#include "zbuild.h"
#include "deflate.h"
#include "trees.h"
#include "trees_emit.h"
#include "trees_tbl.h"
struct static_tree_desc_s {
const ct_data *static_tree;
const int *extra_bits;
int extra_base;
int elems;
unsigned int max_length;
};
static const static_tree_desc static_l_desc =
{static_ltree, extra_lbits, LITERALS+1, L_CODES, MAX_BITS};
static const static_tree_desc static_d_desc =
{static_dtree, extra_dbits, 0, D_CODES, MAX_BITS};
static const static_tree_desc static_bl_desc =
{(const ct_data *)0, extra_blbits, 0, BL_CODES, MAX_BL_BITS};
static void init_block (deflate_state *s);
static void pqdownheap (deflate_state *s, ct_data *tree, int k);
static void gen_bitlen (deflate_state *s, tree_desc *desc);
static void build_tree (deflate_state *s, tree_desc *desc);
static void scan_tree (deflate_state *s, ct_data *tree, int max_code);
static void send_tree (deflate_state *s, ct_data *tree, int max_code);
static int build_bl_tree (deflate_state *s);
static void send_all_trees (deflate_state *s, int lcodes, int dcodes, int blcodes);
static void compress_block (deflate_state *s, const ct_data *ltree, const ct_data *dtree);
static int detect_data_type (deflate_state *s);
static void bi_flush (deflate_state *s);
void Z_INTERNAL zng_tr_init(deflate_state *s) {
s->l_desc.dyn_tree = s->dyn_ltree;
s->l_desc.stat_desc = &static_l_desc;
s->d_desc.dyn_tree = s->dyn_dtree;
s->d_desc.stat_desc = &static_d_desc;
s->bl_desc.dyn_tree = s->bl_tree;
s->bl_desc.stat_desc = &static_bl_desc;
s->bi_buf = 0;
s->bi_valid = 0;
#ifdef ZLIB_DEBUG
s->compressed_len = 0L;
s->bits_sent = 0L;
#endif
init_block(s);
}
static void init_block(deflate_state *s) {
int n;
for (n = 0; n < L_CODES; n++)
s->dyn_ltree[n].Freq = 0;
for (n = 0; n < D_CODES; n++)
s->dyn_dtree[n].Freq = 0;
for (n = 0; n < BL_CODES; n++)
s->bl_tree[n].Freq = 0;
s->dyn_ltree[END_BLOCK].Freq = 1;
s->opt_len = s->static_len = 0L;
s->sym_next = s->matches = 0;
}
#define SMALLEST 1
#define pqremove(s, tree, top) \
{\
top = s->heap[SMALLEST]; \
s->heap[SMALLEST] = s->heap[s->heap_len--]; \
pqdownheap(s, tree, SMALLEST); \
}
#define smaller(tree, n, m, depth) \
(tree[n].Freq < tree[m].Freq || \
(tree[n].Freq == tree[m].Freq && depth[n] <= depth[m]))
static void pqdownheap(deflate_state *s, ct_data *tree, int k) {
int v = s->heap[k];
int j = k << 1;
while (j <= s->heap_len) {
if (j < s->heap_len && smaller(tree, s->heap[j+1], s->heap[j], s->depth)) {
j++;
}
if (smaller(tree, v, s->heap[j], s->depth))
break;
s->heap[k] = s->heap[j];
k = j;
j <<= 1;
}
s->heap[k] = v;
}
static void gen_bitlen(deflate_state *s, tree_desc *desc) {
ct_data *tree = desc->dyn_tree;
int max_code = desc->max_code;
const ct_data *stree = desc->stat_desc->static_tree;
const int *extra = desc->stat_desc->extra_bits;
int base = desc->stat_desc->extra_base;
unsigned int max_length = desc->stat_desc->max_length;
int h;
int n, m;
unsigned int bits;
int xbits;
uint16_t f;
int overflow = 0;
for (bits = 0; bits <= MAX_BITS; bits++)
s->bl_count[bits] = 0;
tree[s->heap[s->heap_max]].Len = 0;
for (h = s->heap_max + 1; h < HEAP_SIZE; h++) {
n = s->heap[h];
bits = tree[tree[n].Dad].Len + 1u;
if (bits > max_length){
bits = max_length;
overflow++;
}
tree[n].Len = (uint16_t)bits;
if (n > max_code)
continue;
s->bl_count[bits]++;
xbits = 0;
if (n >= base)
xbits = extra[n-base];
f = tree[n].Freq;
s->opt_len += (unsigned long)f * (unsigned int)(bits + xbits);
if (stree)
s->static_len += (unsigned long)f * (unsigned int)(stree[n].Len + xbits);
}
if (overflow == 0)
return;
Tracev((stderr, "\nbit length overflow\n"));
do {
bits = max_length - 1;
while (s->bl_count[bits] == 0)
bits--;
s->bl_count[bits]--;
s->bl_count[bits+1] += 2u;
s->bl_count[max_length]--;
overflow -= 2;
} while (overflow > 0);
for (bits = max_length; bits != 0; bits--) {
n = s->bl_count[bits];
while (n != 0) {
m = s->heap[--h];
if (m > max_code)
continue;
if (tree[m].Len != bits) {
Tracev((stderr, "code %d bits %d->%u\n", m, tree[m].Len, bits));
s->opt_len += (unsigned long)(bits * tree[m].Freq);
s->opt_len -= (unsigned long)(tree[m].Len * tree[m].Freq);
tree[m].Len = (uint16_t)bits;
}
n--;
}
}
}
Z_INTERNAL void gen_codes(ct_data *tree, int max_code, uint16_t *bl_count) {
uint16_t next_code[MAX_BITS+1];
unsigned int code = 0;
int bits;
int n;
for (bits = 1; bits <= MAX_BITS; bits++) {
code = (code + bl_count[bits-1]) << 1;
next_code[bits] = (uint16_t)code;
}
Assert(code + bl_count[MAX_BITS]-1 == (1 << MAX_BITS)-1, "inconsistent bit counts");
Tracev((stderr, "\ngen_codes: max_code %d ", max_code));
for (n = 0; n <= max_code; n++) {
int len = tree[n].Len;
if (len == 0)
continue;
tree[n].Code = PREFIX(bi_reverse)(next_code[len]++, len);
Tracecv(tree != static_ltree, (stderr, "\nn %3d %c l %2d c %4x (%x) ",
n, (isgraph(n & 0xff) ? n : ' '), len, tree[n].Code, next_code[len]-1));
}
}
static void build_tree(deflate_state *s, tree_desc *desc) {
ct_data *tree = desc->dyn_tree;
const ct_data *stree = desc->stat_desc->static_tree;
int elems = desc->stat_desc->elems;
int n, m;
int max_code = -1;
int node;
s->heap_len = 0;
s->heap_max = HEAP_SIZE;
for (n = 0; n < elems; n++) {
if (tree[n].Freq != 0) {
s->heap[++(s->heap_len)] = max_code = n;
s->depth[n] = 0;
} else {
tree[n].Len = 0;
}
}
while (s->heap_len < 2) {
node = s->heap[++(s->heap_len)] = (max_code < 2 ? ++max_code : 0);
tree[node].Freq = 1;
s->depth[node] = 0;
s->opt_len--;
if (stree)
s->static_len -= stree[node].Len;
}
desc->max_code = max_code;
for (n = s->heap_len/2; n >= 1; n--)
pqdownheap(s, tree, n);
node = elems;
do {
pqremove(s, tree, n);
m = s->heap[SMALLEST];
s->heap[--(s->heap_max)] = n;
s->heap[--(s->heap_max)] = m;
tree[node].Freq = tree[n].Freq + tree[m].Freq;
s->depth[node] = (unsigned char)((s->depth[n] >= s->depth[m] ?
s->depth[n] : s->depth[m]) + 1);
tree[n].Dad = tree[m].Dad = (uint16_t)node;
#ifdef DUMP_BL_TREE
if (tree == s->bl_tree) {
fprintf(stderr, "\nnode %d(%d), sons %d(%d) %d(%d)",
node, tree[node].Freq, n, tree[n].Freq, m, tree[m].Freq);
}
#endif
s->heap[SMALLEST] = node++;
pqdownheap(s, tree, SMALLEST);
} while (s->heap_len >= 2);
s->heap[--(s->heap_max)] = s->heap[SMALLEST];
gen_bitlen(s, (tree_desc *)desc);
gen_codes((ct_data *)tree, max_code, s->bl_count);
}
static void scan_tree(deflate_state *s, ct_data *tree, int max_code) {
int n;
int prevlen = -1;
int curlen;
int nextlen = tree[0].Len;
uint16_t count = 0;
uint16_t max_count = 7;
uint16_t min_count = 4;
if (nextlen == 0)
max_count = 138, min_count = 3;
tree[max_code+1].Len = (uint16_t)0xffff;
for (n = 0; n <= max_code; n++) {
curlen = nextlen;
nextlen = tree[n+1].Len;
if (++count < max_count && curlen == nextlen) {
continue;
} else if (count < min_count) {
s->bl_tree[curlen].Freq += count;
} else if (curlen != 0) {
if (curlen != prevlen)
s->bl_tree[curlen].Freq++;
s->bl_tree[REP_3_6].Freq++;
} else if (count <= 10) {
s->bl_tree[REPZ_3_10].Freq++;
} else {
s->bl_tree[REPZ_11_138].Freq++;
}
count = 0;
prevlen = curlen;
if (nextlen == 0) {
max_count = 138, min_count = 3;
} else if (curlen == nextlen) {
max_count = 6, min_count = 3;
} else {
max_count = 7, min_count = 4;
}
}
}
static void send_tree(deflate_state *s, ct_data *tree, int max_code) {
int n;
int prevlen = -1;
int curlen;
int nextlen = tree[0].Len;
int count = 0;
int max_count = 7;
int min_count = 4;
if (nextlen == 0)
max_count = 138, min_count = 3;
uint32_t bi_valid = s->bi_valid;
uint64_t bi_buf = s->bi_buf;
for (n = 0; n <= max_code; n++) {
curlen = nextlen;
nextlen = tree[n+1].Len;
if (++count < max_count && curlen == nextlen) {
continue;
} else if (count < min_count) {
do {
send_code(s, curlen, s->bl_tree, bi_buf, bi_valid);
} while (--count != 0);
} else if (curlen != 0) {
if (curlen != prevlen) {
send_code(s, curlen, s->bl_tree, bi_buf, bi_valid);
count--;
}
Assert(count >= 3 && count <= 6, " 3_6?");
send_code(s, REP_3_6, s->bl_tree, bi_buf, bi_valid);
send_bits(s, count-3, 2, bi_buf, bi_valid);
} else if (count <= 10) {
send_code(s, REPZ_3_10, s->bl_tree, bi_buf, bi_valid);
send_bits(s, count-3, 3, bi_buf, bi_valid);
} else {
send_code(s, REPZ_11_138, s->bl_tree, bi_buf, bi_valid);
send_bits(s, count-11, 7, bi_buf, bi_valid);
}
count = 0;
prevlen = curlen;
if (nextlen == 0) {
max_count = 138, min_count = 3;
} else if (curlen == nextlen) {
max_count = 6, min_count = 3;
} else {
max_count = 7, min_count = 4;
}
}
s->bi_buf = bi_buf;
s->bi_valid = bi_valid;
}
static int build_bl_tree(deflate_state *s) {
int max_blindex;
scan_tree(s, (ct_data *)s->dyn_ltree, s->l_desc.max_code);
scan_tree(s, (ct_data *)s->dyn_dtree, s->d_desc.max_code);
build_tree(s, (tree_desc *)(&(s->bl_desc)));
for (max_blindex = BL_CODES-1; max_blindex >= 3; max_blindex--) {
if (s->bl_tree[bl_order[max_blindex]].Len != 0)
break;
}
s->opt_len += 3*((unsigned long)max_blindex+1) + 5+5+4;
Tracev((stderr, "\ndyn trees: dyn %lu, stat %lu", s->opt_len, s->static_len));
return max_blindex;
}
static void send_all_trees(deflate_state *s, int lcodes, int dcodes, int blcodes) {
int rank;
Assert(lcodes >= 257 && dcodes >= 1 && blcodes >= 4, "not enough codes");
Assert(lcodes <= L_CODES && dcodes <= D_CODES && blcodes <= BL_CODES, "too many codes");
uint32_t bi_valid = s->bi_valid;
uint64_t bi_buf = s->bi_buf;
Tracev((stderr, "\nbl counts: "));
send_bits(s, lcodes-257, 5, bi_buf, bi_valid);
send_bits(s, dcodes-1, 5, bi_buf, bi_valid);
send_bits(s, blcodes-4, 4, bi_buf, bi_valid);
for (rank = 0; rank < blcodes; rank++) {
Tracev((stderr, "\nbl code %2u ", bl_order[rank]));
send_bits(s, s->bl_tree[bl_order[rank]].Len, 3, bi_buf, bi_valid);
}
Tracev((stderr, "\nbl tree: sent %lu", s->bits_sent));
s->bi_buf = bi_buf;
s->bi_valid = bi_valid;
send_tree(s, (ct_data *)s->dyn_ltree, lcodes-1);
Tracev((stderr, "\nlit tree: sent %lu", s->bits_sent));
send_tree(s, (ct_data *)s->dyn_dtree, dcodes-1);
Tracev((stderr, "\ndist tree: sent %lu", s->bits_sent));
}
void Z_INTERNAL zng_tr_stored_block(deflate_state *s, char *buf, uint32_t stored_len, int last) {
zng_tr_emit_tree(s, STORED_BLOCK, last);
zng_tr_emit_align(s);
cmpr_bits_align(s);
put_short(s, (uint16_t)stored_len);
put_short(s, (uint16_t)~stored_len);
cmpr_bits_add(s, 32);
sent_bits_add(s, 32);
if (stored_len) {
memcpy(s->pending_buf + s->pending, (unsigned char *)buf, stored_len);
s->pending += stored_len;
cmpr_bits_add(s, stored_len << 3);
sent_bits_add(s, stored_len << 3);
}
}
void Z_INTERNAL zng_tr_flush_bits(deflate_state *s) {
bi_flush(s);
}
void Z_INTERNAL zng_tr_align(deflate_state *s) {
zng_tr_emit_tree(s, STATIC_TREES, 0);
zng_tr_emit_end_block(s, static_ltree, 0);
bi_flush(s);
}
void Z_INTERNAL zng_tr_flush_block(deflate_state *s, char *buf, uint32_t stored_len, int last) {
unsigned long opt_lenb, static_lenb;
int max_blindex = 0;
if (UNLIKELY(s->sym_next == 0)) {
opt_lenb = static_lenb = 0;
s->static_len = 7;
} else if (s->level > 0) {
if (s->strm->data_type == Z_UNKNOWN)
s->strm->data_type = detect_data_type(s);
build_tree(s, (tree_desc *)(&(s->l_desc)));
Tracev((stderr, "\nlit data: dyn %lu, stat %lu", s->opt_len, s->static_len));
build_tree(s, (tree_desc *)(&(s->d_desc)));
Tracev((stderr, "\ndist data: dyn %lu, stat %lu", s->opt_len, s->static_len));
max_blindex = build_bl_tree(s);
opt_lenb = (s->opt_len+3+7) >> 3;
static_lenb = (s->static_len+3+7) >> 3;
Tracev((stderr, "\nopt %lu(%lu) stat %lu(%lu) stored %u lit %u ",
opt_lenb, s->opt_len, static_lenb, s->static_len, stored_len,
s->sym_next / 3));
if (static_lenb <= opt_lenb || s->strategy == Z_FIXED)
opt_lenb = static_lenb;
} else {
Assert(buf != NULL, "lost buf");
opt_lenb = static_lenb = stored_len + 5;
}
if (stored_len+4 <= opt_lenb && buf != NULL) {
zng_tr_stored_block(s, buf, stored_len, last);
} else if (static_lenb == opt_lenb) {
zng_tr_emit_tree(s, STATIC_TREES, last);
compress_block(s, (const ct_data *)static_ltree, (const ct_data *)static_dtree);
cmpr_bits_add(s, s->static_len);
} else {
zng_tr_emit_tree(s, DYN_TREES, last);
send_all_trees(s, s->l_desc.max_code+1, s->d_desc.max_code+1, max_blindex+1);
compress_block(s, (const ct_data *)s->dyn_ltree, (const ct_data *)s->dyn_dtree);
cmpr_bits_add(s, s->opt_len);
}
Assert(s->compressed_len == s->bits_sent, "bad compressed size");
init_block(s);
if (last) {
zng_tr_emit_align(s);
}
Tracev((stderr, "\ncomprlen %lu(%lu) ", s->compressed_len>>3, s->compressed_len-7*last));
}
static void compress_block(deflate_state *s, const ct_data *ltree, const ct_data *dtree) {
unsigned dist;
int lc;
unsigned sx = 0;
if (s->sym_next != 0) {
do {
dist = s->sym_buf[sx++] & 0xff;
dist += (unsigned)(s->sym_buf[sx++] & 0xff) << 8;
lc = s->sym_buf[sx++];
if (dist == 0) {
zng_emit_lit(s, ltree, lc);
} else {
zng_emit_dist(s, ltree, dtree, lc, dist);
}
Assert(s->pending < s->lit_bufsize + sx, "pending_buf overflow");
} while (sx < s->sym_next);
}
zng_emit_end_block(s, ltree, 0);
}
static int detect_data_type(deflate_state *s) {
unsigned long black_mask = 0xf3ffc07fUL;
int n;
for (n = 0; n <= 31; n++, black_mask >>= 1)
if ((black_mask & 1) && (s->dyn_ltree[n].Freq != 0))
return Z_BINARY;
if (s->dyn_ltree[9].Freq != 0 || s->dyn_ltree[10].Freq != 0 || s->dyn_ltree[13].Freq != 0)
return Z_TEXT;
for (n = 32; n < LITERALS; n++)
if (s->dyn_ltree[n].Freq != 0)
return Z_TEXT;
return Z_BINARY;
}
static void bi_flush(deflate_state *s) {
if (s->bi_valid == 64) {
put_uint64(s, s->bi_buf);
s->bi_buf = 0;
s->bi_valid = 0;
} else {
if (s->bi_valid >= 32) {
put_uint32(s, (uint32_t)s->bi_buf);
s->bi_buf >>= 32;
s->bi_valid -= 32;
}
if (s->bi_valid >= 16) {
put_short(s, (uint16_t)s->bi_buf);
s->bi_buf >>= 16;
s->bi_valid -= 16;
}
if (s->bi_valid >= 8) {
put_byte(s, s->bi_buf);
s->bi_buf >>= 8;
s->bi_valid -= 8;
}
}
}
Z_INTERNAL uint16_t PREFIX(bi_reverse)(unsigned code, int len) {
Assert(len >= 1 && len <= 15, "code length must be 1-15");
#define bitrev8(b) \
(uint8_t)((((uint8_t)(b) * 0x80200802ULL) & 0x0884422110ULL) * 0x0101010101ULL >> 32)
return (bitrev8(code >> 8) | (uint16_t)bitrev8(code) << 8) >> (16 - len);
}