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504 lines
13 KiB
C
504 lines
13 KiB
C
/*
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* Copyright (C) 2004, 2005, 2007-2009 Internet Systems Consortium, Inc. ("ISC")
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* Copyright (C) 2000, 2001, 2003 Internet Software Consortium.
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*
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* Permission to use, copy, modify, and/or distribute this software for any
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* purpose with or without fee is hereby granted, provided that the above
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* copyright notice and this permission notice appear in all copies.
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*
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* THE SOFTWARE IS PROVIDED "AS IS" AND ISC DISCLAIMS ALL WARRANTIES WITH
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* REGARD TO THIS SOFTWARE INCLUDING ALL IMPLIED WARRANTIES OF MERCHANTABILITY
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* AND FITNESS. IN NO EVENT SHALL ISC BE LIABLE FOR ANY SPECIAL, DIRECT,
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* INDIRECT, OR CONSEQUENTIAL DAMAGES OR ANY DAMAGES WHATSOEVER RESULTING FROM
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* LOSS OF USE, DATA OR PROFITS, WHETHER IN AN ACTION OF CONTRACT, NEGLIGENCE
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* OR OTHER TORTIOUS ACTION, ARISING OUT OF OR IN CONNECTION WITH THE USE OR
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* PERFORMANCE OF THIS SOFTWARE.
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*/
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/* $Id: context.c,v 1.50.332.5 2009/09/01 23:47:05 tbox Exp $ */
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/*! \file context.c
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lwres_context_create() creates a #lwres_context_t structure for use in
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lightweight resolver operations. It holds a socket and other data
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needed for communicating with a resolver daemon. The new
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lwres_context_t is returned through contextp, a pointer to a
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lwres_context_t pointer. This lwres_context_t pointer must initially
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be NULL, and is modified to point to the newly created
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lwres_context_t.
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When the lightweight resolver needs to perform dynamic memory
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allocation, it will call malloc_function to allocate memory and
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free_function to free it. If malloc_function and free_function are
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NULL, memory is allocated using malloc and free. It is not
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permitted to have a NULL malloc_function and a non-NULL free_function
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or vice versa. arg is passed as the first parameter to the memory
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allocation functions. If malloc_function and free_function are NULL,
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arg is unused and should be passed as NULL.
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Once memory for the structure has been allocated, it is initialized
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using lwres_conf_init() and returned via *contextp.
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lwres_context_destroy() destroys a #lwres_context_t, closing its
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socket. contextp is a pointer to a pointer to the context that is to
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be destroyed. The pointer will be set to NULL when the context has
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been destroyed.
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The context holds a serial number that is used to identify resolver
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request packets and associate responses with the corresponding
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requests. This serial number is controlled using
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lwres_context_initserial() and lwres_context_nextserial().
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lwres_context_initserial() sets the serial number for context *ctx to
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serial. lwres_context_nextserial() increments the serial number and
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returns the previous value.
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Memory for a lightweight resolver context is allocated and freed using
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lwres_context_allocmem() and lwres_context_freemem(). These use
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whatever allocations were defined when the context was created with
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lwres_context_create(). lwres_context_allocmem() allocates len bytes
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of memory and if successful returns a pointer to the allocated
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storage. lwres_context_freemem() frees len bytes of space starting at
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location mem.
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lwres_context_sendrecv() performs I/O for the context ctx. Data are
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read and written from the context's socket. It writes data from
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sendbase -- typically a lightweight resolver query packet -- and waits
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for a reply which is copied to the receive buffer at recvbase. The
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number of bytes that were written to this receive buffer is returned
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in *recvd_len.
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\section context_return Return Values
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lwres_context_create() returns #LWRES_R_NOMEMORY if memory for the
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struct lwres_context could not be allocated, #LWRES_R_SUCCESS
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otherwise.
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Successful calls to the memory allocator lwres_context_allocmem()
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return a pointer to the start of the allocated space. It returns NULL
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if memory could not be allocated.
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#LWRES_R_SUCCESS is returned when lwres_context_sendrecv() completes
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successfully. #LWRES_R_IOERROR is returned if an I/O error occurs and
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#LWRES_R_TIMEOUT is returned if lwres_context_sendrecv() times out
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waiting for a response.
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\section context_see See Also
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lwres_conf_init(), malloc, free.
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*/
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#include <config.h>
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#include <fcntl.h>
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#include <limits.h>
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#include <stdlib.h>
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#include <string.h>
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#include <time.h>
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#include <unistd.h>
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#include <lwres/lwres.h>
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#include <lwres/net.h>
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#include <lwres/platform.h>
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#ifdef LWRES_PLATFORM_NEEDSYSSELECTH
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#include <sys/select.h>
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#endif
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#include "context_p.h"
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#include "assert_p.h"
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/*!
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* Some systems define the socket length argument as an int, some as size_t,
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* some as socklen_t. The last is what the current POSIX standard mandates.
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* This definition is here so it can be portable but easily changed if needed.
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*/
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#ifndef LWRES_SOCKADDR_LEN_T
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#define LWRES_SOCKADDR_LEN_T unsigned int
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#endif
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/*!
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* Make a socket nonblocking.
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*/
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#ifndef MAKE_NONBLOCKING
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#define MAKE_NONBLOCKING(sd, retval) \
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do { \
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retval = fcntl(sd, F_GETFL, 0); \
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if (retval != -1) { \
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retval |= O_NONBLOCK; \
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retval = fcntl(sd, F_SETFL, retval); \
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} \
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} while (0)
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#endif
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LIBLWRES_EXTERNAL_DATA lwres_uint16_t lwres_udp_port = LWRES_UDP_PORT;
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LIBLWRES_EXTERNAL_DATA const char *lwres_resolv_conf = LWRES_RESOLV_CONF;
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static void *
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lwres_malloc(void *, size_t);
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static void
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lwres_free(void *, void *, size_t);
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/*!
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* lwres_result_t
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*/
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static lwres_result_t
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context_connect(lwres_context_t *);
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/*%
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* Creates a #lwres_context_t structure for use in
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* lightweight resolver operations.
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*/
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lwres_result_t
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lwres_context_create(lwres_context_t **contextp, void *arg,
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lwres_malloc_t malloc_function,
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lwres_free_t free_function,
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unsigned int flags)
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{
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lwres_context_t *ctx;
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REQUIRE(contextp != NULL && *contextp == NULL);
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/*
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* If we were not given anything special to use, use our own
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* functions. These are just wrappers around malloc() and free().
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*/
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if (malloc_function == NULL || free_function == NULL) {
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REQUIRE(malloc_function == NULL);
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REQUIRE(free_function == NULL);
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malloc_function = lwres_malloc;
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free_function = lwres_free;
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}
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ctx = malloc_function(arg, sizeof(lwres_context_t));
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if (ctx == NULL)
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return (LWRES_R_NOMEMORY);
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/*
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* Set up the context.
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*/
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ctx->malloc = malloc_function;
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ctx->free = free_function;
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ctx->arg = arg;
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ctx->sock = -1;
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ctx->timeout = LWRES_DEFAULT_TIMEOUT;
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ctx->serial = time(NULL); /* XXXMLG or BEW */
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ctx->use_ipv4 = 1;
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ctx->use_ipv6 = 1;
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if ((flags & (LWRES_CONTEXT_USEIPV4 | LWRES_CONTEXT_USEIPV6)) ==
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LWRES_CONTEXT_USEIPV6) {
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ctx->use_ipv4 = 0;
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}
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if ((flags & (LWRES_CONTEXT_USEIPV4 | LWRES_CONTEXT_USEIPV6)) ==
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LWRES_CONTEXT_USEIPV4) {
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ctx->use_ipv6 = 0;
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}
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/*
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* Init resolv.conf bits.
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*/
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lwres_conf_init(ctx);
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*contextp = ctx;
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return (LWRES_R_SUCCESS);
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}
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/*%
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Destroys a #lwres_context_t, closing its socket.
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contextp is a pointer to a pointer to the context that is
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to be destroyed. The pointer will be set to NULL
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when the context has been destroyed.
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*/
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void
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lwres_context_destroy(lwres_context_t **contextp) {
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lwres_context_t *ctx;
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REQUIRE(contextp != NULL && *contextp != NULL);
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ctx = *contextp;
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*contextp = NULL;
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if (ctx->sock != -1) {
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#ifdef WIN32
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DestroySockets();
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#endif
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(void)close(ctx->sock);
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ctx->sock = -1;
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}
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CTXFREE(ctx, sizeof(lwres_context_t));
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}
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/*% Increments the serial number and returns the previous value. */
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lwres_uint32_t
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lwres_context_nextserial(lwres_context_t *ctx) {
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REQUIRE(ctx != NULL);
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return (ctx->serial++);
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}
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/*% Sets the serial number for context *ctx to serial. */
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void
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lwres_context_initserial(lwres_context_t *ctx, lwres_uint32_t serial) {
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REQUIRE(ctx != NULL);
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ctx->serial = serial;
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}
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/*% Frees len bytes of space starting at location mem. */
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void
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lwres_context_freemem(lwres_context_t *ctx, void *mem, size_t len) {
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REQUIRE(mem != NULL);
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REQUIRE(len != 0U);
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CTXFREE(mem, len);
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}
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/*% Allocates len bytes of memory and if successful returns a pointer to the allocated storage. */
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void *
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lwres_context_allocmem(lwres_context_t *ctx, size_t len) {
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REQUIRE(len != 0U);
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return (CTXMALLOC(len));
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}
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static void *
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lwres_malloc(void *arg, size_t len) {
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void *mem;
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UNUSED(arg);
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mem = malloc(len);
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if (mem == NULL)
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return (NULL);
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memset(mem, 0xe5, len);
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return (mem);
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}
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static void
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lwres_free(void *arg, void *mem, size_t len) {
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UNUSED(arg);
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memset(mem, 0xa9, len);
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free(mem);
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}
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static lwres_result_t
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context_connect(lwres_context_t *ctx) {
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int s;
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int ret;
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struct sockaddr_in sin;
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struct sockaddr_in6 sin6;
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struct sockaddr *sa;
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LWRES_SOCKADDR_LEN_T salen;
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int domain;
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if (ctx->confdata.lwnext != 0) {
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memcpy(&ctx->address, &ctx->confdata.lwservers[0],
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sizeof(lwres_addr_t));
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LWRES_LINK_INIT(&ctx->address, link);
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} else {
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/* The default is the IPv4 loopback address 127.0.0.1. */
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memset(&ctx->address, 0, sizeof(ctx->address));
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ctx->address.family = LWRES_ADDRTYPE_V4;
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ctx->address.length = 4;
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ctx->address.address[0] = 127;
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ctx->address.address[1] = 0;
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ctx->address.address[2] = 0;
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ctx->address.address[3] = 1;
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}
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if (ctx->address.family == LWRES_ADDRTYPE_V4) {
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memcpy(&sin.sin_addr, ctx->address.address,
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sizeof(sin.sin_addr));
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sin.sin_port = htons(lwres_udp_port);
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sin.sin_family = AF_INET;
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sa = (struct sockaddr *)&sin;
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salen = sizeof(sin);
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domain = PF_INET;
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} else if (ctx->address.family == LWRES_ADDRTYPE_V6) {
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memcpy(&sin6.sin6_addr, ctx->address.address,
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sizeof(sin6.sin6_addr));
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sin6.sin6_port = htons(lwres_udp_port);
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sin6.sin6_family = AF_INET6;
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sa = (struct sockaddr *)&sin6;
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salen = sizeof(sin6);
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domain = PF_INET6;
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} else
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return (LWRES_R_IOERROR);
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#ifdef WIN32
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InitSockets();
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#endif
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s = socket(domain, SOCK_DGRAM, IPPROTO_UDP);
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if (s < 0) {
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#ifdef WIN32
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DestroySockets();
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#endif
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return (LWRES_R_IOERROR);
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}
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ret = connect(s, sa, salen);
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if (ret != 0) {
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#ifdef WIN32
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DestroySockets();
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#endif
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(void)close(s);
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return (LWRES_R_IOERROR);
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}
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MAKE_NONBLOCKING(s, ret);
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if (ret < 0) {
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#ifdef WIN32
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DestroySockets();
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#endif
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(void)close(s);
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return (LWRES_R_IOERROR);
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}
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ctx->sock = s;
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return (LWRES_R_SUCCESS);
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}
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int
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lwres_context_getsocket(lwres_context_t *ctx) {
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return (ctx->sock);
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}
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lwres_result_t
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lwres_context_send(lwres_context_t *ctx,
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void *sendbase, int sendlen) {
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int ret;
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lwres_result_t lwresult;
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if (ctx->sock == -1) {
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lwresult = context_connect(ctx);
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if (lwresult != LWRES_R_SUCCESS)
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return (lwresult);
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}
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ret = sendto(ctx->sock, sendbase, sendlen, 0, NULL, 0);
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if (ret < 0)
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return (LWRES_R_IOERROR);
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if (ret != sendlen)
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return (LWRES_R_IOERROR);
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return (LWRES_R_SUCCESS);
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}
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lwres_result_t
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lwres_context_recv(lwres_context_t *ctx,
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void *recvbase, int recvlen,
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int *recvd_len)
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{
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LWRES_SOCKADDR_LEN_T fromlen;
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struct sockaddr_in sin;
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struct sockaddr_in6 sin6;
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struct sockaddr *sa;
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int ret;
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if (ctx->address.family == LWRES_ADDRTYPE_V4) {
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sa = (struct sockaddr *)&sin;
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fromlen = sizeof(sin);
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} else {
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sa = (struct sockaddr *)&sin6;
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fromlen = sizeof(sin6);
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}
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/*
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* The address of fromlen is cast to void * to shut up compiler
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* warnings, namely on systems that have the sixth parameter
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* prototyped as a signed int when LWRES_SOCKADDR_LEN_T is
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* defined as unsigned.
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*/
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ret = recvfrom(ctx->sock, recvbase, recvlen, 0, sa, (void *)&fromlen);
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if (ret < 0)
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return (LWRES_R_IOERROR);
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if (ret == recvlen)
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return (LWRES_R_TOOLARGE);
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/*
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* If we got something other than what we expect, have the caller
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* wait for another packet. This can happen if an old result
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* comes in, or if someone is sending us random stuff.
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*/
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if (ctx->address.family == LWRES_ADDRTYPE_V4) {
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if (fromlen != sizeof(sin)
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|| memcmp(&sin.sin_addr, ctx->address.address,
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sizeof(sin.sin_addr)) != 0
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|| sin.sin_port != htons(lwres_udp_port))
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return (LWRES_R_RETRY);
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} else {
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if (fromlen != sizeof(sin6)
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|| memcmp(&sin6.sin6_addr, ctx->address.address,
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sizeof(sin6.sin6_addr)) != 0
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|| sin6.sin6_port != htons(lwres_udp_port))
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return (LWRES_R_RETRY);
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}
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if (recvd_len != NULL)
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*recvd_len = ret;
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return (LWRES_R_SUCCESS);
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}
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/*% performs I/O for the context ctx. */
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lwres_result_t
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lwres_context_sendrecv(lwres_context_t *ctx,
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void *sendbase, int sendlen,
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void *recvbase, int recvlen,
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int *recvd_len)
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{
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lwres_result_t result;
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int ret2;
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fd_set readfds;
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struct timeval timeout;
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/*
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* Type of tv_sec is 32 bits long.
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*/
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if (ctx->timeout <= 0x7FFFFFFFU)
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timeout.tv_sec = (int)ctx->timeout;
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else
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timeout.tv_sec = 0x7FFFFFFF;
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timeout.tv_usec = 0;
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result = lwres_context_send(ctx, sendbase, sendlen);
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if (result != LWRES_R_SUCCESS)
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return (result);
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/*
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* If this is not checked, select() can overflow,
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* causing corruption elsewhere.
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*/
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if (ctx->sock >= (int)FD_SETSIZE) {
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close(ctx->sock);
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ctx->sock = -1;
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return (LWRES_R_IOERROR);
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}
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again:
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FD_ZERO(&readfds);
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FD_SET(ctx->sock, &readfds);
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ret2 = select(ctx->sock + 1, &readfds, NULL, NULL, &timeout);
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/*
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* What happened with select?
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*/
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if (ret2 < 0)
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return (LWRES_R_IOERROR);
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if (ret2 == 0)
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return (LWRES_R_TIMEOUT);
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result = lwres_context_recv(ctx, recvbase, recvlen, recvd_len);
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if (result == LWRES_R_RETRY)
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goto again;
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return (result);
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}
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