#include <limits.h>
#include <stdio.h>
#include <string.h>
#include <openssl/buffer.h>
#include <openssl/evp.h>
#include <openssl/objects.h>
#include <openssl/x509.h>
#include "bytestring.h"
#include "dtls_local.h"
#include "pqueue.h"
#include "ssl_local.h"
#define RSMBLY_BITMASK_SIZE(msg_len) (((msg_len) + 7) / 8)
#define RSMBLY_BITMASK_MARK(bitmask, start, end) { \
if ((end) - (start) <= 8) { \
long ii; \
for (ii = (start); ii < (end); ii++) bitmask[((ii) >> 3)] |= (1 << ((ii) & 7)); \
} else { \
long ii; \
bitmask[((start) >> 3)] |= bitmask_start_values[((start) & 7)]; \
for (ii = (((start) >> 3) + 1); ii < ((((end) - 1)) >> 3); ii++) bitmask[ii] = 0xff; \
bitmask[(((end) - 1) >> 3)] |= bitmask_end_values[((end) & 7)]; \
} }
#define RSMBLY_BITMASK_IS_COMPLETE(bitmask, msg_len, is_complete) { \
long ii; \
OPENSSL_assert((msg_len) > 0); \
is_complete = 1; \
if (bitmask[(((msg_len) - 1) >> 3)] != bitmask_end_values[((msg_len) & 7)]) is_complete = 0; \
if (is_complete) for (ii = (((msg_len) - 1) >> 3) - 1; ii >= 0 ; ii--) \
if (bitmask[ii] != 0xff) { is_complete = 0; break; } }
static const unsigned char bitmask_start_values[] = {
0xff, 0xfe, 0xfc, 0xf8, 0xf0, 0xe0, 0xc0, 0x80
};
static const unsigned char bitmask_end_values[] = {
0xff, 0x01, 0x03, 0x07, 0x0f, 0x1f, 0x3f, 0x7f
};
static const unsigned int g_probable_mtu[] = {1500 - 28, 512 - 28, 256 - 28};
static unsigned int dtls1_guess_mtu(unsigned int curr_mtu);
static int dtls1_write_message_header(const struct hm_header_st *msg_hdr,
unsigned long frag_off, unsigned long frag_len, unsigned char *p);
static long dtls1_get_message_fragment(SSL *s, int st1, int stn, long max,
int *ok);
void dtls1_hm_fragment_free(hm_fragment *frag);
static hm_fragment *
dtls1_hm_fragment_new(unsigned long frag_len, int reassembly)
{
hm_fragment *frag;
if ((frag = calloc(1, sizeof(*frag))) == NULL)
goto err;
if (frag_len > 0) {
if ((frag->fragment = calloc(1, frag_len)) == NULL)
goto err;
}
if (reassembly) {
if ((frag->reassembly = calloc(1,
RSMBLY_BITMASK_SIZE(frag_len))) == NULL)
goto err;
}
return frag;
err:
dtls1_hm_fragment_free(frag);
return NULL;
}
void
dtls1_hm_fragment_free(hm_fragment *frag)
{
if (frag == NULL)
return;
free(frag->fragment);
free(frag->reassembly);
free(frag);
}
static int
dtls12_create_handshake_msg(SSL *s)
{
CBB cbb;
OPENSSL_assert(s->init_off == 0);
OPENSSL_assert(s->init_num == (int)s->d1->w_msg_hdr.msg_len +
DTLS1_HM_HEADER_LENGTH);
s->init_off += DTLS1_HM_HEADER_LENGTH;
s->init_num -= DTLS1_HM_HEADER_LENGTH;
if (s->d1->hs_msg != NULL)
goto err;
if ((s->d1->hs_msg = dtls12_handshake_msg_new()) == NULL)
goto err;
if (!dtls12_handshake_msg_start(s->d1->hs_msg, &cbb,
s->d1->w_msg_hdr.type, s->d1->w_msg_hdr.seq))
goto err;
if (!CBB_add_bytes(&cbb, &s->init_buf->data[s->init_off],
s->init_num))
goto err;
if (!dtls12_handshake_msg_finish(s->d1->hs_msg))
goto err;
return 1;
err:
dtls12_handshake_msg_free(s->d1->hs_msg);
s->d1->hs_msg = NULL;
return 0;
}
static int
dtls1_do_write_handshake_message(SSL *s)
{
int curr_mtu, written;
size_t overhead;
CBS cbs;
int ret;
if (s->d1->mtu < dtls1_min_mtu() &&
!(SSL_get_options(s) & SSL_OP_NO_QUERY_MTU)) {
s->d1->mtu = BIO_ctrl(SSL_get_wbio(s),
BIO_CTRL_DGRAM_QUERY_MTU, 0, NULL);
if (s->d1->mtu < dtls1_min_mtu()) {
s->d1->mtu = 0;
s->d1->mtu = dtls1_guess_mtu(s->d1->mtu);
BIO_ctrl(SSL_get_wbio(s), BIO_CTRL_DGRAM_SET_MTU,
s->d1->mtu, NULL);
}
}
OPENSSL_assert(s->d1->mtu >= dtls1_min_mtu());
if (s->d1->hs_msg == NULL) {
if (!dtls12_create_handshake_msg(s))
return -1;
}
if (!tls12_record_layer_write_overhead(s->rl, &overhead))
return -1;
do {
curr_mtu = s->d1->mtu - BIO_wpending(SSL_get_wbio(s)) -
DTLS1_RT_HEADER_LENGTH - overhead;
if (curr_mtu <= DTLS1_HM_HEADER_LENGTH) {
ret = BIO_flush(SSL_get_wbio(s));
if (ret <= 0)
return ret;
curr_mtu = s->d1->mtu - DTLS1_RT_HEADER_LENGTH -
overhead;
}
OPENSSL_assert(curr_mtu >= DTLS1_HM_HEADER_LENGTH);
if (!dtls12_handshake_msg_fragment_build(s->d1->hs_msg,
curr_mtu - DTLS1_HM_HEADER_LENGTH, &cbs))
return -1;
if ((written = dtls1_write_bytes(s, SSL3_RT_HANDSHAKE,
CBS_data(&cbs), CBS_len(&cbs))) < 0) {
if (BIO_ctrl(SSL_get_wbio(s),
BIO_CTRL_DGRAM_MTU_EXCEEDED, 0, NULL) <= 0)
return -1;
s->d1->mtu = BIO_ctrl(SSL_get_wbio(s),
BIO_CTRL_DGRAM_QUERY_MTU, 0, NULL);
continue;
}
OPENSSL_assert(CBS_len(&cbs) == (size_t)written);
if (!dtls12_handshake_msg_fragment_next(s->d1->hs_msg))
return -1;
} while (dtls12_handshake_msg_fragment_pending(s->d1->hs_msg));
dtls12_handshake_msg_data(s->d1->hs_msg, &cbs);
if (!s->d1->retransmitting) {
tls1_transcript_record(s, CBS_data(&cbs), CBS_len(&cbs));
}
ssl_msg_callback(s, 1, SSL3_RT_HANDSHAKE, CBS_data(&cbs), CBS_len(&cbs));
dtls12_handshake_msg_free(s->d1->hs_msg);
s->d1->hs_msg = NULL;
s->init_off = 0;
s->init_num = 0;
return 1;
}
static int
dtls1_do_write_ccs(SSL *s)
{
const uint8_t ccs[] = { SSL3_MT_CCS };
int ret;
OPENSSL_assert(s->d1->mtu >= dtls1_min_mtu());
if ((ret = dtls1_write_bytes(s, SSL3_RT_CHANGE_CIPHER_SPEC,
ccs, sizeof(ccs))) < 0)
return -1;
OPENSSL_assert(sizeof(ccs) == ret);
ssl_msg_callback(s, 1, SSL3_RT_CHANGE_CIPHER_SPEC,
ccs, sizeof(ccs));
s->init_off = 0;
s->init_num = 0;
return 1;
}
int
dtls1_do_write(SSL *s, int msg_type)
{
if (msg_type == SSL3_RT_HANDSHAKE)
return dtls1_do_write_handshake_message(s);
if (msg_type == SSL3_RT_CHANGE_CIPHER_SPEC)
return dtls1_do_write_ccs(s);
return -1;
}
int
dtls1_get_message(SSL *s, int st1, int stn, int mt, long max)
{
struct hm_header_st *msg_hdr;
unsigned char *p;
unsigned long msg_len;
int i, al, ok;
if (s->s3->hs.tls12.reuse_message) {
s->s3->hs.tls12.reuse_message = 0;
if ((mt >= 0) && (s->s3->hs.tls12.message_type != mt)) {
al = SSL_AD_UNEXPECTED_MESSAGE;
SSLerror(s, SSL_R_UNEXPECTED_MESSAGE);
goto fatal_err;
}
s->init_msg = s->init_buf->data + DTLS1_HM_HEADER_LENGTH;
s->init_num = (int)s->s3->hs.tls12.message_size;
return 1;
}
msg_hdr = &s->d1->r_msg_hdr;
memset(msg_hdr, 0, sizeof(struct hm_header_st));
again:
i = dtls1_get_message_fragment(s, st1, stn, max, &ok);
if (i == DTLS1_HM_BAD_FRAGMENT ||
i == DTLS1_HM_FRAGMENT_RETRY)
goto again;
else if (i <= 0 && !ok)
return i;
p = (unsigned char *)s->init_buf->data;
msg_len = msg_hdr->msg_len;
if (!dtls1_write_message_header(msg_hdr, 0, msg_len, p))
return -1;
msg_len += DTLS1_HM_HEADER_LENGTH;
tls1_transcript_record(s, p, msg_len);
ssl_msg_callback(s, 0, SSL3_RT_HANDSHAKE, p, msg_len);
memset(msg_hdr, 0, sizeof(struct hm_header_st));
if (!s->d1->listen)
s->d1->handshake_read_seq++;
s->init_msg = s->init_buf->data + DTLS1_HM_HEADER_LENGTH;
return 1;
fatal_err:
ssl3_send_alert(s, SSL3_AL_FATAL, al);
return -1;
}
static int
dtls1_preprocess_fragment(SSL *s, struct hm_header_st *msg_hdr, int max)
{
size_t frag_off, frag_len, msg_len;
msg_len = msg_hdr->msg_len;
frag_off = msg_hdr->frag_off;
frag_len = msg_hdr->frag_len;
if ((frag_off + frag_len) > msg_len) {
SSLerror(s, SSL_R_EXCESSIVE_MESSAGE_SIZE);
return SSL_AD_ILLEGAL_PARAMETER;
}
if ((frag_off + frag_len) > (unsigned long)max) {
SSLerror(s, SSL_R_EXCESSIVE_MESSAGE_SIZE);
return SSL_AD_ILLEGAL_PARAMETER;
}
if ( s->d1->r_msg_hdr.frag_off == 0)
{
if (!BUF_MEM_grow_clean(s->init_buf,
msg_len + DTLS1_HM_HEADER_LENGTH)) {
SSLerror(s, ERR_R_BUF_LIB);
return SSL_AD_INTERNAL_ERROR;
}
s->s3->hs.tls12.message_size = msg_len;
s->d1->r_msg_hdr.msg_len = msg_len;
s->s3->hs.tls12.message_type = msg_hdr->type;
s->d1->r_msg_hdr.type = msg_hdr->type;
s->d1->r_msg_hdr.seq = msg_hdr->seq;
} else if (msg_len != s->d1->r_msg_hdr.msg_len) {
SSLerror(s, SSL_R_EXCESSIVE_MESSAGE_SIZE);
return SSL_AD_ILLEGAL_PARAMETER;
}
return 0;
}
static int
dtls1_retrieve_buffered_fragment(SSL *s, long max, int *ok)
{
pitem *item;
hm_fragment *frag;
int al;
*ok = 0;
item = pqueue_peek(s->d1->buffered_messages);
if (item == NULL)
return 0;
frag = (hm_fragment *)item->data;
if (frag->reassembly != NULL)
return 0;
if (s->d1->handshake_read_seq == frag->msg_header.seq) {
unsigned long frag_len = frag->msg_header.frag_len;
pqueue_pop(s->d1->buffered_messages);
al = dtls1_preprocess_fragment(s, &frag->msg_header, max);
if (al == 0)
{
unsigned char *p = (unsigned char *)s->init_buf->data + DTLS1_HM_HEADER_LENGTH;
memcpy(&p[frag->msg_header.frag_off],
frag->fragment, frag->msg_header.frag_len);
}
dtls1_hm_fragment_free(frag);
pitem_free(item);
if (al == 0) {
*ok = 1;
return frag_len;
}
ssl3_send_alert(s, SSL3_AL_FATAL, al);
s->init_num = 0;
*ok = 0;
return -1;
} else
return 0;
}
static unsigned long
dtls1_max_handshake_message_len(const SSL *s)
{
unsigned long max_len;
max_len = DTLS1_HM_HEADER_LENGTH + SSL3_RT_MAX_ENCRYPTED_LENGTH;
if (max_len < (unsigned long)s->max_cert_list)
return s->max_cert_list;
return max_len;
}
static int
dtls1_reassemble_fragment(SSL *s, struct hm_header_st* msg_hdr, int *ok)
{
hm_fragment *frag = NULL;
pitem *item = NULL;
int i = -1, is_complete;
unsigned char seq64be[8];
unsigned long frag_len = msg_hdr->frag_len;
if ((msg_hdr->frag_off + frag_len) > msg_hdr->msg_len ||
msg_hdr->msg_len > dtls1_max_handshake_message_len(s))
goto err;
if (frag_len == 0) {
i = DTLS1_HM_FRAGMENT_RETRY;
goto err;
}
memset(seq64be, 0, sizeof(seq64be));
seq64be[6] = (unsigned char)(msg_hdr->seq >> 8);
seq64be[7] = (unsigned char)msg_hdr->seq;
item = pqueue_find(s->d1->buffered_messages, seq64be);
if (item == NULL) {
frag = dtls1_hm_fragment_new(msg_hdr->msg_len, 1);
if (frag == NULL)
goto err;
memcpy(&(frag->msg_header), msg_hdr, sizeof(*msg_hdr));
frag->msg_header.frag_len = frag->msg_header.msg_len;
frag->msg_header.frag_off = 0;
} else {
frag = (hm_fragment*)item->data;
if (frag->msg_header.msg_len != msg_hdr->msg_len) {
item = NULL;
frag = NULL;
goto err;
}
}
if (frag->reassembly == NULL) {
unsigned char devnull [256];
while (frag_len) {
i = s->method->ssl_read_bytes(s, SSL3_RT_HANDSHAKE,
devnull, frag_len > sizeof(devnull) ?
sizeof(devnull) : frag_len, 0);
if (i <= 0)
goto err;
frag_len -= i;
}
i = DTLS1_HM_FRAGMENT_RETRY;
goto err;
}
i = s->method->ssl_read_bytes(s, SSL3_RT_HANDSHAKE,
frag->fragment + msg_hdr->frag_off, frag_len, 0);
if (i <= 0 || (unsigned long)i != frag_len)
goto err;
RSMBLY_BITMASK_MARK(frag->reassembly, (long)msg_hdr->frag_off,
(long)(msg_hdr->frag_off + frag_len));
RSMBLY_BITMASK_IS_COMPLETE(frag->reassembly, (long)msg_hdr->msg_len,
is_complete);
if (is_complete) {
free(frag->reassembly);
frag->reassembly = NULL;
}
if (item == NULL) {
memset(seq64be, 0, sizeof(seq64be));
seq64be[6] = (unsigned char)(msg_hdr->seq >> 8);
seq64be[7] = (unsigned char)(msg_hdr->seq);
item = pitem_new(seq64be, frag);
if (item == NULL) {
i = -1;
goto err;
}
pqueue_insert(s->d1->buffered_messages, item);
}
return DTLS1_HM_FRAGMENT_RETRY;
err:
if (item == NULL && frag != NULL)
dtls1_hm_fragment_free(frag);
*ok = 0;
return i;
}
static int
dtls1_process_out_of_seq_message(SSL *s, struct hm_header_st* msg_hdr, int *ok)
{
int i = -1;
hm_fragment *frag = NULL;
pitem *item = NULL;
unsigned char seq64be[8];
unsigned long frag_len = msg_hdr->frag_len;
if ((msg_hdr->frag_off + frag_len) > msg_hdr->msg_len)
goto err;
memset(seq64be, 0, sizeof(seq64be));
seq64be[6] = (unsigned char) (msg_hdr->seq >> 8);
seq64be[7] = (unsigned char) msg_hdr->seq;
item = pqueue_find(s->d1->buffered_messages, seq64be);
if (item != NULL && frag_len < msg_hdr->msg_len)
item = NULL;
if (msg_hdr->seq <= s->d1->handshake_read_seq ||
msg_hdr->seq > s->d1->handshake_read_seq + 10 || item != NULL ||
(s->d1->handshake_read_seq == 0 &&
msg_hdr->type == SSL3_MT_FINISHED)) {
unsigned char devnull [256];
while (frag_len) {
i = s->method->ssl_read_bytes(s, SSL3_RT_HANDSHAKE,
devnull, frag_len > sizeof(devnull) ?
sizeof(devnull) : frag_len, 0);
if (i <= 0)
goto err;
frag_len -= i;
}
} else {
if (frag_len < msg_hdr->msg_len)
return dtls1_reassemble_fragment(s, msg_hdr, ok);
if (frag_len > dtls1_max_handshake_message_len(s))
goto err;
frag = dtls1_hm_fragment_new(frag_len, 0);
if (frag == NULL)
goto err;
memcpy(&(frag->msg_header), msg_hdr, sizeof(*msg_hdr));
if (frag_len) {
i = s->method->ssl_read_bytes(s, SSL3_RT_HANDSHAKE,
frag->fragment, frag_len, 0);
if (i <= 0 || (unsigned long)i != frag_len)
goto err;
}
memset(seq64be, 0, sizeof(seq64be));
seq64be[6] = (unsigned char)(msg_hdr->seq >> 8);
seq64be[7] = (unsigned char)(msg_hdr->seq);
item = pitem_new(seq64be, frag);
if (item == NULL)
goto err;
pqueue_insert(s->d1->buffered_messages, item);
}
return DTLS1_HM_FRAGMENT_RETRY;
err:
if (item == NULL && frag != NULL)
dtls1_hm_fragment_free(frag);
*ok = 0;
return i;
}
static long
dtls1_get_message_fragment(SSL *s, int st1, int stn, long max, int *ok)
{
unsigned char wire[DTLS1_HM_HEADER_LENGTH];
unsigned long len, frag_off, frag_len;
struct hm_header_st msg_hdr;
int i, al;
CBS cbs;
again:
if ((frag_len = dtls1_retrieve_buffered_fragment(s, max, ok)) || *ok) {
if (*ok)
s->init_num = frag_len;
return frag_len;
}
i = s->method->ssl_read_bytes(s, SSL3_RT_HANDSHAKE, wire,
DTLS1_HM_HEADER_LENGTH, 0);
if (i <= 0) {
s->rwstate = SSL_READING;
*ok = 0;
return i;
}
CBS_init(&cbs, wire, i);
if (!dtls1_get_message_header(&cbs, &msg_hdr)) {
al = SSL_AD_UNEXPECTED_MESSAGE;
SSLerror(s, SSL_R_UNEXPECTED_MESSAGE);
goto fatal_err;
}
if (msg_hdr.seq != s->d1->handshake_read_seq &&
!(s->d1->listen && msg_hdr.seq == 1))
return dtls1_process_out_of_seq_message(s, &msg_hdr, ok);
len = msg_hdr.msg_len;
frag_off = msg_hdr.frag_off;
frag_len = msg_hdr.frag_len;
if (frag_len && frag_len < len)
return dtls1_reassemble_fragment(s, &msg_hdr, ok);
if (!s->server && s->d1->r_msg_hdr.frag_off == 0 &&
wire[0] == SSL3_MT_HELLO_REQUEST) {
if (wire[1] == 0 && wire[2] == 0 && wire[3] == 0) {
ssl_msg_callback(s, 0, SSL3_RT_HANDSHAKE, wire,
DTLS1_HM_HEADER_LENGTH);
s->init_num = 0;
goto again;
}
else
{
al = SSL_AD_UNEXPECTED_MESSAGE;
SSLerror(s, SSL_R_UNEXPECTED_MESSAGE);
goto fatal_err;
}
}
if ((al = dtls1_preprocess_fragment(s, &msg_hdr, max)))
goto fatal_err;
s->s3->hs.state = stn;
if (frag_len > 0) {
unsigned char *p = (unsigned char *)s->init_buf->data + DTLS1_HM_HEADER_LENGTH;
i = s->method->ssl_read_bytes(s, SSL3_RT_HANDSHAKE,
&p[frag_off], frag_len, 0);
if (i <= 0) {
s->rwstate = SSL_READING;
*ok = 0;
return i;
}
} else
i = 0;
if (i != (int)frag_len) {
al = SSL_AD_ILLEGAL_PARAMETER;
SSLerror(s, SSL_R_SSLV3_ALERT_ILLEGAL_PARAMETER);
goto fatal_err;
}
s->init_num = frag_len;
*ok = 1;
return frag_len;
fatal_err:
ssl3_send_alert(s, SSL3_AL_FATAL, al);
s->init_num = 0;
*ok = 0;
return (-1);
}
int
dtls1_read_failed(SSL *s, int code)
{
if (code > 0) {
#ifdef DEBUG
fprintf(stderr, "invalid state reached %s:%d",
OPENSSL_FILE, OPENSSL_LINE);
#endif
return 1;
}
if (!dtls1_is_timer_expired(s)) {
return code;
}
if (!SSL_in_init(s))
{
BIO_set_flags(SSL_get_rbio(s), BIO_FLAGS_READ);
return code;
}
return dtls1_handle_timeout(s);
}
int
dtls1_get_queue_priority(unsigned short seq, int is_ccs)
{
return seq * 2 - is_ccs;
}
static int
dtls1_retransmit_message(SSL *s, hm_fragment *frag)
{
unsigned long header_length;
uint16_t epoch;
int ret;
if (frag->msg_header.is_ccs)
header_length = DTLS1_CCS_HEADER_LENGTH;
else
header_length = DTLS1_HM_HEADER_LENGTH;
memcpy(s->init_buf->data, frag->fragment,
frag->msg_header.msg_len + header_length);
s->init_num = frag->msg_header.msg_len + header_length;
dtls1_set_message_header(s, frag->msg_header.type,
frag->msg_header.msg_len, frag->msg_header.seq, 0,
frag->msg_header.frag_len);
epoch = tls12_record_layer_write_epoch(s->rl);
s->d1->retransmitting = 1;
if (!tls12_record_layer_use_write_epoch(s->rl, frag->msg_header.epoch))
return 0;
ret = dtls1_do_write(s, frag->msg_header.is_ccs ?
SSL3_RT_CHANGE_CIPHER_SPEC : SSL3_RT_HANDSHAKE);
if (!tls12_record_layer_use_write_epoch(s->rl, epoch))
return 0;
s->d1->retransmitting = 0;
(void)BIO_flush(SSL_get_wbio(s));
return ret;
}
int
dtls1_retransmit_buffered_messages(SSL *s)
{
pqueue sent = s->d1->sent_messages;
piterator iter;
pitem *item;
hm_fragment *frag;
iter = pqueue_iterator(sent);
for (item = pqueue_next(&iter); item != NULL; item = pqueue_next(&iter)) {
frag = (hm_fragment *)item->data;
if (dtls1_retransmit_message(s, frag) <= 0) {
#ifdef DEBUG
fprintf(stderr, "dtls1_retransmit_message() failed\n");
#endif
return -1;
}
}
return 1;
}
int
dtls1_buffer_message(SSL *s, int is_ccs)
{
pitem *item;
hm_fragment *frag;
unsigned char seq64be[8];
OPENSSL_assert(s->init_off == 0);
frag = dtls1_hm_fragment_new(s->init_num, 0);
if (frag == NULL)
return 0;
memcpy(frag->fragment, s->init_buf->data, s->init_num);
OPENSSL_assert(s->d1->w_msg_hdr.msg_len +
(is_ccs ? DTLS1_CCS_HEADER_LENGTH : DTLS1_HM_HEADER_LENGTH) ==
(unsigned int)s->init_num);
frag->msg_header.epoch = tls12_record_layer_write_epoch(s->rl);
frag->msg_header.msg_len = s->d1->w_msg_hdr.msg_len;
frag->msg_header.seq = s->d1->w_msg_hdr.seq;
frag->msg_header.type = s->d1->w_msg_hdr.type;
frag->msg_header.frag_off = 0;
frag->msg_header.frag_len = s->d1->w_msg_hdr.msg_len;
frag->msg_header.is_ccs = is_ccs;
memset(seq64be, 0, sizeof(seq64be));
seq64be[6] = (unsigned char)(dtls1_get_queue_priority(
frag->msg_header.seq, frag->msg_header.is_ccs) >> 8);
seq64be[7] = (unsigned char)(dtls1_get_queue_priority(
frag->msg_header.seq, frag->msg_header.is_ccs));
item = pitem_new(seq64be, frag);
if (item == NULL) {
dtls1_hm_fragment_free(frag);
return 0;
}
pqueue_insert(s->d1->sent_messages, item);
return 1;
}
void
dtls1_clear_record_buffer(SSL *s)
{
hm_fragment *frag;
pitem *item;
for(item = pqueue_pop(s->d1->sent_messages); item != NULL;
item = pqueue_pop(s->d1->sent_messages)) {
frag = item->data;
if (frag->msg_header.is_ccs)
tls12_record_layer_write_epoch_done(s->rl,
frag->msg_header.epoch);
dtls1_hm_fragment_free(frag);
pitem_free(item);
}
}
void
dtls1_set_message_header(SSL *s, unsigned char mt, unsigned long len,
unsigned short seq_num, unsigned long frag_off, unsigned long frag_len)
{
struct hm_header_st *msg_hdr = &s->d1->w_msg_hdr;
msg_hdr->type = mt;
msg_hdr->msg_len = len;
msg_hdr->seq = seq_num;
msg_hdr->frag_off = frag_off;
msg_hdr->frag_len = frag_len;
}
static int
dtls1_write_message_header(const struct hm_header_st *msg_hdr,
unsigned long frag_off, unsigned long frag_len, unsigned char *p)
{
CBB cbb;
if (!CBB_init_fixed(&cbb, p, DTLS1_HM_HEADER_LENGTH))
return 0;
if (!CBB_add_u8(&cbb, msg_hdr->type))
goto err;
if (!CBB_add_u24(&cbb, msg_hdr->msg_len))
goto err;
if (!CBB_add_u16(&cbb, msg_hdr->seq))
goto err;
if (!CBB_add_u24(&cbb, frag_off))
goto err;
if (!CBB_add_u24(&cbb, frag_len))
goto err;
if (!CBB_finish(&cbb, NULL, NULL))
goto err;
return 1;
err:
CBB_cleanup(&cbb);
return 0;
}
unsigned int
dtls1_min_mtu(void)
{
return (g_probable_mtu[(sizeof(g_probable_mtu) /
sizeof(g_probable_mtu[0])) - 1]);
}
static unsigned int
dtls1_guess_mtu(unsigned int curr_mtu)
{
unsigned int i;
if (curr_mtu == 0)
return g_probable_mtu[0];
for (i = 0; i < sizeof(g_probable_mtu) / sizeof(g_probable_mtu[0]); i++)
if (curr_mtu > g_probable_mtu[i])
return g_probable_mtu[i];
return curr_mtu;
}
int
dtls1_get_message_header(CBS *header, struct hm_header_st *msg_hdr)
{
uint32_t msg_len, frag_off, frag_len;
uint16_t seq;
uint8_t type;
memset(msg_hdr, 0, sizeof(*msg_hdr));
if (!CBS_get_u8(header, &type))
return 0;
if (!CBS_get_u24(header, &msg_len))
return 0;
if (!CBS_get_u16(header, &seq))
return 0;
if (!CBS_get_u24(header, &frag_off))
return 0;
if (!CBS_get_u24(header, &frag_len))
return 0;
msg_hdr->type = type;
msg_hdr->msg_len = msg_len;
msg_hdr->seq = seq;
msg_hdr->frag_off = frag_off;
msg_hdr->frag_len = frag_len;
return 1;
}
int
dtls12_ccs_built(SSL *s)
{
dtls1_set_message_header(s, SSL3_MT_CCS, 0, 0, 0, 0);
if (!dtls1_buffer_message(s, 1))
return 0;
return 1;
}
int
dtls12_handshake_msg_built(SSL *s)
{
unsigned long len;
uint8_t msg_type;
CBS cbs;
CBS_init(&cbs, s->init_buf->data, s->init_num);
if (!CBS_get_u8(&cbs, &msg_type))
return 0;
if (s->init_off != 0)
return 0;
if (s->init_num < DTLS1_HM_HEADER_LENGTH)
return 0;
len = s->init_num - DTLS1_HM_HEADER_LENGTH;
if (!s->d1->listen) {
s->d1->handshake_write_seq = s->d1->next_handshake_write_seq;
s->d1->next_handshake_write_seq++;
}
dtls1_set_message_header(s, msg_type, len, s->d1->handshake_write_seq,
0, len);
if (!dtls1_buffer_message(s, 0))
return 0;
return 1;
}