.1    paulus     inflate_codes_free(s->sub.decode.codes, z);
   3227  1.1    paulus     inflate_trees_free(s->sub.decode.td, z);
   3228  1.1    paulus     inflate_trees_free(s->sub.decode.tl, z);
   3229  1.1    paulus   }
   3230  1.1    paulus   s->mode = TYPE;
   3231  1.1    paulus   s->bitk = 0;
   3232  1.1    paulus   s->bitb = 0;
   3233  1.1    paulus   s->read = s->write = s->window;
   3234  1.1    paulus   if (s->checkfn != Z_NULL)
   3235  1.1    paulus     s->check = (*s->checkfn)(0L, Z_NULL, 0);
   3236  1.1    paulus   Trace((stderr, "inflate:   blocks reset\n"));
   3237  1.1    paulus }
   3238  1.1    paulus 
   3239  1.1    paulus 
   3240  1.1    paulus local inflate_blocks_statef *inflate_blocks_new(z, c, w)
   3241  1.1    paulus z_stream *z;
   3242  1.1    paulus check_func c;
   3243  1.1    paulus uInt w;
   3244  1.1    paulus {
   3245  1.1    paulus   inflate_blocks_statef *s;
   3246  1.1    paulus 
   3247  1.1    paulus   if ((s = (inflate_blocks_statef *)ZALLOC
   3248  1.1    paulus        (z,1,sizeof(struct inflate_blocks_state))) == Z_NULL)
   3249  1.1    paulus     return s;
   3250  1.1    paulus   if ((s->window = (Bytef *)ZALLOC(z, 1, w)) == Z_NULL)
   3251  1.1    paulus   {
   3252  1.1    paulus     ZFREE(z, s, sizeof(struct inflate_blocks_state));
   3253  1.1    paulus     return Z_NULL;
   3254  1.1    paulus   }
   3255  1.1    paulus   s->end = s->window + w;
   3256  1.1    paulus   s->checkfn = c;
   3257  1.1    paulus   s->mode = TYPE;
   3258  1.1    paulus   Trace((stderr, "inflate:   blocks allocated\n"));
   3259  1.1    paulus   inflate_blocks_reset(s, z, &s->check);
   3260  1.1    paulus   return s;
   3261  1.1    paulus }
   3262  1.1    paulus 
   3263  1.1    paulus 
   3264  1.1    paulus local int inflate_blocks(s, z, r)
   3265  1.1    paulus inflate_blocks_statef *s;
   3266  1.1    paulus z_stream *z;
   3267  1.1    paulus int r;
   3268  1.1    paulus {
   3269  1.1    paulus   uInt t;               /* temporary storage */
   3270  1.1    paulus   uLong b;              /* bit buffer */
   3271  1.1    paulus   uInt k;               /* bits in bit buffer */
   3272  1.1    paulus   Bytef *p;             /* input data pointer */
   3273  1.1    paulus   uInt n;               /* bytes available there */
   3274  1.1    paulus   Bytef *q;             /* output window write pointer */
   3275  1.1    paulus   uInt m;               /* bytes to end of window or read pointer */
   3276  1.1    paulus 
   3277  1.1    paulus   /* copy input/output information to locals (UPDATE macro restores) */
   3278  1.1    paulus   LOAD
   3279  1.1    paulus 
   3280  1.1    paulus   /* process input based on current state */
   3281  1.1    paulus   while (1) switch (s->mode)
   3282  1.1    paulus   {
   3283  1.1    paulus     case TYPE:
   3284  1.1    paulus       NEEDBITS(3)
   3285  1.1    paulus       t = (uInt)b & 7;
   3286  1.1    paulus       s->last = t & 1;
   3287  1.1    paulus       switch (t >> 1)
   3288  1.1    paulus       {
   3289  1.1    paulus         case 0:                         /* stored */
   3290  1.1    paulus           Trace((stderr, "inflate:     stored block%s\n",
   3291  1.1    paulus                  s->last ? " (last)" : ""));
   3292  1.1    paulus           DUMPBITS(3)
   3293  1.1    paulus           t = k & 7;                    /* go to byte boundary */
   3294  1.1    paulus           DUMPBITS(t)
   3295  1.1    paulus           s->mode = LENS;               /* get length of stored block */
   3296  1.1    paulus           break;
   3297  1.1    paulus         case 1:                         /* fixed */
   3298  1.1    paulus           Trace((stderr, "inflate:     fixed codes block%s\n",
   3299  1.1    paulus                  s->last ? " (last)" : ""));
   3300  1.1    paulus           {
   3301  1.1    paulus             uInt bl, bd;
   3302  1.1    paulus             inflate_huft *tl, *td;
   3303  1.1    paulus 
   3304  1.1    paulus             inflate_trees_fixed(&bl, &bd, &tl, &td);
   3305  1.1    paulus             s->sub.decode.codes = inflate_codes_new(bl, bd, tl, td, z);
   3306  1.1    paulus             if (s->sub.decode.codes == Z_NULL)
   3307  1.1    paulus             {
   3308  1.1    paulus               r = Z_MEM_ERROR;
   3309  1.1    paulus               LEAVE
   3310  1.1    paulus             }
   3311  1.1    paulus             s->sub.decode.tl = Z_NULL;  /* don't try to free these */
   3312  1.1    paulus             s->sub.decode.td = Z_NULL;
   3313  1.1    paulus           }
   3314  1.1    paulus           DUMPBITS(3)
   3315  1.1    paulus           s->mode = CODES;
   3316  1.1    paulus           break;
   3317  1.1    paulus         case 2:                         /* dynamic */
   3318  1.1    paulus           Trace((stderr, "inflate:     dynamic codes block%s\n",
   3319  1.1    paulus                  s->last ? " (last)" : ""));
   3320  1.1    paulus           DUMPBITS(3)
   3321  1.1    paulus           s->mode = TABLE;
   3322  1.1    paulus           break;
   3323  1.1    paulus         case 3:                         /* illegal */
   3324  1.1    paulus           DUMPBITS(3)
   3325  1.1    paulus           s->mode = BADB;
   3326  1.1    paulus           z->msg = "invalid block type";
   3327  1.1    paulus           r = Z_DATA_ERROR;
   3328  1.1    paulus           LEAVE
   3329  1.1    paulus       }
   3330  1.1    paulus       break;
   3331  1.1    paulus     case LENS:
   3332  1.1    paulus       NEEDBITS(32)
   3333  1.1    paulus       if (((~b) >> 16) != (b & 0xffff))
   3334  1.1    paulus       {
   3335  1.1    paulus         s->mode = BADB;
   3336  1.1    paulus         z->msg = "invalid stored block lengths";
   3337  1.1    paulus         r = Z_DATA_ERROR;
   3338  1.1    paulus         LEAVE
   3339  1.1    paulus       }
   3340  1.1    paulus       s->sub.left = (uInt)b & 0xffff;
   3341  1.1    paulus       b = k = 0;                      /* dump bits */
   3342  1.1    paulus       Tracev((stderr, "inflate:       stored length %u\n", s->sub.left));
   3343  1.1    paulus       s->mode = s->sub.left ? STORED : TYPE;
   3344  1.1    paulus       break;
   3345  1.1    paulus     case STORED:
   3346  1.1    paulus       if (n == 0)
   3347  1.1    paulus         LEAVE
   3348  1.1    paulus       NEEDOUT
   3349  1.1    paulus       t = s->sub.left;
   3350  1.1    paulus       if (t > n) t = n;
   3351  1.1    paulus       if (t > m) t = m;
   3352  1.1    paulus       zmemcpy(q, p, t);
   3353  1.1    paulus       p += t;  n -= t;
   3354  1.1    paulus       q += t;  m -= t;
   3355  1.1    paulus       if ((s->sub.left -= t) != 0)
   3356  1.1    paulus         break;
   3357  1.1    paulus       Tracev((stderr, "inflate:       stored end, %lu total out\n",
   3358  1.1    paulus               z->total_out + (q >= s->read ? q - s->read :
   3359  1.1    paulus               (s->end - s->read) + (q - s->window))));
   3360  1.1    paulus       s->mode = s->last ? DRY : TYPE;
   3361  1.1    paulus       break;
   3362  1.1    paulus     case TABLE:
   3363  1.1    paulus       NEEDBITS(14)
   3364  1.1    paulus       s->sub.trees.table = t = (uInt)b & 0x3fff;
   3365  1.1    paulus #ifndef PKZIP_BUG_WORKAROUND
   3366  1.1    paulus       if ((t & 0x1f) > 29 || ((t >> 5) & 0x1f) > 29)
   3367  1.1    paulus       {
   3368  1.1    paulus         s->mode = BADB;
   3369  1.1    paulus         z->msg = "too many length or distance symbols";
   3370  1.1    paulus         r = Z_DATA_ERROR;
   3371  1.1    paulus         LEAVE
   3372  1.1    paulus       }
   3373  1.1    paulus #endif
   3374  1.1    paulus       t = 258 + (t & 0x1f) + ((t >> 5) & 0x1f);
   3375  1.1    paulus       if (t < 19)
   3376  1.1    paulus         t = 19;
   3377  1.1    paulus       if ((s->sub.trees.blens = (uIntf*)ZALLOC(z, t, sizeof(uInt))) == Z_NULL)
   3378  1.1    paulus       {
   3379  1.1    paulus         r = Z_MEM_ERROR;
   3380  1.1    paulus         LEAVE
   3381  1.1    paulus       }
   3382  1.1    paulus       s->sub.trees.nblens = t;
   3383  1.1    paulus       DUMPBITS(14)
   3384  1.1    paulus       s->sub.trees.index = 0;
   3385  1.1    paulus       Tracev((stderr, "inflate:       table sizes ok\n"));
   3386  1.1    paulus       s->mode = BTREE;
   3387  1.1    paulus     case BTREE:
   3388  1.1    paulus       while (s->sub.trees.index < 4 + (s->sub.trees.table >> 10))
   3389  1.1    paulus       {
   3390  1.1    paulus         NEEDBITS(3)
   3391  1.1    paulus         s->sub.trees.blens[border[s->sub.trees.index++]] = (uInt)b & 7;
   3392  1.1    paulus         DUMPBITS(3)
   3393  1.1    paulus       }
   3394  1.1    paulus       while (s->sub.trees.index < 19)
   3395  1.1    paulus         s->sub.trees.blens[border[s->sub.trees.index++]] = 0;
   3396  1.1    paulus       s->sub.trees.bb = 7;
   3397  1.1    paulus       t = inflate_trees_bits(s->sub.trees.blens, &s->sub.trees.bb,
   3398  1.1    paulus                              &s->sub.trees.tb, z);
   3399  1.1    paulus       if (t != Z_OK)
   3400  1.1    paulus       {
   3401  1.1    paulus         r = t;
   3402  1.1    paulus         if (r == Z_DATA_ERROR)
   3403  1.1    paulus           s->mode = BADB;
   3404  1.1    paulus         LEAVE
   3405  1.1    paulus       }
   3406  1.1    paulus       s->sub.trees.index = 0;
   3407  1.1    paulus       Tracev((stderr, "inflate:       bits tree ok\n"));
   3408  1.1    paulus       s->mode = DTREE;
   3409  1.1    paulus     case DTREE:
   3410  1.1    paulus       while (t = s->sub.trees.table,
   3411  1.1    paulus              s->sub.trees.index < 258 + (t & 0x1f) + ((t >> 5) & 0x1f))
   3412  1.1    paulus       {
   3413  1.1    paulus         inflate_huft *h;
   3414  1.1    paulus         uInt i, j, c;
   3415  1.1    paulus 
   3416  1.1    paulus         t = s->sub.trees.bb;
   3417  1.1    paulus         NEEDBITS(t)
   3418  1.1    paulus         h = s->sub.trees.tb + ((uInt)b & inflate_mask[t]);
   3419  1.1    paulus         t = h->word.what.Bits;
   3420  1.1    paulus         c = h->more.Base;
   3421  1.1    paulus         if (c < 16)
   3422  1.1    paulus         {
   3423  1.1    paulus           DUMPBITS(t)
   3424  1.1    paulus           s->sub.trees.blens[s->sub.trees.index++] = c;
   3425  1.1    paulus         }
   3426  1.1    paulus         else /* c == 16..18 */
   3427  1.1    paulus         {
   3428  1.1    paulus           i = c == 18 ? 7 : c - 14;
   3429  1.1    paulus           j = c == 18 ? 11 : 3;
   3430  1.1    paulus           NEEDBITS(t + i)
   3431  1.1    paulus           DUMPBITS(t)
   3432  1.1    paulus           j += (uInt)b & inflate_mask[i];
   3433  1.1    paulus           DUMPBITS(i)
   3434  1.1    paulus           i = s->sub.trees.index;
   3435  1.1    paulus           t = s->sub.trees.table;
   3436  1.1    paulus           if (i + j > 258 + (t & 0x1f) + ((t >> 5) & 0x1f) ||
   3437  1.1    paulus               (c == 16 && i < 1))
   3438  1.1    paulus           {
   3439  1.1    paulus             s->mode = BADB;
   3440  1.1    paulus             z->msg = "invalid bit length repeat";
   3441  1.1    paulus             r = Z_DATA_ERROR;
   3442  1.1    paulus             LEAVE
   3443  1.1    paulus           }
   3444  1.1    paulus           c = c == 16 ? s->sub.trees.blens[i - 1] : 0;
   3445  1.1    paulus           do {
   3446  1.1    paulus             s->sub.trees.blens[i++] = c;
   3447  1.1    paulus           } while (--j);
   3448  1.1    paulus           s->sub.trees.index = i;
   3449  1.1    paulus         }
   3450  1.1    paulus       }
   3451  1.1    paulus       inflate_trees_free(s->sub.trees.tb, z);
   3452  1.1    paulus       s->sub.trees.tb = Z_NULL;
   3453  1.1    paulus       {
   3454  1.1    paulus         uInt bl, bd;
   3455  1.1    paulus         inflate_huft *tl, *td;
   3456  1.1    paulus         inflate_codes_statef *c;
   3457  1.1    paulus 
   3458  1.1    paulus         bl = 9;         /* must be <= 9 for lookahead assumptions */
   3459  1.1    paulus         bd = 6;         /* must be <= 9 for lookahead assumptions */
   3460  1.1    paulus         t = s->sub.trees.table;
   3461  1.1    paulus         t = inflate_trees_dynamic(257 + (t & 0x1f), 1 + ((t >> 5) & 0x1f),
   3462  1.1    paulus                                   s->sub.trees.blens, &bl, &bd, &tl, &td, z);
   3463  1.1    paulus         if (t != Z_OK)
   3464  1.1    paulus         {
   3465  1.1    paulus           if (t == (uInt)Z_DATA_ERROR)
   3466  1.1    paulus             s->mode = BADB;
   3467  1.1    paulus           r = t;
   3468  1.1    paulus           LEAVE
   3469  1.1    paulus         }
   3470  1.1    paulus         Tracev((stderr, "inflate:       trees ok\n"));
   3471  1.1    paulus         if ((c = inflate_codes_new(bl, bd, tl, td, z)) == Z_NULL)
   3472  1.1    paulus         {
   3473  1.1    paulus           inflate_trees_free(td, z);
   3474  1.1    paulus           inflate_trees_free(tl, z);
   3475  1.1    paulus           r = Z_MEM_ERROR;
   3476  1.1    paulus           LEAVE
   3477  1.1    paulus         }
   3478  1.1    paulus         ZFREE(z, s->sub.trees.blens, s->sub.trees.nblens * sizeof(uInt));
   3479  1.1    paulus         s->sub.decode.codes = c;
   3480  1.1    paulus         s->sub.decode.tl = tl;
   3481  1.1    paulus         s->sub.decode.td = td;
   3482  1.1    paulus       }
   3483  1.1    paulus       s->mode = CODES;
   3484  1.1    paulus     case CODES:
   3485  1.1    paulus       UPDATE
   3486  1.1    paulus       if ((r = inflate_codes(s, z, r)) != Z_STREAM_END)
   3487  1.1    paulus         return inflate_flush(s, z, r);
   3488  1.1    paulus       r = Z_OK;
   3489  1.1    paulus       inflate_codes_free(s->sub.decode.codes, z);
   3490  1.1    paulus       inflate_trees_free(s->sub.decode.td, z);
   3491  1.1    paulus       inflate_trees_free(s->sub.decode.tl, z);
   3492  1.1    paulus       LOAD
   3493  1.1    paulus       Tracev((stderr, "inflate:       codes end, %lu total out\n",
   3494  1.1    paulus               z->total_out + (q >= s->read ? q - s->read :
   3495  1.1    paulus               (s->end - s->read) + (q - s->window))));
   3496  1.1    paulus       if (!s->last)
   3497  1.1    paulus       {
   3498  1.1    paulus         s->mode = TYPE;
   3499  1.1    paulus         break;
   3500  1.1    paulus       }
   3501  1.1    paulus       if (k > 7)              /* return unused byte, if any */
   3502  1.1    paulus       {
   3503  1.1    paulus         Assert(k < 16, "inflate_codes grabbed too many bytes")
   3504  1.1    paulus         k -= 8;
   3505  1.1    paulus         n++;
   3506  1.1    paulus         p--;                    /* can always return one */
   3507  1.1    paulus       }
   3508  1.1    paulus       s->mode = DRY;
   3509  1.1    paulus     case DRY:
   3510  1.1    paulus       FLUSH
   3511  1.1    paulus       if (s->read != s->write)
   3512  1.1    paulus         LEAVE
   3513  1.1    paulus       s->mode = DONEB;
   3514  1.1    paulus     case DONEB:
   3515  1.1    paulus       r = Z_STREAM_END;
   3516  1.1    paulus       LEAVE
   3517  1.1    paulus     case BADB:
   3518  1.1    paulus       r = Z_DATA_ERROR;
   3519  1.1    paulus       LEAVE
   3520  1.1    paulus     default:
   3521  1.1    paulus       r = Z_STREAM_ERROR;
   3522  1.1    paulus       LEAVE
   3523  1.1    paulus   }
   3524  1.1    paulus }
   3525  1.1    paulus 
   3526  1.1    paulus 
   3527  1.1    paulus local int inflate_blocks_free(s, z, c)
   3528  1.1    paulus inflate_blocks_statef *s;
   3529  1.1    paulus z_stream *z;
   3530  1.1    paulus uLongf *c;
   3531  1.1    paulus {
   3532  1.1    paulus   inflate_blocks_reset(s, z, c);
   3533  1.1    paulus   ZFREE(z, s->window, s->end - s->window);
   3534  1.1    paulus   ZFREE(z, s, sizeof(struct inflate_blocks_state));
   3535  1.1    paulus   Trace((stderr, "inflate:   blocks freed\n"));
   3536  1.1    paulus   return Z_OK;
   3537  1.1    paulus }
   3538  1.1    paulus 
   3539  1.1    paulus /*
   3540  1.1    paulus  * This subroutine adds the data at next_in/avail_in to the output history
   3541  1.1    paulus  * without performing any output.  The output buffer must be "caught up";
   3542  1.1    paulus  * i.e. no pending output (hence s->read equals s->write), and the state must
   3543  1.1    paulus  * be BLOCKS (i.e. we should be willing to see the start of a series of
   3544  1.1    paulus  * BLOCKS).  On exit, the output will also be caught up, and the checksum
   3545  1.1    paulus  * will have been updated if need be.
   3546  1.1    paulus  */
   3547  1.1    paulus local int inflate_addhistory(s, z)
   3548  1.1    paulus inflate_blocks_statef *s;
   3549  1.1    paulus z_stream *z;
   3550  1.1    paulus {
   3551  1.1    paulus     uLong b;              /* bit buffer */  /* NOT USED HERE */
   3552  1.1    paulus     uInt k;               /* bits in bit buffer */ /* NOT USED HERE */
   3553  1.1    paulus     uInt t;               /* temporary storage */
   3554  1.1    paulus     Bytef *p;             /* input data pointer */
   3555  1.1    paulus     uInt n;               /* bytes available there */
   3556  1.1    paulus     Bytef *q;             /* output window write pointer */
   3557  1.1    paulus     uInt m;               /* bytes to end of window or read pointer */
   3558  1.1    paulus 
   3559  1.1    paulus     if (s->read != s->write)
   3560  1.1    paulus 	return Z_STREAM_ERROR;
   3561  1.1    paulus     if (s->mode != TYPE)
   3562  1.1    paulus 	return Z_DATA_ERROR;
   3563  1.1    paulus 
   3564  1.1    paulus     /* we're ready to rock */
   3565  1.1    paulus     LOAD
   3566  1.1    paulus     /* while there is input ready, copy to output buffer, moving
   3567  1.1    paulus      * pointers as needed.
   3568  1.1    paulus      */
   3569  1.1    paulus     while (n) {
   3570  1.1    paulus 	t = n;  /* how many to do */
   3571  1.1    paulus 	/* is there room until end of buffer? */
   3572  1.1    paulus 	if (t > m) t = m;
   3573  1.1    paulus 	/* update check information */
   3574  1.1    paulus 	if (s->checkfn != Z_NULL)
   3575  1.1    paulus 	    s->check = (*s->checkfn)(s->check, q, t);
   3576  1.1    paulus 	zmemcpy(q, p, t);
   3577  1.1    paulus 	q += t;
   3578  1.1    paulus 	p += t;
   3579  1.1    paulus 	n -= t;
   3580  1.1    paulus 	z->total_out += t;
   3581  1.1    paulus 	s->read = q;    /* drag read pointer forward */
   3582  1.1    paulus /*      WRAP  */ 	/* expand WRAP macro by hand to handle s->read */
   3583  1.1    paulus 	if (q == s->end) {
   3584  1.1    paulus 	    s->read = q = s->window;
   3585  1.1    paulus 	    m = WAVAIL;
   3586  1.1    paulus 	}
   3587  1.1    paulus     }
   3588  1.1    paulus     UPDATE
   3589  1.1    paulus     return Z_OK;
   3590  1.1    paulus }
   3591  1.1    paulus 
   3592  1.1    paulus 
   3593  1.1    paulus /*
   3594  1.1    paulus  * At the end of a Deflate-compressed PPP packet, we expect to have seen
   3595  1.1    paulus  * a `stored' block type value but not the (zero) length bytes.
   3596  1.1    paulus  */
   3597  1.1    paulus local int inflate_packet_flush(s)
   3598  1.1    paulus     inflate_blocks_statef *s;
   3599  1.1    paulus {
   3600  1.1    paulus     if (s->mode != LENS)
   3601  1.1    paulus 	return Z_DATA_ERROR;
   3602  1.1    paulus     s->mode = TYPE;
   3603  1.1    paulus     return Z_OK;
   3604  1.1    paulus }
   3605  1.1    paulus 
   3606  1.1    paulus 
   3607  1.1    paulus /*+++++*/
   3608  1.1    paulus /* inftrees.c -- generate Huffman trees for efficient decoding
   3609  1.1    paulus  * Copyright (C) 1995 Mark Adler
   3610  1.1    paulus  * For conditions of distribution and use, see copyright notice in zlib.h
   3611  1.1    paulus  */
   3612  1.1    paulus 
   3613  1.1    paulus /* simplify the use of the inflate_huft type with some defines */
   3614  1.1    paulus #define base more.Base
   3615  1.1    paulus #define next more.Next
   3616  1.1    paulus #define exop word.what.Exop
   3617  1.1    paulus #define bits word.what.Bits
   3618  1.1    paulus 
   3619  1.1    paulus 
   3620  1.1    paulus local int huft_build OF((
   3621  1.1    paulus     uIntf *,            /* code lengths in bits */
   3622  1.1    paulus     uInt,               /* number of codes */
   3623  1.1    paulus     uInt,               /* number of "simple" codes */
   3624  1.1    paulus     uIntf *,            /* list of base values for non-simple codes */
   3625  1.1    paulus     uIntf *,            /* list of extra bits for non-simple codes */
   3626  1.1    paulus     inflate_huft * FAR*,/* result: starting table */
   3627  1.1    paulus     uIntf *,            /* maximum lookup bits (returns actual) */
   3628  1.1    paulus     z_stream *));       /* for zalloc function */
   3629  1.1    paulus 
   3630  1.1    paulus local voidpf falloc OF((
   3631  1.1    paulus     voidpf,             /* opaque pointer (not used) */
   3632  1.1    paulus     uInt,               /* number of items */
   3633  1.1    paulus     uInt));             /* size of item */
   3634  1.1    paulus 
   3635  1.1    paulus local void ffree OF((
   3636  1.1    paulus     voidpf q,           /* opaque pointer (not used) */
   3637  1.1    paulus     voidpf p,           /* what to free (not used) */
   3638  1.1    paulus     uInt n));		/* number of bytes (not used) */
   3639  1.1    paulus 
   3640  1.1    paulus /* Tables for deflate from PKZIP's appnote.txt. */
   3641  1.1    paulus local uInt cplens[] = { /* Copy lengths for literal codes 257..285 */
   3642  1.1    paulus         3, 4, 5, 6, 7, 8, 9, 10, 11, 13, 15, 17, 19, 23, 27, 31,
   3643  1.1    paulus         35, 43, 51, 59, 67, 83, 99, 115, 131, 163, 195, 227, 258, 0, 0};
   3644  1.1    paulus         /* actually lengths - 2; also see note #13 above about 258 */
   3645  1.1    paulus local uInt cplext[] = { /* Extra bits for literal codes 257..285 */
   3646  1.1    paulus         0, 0, 0, 0, 0, 0, 0, 0, 1, 1, 1, 1, 2, 2, 2, 2,
   3647  1.1    paulus         3, 3, 3, 3, 4, 4, 4, 4, 5, 5, 5, 5, 0, 192, 192}; /* 192==invalid */
   3648  1.1    paulus local uInt cpdist[] = { /* Copy offsets for distance codes 0..29 */
   3649  1.1    paulus         1, 2, 3, 4, 5, 7, 9, 13, 17, 25, 33, 49, 65, 97, 129, 193,
   3650  1.1    paulus         257, 385, 513, 769, 1025, 1537, 2049, 3073, 4097, 6145,
   3651  1.1    paulus         8193, 12289, 16385, 24577};
   3652  1.1    paulus local uInt cpdext[] = { /* Extra bits for distance codes */
   3653  1.1    paulus         0, 0, 0, 0, 1, 1, 2, 2, 3, 3, 4, 4, 5, 5, 6, 6,
   3654  1.1    paulus         7, 7, 8, 8, 9, 9, 10, 10, 11, 11,
   3655  1.1    paulus         12, 12, 13, 13};
   3656  1.1    paulus 
   3657  1.1    paulus /*
   3658  1.1    paulus    Huffman code decoding is performed using a multi-level table lookup.
   3659  1.1    paulus    The fastest way to decode is to simply build a lookup table whose
   3660  1.1    paulus    size is determined by the longest code.  However, the time it takes
   3661  1.1    paulus    to build this table can also be a factor if the data being decoded
   3662  1.1    paulus    is not very long.  The most common codes are necessarily the
   3663  1.1    paulus    shortest codes, so those codes dominate the decoding time, and hence
   3664  1.1    paulus    the speed.  The idea is you can have a shorter table that decodes the
   3665  1.1    paulus    shorter, more probable codes, and then point to subsidiary tables for
   3666  1.1    paulus    the longer codes.  The time it costs to decode the longer codes is
   3667  1.1    paulus    then traded against the time it takes to make longer tables.
   3668  1.1    paulus 
   3669  1.1    paulus    This results of this trade are in the variables lbits and dbits
   3670  1.1    paulus    below.  lbits is the number of bits the first level table for literal/
   3671  1.1    paulus    length codes can decode in one step, and dbits is the same thing for
   3672  1.1    paulus    the distance codes.  Subsequent tables are also less than or equal to
   3673  1.1    paulus    those sizes.  These values may be adjusted either when all of the
   3674  1.1    paulus    codes are shorter than that, in which case the longest code length in
   3675  1.1    paulus    bits is used, or when the shortest code is *longer* than the requested
   3676  1.1    paulus    table size, in which case the length of the shortest code in bits is
   3677  1.1    paulus    used.
   3678  1.1    paulus 
   3679  1.1    paulus    There are two different values for the two tables, since they code a
   3680  1.1    paulus    different number of possibilities each.  The literal/length table
   3681  1.1    paulus    codes 286 possible values, or in a flat code, a little over eight
   3682  1.1    paulus    bits.  The distance table codes 30 possible values, or a little less
   3683  1.1    paulus    than five bits, flat.  The optimum values for speed end up being
   3684  1.1    paulus    about one bit more than those, so lbits is 8+1 and dbits is 5+1.
   3685  1.1    paulus    The optimum values may differ though from machine to machine, and
   3686  1.1    paulus    possibly even between compilers.  Your mileage may vary.
   3687  1.1    paulus  */
   3688  1.1    paulus 
   3689  1.1    paulus 
   3690  1.1    paulus /* If BMAX needs to be larger than 16, then h and x[] should be uLong. */
   3691  1.1    paulus #define BMAX 15         /* maximum bit length of any code */
   3692  1.1    paulus #define N_MAX 288       /* maximum number of codes in any set */
   3693  1.1    paulus 
   3694  1.1    paulus #ifdef DEBUG_ZLIB
   3695  1.1    paulus   uInt inflate_hufts;
   3696  1.1    paulus #endif
   3697  1.1    paulus 
   3698  1.1    paulus local int huft_build(b, n, s, d, e, t, m, zs)
   3699  1.1    paulus uIntf *b;               /* code lengths in bits (all assumed <= BMAX) */
   3700  1.1    paulus uInt n;                 /* number of codes (assumed <= N_MAX) */
   3701  1.1    paulus uInt s;                 /* number of simple-valued codes (0..s-1) */
   3702  1.1    paulus uIntf *d;               /* list of base values for non-simple codes */
   3703  1.1    paulus uIntf *e;               /* list of extra bits for non-simple codes */
   3704  1.1    paulus inflate_huft * FAR *t;  /* result: starting table */
   3705  1.1    paulus uIntf *m;               /* maximum lookup bits, returns actual */
   3706  1.1    paulus z_stream *zs;           /* for zalloc function */
   3707  1.1    paulus /* Given a list of code lengths and a maximum table size, make a set of
   3708  1.1    paulus    tables to decode that set of codes.  Return Z_OK on success, Z_BUF_ERROR
   3709  1.1    paulus    if the given code set is incomplete (the tables are still built in this
   3710  1.1    paulus    case), Z_DATA_ERROR if the input is invalid (all zero length codes or an
   3711  1.1    paulus    over-subscribed set of lengths), or Z_MEM_ERROR if not enough memory. */
   3712  1.1    paulus {
   3713  1.1    paulus 
   3714  1.1    paulus   uInt a;                       /* counter for codes of length k */
   3715  1.1    paulus   uInt c[BMAX+1];               /* bit length count table */
   3716  1.1    paulus   uInt f;                       /* i repeats in table every f entries */
   3717  1.1    paulus   int g;                        /* maximum code length */
   3718  1.1    paulus   int h;                        /* table level */
   3719  1.1    paulus   register uInt i;              /* counter, current code */
   3720  1.1    paulus   register uInt j;              /* counter */
   3721  1.1    paulus   register int k;               /* number of bits in current code */
   3722  1.1    paulus   int l;                        /* bits per table (returned in m) */
   3723  1.1    paulus   register uIntf *p;            /* pointer into c[], b[], or v[] */
   3724  1.1    paulus   inflate_huft *q;              /* points to current table */
   3725  1.1    paulus   struct inflate_huft_s r;      /* table entry for structure assignment */
   3726  1.1    paulus   inflate_huft *u[BMAX];        /* table stack */
   3727  1.1    paulus   uInt v[N_MAX];                /* values in order of bit length */
   3728  1.1    paulus   register int w;               /* bits before this table == (l * h) */
   3729  1.1    paulus   uInt x[BMAX+1];               /* bit offsets, then code stack */
   3730  1.1    paulus   uIntf *xp;                    /* pointer into x */
   3731  1.1    paulus   int y;                        /* number of dummy codes added */
   3732  1.1    paulus   uInt z;                       /* number of entries in current table */
   3733  1.1    paulus 
   3734  1.1    paulus 
   3735  1.1    paulus   /* Generate counts for each bit length */
   3736  1.1    paulus   p = c;
   3737  1.1    paulus #define C0 *p++ = 0;
   3738  1.1    paulus #define C2 C0 C0 C0 C0
   3739  1.1    paulus #define C4 C2 C2 C2 C2
   3740  1.1    paulus   C4                            /* clear c[]--assume BMAX+1 is 16 */
   3741  1.1    paulus   p = b;  i = n;
   3742  1.1    paulus   do {
   3743  1.1    paulus     c[*p++]++;                  /* assume all entries <= BMAX */
   3744  1.1    paulus   } while (--i);
   3745  1.1    paulus   if (c[0] == n)                /* null input--all zero length codes */
   3746  1.1    paulus   {
   3747  1.1    paulus     *t = (inflate_huft *)Z_NULL;
   3748  1.1    paulus     *m = 0;
   3749  1.1    paulus     return Z_OK;
   3750  1.1    paulus   }
   3751  1.1    paulus 
   3752  1.1    paulus 
   3753  1.1    paulus   /* Find minimum and maximum length, bound *m by those */
   3754  1.1    paulus   l = *m;
   3755  1.1    paulus   for (j = 1; j <= BMAX; j++)
   3756  1.1    paulus     if (c[j])
   3757  1.1    paulus       break;
   3758  1.1    paulus   k = j;                        /* minimum code length */
   3759  1.1    paulus   if ((uInt)l < j)
   3760  1.1    paulus     l = j;
   3761  1.1    paulus   for (i = BMAX; i; i--)
   3762  1.1    paulus     if (c[i])
   3763  1.1    paulus       break;
   3764  1.1    paulus   g = i;                        /* maximum code length */
   3765  1.1    paulus   if ((uInt)l > i)
   3766  1.1    paulus     l = i;
   3767  1.1    paulus   *m = l;
   3768  1.1    paulus 
   3769  1.1    paulus 
   3770  1.1    paulus   /* Adjust last length count to fill out codes, if needed */
   3771  1.1    paulus   for (y = 1 << j; j < i; j++, y <<= 1)
   3772  1.1    paulus     if ((y -= c[j]) < 0)
   3773  1.1    paulus       return Z_DATA_ERROR;
   3774  1.1    paulus   if ((y -= c[i]) < 0)
   3775  1.1    paulus     return Z_DATA_ERROR;
   3776  1.1    paulus   c[i] += y;
   3777  1.1    paulus 
   3778  1.1    paulus 
   3779  1.1    paulus   /* Generate starting offsets into the value table for each length */
   3780  1.1    paulus   x[1] = j = 0;
   3781  1.1    paulus   p = c + 1;  xp = x + 2;
   3782  1.1    paulus   while (--i) {                 /* note that i == g from above */
   3783  1.1    paulus     *xp++ = (j += *p++);
   3784  1.1    paulus   }
   3785  1.1    paulus 
   3786  1.1    paulus 
   3787  1.1    paulus   /* Make a table of values in order of bit lengths */
   3788  1.1    paulus   p = b;  i = 0;
   3789  1.1    paulus   do {
   3790  1.1    paulus     if ((j = *p++) != 0)
   3791  1.1    paulus       v[x[j]++] = i;
   3792  1.1    paulus   } while (++i < n);
   3793  1.1    paulus 
   3794  1.1    paulus 
   3795  1.1    paulus   /* Generate the Huffman codes and for each, make the table entries */
   3796  1.1    paulus   x[0] = i = 0;                 /* first Huffman code is zero */
   3797  1.1    paulus   p = v;                        /* grab values in bit order */
   3798  1.1    paulus   h = -1;                       /* no tables yet--level -1 */
   3799  1.1    paulus   w = -l;                       /* bits decoded == (l * h) */
   3800  1.1    paulus   u[0] = (inflate_huft *)Z_NULL;        /* just to keep compilers happy */
   3801  1.1    paulus   q = (inflate_huft *)Z_NULL;   /* ditto */
   3802  1.1    paulus   z = 0;                        /* ditto */
   3803  1.1    paulus 
   3804  1.1    paulus   /* go through the bit lengths (k already is bits in shortest code) */
   3805  1.1    paulus   for (; k <= g; k++)
   3806  1.1    paulus   {
   3807  1.1    paulus     a = c[k];
   3808  1.1    paulus     while (a--)
   3809  1.1    paulus     {
   3810  1.1    paulus       /* here i is the Huffman code of length k bits for value *p */
   3811  1.1    paulus       /* make tables up to required level */
   3812  1.1    paulus       while (k > w + l)
   3813  1.1    paulus       {
   3814  1.1    paulus         h++;
   3815  1.1    paulus         w += l;                 /* previous table always l bits */
   3816  1.1    paulus 
   3817  1.1    paulus         /* compute minimum size table less than or equal to l bits */
   3818  1.1    paulus         z = (z = g - w) > (uInt)l ? l : z;      /* table size upper limit */
   3819  1.1    paulus         if ((f = 1 << (j = k - w)) > a + 1)     /* try a k-w bit table */
   3820  1.1    paulus         {                       /* too few codes for k-w bit table */
   3821  1.1    paulus           f -= a + 1;           /* deduct codes from patterns left */
   3822  1.1    paulus           xp = c + k;
   3823  1.1    paulus           if (j < z)
   3824  1.1    paulus             while (++j < z)     /* try smaller tables up to z bits */
   3825  1.1    paulus             {
   3826  1.1    paulus               if ((f <<= 1) <= *++xp)
   3827  1.1    paulus                 break;          /* enough codes to use up j bits */
   3828  1.1    paulus               f -= *xp;         /* else deduct codes from patterns */
   3829  1.1    paulus             }
   3830  1.1    paulus         }
   3831  1.1    paulus         z = 1 << j;             /* table entries for j-bit table */
   3832  1.1    paulus 
   3833  1.1    paulus         /* allocate and link in new table */
   3834  1.1    paulus         if ((q = (inflate_huft *)ZALLOC
   3835  1.1    paulus              (zs,z + 1,sizeof(inflate_huft))) == Z_NULL)
   3836  1.1    paulus         {
   3837  1.1    paulus           if (h)
   3838  1.1    paulus             inflate_trees_free(u[0], zs);
   3839  1.1    paulus           return Z_MEM_ERROR;   /* not enough memory */
   3840  1.1    paulus         }
   3841  1.1    paulus 	q->word.Nalloc = z + 1;
   3842  1.1    paulus #ifdef DEBUG_ZLIB
   3843  1.1    paulus         inflate_hufts += z + 1;
   3844  1.1    paulus #endif
   3845  1.1    paulus         *t = q + 1;             /* link to list for huft_free() */
   3846  1.1    paulus         *(t = &(q->next)) = Z_NULL;
   3847  1.1    paulus         u[h] = ++q;             /* table starts after link */
   3848  1.1    paulus 
   3849  1.1    paulus         /* connect to last table, if there is one */
   3850  1.1    paulus         if (h)
   3851  1.1    paulus         {
   3852  1.1    paulus           x[h] = i;             /* save pattern for backing up */
   3853  1.1    paulus           r.bits = (Byte)l;     /* bits to dump before this table */
   3854  1.1    paulus           r.exop = (Byte)j;     /* bits in this table */
   3855  1.1    paulus           r.next = q;           /* pointer to this table */
   3856  1.1    paulus           j = i >> (w - l);     /* (get around Turbo C bug) */
   3857  1.1    paulus           u[h-1][j] = r;        /* connect to last table */
   3858  1.1    paulus         }
   3859  1.1    paulus       }
   3860  1.1    paulus 
   3861  1.1    paulus       /* set up table entry in r */
   3862  1.1    paulus       r.bits = (Byte)(k - w);
   3863  1.1    paulus       if (p >= v + n)
   3864  1.1    paulus         r.exop = 128 + 64;      /* out of values--invalid code */
   3865  1.1    paulus       else if (*p < s)
   3866  1.1    paulus       {
   3867  1.1    paulus         r.exop = (Byte)(*p < 256 ? 0 : 32 + 64);     /* 256 is end-of-block */
   3868  1.1    paulus         r.base = *p++;          /* simple code is just the value */
   3869  1.1    paulus       }
   3870  1.1    paulus       else
   3871  1.1    paulus       {
   3872  1.1    paulus         r.exop = (Byte)e[*p - s] + 16 + 64; /* non-simple--look up in lists */
   3873  1.1    paulus         r.base = d[*p++ - s];
   3874  1.1    paulus       }
   3875  1.1    paulus 
   3876  1.1    paulus       /* fill code-like entries with r */
   3877  1.1    paulus       f = 1 << (k - w);
   3878  1.1    paulus       for (j = i >> w; j < z; j += f)
   3879  1.1    paulus         q[j] = r;
   3880  1.1    paulus 
   3881  1.1    paulus       /* backwards increment the k-bit code i */
   3882  1.1    paulus       for (j = 1 << (k - 1); i & j; j >>= 1)
   3883  1.1    paulus         i ^= j;
   3884  1.1    paulus       i ^= j;
   3885  1.1    paulus 
   3886  1.1    paulus       /* backup over finished tables */
   3887  1.1    paulus       while ((i & ((1 << w) - 1)) != x[h])
   3888  1.1    paulus       {
   3889  1.1    paulus         h--;                    /* don't need to update q */
   3890  1.1    paulus         w -= l;
   3891  1.1    paulus       }
   3892  1.1    paulus     }
   3893  1.1    paulus   }
   3894  1.1    paulus 
   3895  1.1    paulus 
   3896  1.1    paulus   /* Return Z_BUF_ERROR if we were given an incomplete table */
   3897  1.1    paulus   return y != 0 && g != 1 ? Z_BUF_ERROR : Z_OK;
   3898  1.1    paulus }
   3899  1.1    paulus 
   3900  1.1    paulus 
   3901  1.1    paulus local int inflate_trees_bits(c, bb, tb, z)
   3902  1.1    paulus uIntf *c;               /* 19 code lengths */
   3903  1.1    paulus uIntf *bb;              /* bits tree desired/actual depth */
   3904  1.1    paulus inflate_huft * FAR *tb; /* bits tree result */
   3905  1.1    paulus z_stream *z;            /* for zfree function */
   3906  1.1    paulus {
   3907  1.1    paulus   int r;
   3908  1.1    paulus 
   3909  1.1    paulus   r = huft_build(c, 19, 19, (uIntf*)Z_NULL, (uIntf*)Z_NULL, tb, bb, z);
   3910  1.1    paulus   if (r == Z_DATA_ERROR)
   3911  1.1    paulus     z->msg = "oversubscribed dynamic bit lengths tree";
   3912  1.1    paulus   else if (r == Z_BUF_ERROR)
   3913  1.1    paulus   {
   3914  1.1    paulus     inflate_trees_free(*tb, z);
   3915  1.1    paulus     z->msg = "incomplete dynamic bit lengths tree";
   3916  1.1    paulus     r = Z_DATA_ERROR;
   3917  1.1    paulus   }
   3918  1.1    paulus   return r;
   3919  1.1    paulus }
   3920  1.1    paulus 
   3921  1.1    paulus 
   3922  1.1    paulus local int inflate_trees_dynamic(nl, nd, c, bl, bd, tl, td, z)
   3923  1.1    paulus uInt nl;                /* number of literal/length codes */
   3924  1.1    paulus uInt nd;                /* number of distance codes */
   3925  1.1    paulus uIntf *c;               /* that many (total) code lengths */
   3926  1.1    paulus uIntf *bl;              /* literal desired/actual bit depth */
   3927  1.1    paulus uIntf *bd;              /* distance desired/actual bit depth */
   3928  1.1    paulus inflate_huft * FAR *tl; /* literal/length tree result */
   3929  1.1    paulus inflate_huft * FAR *td; /* distance tree result */
   3930  1.1    paulus z_stream *z;            /* for zfree function */
   3931  1.1    paulus {
   3932  1.1    paulus   int r;
   3933  1.1    paulus 
   3934  1.1    paulus   /* build literal/length tree */
   3935  1.1    paulus   if ((r = huft_build(c, nl, 257, cplens, cplext, tl, bl, z)) != Z_OK)
   3936  1.1    paulus   {
   3937  1.1    paulus     if (r == Z_DATA_ERROR)
   3938  1.1    paulus       z->msg = "oversubscribed literal/length tree";
   3939  1.1    paulus     else if (r == Z_BUF_ERROR)
   3940  1.1    paulus     {
   3941  1.1    paulus       inflate_trees_free(*tl, z);
   3942  1.1    paulus       z->msg = "incomplete literal/length tree";
   3943  1.1    paulus       r = Z_DATA_ERROR;
   3944  1.1    paulus     }
   3945  1.1    paulus     return r;
   3946  1.1    paulus   }
   3947  1.1    paulus 
   3948  1.1    paulus   /* build distance tree */
   3949  1.1    paulus   if ((r = huft_build(c + nl, nd, 0, cpdist, cpdext, td, bd, z)) != Z_OK)
   3950  1.1    paulus   {
   3951  1.1    paulus     if (r == Z_DATA_ERROR)
   3952  1.1    paulus       z->msg = "oversubscribed literal/length tree";
   3953  1.1    paulus     else if (r == Z_BUF_ERROR) {
   3954  1.1    paulus #ifdef PKZIP_BUG_WORKAROUND
   3955  1.1    paulus       r = Z_OK;
   3956  1.1    paulus     }
   3957  1.1    paulus #else
   3958  1.1    paulus       inflate_trees_free(*td, z);
   3959  1.1    paulus       z->msg = "incomplete literal/length tree";
   3960  1.1    paulus       r = Z_DATA_ERROR;
   3961  1.1    paulus     }
   3962  1.1    paulus     inflate_trees_free(*tl, z);
   3963  1.1    paulus     return r;
   3964  1.1    paulus #endif
   3965  1.1    paulus   }
   3966  1.1    paulus 
   3967  1.1    paulus   /* done */
   3968  1.1    paulus   return Z_OK;
   3969  1.1    paulus }
   3970  1.1    paulus 
   3971  1.1    paulus 
   3972  1.1    paulus /* build fixed tables only once--keep them here */
   3973  1.1    paulus local int fixed_lock = 0;
   3974  1.1    paulus local int fixed_built = 0;
   3975  1.1    paulus #define FIXEDH 530      /* number of hufts used by fixed tables */
   3976  1.1    paulus local uInt fixed_left = FIXEDH;
   3977  1.1    paulus local inflate_huft fixed_mem[FIXEDH];
   3978  1.1    paulus local uInt fixed_bl;
   3979  1.1    paulus local uInt fixed_bd;
   3980  1.1    paulus local inflate_huft *fixed_tl;
   3981  1.1    paulus local inflate_huft *fixed_td;
   3982  1.1    paulus 
   3983  1.1    paulus 
   3984  1.1    paulus local voidpf falloc(q, n, s)
   3985  1.1    paulus voidpf q;        /* opaque pointer (not used) */
   3986  1.1    paulus uInt n;         /* number of items */
   3987  1.1    paulus uInt s;         /* size of item */
   3988  1.1    paulus {
   3989  1.1    paulus   Assert(s == sizeof(inflate_huft) && n <= fixed_left,
   3990  1.1    paulus          "inflate_trees falloc overflow");
   3991  1.1    paulus   if (q) s++; /* to make some compilers happy */
   3992  1.1    paulus   fixed_left -= n;
   3993  1.1    paulus   return (voidpf)(fixed_mem + fixed_left);
   3994  1.1    paulus }
   3995  1.1    paulus 
   3996  1.1    paulus 
   3997  1.1    paulus local void ffree(q, p, n)
   3998  1.1    paulus voidpf q;
   3999  1.1    paulus voidpf p;
   4000  1.1    paulus uInt n;
   4001  1.1    paulus {
   4002  1.1    paulus   Assert(0, "inflate_trees ffree called!");
   4003  1.1    paulus   if (q) q = p; /* to make some compilers happy */
   4004  1.1    paulus }
   4005  1.1    paulus 
   4006  1.1    paulus 
   4007  1.1    paulus local int inflate_trees_fixed(bl, bd, tl, td)
   4008  1.1    paulus uIntf *bl;               /* literal desired/actual bit depth */
   4009  1.1    paulus uIntf *bd;               /* distance desired/actual bit depth */
   4010  1.1    paulus inflate_huft * FAR *tl;  /* literal/length tree result */
   4011  1.1    paulus inflate_huft * FAR *td;  /* distance tree result */
   4012  1.1    paulus {
   4013  1.1    paulus   /* build fixed tables if not built already--lock out other instances */
   4014  1.1    paulus   while (++fixed_lock > 1)
   4015  1.1    paulus     fixed_lock--;
   4016  1.1    paulus   if (!fixed_built)
   4017  1.1    paulus   {
   4018  1.1    paulus     int k;              /* temporary variable */
   4019  1.1    paulus     unsigned c[288];    /* length list for huft_build */
   4020  1.1    paulus     z_stream z;         /* for falloc function */
   4021  1.1    paulus 
   4022  1.1    paulus     /* set up fake z_stream for memory routines */
   4023  1.1    paulus     z.zalloc = falloc;
   4024  1.1    paulus     z.zfree = ffree;
   4025  1.1    paulus     z.opaque = Z_NULL;
   4026  1.1    paulus 
   4027  1.1    paulus     /* literal table */
   4028  1.1    paulus     for (k = 0; k < 144; k++)
   4029  1.1    paulus       c[k] = 8;
   4030  1.1    paulus     for (; k < 256; k++)
   4031  1.1    paulus       c[k] = 9;
   4032  1.1    paulus     for (; k < 280; k++)
   4033  1.1    paulus       c[k] = 7;
   4034  1.1    paulus     for (; k < 288; k++)
   4035  1.1    paulus       c[k] = 8;
   4036  1.1    paulus     fixed_bl = 7;
   4037  1.1    paulus     huft_build(c, 288, 257, cplens, cplext, &fixed_tl, &fixed_bl, &z);
   4038  1.1    paulus 
   4039  1.1    paulus     /* distance table */
   4040  1.1    paulus     for (k = 0; k < 30; k++)
   4041  1.1    paulus       c[k] = 5;
   4042  1.1    paulus     fixed_bd = 5;
   4043  1.1    paulus     huft_build(c, 30, 0, cpdist, cpdext, &fixed_td, &fixed_bd, &z);
   4044  1.1    paulus 
   4045  1.1    paulus     /* done */
   4046  1.1    paulus     fixed_built = 1;
   4047  1.1    paulus   }
   4048  1.1    paulus   fixed_lock--;
   4049  1.1    paulus   *bl = fixed_bl;
   4050  1.1    paulus   *bd = fixed_bd;
   4051  1.1    paulus   *tl = fixed_tl;
   4052  1.1    paulus   *td = fixed_td;
   4053  1.1    paulus   return Z_OK;
   4054  1.1    paulus }
   4055  1.1    paulus 
   4056  1.1    paulus 
   4057  1.1    paulus local int inflate_trees_free(t, z)
   4058  1.1    paulus inflate_huft *t;        /* table to free */
   4059  1.1    paulus z_stream *z;            /* for zfree function */
   4060  1.1    paulus /* Free the malloc'ed tables built by huft_build(), which makes a linked
   4061  1.1    paulus    list of the tables it made, with the links in a dummy first entry of
   4062  1.1    paulus    each table. */
   4063  1.1    paulus {
   4064  1.1    paulus   register inflate_huft *p, *q;
   4065  1.1    paulus 
   4066  1.1    paulus   /* Go through linked list, freeing from the malloced (t[-1]) address. */
   4067  1.1    paulus   p = t;
   4068  1.1    paulus   while (p != Z_NULL)
   4069  1.1    paulus   {
   4070  1.1    paulus     q = (--p)->next;
   4071  1.1    paulus     ZFREE(z, p, p->word.Nalloc * sizeof(inflate_huft));
   4072  1.1    paulus     p = q;
   4073  1.1    paulus   }
   4074  1.1    paulus   return Z_OK;
   4075  1.1    paulus }
   4076  1.1    paulus 
   4077  1.1    paulus /*+++++*/
   4078  1.1    paulus /* infcodes.c -- process literals and length/distance pairs
   4079  1.1    paulus  * Copyright (C) 1995 Mark Adler
   4080  1.1    paulus  * For conditions of distribution and use, see copyright notice in zlib.h
   4081  1.1    paulus  */
   4082  1.1    paulus 
   4083  1.1    paulus /* simplify the use of the inflate_huft type with some defines */
   4084  1.1    paulus #define base more.Base
   4085  1.1    paulus #define next more.Next
   4086  1.1    paulus #define exop word.what.Exop
   4087  1.1    paulus #define bits word.what.Bits
   4088  1.1    paulus 
   4089  1.1    paulus /* inflate codes private state */
   4090  1.1    paulus struct inflate_codes_state {
   4091  1.1    paulus 
   4092  1.1    paulus   /* mode */
   4093  1.1    paulus   enum {        /* waiting for "i:"=input, "o:"=output, "x:"=nothing */
   4094  1.1    paulus       START,    /* x: set up for LEN */
   4095  1.1    paulus       LEN,      /* i: get length/literal/eob next */
   4096  1.1    paulus       LENEXT,   /* i: getting length extra (have base) */
   4097  1.1    paulus       DIST,     /* i: get distance next */
   4098  1.1    paulus       DISTEXT,  /* i: getting distance extra */
   4099  1.1    paulus       COPY,     /* o: copying bytes in window, waiting for space */
   4100  1.1    paulus       LIT,      /* o: got literal, waiting for output space */
   4101  1.1    paulus       WASH,     /* o: got eob, possibly still output waiting */
   4102  1.1    paulus       END,      /* x: got eob and all data flushed */
   4103  1.1    paulus       BADCODE}  /* x: got error */
   4104  1.1    paulus     mode;               /* current inflate_codes mode */
   4105  1.1    paulus 
   4106  1.1    paulus   /* mode dependent information */
   4107  1.1    paulus   uInt len;
   4108  1.1    paulus   union {
   4109  1.1    paulus     struct {
   4110  1.1    paulus       inflate_huft *tree;       /* pointer into tree */
   4111  1.1    paulus       uInt need;                /* bits needed */
   4112  1.1    paulus     } code;             /* if LEN or DIST, where in tree */
   4113  1.1    paulus     uInt lit;           /* if LIT, literal */
   4114  1.1    paulus     struct {
   4115  1.1    paulus       uInt get;                 /* bits to get for extra */
   4116  1.1    paulus       uInt dist;                /* distance back to copy from */
   4117  1.1    paulus     } copy;             /* if EXT or COPY, where and how much */
   4118  1.1    paulus   } sub;                /* submode */
   4119  1.1    paulus 
   4120  1.1    paulus   /* mode independent information */
   4121  1.1    paulus   Byte lbits;           /* ltree bits decoded per branch */
   4122  1.1    paulus   Byte dbits;           /* dtree bits decoder per branch */
   4123  1.1    paulus   inflate_huft *ltree;          /* literal/length/eob tree */
   4124  1.1    paulus   inflate_huft *dtree;          /* distance tree */
   4125  1.1    paulus 
   4126  1.1    paulus };
   4127  1.1    paulus 
   4128  1.1    paulus 
   4129  1.1    paulus local inflate_codes_statef *inflate_codes_new(bl, bd, tl, td, z)
   4130  1.1    paulus uInt bl, bd;
   4131  1.1    paulus inflate_huft *tl, *td;
   4132  1.1    paulus z_stream *z;
   4133  1.1    paulus {
   4134  1.1    paulus   inflate_codes_statef *c;
   4135  1.1    paulus 
   4136  1.1    paulus   if ((c = (inflate_codes_statef *)
   4137  1.1    paulus        ZALLOC(z,1,sizeof(struct inflate_codes_state))) != Z_NULL)
   4138  1.1    paulus   {
   4139  1.1    paulus     c->mode = START;
   4140  1.1    paulus     c->lbits = (Byte)bl;
   4141  1.1    paulus     c->dbits = (Byte)bd;
   4142  1.1    paulus     c->ltree = tl;
   4143  1.1    paulus     c->dtree = td;
   4144  1.1    paulus     Tracev((stderr, "inflate:       codes new\n"));
   4145  1.1    paulus   }
   4146  1.1    paulus   return c;
   4147  1.1    paulus }
   4148  1.1    paulus 
   4149  1.1    paulus 
   4150  1.1    paulus local int inflate_codes(s, z, r)
   4151  1.1    paulus inflate_blocks_statef *s;
   4152  1.1    paulus z_stream *z;
   4153  1.1    paulus int r;
   4154  1.1    paulus {
   4155  1.1    paulus   uInt j;               /* temporary storage */
   4156  1.1    paulus   inflate_huft *t;      /* temporary pointer */
   4157  1.1    paulus   uInt e;               /* extra bits or operation */
   4158  1.1    paulus   uLong b;              /* bit buffer */
   4159  1.1    paulus   uInt k;               /* bits in bit buffer */
   4160  1.1    paulus   Bytef *p;             /* input data pointer */
   4161  1.1    paulus   uInt n;               /* bytes available there */
   4162  1.1    paulus   Bytef *q;             /* output window write pointer */
   4163  1.1    paulus   uInt m;               /* bytes to end of window or read pointer */
   4164  1.1    paulus   Bytef *f;             /* pointer to copy strings from */
   4165  1.1    paulus   inflate_codes_statef *c = s->sub.decode.codes;  /* codes state */
   4166  1.1    paulus 
   4167  1.1    paulus   /* copy input/output information to locals (UPDATE macro restores) */
   4168  1.1    paulus   LOAD
   4169  1.1    paulus 
   4170  1.1    paulus   /* process input and output based on current state */
   4171  1.1    paulus   while (1) switch (c->mode)
   4172  1.1    paulus   {             /* waiting for "i:"=input, "o:"=output, "x:"=nothing */
   4173  1.1    paulus     case START:         /* x: set up for LEN */
   4174  1.1    paulus #ifndef SLOW
   4175  1.1    paulus       if (m >= 258 && n >= 10)
   4176  1.1    paulus       {
   4177  1.1    paulus         UPDATE
   4178  1.1    paulus         r = inflate_fast(c->lbits, c->dbits, c->ltree, c->dtree, s, z);
   4179  1.1    paulus         LOAD
   4180  1.1    paulus         if (r != Z_OK)
   4181  1.1    paulus         {
   4182  1.1    paulus           c->mode = r == Z_STREAM_END ? WASH : BADCODE;
   4183  1.1    paulus           break;
   4184  1.1    paulus         }
   4185  1.1    paulus       }
   4186  1.1    paulus #endif /* !SLOW */
   4187  1.1    paulus       c->sub.code.need = c->lbits;
   4188  1.1    paulus       c->sub.code.tree = c->ltree;
   4189  1.1    paulus       c->mode = LEN;
   4190  1.1    paulus     case LEN:           /* i: get length/literal/eob next */
   4191  1.1    paulus       j = c->sub.code.need;
   4192  1.1    paulus       NEEDBITS(j)
   4193  1.1    paulus       t = c->sub.code.tree + ((uInt)b & inflate_mask[j]);
   4194  1.1    paulus       DUMPBITS(t->bits)
   4195  1.1    paulus       e = (uInt)(t->exop);
   4196  1.1    paulus       if (e == 0)               /* literal */
   4197  1.1    paulus       {
   4198  1.1    paulus         c->sub.lit = t->base;
   4199  1.1    paulus         Tracevv((stderr, t->base >= 0x20 && t->base < 0x7f ?
   4200  1.1    paulus                  "inflate:         literal '%c'\n" :
   4201  1.1    paulus                  "inflate:         literal 0x%02x\n", t->base));
   4202  1.1    paulus         c->mode = LIT;
   4203  1.1    paulus         break;
   4204  1.1    paulus       }
   4205  1.1    paulus       if (e & 16)               /* length */
   4206  1.1    paulus       {
   4207  1.1    paulus         c->sub.copy.get = e & 15;
   4208  1.1    paulus         c->len = t->base;
   4209  1.1    paulus         c->mode = LENEXT;
   4210  1.1    paulus         break;
   4211  1.1    paulus       }
   4212  1.1    paulus       if ((e & 64) == 0)        /* next table */
   4213  1.1    paulus       {
   4214  1.1    paulus         c->sub.code.need = e;
   4215  1.1    paulus         c->sub.code.tree = t->next;
   4216  1.1    paulus         break;
   4217  1.1    paulus       }
   4218  1.1    paulus       if (e & 32)               /* end of block */
   4219  1.1    paulus       {
   4220  1.1    paulus         Tracevv((stderr, "inflate:         end of block\n"));
   4221  1.1    paulus         c->mode = WASH;
   4222  1.1    paulus         break;
   4223  1.1    paulus       }
   4224  1.1    paulus       c->mode = BADCODE;        /* invalid code */
   4225  1.1    paulus       z->msg = "invalid literal/length code";
   4226  1.1    paulus       r = Z_DATA_ERROR;
   4227  1.1    paulus       LEAVE
   4228  1.1    paulus     case LENEXT:        /* i: getting length extra (have base) */
   4229  1.1    paulus       j = c->sub.copy.get;
   4230  1.1    paulus       NEEDBITS(j)
   4231  1.1    paulus       c->len += (uInt)b & inflate_mask[j];
   4232  1.1    paulus       DUMPBITS(j)
   4233  1.1    paulus       c->sub.code.need = c->dbits;
   4234  1.1    paulus       c->sub.code.tree = c->dtree;
   4235  1.1    paulus       Tracevv((stderr, "inflate:         length %u\n", c->len));
   4236  1.1    paulus       c->mode = DIST;
   4237  1.1    paulus     case DIST:          /* i: get distance next */
   4238  1.1    paulus       j = c->sub.code.need;
   4239  1.1    paulus       NEEDBITS(j)
   4240  1.1    paulus       t = c->sub.code.tree + ((uInt)b & inflate_mask[j]);
   4241  1.1    paulus       DUMPBITS(t->bits)
   4242  1.1    paulus       e = (uInt)(t->exop);
   4243  1.1    paulus       if (e & 16)               /* distance */
   4244  1.1    paulus       {
   4245  1.1    paulus         c->sub.copy.get = e & 15;
   4246  1.1    paulus         c->sub.copy.dist = t->base;
   4247  1.1    paulus         c->mode = DISTEXT;
   4248  1.1    paulus         break;
   4249  1.1    paulus       }
   4250  1.1    paulus       if ((e & 64) == 0)        /* next table */
   4251  1.1    paulus       {
   4252  1.1    paulus         c->sub.code.need = e;
   4253  1.1    paulus         c->sub.code.tree = t->next;
   4254  1.1    paulus         break;
   4255  1.1    paulus       }
   4256  1.1    paulus       c->mode = BADCODE;        /* invalid code */
   4257  1.1    paulus       z->msg = "invalid distance code";
   4258  1.1    paulus       r = Z_DATA_ERROR;
   4259  1.1    paulus       LEAVE
   4260  1.1    paulus     case DISTEXT:       /* i: getting distance extra */
   4261  1.1    paulus       j = c->sub.copy.get;
   4262  1.1    paulus       NEEDBITS(j)
   4263  1.1    paulus       c->sub.copy.dist += (uInt)b & inflate_mask[j];
   4264  1.1    paulus       DUMPBITS(j)
   4265  1.1    paulus       Tracevv((stderr, "inflate:         distance %u\n", c->sub.copy.dist));
   4266  1.1    paulus       c->mode = COPY;
   4267  1.1    paulus     case COPY:          /* o: copying bytes in window, waiting for space */
   4268  1.1    paulus #ifndef __TURBOC__ /* Turbo C bug for following expression */
   4269  1.1    paulus       f = (uInt)(q - s->window) < c->sub.copy.dist ?
   4270  1.1    paulus           s->end - (c->sub.copy.dist - (q - s->window)) :
   4271  1.1    paulus           q - c->sub.copy.dist;
   4272  1.1    paulus #else
   4273  1.1    paulus       f = q - c->sub.copy.dist;
   4274  1.1    paulus       if ((uInt)(q - s->window) < c->sub.copy.dist)
   4275  1.1    paulus         f = s->end - (c->sub.copy.dist - (q - s->window));
   4276  1.1    paulus #endif
   4277  1.1    paulus       while (c->len)
   4278  1.1    paulus       {
   4279  1.1    paulus         NEEDOUT
   4280  1.1    paulus         OUTBYTE(*f++)
   4281  1.1    paulus         if (f == s->end)
   4282  1.1    paulus           f = s->window;
   4283  1.1    paulus         c->len--;
   4284  1.1    paulus       }
   4285  1.1    paulus       c->mode = START;
   4286  1.1    paulus       break;
   4287  1.1    paulus     case LIT:           /* o: got literal, waiting for output space */
   4288  1.1    paulus       NEEDOUT
   4289  1.1    paulus       OUTBYTE(c->sub.lit)
   4290  1.1    paulus       c->mode = START;
   4291  1.1    paulus       break;
   4292  1.1    paulus     case WASH:          /* o: got eob, possibly more output */
   4293  1.1    paulus       FLUSH
   4294  1.1    paulus       if (s->read != s->write)
   4295  1.1    paulus         LEAVE
   4296  1.1    paulus       c->mode = END;
   4297  1.1    paulus     case END:
   4298  1.1    paulus       r = Z_STREAM_END;
   4299  1.1    paulus       LEAVE
   4300  1.1    paulus     case BADCODE:       /* x: got error */
   4301  1.1    paulus       r = Z_DATA_ERROR;
   4302  1.1    paulus       LEAVE
   4303  1.1    paulus     default:
   4304  1.1    paulus       r = Z_STREAM_ERROR;
   4305  1.1    paulus       LEAVE
   4306  1.1    paulus   }
   4307  1.1    paulus }
   4308  1.1    paulus 
   4309  1.1    paulus 
   4310  1.1    paulus local void inflate_codes_free(c, z)
   4311  1.1    paulus inflate_codes_statef *c;
   4312  1.1    paulus z_stream *z;
   4313  1.1    paulus {
   4314  1.1    paulus   ZFREE(z, c, sizeof(struct inflate_codes_state));
   4315  1.1    paulus   Tracev((stderr, "inflate:       codes free\n"));
   4316  1.1    paulus }
   4317  1.1    paulus 
   4318  1.1    paulus /*+++++*/
   4319  1.1    paulus /* inflate_util.c -- data and routines common to blocks and codes
   4320  1.1    paulus  * Copyright (C) 1995 Mark Adler
   4321  1.1    paulus  * For conditions of distribution and use, see copyright notice in zlib.h
   4322  1.1    paulus  */
   4323  1.1    paulus 
   4324  1.1    paulus /* copy as much as possible from the sliding window to the output area */
   4325  1.1    paulus local int inflate_flush(s, z, r)
   4326  1.1    paulus inflate_blocks_statef *s;
   4327  1.1    paulus z_stream *z;
   4328  1.1    paulus int r;
   4329  1.1    paulus {
   4330  1.1    paulus   uInt n;
   4331  1.1    paulus   Bytef *p, *q;
   4332  1.1    paulus 
   4333  1.1    paulus   /* local copies of source and destination pointers */
   4334  1.1    paulus   p = z->next_out;
   4335  1.1    paulus   q = s->read;
   4336  1.1    paulus 
   4337  1.1    paulus   /* compute number of bytes to copy as far as end of window */
   4338  1.1    paulus   n = (uInt)((q <= s->write ? s->write : s->end) - q);
   4339  1.1    paulus   if (n > z->avail_out) n = z->avail_out;
   4340  1.1    paulus   if (n && r == Z_BUF_ERROR) r = Z_OK;
   4341  1.1    paulus 
   4342  1.1    paulus   /* update counters */
   4343  1.1    paulus   z->avail_out -= n;
   4344  1.1    paulus   z->total_out += n;
   4345  1.1    paulus 
   4346  1.1    paulus   /* update check information */
   4347  1.1    paulus   if (s->checkfn != Z_NULL)
   4348  1.1    paulus     s->check = (*s->checkfn)(s->check, q, n);
   4349  1.1    paulus 
   4350  1.1    paulus   /* copy as far as end of window */
   4351  1.1    paulus   if (p != NULL) {
   4352  1.1    paulus     zmemcpy(p, q, n);
   4353  1.1    paulus     p += n;
   4354  1.1    paulus   }
   4355  1.1    paulus   q += n;
   4356  1.1    paulus 
   4357  1.1    paulus   /* see if more to copy at beginning of window */
   4358  1.1    paulus   if (q == s->end)
   4359  1.1    paulus   {
   4360  1.1    paulus     /* wrap pointers */
   4361  1.1    paulus     q = s->window;
   4362  1.1    paulus     if (s->write == s->end)
   4363  1.1    paulus       s->write = s->window;
   4364  1.1    paulus 
   4365  1.1    paulus     /* compute bytes to copy */
   4366  1.1    paulus     n = (uInt)(s->write - q);
   4367  1.1    paulus     if (n > z->avail_out) n = z->avail_out;
   4368  1.1    paulus     if (n && r == Z_BUF_ERROR) r = Z_OK;
   4369  1.1    paulus 
   4370  1.1    paulus     /* update counters */
   4371  1.1    paulus     z->avail_out -= n;
   4372  1.1    paulus     z->total_out += n;
   4373  1.1    paulus 
   4374  1.1    paulus     /* update check information */
   4375  1.1    paulus     if (s->checkfn != Z_NULL)
   4376  1.1    paulus       s->check = (*s->checkfn)(s->check, q, n);
   4377  1.1    paulus 
   4378  1.1    paulus     /* copy */
   4379  1.1    paulus     if (p != NULL) {
   4380  1.1    paulus       zmemcpy(p, q, n);
   4381  1.1    paulus       p += n;
   4382  1.1    paulus     }
   4383  1.1    paulus     q += n;
   4384  1.1    paulus   }
   4385  1.1    paulus 
   4386  1.1    paulus   /* update pointers */
   4387  1.1    paulus   z->next_out = p;
   4388  1.1    paulus   s->read = q;
   4389  1.1    paulus 
   4390  1.1    paulus   /* done */
   4391  1.1    paulus   return r;
   4392  1.1    paulus }
   4393  1.1    paulus 
   4394  1.1    paulus 
   4395  1.1    paulus /*+++++*/
   4396  1.1    paulus /* inffast.c -- process literals and length/distance pairs fast
   4397  1.1    paulus  * Copyright (C) 1995 Mark Adler
   4398  1.1    paulus  * For conditions of distribution and use, see copyright notice in zlib.h
   4399  1.1    paulus  */
   4400  1.1    paulus 
   4401  1.1    paulus /* simplify the use of the inflate_huft type with some defines */
   4402  1.1    paulus #define base more.Base
   4403  1.1    paulus #define next more.Next
   4404  1.1    paulus #define exop word.what.Exop
   4405  1.1    paulus #define bits word.what.Bits
   4406  1.1    paulus 
   4407  1.1    paulus /* macros for bit input with no checking and for returning unused bytes */
   4408  1.1    paulus #define GRABBITS(j) {while(k<(j)){b|=((uLong)NEXTBYTE)<<k;k+=8;}}
   4409  1.1    paulus #define UNGRAB {n+=(c=k>>3);p-=c;k&=7;}
   4410  1.1    paulus 
   4411  1.1    paulus /* Called with number of bytes left to write in window at least 258
   4412  1.1    paulus    (the maximum string length) and number of input bytes available
   4413  1.1    paulus    at least ten.  The ten bytes are six bytes for the longest length/
   4414  1.1    paulus    distance pair plus four bytes for overloading the bit buffer. */
   4415  1.1    paulus 
   4416  1.1    paulus local int inflate_fast(bl, bd, tl, td, s, z)
   4417  1.1    paulus uInt bl, bd;
   4418  1.1    paulus inflate_huft *tl, *td;
   4419  1.1    paulus inflate_blocks_statef *s;
   4420  1.1    paulus z_stream *z;
   4421  1.1    paulus {
   4422  1.1    paulus   inflate_huft *t;      /* temporary pointer */
   4423  1.1    paulus   uInt e;               /* extra bits or operation */
   4424  1.1    paulus   uLong b;              /* bit buffer */
   4425  1.1    paulus   uInt k;               /* bits in bit buffer */
   4426  1.1    paulus   Bytef *p;             /* input data pointer */
   4427  1.1    paulus   uInt n;               /* bytes available there */
   4428  1.1    paulus   Bytef *q;             /* output window write pointer */
   4429  1.1    paulus   uInt m;               /* bytes to end of window or read pointer */
   4430  1.1    paulus   uInt ml;              /* mask for literal/length tree */
   4431  1.1    paulus   uInt md;              /* mask for distance tree */
   4432  1.1    paulus   uInt c;               /* bytes to copy */
   4433  1.1    paulus   uInt d;               /* distance back to copy from */
   4434  1.1    paulus   Bytef *r;             /* copy source pointer */
   4435  1.1    paulus 
   4436  1.1    paulus   /* load input, output, bit values */
   4437  1.1    paulus   LOAD
   4438  1.1    paulus 
   4439  1.1    paulus   /* initialize masks */
   4440  1.1    paulus   ml = inflate_mask[bl];
   4441  1.1    paulus   md = inflate_mask[bd];
   4442  1.1    paulus 
   4443  1.1    paulus   /* do until not enough input or output space for fast loop */
   4444  1.1    paulus   do {                          /* assume called with m >= 258 && n >= 10 */
   4445  1.1    paulus     /* get literal/length code */
   4446  1.1    paulus     GRABBITS(20)                /* max bits for literal/length code */
   4447  1.1    paulus     if ((e = (t = tl + ((uInt)b & ml))->exop) == 0)
   4448  1.1    paulus     {
   4449  1.1    paulus       DUMPBITS(t->bits)
   4450  1.1    paulus       Tracevv((stderr, t->base >= 0x20 && t->base < 0x7f ?
   4451  1.1    paulus                 "inflate:         * literal '%c'\n" :
   4452  1.1    paulus                 "inflate:         * literal 0x%02x\n", t->base));
   4453  1.1    paulus       *q++ = (Byte)t->base;
   4454  1.1    paulus       m--;
   4455  1.1    paulus       continue;
   4456  1.1    paulus     }
   4457  1.1    paulus     do {
   4458  1.1    paulus       DUMPBITS(t->bits)
   4459  1.1    paulus       if (e & 16)
   4460  1.1    paulus       {
   4461  1.1    paulus         /* get extra bits for length */
   4462  1.1    paulus         e &= 15;
   4463  1.1    paulus         c = t->base + ((uInt)b & inflate_mask[e]);
   4464  1.1    paulus         DUMPBITS(e)
   4465  1.1    paulus         Tracevv((stderr, "inflate:         * length %u\n", c));
   4466  1.1    paulus 
   4467  1.1    paulus         /* decode distance base of block to copy */
   4468  1.1    paulus         GRABBITS(15);           /* max bits for distance code */
   4469  1.1    paulus         e = (t = td + ((uInt)b & md))->exop;
   4470  1.1    paulus         do {
   4471  1.1    paulus           DUMPBITS(t->bits)
   4472  1.1    paulus           if (e & 16)
   4473  1.1    paulus           {
   4474  1.1    paulus             /* get extra bits to add to distance base */
   4475  1.1    paulus             e &= 15;
   4476  1.1    paulus             GRABBITS(e)         /* get extra bits (up to 13) */
   4477  1.1    paulus             d = t->base + ((uInt)b & inflate_mask[e]);
   4478  1.1    paulus             DUMPBITS(e)
   4479  1.1    paulus             Tracevv((stderr, "inflate:         * distance %u\n", d));
   4480  1.1    paulus 
   4481  1.1    paulus             /* do the copy */
   4482  1.1    paulus             m -= c;
   4483  1.1    paulus             if ((uInt)(q - s->window) >= d)     /* offset before dest */
   4484  1.1    paulus             {                                   /*  just copy */
   4485  1.1    paulus               r = q - d;
   4486  1.1    paulus               *q++ = *r++;  c--;        /* minimum count is three, */
   4487  1.1    paulus               *q++ = *r++;  c--;        /*  so unroll loop a little */
   4488  1.1    paulus             }
   4489  1.1    paulus             else                        /* else offset after destination */
   4490  1.1    paulus             {
   4491  1.1    paulus               e = d - (q - s->window);  /* bytes from offset to end */
   4492  1.1    paulus               r = s->end - e;           /* pointer to offset */
   4493  1.1    paulus               if (c > e)                /* if source crosses, */
   4494  1.1    paulus               {
   4495  1.1    paulus                 c -= e;                 /* copy to end of window */
   4496  1.1    paulus                 do {
   4497  1.1    paulus                   *q++ = *r++;
   4498  1.1    paulus                 } while (--e);
   4499  1.1    paulus                 r = s->window;          /* copy rest from start of window */
   4500  1.1    paulus               }
   4501  1.1    paulus             }
   4502  1.1    paulus             do {                        /* copy all or what's left */
   4503  1.1    paulus               *q++ = *r++;
   4504  1.1    paulus             } while (--c);
   4505  1.1    paulus             break;
   4506  1.1    paulus           }
   4507  1.1    paulus           else if ((e & 64) == 0)
   4508  1.1    paulus             e = (t = t->next + ((uInt)b & inflate_mask[e]))->exop;
   4509  1.1    paulus           else
   4510  1.1    paulus           {
   4511  1.1    paulus             z->msg = "invalid distance code";
   4512  1.1    paulus             UNGRAB
   4513  1.1    paulus             UPDATE
   4514  1.1    paulus             return Z_DATA_ERROR;
   4515  1.1    paulus           }
   4516  1.1    paulus         } while (1);
   4517  1.1    paulus         break;
   4518  1.1    paulus       }
   4519  1.1    paulus       if ((e & 64) == 0)
   4520  1.1    paulus       {
   4521  1.1    paulus         if ((e = (t = t->next + ((uInt)b & inflate_mask[e]))->exop) == 0)
   4522  1.1    paulus         {
   4523  1.1    paulus           DUMPBITS(t->bits)
   4524  1.1    paulus           Tracevv((stderr, t->base >= 0x20 && t->base < 0x7f ?
   4525  1.1    paulus                     "inflate:         * literal '%c'\n" :
   4526  1.1    paulus                     "inflate:         * literal 0x%02x\n", t->base));
   4527  1.1    paulus           *q++ = (Byte)t->base;
   4528  1.1    paulus           m--;
   4529  1.1    paulus           break;
   4530  1.1    paulus         }
   4531  1.1    paulus       }
   4532  1.1    paulus       else if (e & 32)
   4533  1.1    paulus       {
   4534  1.1    paulus         Tracevv((stderr, "inflate:         * end of block\n"));
   4535  1.1    paulus         UNGRAB
   4536  1.1    paulus         UPDATE
   4537  1.1    paulus         return Z_STREAM_END;
   4538  1.1    paulus       }
   4539  1.1    paulus       else
   4540  1.1    paulus       {
   4541  1.1    paulus         z->msg = "invalid literal/length code";
   4542  1.1    paulus         UNGRAB
   4543  1.1    paulus         UPDATE
   4544  1.1    paulus         return Z_DATA_ERROR;
   4545  1.1    paulus       }
   4546  1.1    paulus     } while (1);
   4547  1.1    paulus   } while (m >= 258 && n >= 10);
   4548  1.1    paulus 
   4549  1.1    paulus   /* not enough input or output--restore pointers and return */
   4550  1.1    paulus   UNGRAB
   4551  1.1    paulus   UPDATE
   4552  1.1    paulus   return Z_OK;
   4553  1.1    paulus }
   4554  1.1    paulus 
   4555  1.1    paulus 
   4556  1.1    paulus /*+++++*/
   4557  1.1    paulus /* zutil.c -- target dependent utility functions for the compression library
   4558  1.1    paulus  * Copyright (C) 1995 Jean-loup Gailly.
   4559  1.1    paulus  * For conditions of distribution and use, see copyright notice in zlib.h
   4560  1.1    paulus  */
   4561  1.1    paulus 
   4562  1.1    paulus /* From: zutil.c,v 1.8 1995/05/03 17:27:12 jloup Exp */
   4563  1.1    paulus 
   4564  1.1    paulus char *zlib_version = ZLIB_VERSION;
   4565  1.1    paulus 
   4566  1.1    paulus char *z_errmsg[] = {
   4567  1.1    paulus "stream end",          /* Z_STREAM_END    1 */
   4568  1.1    paulus "",                    /* Z_OK            0 */
   4569  1.1    paulus "file error",          /* Z_ERRNO        (-1) */
   4570  1.1    paulus "stream error",        /* Z_STREAM_ERROR (-2) */
   4571  1.1    paulus "data error",          /* Z_DATA_ERROR   (-3) */
   4572  1.1    paulus "insufficient memory", /* Z_MEM_ERROR    (-4) */
   4573  1.1    paulus "buffer error",        /* Z_BUF_ERROR    (-5) */
   4574  1.1    paulus ""};
   4575  1.1    paulus 
   4576  1.1    paulus 
   4577  1.1    paulus /*+++++*/
   4578  1.1    paulus /* adler32.c -- compute the Adler-32 checksum of a data stream
   4579  1.1    paulus  * Copyright (C) 1995 Mark Adler
   4580  1.1    paulus  * For conditions of distribution and use, see copyright notice in zlib.h
   4581  1.1    paulus  */
   4582  1.1    paulus 
   4583  1.1    paulus /* From: adler32.c,v 1.6 1995/05/03 17:27:08 jloup Exp */
   4584  1.1    paulus 
   4585  1.1    paulus #define BASE 65521L /* largest prime smaller than 65536 */
   4586  1.1    paulus #define NMAX 5552
   4587  1.1    paulus /* NMAX is the largest n such that 255n(n+1)/2 + (n+1)(BASE-1) <= 2^32-1 */
   4588  1.1    paulus 
   4589  1.1    paulus #define DO1(buf)  {s1 += *buf++; s2 += s1;}
   4590  1.1    paulus #define DO2(buf)  DO1(buf); DO1(buf);
   4591  1.1    paulus #define DO4(buf)  DO2(buf); DO2(buf);
   4592  1.1    paulus #define DO8(buf)  DO4(buf); DO4(buf);
   4593  1.1    paulus #define DO16(buf) DO8(buf); DO8(buf);
   4594  1.1    paulus 
   4595  1.1    paulus /* ========================================================================= */
   4596  1.1    paulus uLong adler32(adler, buf, len)
   4597  1.1    paulus     uLong adler;
   4598  1.1    paulus     Bytef *buf;
   4599  1.1    paulus     uInt len;
   4600  1.1    paulus {
   4601  1.1    paulus     unsigned long s1 = adler & 0xffff;
   4602  1.1    paulus     unsigned long s2 = (adler >> 16) & 0xffff;
   4603  1.1    paulus     int k;
   4604  1.1    paulus 
   4605  1.1    paulus     if (buf == Z_NULL) return 1L;
   4606  1.1    paulus 
   4607  1.1    paulus     while (len > 0) {
   4608  1.1    paulus         k = len < NMAX ? len : NMAX;
   4609  1.1    paulus         len -= k;
   4610  1.1    paulus         while (k >= 16) {
   4611  1.1    paulus             DO16(buf);
   4612  1.1    paulus             k -= 16;
   4613  1.1    paulus         }
   4614  1.1    paulus         if (k != 0) do {
   4615  1.1    paulus             DO1(buf);
   4616  1.1    paulus         } while (--k);
   4617  1.1    paulus         s1 %= BASE;
   4618  1.1    paulus         s2 %= BASE;
   4619  1.1    paulus     }
   4620  1.1    paulus     return (s2 << 16) | s1;
   4621  1.1    paulus }
   4622