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81036f2738
These ones are useful across all threads and would be better placed in struct thread_info than thread-local. There are very few users.
749 lines
20 KiB
C
749 lines
20 KiB
C
/*
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* HTTP compression.
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*
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* Copyright 2012 Exceliance, David Du Colombier <dducolombier@exceliance.fr>
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* William Lallemand <wlallemand@exceliance.fr>
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*
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* This program is free software; you can redistribute it and/or
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* modify it under the terms of the GNU General Public License
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* as published by the Free Software Foundation; either version
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* 2 of the License, or (at your option) any later version.
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*
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*/
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#include <stdio.h>
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#if defined(USE_SLZ)
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#include <slz.h>
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#elif defined(USE_ZLIB)
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/* Note: the crappy zlib and openssl libs both define the "free_func" type.
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* That's a very clever idea to use such a generic name in general purpose
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* libraries, really... The zlib one is easier to redefine than openssl's,
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* so let's only fix this one.
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*/
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#define free_func zlib_free_func
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#include <zlib.h>
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#undef free_func
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#endif /* USE_ZLIB */
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#include <common/cfgparse.h>
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#include <common/compat.h>
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#include <common/hathreads.h>
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#include <common/initcall.h>
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#include <common/memory.h>
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#include <types/global.h>
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#include <types/compression.h>
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#include <proto/acl.h>
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#include <proto/compression.h>
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#include <proto/freq_ctr.h>
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#include <proto/stream.h>
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#if defined(USE_ZLIB)
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__decl_spinlock(comp_pool_lock);
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#endif
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#ifdef USE_ZLIB
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static void *alloc_zlib(void *opaque, unsigned int items, unsigned int size);
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static void free_zlib(void *opaque, void *ptr);
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/* zlib allocation */
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static struct pool_head *zlib_pool_deflate_state = NULL;
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static struct pool_head *zlib_pool_window = NULL;
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static struct pool_head *zlib_pool_prev = NULL;
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static struct pool_head *zlib_pool_head = NULL;
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static struct pool_head *zlib_pool_pending_buf = NULL;
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long zlib_used_memory = 0;
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static int global_tune_zlibmemlevel = 8; /* zlib memlevel */
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static int global_tune_zlibwindowsize = MAX_WBITS; /* zlib window size */
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#endif
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unsigned int compress_min_idle = 0;
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static int identity_init(struct comp_ctx **comp_ctx, int level);
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static int identity_add_data(struct comp_ctx *comp_ctx, const char *in_data, int in_len, struct buffer *out);
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static int identity_flush(struct comp_ctx *comp_ctx, struct buffer *out);
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static int identity_finish(struct comp_ctx *comp_ctx, struct buffer *out);
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static int identity_end(struct comp_ctx **comp_ctx);
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#if defined(USE_SLZ)
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static int rfc1950_init(struct comp_ctx **comp_ctx, int level);
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static int rfc1951_init(struct comp_ctx **comp_ctx, int level);
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static int rfc1952_init(struct comp_ctx **comp_ctx, int level);
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static int rfc195x_add_data(struct comp_ctx *comp_ctx, const char *in_data, int in_len, struct buffer *out);
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static int rfc195x_flush(struct comp_ctx *comp_ctx, struct buffer *out);
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static int rfc195x_finish(struct comp_ctx *comp_ctx, struct buffer *out);
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static int rfc195x_end(struct comp_ctx **comp_ctx);
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#elif defined(USE_ZLIB)
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static int gzip_init(struct comp_ctx **comp_ctx, int level);
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static int raw_def_init(struct comp_ctx **comp_ctx, int level);
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static int deflate_init(struct comp_ctx **comp_ctx, int level);
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static int deflate_add_data(struct comp_ctx *comp_ctx, const char *in_data, int in_len, struct buffer *out);
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static int deflate_flush(struct comp_ctx *comp_ctx, struct buffer *out);
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static int deflate_finish(struct comp_ctx *comp_ctx, struct buffer *out);
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static int deflate_end(struct comp_ctx **comp_ctx);
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#endif /* USE_ZLIB */
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const struct comp_algo comp_algos[] =
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{
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{ "identity", 8, "identity", 8, identity_init, identity_add_data, identity_flush, identity_finish, identity_end },
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#if defined(USE_SLZ)
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{ "deflate", 7, "deflate", 7, rfc1950_init, rfc195x_add_data, rfc195x_flush, rfc195x_finish, rfc195x_end },
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{ "raw-deflate", 11, "deflate", 7, rfc1951_init, rfc195x_add_data, rfc195x_flush, rfc195x_finish, rfc195x_end },
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{ "gzip", 4, "gzip", 4, rfc1952_init, rfc195x_add_data, rfc195x_flush, rfc195x_finish, rfc195x_end },
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#elif defined(USE_ZLIB)
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{ "deflate", 7, "deflate", 7, deflate_init, deflate_add_data, deflate_flush, deflate_finish, deflate_end },
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{ "raw-deflate", 11, "deflate", 7, raw_def_init, deflate_add_data, deflate_flush, deflate_finish, deflate_end },
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{ "gzip", 4, "gzip", 4, gzip_init, deflate_add_data, deflate_flush, deflate_finish, deflate_end },
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#endif /* USE_ZLIB */
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{ NULL, 0, NULL, 0, NULL , NULL, NULL, NULL, NULL }
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};
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/*
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* Add a content-type in the configuration
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*/
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int comp_append_type(struct comp *comp, const char *type)
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{
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struct comp_type *comp_type;
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comp_type = calloc(1, sizeof(*comp_type));
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comp_type->name_len = strlen(type);
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comp_type->name = strdup(type);
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comp_type->next = comp->types;
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comp->types = comp_type;
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return 0;
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}
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/*
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* Add an algorithm in the configuration
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*/
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int comp_append_algo(struct comp *comp, const char *algo)
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{
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struct comp_algo *comp_algo;
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int i;
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for (i = 0; comp_algos[i].cfg_name; i++) {
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if (!strcmp(algo, comp_algos[i].cfg_name)) {
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comp_algo = calloc(1, sizeof(*comp_algo));
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memmove(comp_algo, &comp_algos[i], sizeof(struct comp_algo));
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comp_algo->next = comp->algos;
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comp->algos = comp_algo;
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return 0;
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}
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}
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return -1;
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}
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#if defined(USE_ZLIB) || defined(USE_SLZ)
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DECLARE_STATIC_POOL(pool_comp_ctx, "comp_ctx", sizeof(struct comp_ctx));
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/*
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* Alloc the comp_ctx
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*/
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static inline int init_comp_ctx(struct comp_ctx **comp_ctx)
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{
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#ifdef USE_ZLIB
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z_stream *strm;
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if (global.maxzlibmem > 0 && (global.maxzlibmem - zlib_used_memory) < sizeof(struct comp_ctx))
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return -1;
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#endif
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*comp_ctx = pool_alloc(pool_comp_ctx);
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if (*comp_ctx == NULL)
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return -1;
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#if defined(USE_SLZ)
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(*comp_ctx)->direct_ptr = NULL;
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(*comp_ctx)->direct_len = 0;
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(*comp_ctx)->queued = BUF_NULL;
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#elif defined(USE_ZLIB)
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_HA_ATOMIC_ADD(&zlib_used_memory, sizeof(struct comp_ctx));
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__ha_barrier_atomic_store();
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strm = &(*comp_ctx)->strm;
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strm->zalloc = alloc_zlib;
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strm->zfree = free_zlib;
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strm->opaque = *comp_ctx;
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#endif
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return 0;
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}
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/*
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* Dealloc the comp_ctx
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*/
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static inline int deinit_comp_ctx(struct comp_ctx **comp_ctx)
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{
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if (!*comp_ctx)
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return 0;
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pool_free(pool_comp_ctx, *comp_ctx);
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*comp_ctx = NULL;
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#ifdef USE_ZLIB
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_HA_ATOMIC_SUB(&zlib_used_memory, sizeof(struct comp_ctx));
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__ha_barrier_atomic_store();
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#endif
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return 0;
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}
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#endif
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/****************************
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**** Identity algorithm ****
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****************************/
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/*
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* Init the identity algorithm
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*/
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static int identity_init(struct comp_ctx **comp_ctx, int level)
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{
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return 0;
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}
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/*
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* Process data
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* Return size of consumed data or -1 on error
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*/
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static int identity_add_data(struct comp_ctx *comp_ctx, const char *in_data, int in_len, struct buffer *out)
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{
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char *out_data = b_tail(out);
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int out_len = b_room(out);
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if (out_len < in_len)
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return -1;
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memcpy(out_data, in_data, in_len);
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b_add(out, in_len);
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return in_len;
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}
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static int identity_flush(struct comp_ctx *comp_ctx, struct buffer *out)
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{
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return 0;
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}
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static int identity_finish(struct comp_ctx *comp_ctx, struct buffer *out)
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{
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return 0;
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}
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/*
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* Deinit the algorithm
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*/
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static int identity_end(struct comp_ctx **comp_ctx)
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{
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return 0;
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}
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#ifdef USE_SLZ
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/* SLZ's gzip format (RFC1952). Returns < 0 on error. */
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static int rfc1952_init(struct comp_ctx **comp_ctx, int level)
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{
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if (init_comp_ctx(comp_ctx) < 0)
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return -1;
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(*comp_ctx)->cur_lvl = !!level;
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return slz_rfc1952_init(&(*comp_ctx)->strm, !!level);
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}
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/* SLZ's raw deflate format (RFC1951). Returns < 0 on error. */
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static int rfc1951_init(struct comp_ctx **comp_ctx, int level)
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{
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if (init_comp_ctx(comp_ctx) < 0)
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return -1;
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(*comp_ctx)->cur_lvl = !!level;
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return slz_rfc1951_init(&(*comp_ctx)->strm, !!level);
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}
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/* SLZ's zlib format (RFC1950). Returns < 0 on error. */
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static int rfc1950_init(struct comp_ctx **comp_ctx, int level)
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{
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if (init_comp_ctx(comp_ctx) < 0)
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return -1;
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(*comp_ctx)->cur_lvl = !!level;
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return slz_rfc1950_init(&(*comp_ctx)->strm, !!level);
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}
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/* Return the size of consumed data or -1. The output buffer is unused at this
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* point, we only keep a reference to the input data or a copy of them if the
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* reference is already used.
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*/
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static int rfc195x_add_data(struct comp_ctx *comp_ctx, const char *in_data, int in_len, struct buffer *out)
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{
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static THREAD_LOCAL struct buffer tmpbuf = BUF_NULL;
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if (in_len <= 0)
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return 0;
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if (comp_ctx->direct_ptr && b_is_null(&comp_ctx->queued)) {
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/* data already being pointed to, we're in front of fragmented
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* data and need a buffer now. We reuse the same buffer, as it's
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* not used out of the scope of a series of add_data()*, end().
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*/
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if (unlikely(!tmpbuf.size)) {
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/* this is the first time we need the compression buffer */
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if (b_alloc(&tmpbuf) == NULL)
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return -1; /* no memory */
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}
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b_reset(&tmpbuf);
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memcpy(b_tail(&tmpbuf), comp_ctx->direct_ptr, comp_ctx->direct_len);
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b_add(&tmpbuf, comp_ctx->direct_len);
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comp_ctx->direct_ptr = NULL;
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comp_ctx->direct_len = 0;
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comp_ctx->queued = tmpbuf;
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/* fall through buffer copy */
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}
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if (!b_is_null(&comp_ctx->queued)) {
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/* data already pending */
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memcpy(b_tail(&comp_ctx->queued), in_data, in_len);
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b_add(&comp_ctx->queued, in_len);
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return in_len;
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}
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comp_ctx->direct_ptr = in_data;
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comp_ctx->direct_len = in_len;
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return in_len;
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}
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/* Compresses the data accumulated using add_data(), and optionally sends the
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* format-specific trailer if <finish> is non-null. <out> is expected to have a
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* large enough free non-wrapping space as verified by http_comp_buffer_init().
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* The number of bytes emitted is reported.
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*/
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static int rfc195x_flush_or_finish(struct comp_ctx *comp_ctx, struct buffer *out, int finish)
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{
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struct slz_stream *strm = &comp_ctx->strm;
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const char *in_ptr;
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int in_len;
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int out_len;
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in_ptr = comp_ctx->direct_ptr;
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in_len = comp_ctx->direct_len;
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if (!b_is_null(&comp_ctx->queued)) {
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in_ptr = b_head(&comp_ctx->queued);
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in_len = b_data(&comp_ctx->queued);
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}
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out_len = b_data(out);
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if (in_ptr)
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b_add(out, slz_encode(strm, b_tail(out), in_ptr, in_len, !finish));
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if (finish)
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b_add(out, slz_finish(strm, b_tail(out)));
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out_len = b_data(out) - out_len;
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/* very important, we must wipe the data we've just flushed */
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comp_ctx->direct_len = 0;
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comp_ctx->direct_ptr = NULL;
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comp_ctx->queued = BUF_NULL;
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/* Verify compression rate limiting and CPU usage */
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if ((global.comp_rate_lim > 0 && (read_freq_ctr(&global.comp_bps_out) > global.comp_rate_lim)) || /* rate */
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(ti->idle_pct < compress_min_idle)) { /* idle */
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if (comp_ctx->cur_lvl > 0)
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strm->level = --comp_ctx->cur_lvl;
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}
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else if (comp_ctx->cur_lvl < global.tune.comp_maxlevel && comp_ctx->cur_lvl < 1) {
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strm->level = ++comp_ctx->cur_lvl;
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}
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/* and that's all */
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return out_len;
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}
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static int rfc195x_flush(struct comp_ctx *comp_ctx, struct buffer *out)
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{
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return rfc195x_flush_or_finish(comp_ctx, out, 0);
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}
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static int rfc195x_finish(struct comp_ctx *comp_ctx, struct buffer *out)
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{
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return rfc195x_flush_or_finish(comp_ctx, out, 1);
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}
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/* we just need to free the comp_ctx here, nothing was allocated */
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static int rfc195x_end(struct comp_ctx **comp_ctx)
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{
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deinit_comp_ctx(comp_ctx);
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return 0;
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}
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#elif defined(USE_ZLIB) /* ! USE_SLZ */
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/*
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* This is a tricky allocation function using the zlib.
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* This is based on the allocation order in deflateInit2.
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*/
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static void *alloc_zlib(void *opaque, unsigned int items, unsigned int size)
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{
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struct comp_ctx *ctx = opaque;
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static THREAD_LOCAL char round = 0; /* order in deflateInit2 */
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void *buf = NULL;
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struct pool_head *pool = NULL;
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if (global.maxzlibmem > 0 && (global.maxzlibmem - zlib_used_memory) < (long)(items * size))
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goto end;
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switch (round) {
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case 0:
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if (zlib_pool_deflate_state == NULL) {
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HA_SPIN_LOCK(COMP_POOL_LOCK, &comp_pool_lock);
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if (zlib_pool_deflate_state == NULL)
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zlib_pool_deflate_state = create_pool("zlib_state", size * items, MEM_F_SHARED);
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HA_SPIN_UNLOCK(COMP_POOL_LOCK, &comp_pool_lock);
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}
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pool = zlib_pool_deflate_state;
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ctx->zlib_deflate_state = buf = pool_alloc(pool);
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break;
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|
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case 1:
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if (zlib_pool_window == NULL) {
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HA_SPIN_LOCK(COMP_POOL_LOCK, &comp_pool_lock);
|
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if (zlib_pool_window == NULL)
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zlib_pool_window = create_pool("zlib_window", size * items, MEM_F_SHARED);
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HA_SPIN_UNLOCK(COMP_POOL_LOCK, &comp_pool_lock);
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}
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pool = zlib_pool_window;
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ctx->zlib_window = buf = pool_alloc(pool);
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break;
|
|
|
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case 2:
|
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if (zlib_pool_prev == NULL) {
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HA_SPIN_LOCK(COMP_POOL_LOCK, &comp_pool_lock);
|
|
if (zlib_pool_prev == NULL)
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zlib_pool_prev = create_pool("zlib_prev", size * items, MEM_F_SHARED);
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HA_SPIN_UNLOCK(COMP_POOL_LOCK, &comp_pool_lock);
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|
}
|
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pool = zlib_pool_prev;
|
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ctx->zlib_prev = buf = pool_alloc(pool);
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break;
|
|
|
|
case 3:
|
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if (zlib_pool_head == NULL) {
|
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HA_SPIN_LOCK(COMP_POOL_LOCK, &comp_pool_lock);
|
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if (zlib_pool_head == NULL)
|
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zlib_pool_head = create_pool("zlib_head", size * items, MEM_F_SHARED);
|
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HA_SPIN_UNLOCK(COMP_POOL_LOCK, &comp_pool_lock);
|
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}
|
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pool = zlib_pool_head;
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ctx->zlib_head = buf = pool_alloc(pool);
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break;
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|
|
case 4:
|
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if (zlib_pool_pending_buf == NULL) {
|
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HA_SPIN_LOCK(COMP_POOL_LOCK, &comp_pool_lock);
|
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if (zlib_pool_pending_buf == NULL)
|
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zlib_pool_pending_buf = create_pool("zlib_pending_buf", size * items, MEM_F_SHARED);
|
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HA_SPIN_UNLOCK(COMP_POOL_LOCK, &comp_pool_lock);
|
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}
|
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pool = zlib_pool_pending_buf;
|
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ctx->zlib_pending_buf = buf = pool_alloc(pool);
|
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break;
|
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}
|
|
if (buf != NULL) {
|
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_HA_ATOMIC_ADD(&zlib_used_memory, pool->size);
|
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__ha_barrier_atomic_store();
|
|
}
|
|
|
|
end:
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|
|
/* deflateInit2() first allocates and checks the deflate_state, then if
|
|
* it succeeds, it allocates all other 4 areas at ones and checks them
|
|
* at the end. So we want to correctly count the rounds depending on when
|
|
* zlib is supposed to abort.
|
|
*/
|
|
if (buf || round)
|
|
round = (round + 1) % 5;
|
|
return buf;
|
|
}
|
|
|
|
static void free_zlib(void *opaque, void *ptr)
|
|
{
|
|
struct comp_ctx *ctx = opaque;
|
|
struct pool_head *pool = NULL;
|
|
|
|
if (ptr == ctx->zlib_window)
|
|
pool = zlib_pool_window;
|
|
else if (ptr == ctx->zlib_deflate_state)
|
|
pool = zlib_pool_deflate_state;
|
|
else if (ptr == ctx->zlib_prev)
|
|
pool = zlib_pool_prev;
|
|
else if (ptr == ctx->zlib_head)
|
|
pool = zlib_pool_head;
|
|
else if (ptr == ctx->zlib_pending_buf)
|
|
pool = zlib_pool_pending_buf;
|
|
|
|
pool_free(pool, ptr);
|
|
_HA_ATOMIC_SUB(&zlib_used_memory, pool->size);
|
|
__ha_barrier_atomic_store();
|
|
}
|
|
|
|
/**************************
|
|
**** gzip algorithm ****
|
|
***************************/
|
|
static int gzip_init(struct comp_ctx **comp_ctx, int level)
|
|
{
|
|
z_stream *strm;
|
|
|
|
if (init_comp_ctx(comp_ctx) < 0)
|
|
return -1;
|
|
|
|
strm = &(*comp_ctx)->strm;
|
|
|
|
if (deflateInit2(strm, level, Z_DEFLATED, global_tune_zlibwindowsize + 16, global_tune_zlibmemlevel, Z_DEFAULT_STRATEGY) != Z_OK) {
|
|
deinit_comp_ctx(comp_ctx);
|
|
return -1;
|
|
}
|
|
|
|
(*comp_ctx)->cur_lvl = level;
|
|
|
|
return 0;
|
|
}
|
|
|
|
/* Raw deflate algorithm */
|
|
static int raw_def_init(struct comp_ctx **comp_ctx, int level)
|
|
{
|
|
z_stream *strm;
|
|
|
|
if (init_comp_ctx(comp_ctx) < 0)
|
|
return -1;
|
|
|
|
strm = &(*comp_ctx)->strm;
|
|
|
|
if (deflateInit2(strm, level, Z_DEFLATED, -global_tune_zlibwindowsize, global_tune_zlibmemlevel, Z_DEFAULT_STRATEGY) != Z_OK) {
|
|
deinit_comp_ctx(comp_ctx);
|
|
return -1;
|
|
}
|
|
|
|
(*comp_ctx)->cur_lvl = level;
|
|
return 0;
|
|
}
|
|
|
|
/**************************
|
|
**** Deflate algorithm ****
|
|
***************************/
|
|
|
|
static int deflate_init(struct comp_ctx **comp_ctx, int level)
|
|
{
|
|
z_stream *strm;
|
|
|
|
if (init_comp_ctx(comp_ctx) < 0)
|
|
return -1;
|
|
|
|
strm = &(*comp_ctx)->strm;
|
|
|
|
if (deflateInit2(strm, level, Z_DEFLATED, global_tune_zlibwindowsize, global_tune_zlibmemlevel, Z_DEFAULT_STRATEGY) != Z_OK) {
|
|
deinit_comp_ctx(comp_ctx);
|
|
return -1;
|
|
}
|
|
|
|
(*comp_ctx)->cur_lvl = level;
|
|
|
|
return 0;
|
|
}
|
|
|
|
/* Return the size of consumed data or -1 */
|
|
static int deflate_add_data(struct comp_ctx *comp_ctx, const char *in_data, int in_len, struct buffer *out)
|
|
{
|
|
int ret;
|
|
z_stream *strm = &comp_ctx->strm;
|
|
char *out_data = b_tail(out);
|
|
int out_len = b_room(out);
|
|
|
|
if (in_len <= 0)
|
|
return 0;
|
|
|
|
|
|
if (out_len <= 0)
|
|
return -1;
|
|
|
|
strm->next_in = (unsigned char *)in_data;
|
|
strm->avail_in = in_len;
|
|
strm->next_out = (unsigned char *)out_data;
|
|
strm->avail_out = out_len;
|
|
|
|
ret = deflate(strm, Z_NO_FLUSH);
|
|
if (ret != Z_OK)
|
|
return -1;
|
|
|
|
/* deflate update the available data out */
|
|
b_add(out, out_len - strm->avail_out);
|
|
|
|
return in_len - strm->avail_in;
|
|
}
|
|
|
|
static int deflate_flush_or_finish(struct comp_ctx *comp_ctx, struct buffer *out, int flag)
|
|
{
|
|
int ret;
|
|
int out_len = 0;
|
|
z_stream *strm = &comp_ctx->strm;
|
|
|
|
strm->next_in = NULL;
|
|
strm->avail_in = 0;
|
|
strm->next_out = (unsigned char *)b_tail(out);
|
|
strm->avail_out = b_room(out);
|
|
|
|
ret = deflate(strm, flag);
|
|
if (ret != Z_OK && ret != Z_STREAM_END)
|
|
return -1;
|
|
|
|
out_len = b_room(out) - strm->avail_out;
|
|
b_add(out, out_len);
|
|
|
|
/* compression limit */
|
|
if ((global.comp_rate_lim > 0 && (read_freq_ctr(&global.comp_bps_out) > global.comp_rate_lim)) || /* rate */
|
|
(ti->idle_pct < compress_min_idle)) { /* idle */
|
|
/* decrease level */
|
|
if (comp_ctx->cur_lvl > 0) {
|
|
comp_ctx->cur_lvl--;
|
|
deflateParams(&comp_ctx->strm, comp_ctx->cur_lvl, Z_DEFAULT_STRATEGY);
|
|
}
|
|
|
|
} else if (comp_ctx->cur_lvl < global.tune.comp_maxlevel) {
|
|
/* increase level */
|
|
comp_ctx->cur_lvl++ ;
|
|
deflateParams(&comp_ctx->strm, comp_ctx->cur_lvl, Z_DEFAULT_STRATEGY);
|
|
}
|
|
|
|
return out_len;
|
|
}
|
|
|
|
static int deflate_flush(struct comp_ctx *comp_ctx, struct buffer *out)
|
|
{
|
|
return deflate_flush_or_finish(comp_ctx, out, Z_SYNC_FLUSH);
|
|
}
|
|
|
|
static int deflate_finish(struct comp_ctx *comp_ctx, struct buffer *out)
|
|
{
|
|
return deflate_flush_or_finish(comp_ctx, out, Z_FINISH);
|
|
}
|
|
|
|
static int deflate_end(struct comp_ctx **comp_ctx)
|
|
{
|
|
z_stream *strm = &(*comp_ctx)->strm;
|
|
int ret;
|
|
|
|
ret = deflateEnd(strm);
|
|
|
|
deinit_comp_ctx(comp_ctx);
|
|
|
|
return ret;
|
|
}
|
|
|
|
/* config parser for global "tune.zlibmemlevel" */
|
|
static int zlib_parse_global_memlevel(char **args, int section_type, struct proxy *curpx,
|
|
struct proxy *defpx, const char *file, int line,
|
|
char **err)
|
|
{
|
|
if (too_many_args(1, args, err, NULL))
|
|
return -1;
|
|
|
|
if (*(args[1]) == 0) {
|
|
memprintf(err, "'%s' expects a numeric value between 1 and 9.", args[0]);
|
|
return -1;
|
|
}
|
|
|
|
global_tune_zlibmemlevel = atoi(args[1]);
|
|
if (global_tune_zlibmemlevel < 1 || global_tune_zlibmemlevel > 9) {
|
|
memprintf(err, "'%s' expects a numeric value between 1 and 9.", args[0]);
|
|
return -1;
|
|
}
|
|
return 0;
|
|
}
|
|
|
|
|
|
/* config parser for global "tune.zlibwindowsize" */
|
|
static int zlib_parse_global_windowsize(char **args, int section_type, struct proxy *curpx,
|
|
struct proxy *defpx, const char *file, int line,
|
|
char **err)
|
|
{
|
|
if (too_many_args(1, args, err, NULL))
|
|
return -1;
|
|
|
|
if (*(args[1]) == 0) {
|
|
memprintf(err, "'%s' expects a numeric value between 8 and 15.", args[0]);
|
|
return -1;
|
|
}
|
|
|
|
global_tune_zlibwindowsize = atoi(args[1]);
|
|
if (global_tune_zlibwindowsize < 8 || global_tune_zlibwindowsize > 15) {
|
|
memprintf(err, "'%s' expects a numeric value between 8 and 15.", args[0]);
|
|
return -1;
|
|
}
|
|
return 0;
|
|
}
|
|
|
|
#endif /* USE_ZLIB */
|
|
|
|
|
|
/* config keyword parsers */
|
|
static struct cfg_kw_list cfg_kws = {ILH, {
|
|
#ifdef USE_ZLIB
|
|
{ CFG_GLOBAL, "tune.zlib.memlevel", zlib_parse_global_memlevel },
|
|
{ CFG_GLOBAL, "tune.zlib.windowsize", zlib_parse_global_windowsize },
|
|
#endif
|
|
{ 0, NULL, NULL }
|
|
}};
|
|
|
|
INITCALL1(STG_REGISTER, cfg_register_keywords, &cfg_kws);
|
|
|
|
__attribute__((constructor))
|
|
static void __comp_fetch_init(void)
|
|
{
|
|
#ifdef USE_SLZ
|
|
slz_make_crc_table();
|
|
slz_prepare_dist_table();
|
|
#endif
|
|
|
|
#if defined(USE_ZLIB) && defined(DEFAULT_MAXZLIBMEM)
|
|
global.maxzlibmem = DEFAULT_MAXZLIBMEM * 1024U * 1024U;
|
|
#endif
|
|
}
|
|
|
|
static void comp_register_build_opts(void)
|
|
{
|
|
char *ptr = NULL;
|
|
int i;
|
|
|
|
#ifdef USE_ZLIB
|
|
memprintf(&ptr, "Built with zlib version : " ZLIB_VERSION);
|
|
memprintf(&ptr, "%s\nRunning on zlib version : %s", ptr, zlibVersion());
|
|
#elif defined(USE_SLZ)
|
|
memprintf(&ptr, "Built with libslz for stateless compression.");
|
|
#else
|
|
memprintf(&ptr, "Built without compression support (neither USE_ZLIB nor USE_SLZ are set).");
|
|
#endif
|
|
memprintf(&ptr, "%s\nCompression algorithms supported :", ptr);
|
|
|
|
for (i = 0; comp_algos[i].cfg_name; i++)
|
|
memprintf(&ptr, "%s%s %s(\"%s\")", ptr, (i == 0 ? "" : ","), comp_algos[i].cfg_name, comp_algos[i].ua_name);
|
|
|
|
if (i == 0)
|
|
memprintf(&ptr, "%s none", ptr);
|
|
|
|
hap_register_build_opts(ptr, 1);
|
|
}
|
|
|
|
INITCALL0(STG_REGISTER, comp_register_build_opts);
|