#include "../curl_setup.h"
#ifdef USE_MBEDTLS
#include <mbedtls/version.h>
#if MBEDTLS_VERSION_NUMBER < 0x03020000
#error "mbedTLS 3.2.0 or later required"
#endif
#include <psa/crypto_config.h>
#include <mbedtls/net_sockets.h>
#include <mbedtls/ssl.h>
#include <mbedtls/x509.h>
#include <mbedtls/psa_util.h>
#if MBEDTLS_VERSION_NUMBER < 0x04000000
#define CURL_MBEDTLS_DRBG
#endif
#include <mbedtls/error.h>
#ifdef CURL_MBEDTLS_DRBG
#include <mbedtls/entropy.h>
#include <mbedtls/ctr_drbg.h>
#endif
#ifdef MBEDTLS_DEBUG
#include <mbedtls/debug.h>
#endif
#include "cipher_suite.h"
#include "../urldata.h"
#include "../sendf.h"
#include "../curlx/inet_pton.h"
#include "mbedtls.h"
#include "vtls.h"
#include "vtls_int.h"
#include "vtls_scache.h"
#include "x509asn1.h"
#include "../parsedate.h"
#include "../connect.h"
#include "../select.h"
#include "../multiif.h"
#include "mbedtls_threadlock.h"
#include "../strdup.h"
#include "../curl_sha256.h"
#include "../curl_memory.h"
#include "../memdebug.h"
#if defined(USE_HTTP2) && defined(MBEDTLS_SSL_ALPN)
# define HAS_ALPN_MBEDTLS
#endif
struct mbed_ssl_backend_data {
#ifdef CURL_MBEDTLS_DRBG
mbedtls_ctr_drbg_context ctr_drbg;
mbedtls_entropy_context entropy;
#endif
mbedtls_ssl_context ssl;
mbedtls_x509_crt cacert;
mbedtls_x509_crt clicert;
#ifdef MBEDTLS_X509_CRL_PARSE_C
mbedtls_x509_crl crl;
#endif
mbedtls_pk_context pk;
mbedtls_ssl_config config;
#ifdef HAS_ALPN_MBEDTLS
const char *protocols[3];
#endif
int *ciphersuites;
size_t send_blocked_len;
BIT(initialized);
BIT(sent_shutdown);
BIT(send_blocked);
};
#if (defined(USE_THREADS_POSIX) && defined(HAVE_PTHREAD_H)) || defined(_WIN32)
#define HAS_THREADING_SUPPORT
#endif
#ifndef MBEDTLS_ERROR_C
#define mbedtls_strerror(a,b,c) b[0] = 0
#endif
#if defined(CURL_MBEDTLS_DRBG) && defined(HAS_THREADING_SUPPORT)
static mbedtls_entropy_context ts_entropy;
static int entropy_init_initialized = 0;
static void entropy_init_mutex(mbedtls_entropy_context *ctx)
{
Curl_mbedtlsthreadlock_lock_function(0);
if(entropy_init_initialized == 0) {
mbedtls_entropy_init(ctx);
entropy_init_initialized = 1;
}
Curl_mbedtlsthreadlock_unlock_function(0);
}
static void entropy_cleanup_mutex(mbedtls_entropy_context *ctx)
{
Curl_mbedtlsthreadlock_lock_function(0);
if(entropy_init_initialized == 1) {
mbedtls_entropy_free(ctx);
entropy_init_initialized = 0;
}
Curl_mbedtlsthreadlock_unlock_function(0);
}
static int entropy_func_mutex(void *data, unsigned char *output, size_t len)
{
int ret;
Curl_mbedtlsthreadlock_lock_function(1);
ret = mbedtls_entropy_func(data, output, len);
Curl_mbedtlsthreadlock_unlock_function(1);
return ret;
}
#endif
#ifdef MBEDTLS_DEBUG
static void mbed_debug(void *context, int level, const char *f_name,
int line_nb, const char *line)
{
struct Curl_easy *data = (struct Curl_easy *)context;
(void)level;
(void)line_nb;
(void)f_name;
if(data) {
size_t len = strlen(line);
if(len && (line[len - 1] == '\n'))
len--;
infof(data, "%.*s", (int)len, line);
}
}
#endif
static int mbedtls_bio_cf_write(void *bio,
const unsigned char *buf, size_t blen)
{
struct Curl_cfilter *cf = bio;
struct Curl_easy *data = CF_DATA_CURRENT(cf);
size_t nwritten;
CURLcode result;
DEBUGASSERT(data);
if(!data)
return 0;
result = Curl_conn_cf_send(cf->next, data, (const char *)buf, blen, FALSE,
&nwritten);
CURL_TRC_CF(data, cf, "mbedtls_bio_cf_out_write(len=%zu) -> %d, %zu",
blen, result, nwritten);
if(CURLE_AGAIN == result)
return MBEDTLS_ERR_SSL_WANT_WRITE;
return result ? -1 : (int)nwritten;
}
static int mbedtls_bio_cf_read(void *bio, unsigned char *buf, size_t blen)
{
struct Curl_cfilter *cf = bio;
struct Curl_easy *data = CF_DATA_CURRENT(cf);
size_t nread;
CURLcode result;
DEBUGASSERT(data);
if(!data)
return 0;
if(!buf)
return 0;
result = Curl_conn_cf_recv(cf->next, data, (char *)buf, blen, &nread);
CURL_TRC_CF(data, cf, "mbedtls_bio_cf_in_read(len=%zu) -> %d, %zu",
blen, result, nread);
if(CURLE_AGAIN == result)
return MBEDTLS_ERR_SSL_WANT_READ;
return result ? -1 : (int)nread;
}
static const mbedtls_x509_crt_profile mbedtls_x509_crt_profile_fr =
{
MBEDTLS_X509_ID_FLAG(MBEDTLS_MD_SHA1) |
MBEDTLS_X509_ID_FLAG(MBEDTLS_MD_RIPEMD160) |
MBEDTLS_X509_ID_FLAG(MBEDTLS_MD_SHA224) |
MBEDTLS_X509_ID_FLAG(MBEDTLS_MD_SHA256) |
MBEDTLS_X509_ID_FLAG(MBEDTLS_MD_SHA384) |
MBEDTLS_X509_ID_FLAG(MBEDTLS_MD_SHA512),
0xFFFFFFF,
0xFFFFFFF,
1024,
};
#define RSA_PUB_DER_MAX_BYTES (38 + 2 * MBEDTLS_MPI_MAX_SIZE)
#define ECP_PUB_DER_MAX_BYTES (30 + 2 * MBEDTLS_ECP_MAX_BYTES)
#define PUB_DER_MAX_BYTES (RSA_PUB_DER_MAX_BYTES > ECP_PUB_DER_MAX_BYTES ? \
RSA_PUB_DER_MAX_BYTES : ECP_PUB_DER_MAX_BYTES)
static CURLcode
mbed_set_ssl_version_min_max(struct Curl_easy *data,
struct mbed_ssl_backend_data *backend,
struct ssl_primary_config *conn_config)
{
mbedtls_ssl_protocol_version ver_min = MBEDTLS_SSL_VERSION_TLS1_2;
mbedtls_ssl_protocol_version ver_max =
#ifdef MBEDTLS_SSL_PROTO_TLS1_3
MBEDTLS_SSL_VERSION_TLS1_3
#else
MBEDTLS_SSL_VERSION_TLS1_2
#endif
;
switch(conn_config->version) {
case CURL_SSLVERSION_DEFAULT:
case CURL_SSLVERSION_TLSv1:
case CURL_SSLVERSION_TLSv1_0:
case CURL_SSLVERSION_TLSv1_1:
case CURL_SSLVERSION_TLSv1_2:
ver_min = MBEDTLS_SSL_VERSION_TLS1_2;
break;
case CURL_SSLVERSION_TLSv1_3:
#ifdef MBEDTLS_SSL_PROTO_TLS1_3
ver_min = MBEDTLS_SSL_VERSION_TLS1_3;
break;
#endif
default:
failf(data, "mbedTLS: unsupported minimum TLS version value: %x",
conn_config->version);
return CURLE_SSL_CONNECT_ERROR;
}
switch(conn_config->version_max) {
case CURL_SSLVERSION_MAX_DEFAULT:
case CURL_SSLVERSION_MAX_NONE:
case CURL_SSLVERSION_MAX_TLSv1_3:
#ifdef MBEDTLS_SSL_PROTO_TLS1_3
ver_max = MBEDTLS_SSL_VERSION_TLS1_3;
break;
#endif
case CURL_SSLVERSION_MAX_TLSv1_2:
ver_max = MBEDTLS_SSL_VERSION_TLS1_2;
break;
case CURL_SSLVERSION_MAX_TLSv1_1:
case CURL_SSLVERSION_MAX_TLSv1_0:
default:
failf(data, "mbedTLS: unsupported maximum TLS version value");
return CURLE_SSL_CONNECT_ERROR;
}
mbedtls_ssl_conf_min_tls_version(&backend->config, ver_min);
mbedtls_ssl_conf_max_tls_version(&backend->config, ver_max);
return CURLE_OK;
}
#ifdef MBEDTLS_TLS_ECJPAKE_WITH_AES_128_CCM_8
static int
mbed_cipher_suite_get_str(uint16_t id, char *buf, size_t buf_size,
bool prefer_rfc)
{
if(id == MBEDTLS_TLS_ECJPAKE_WITH_AES_128_CCM_8)
curl_msnprintf(buf, buf_size, "%s", "TLS_ECJPAKE_WITH_AES_128_CCM_8");
else
return Curl_cipher_suite_get_str(id, buf, buf_size, prefer_rfc);
return 0;
}
static uint16_t
mbed_cipher_suite_walk_str(const char **str, const char **end)
{
uint16_t id = Curl_cipher_suite_walk_str(str, end);
size_t len = *end - *str;
if(!id) {
if(curl_strnequal("TLS_ECJPAKE_WITH_AES_128_CCM_8", *str, len))
id = MBEDTLS_TLS_ECJPAKE_WITH_AES_128_CCM_8;
}
return id;
}
#else
#define mbed_cipher_suite_get_str Curl_cipher_suite_get_str
#define mbed_cipher_suite_walk_str Curl_cipher_suite_walk_str
#endif
static CURLcode
mbed_set_selected_ciphers(struct Curl_easy *data,
struct mbed_ssl_backend_data *backend,
const char *ciphers12,
const char *ciphers13)
{
const char *ciphers = ciphers12;
const int *supported;
int *selected;
size_t supported_len, count = 0, default13_count = 0, i, j;
const char *ptr, *end;
supported = mbedtls_ssl_list_ciphersuites();
for(i = 0; supported[i] != 0; i++);
supported_len = i;
selected = malloc(sizeof(int) * (supported_len + 1));
if(!selected)
return CURLE_OUT_OF_MEMORY;
#ifndef MBEDTLS_SSL_PROTO_TLS1_3
(void)ciphers13, (void)j;
#else
if(!ciphers13) {
for(j = 0; j < supported_len; j++) {
uint16_t id = (uint16_t) supported[j];
if(strncmp(mbedtls_ssl_get_ciphersuite_name(id), "TLS1-3", 6) != 0)
continue;
selected[count++] = id;
}
default13_count = count;
}
else
ciphers = ciphers13;
add_ciphers:
#endif
for(ptr = ciphers; ptr[0] != '\0' && count < supported_len; ptr = end) {
uint16_t id = mbed_cipher_suite_walk_str(&ptr, &end);
if(id) {
for(i = 0; i < supported_len && supported[i] != id; i++);
if(i == supported_len)
id = 0;
}
if(!id) {
if(ptr[0] != '\0')
infof(data, "mbedTLS: unknown cipher in list: \"%.*s\"",
(int) (end - ptr), ptr);
continue;
}
for(i = 0; i < count && selected[i] != id; i++);
if(i < count) {
if(i >= default13_count)
infof(data, "mbedTLS: duplicate cipher in list: \"%.*s\"",
(int) (end - ptr), ptr);
continue;
}
selected[count++] = id;
}
#ifdef MBEDTLS_SSL_PROTO_TLS1_3
if(ciphers == ciphers13 && ciphers12) {
ciphers = ciphers12;
goto add_ciphers;
}
if(!ciphers12) {
for(j = 0; j < supported_len; j++) {
uint16_t id = (uint16_t) supported[j];
if(strncmp(mbedtls_ssl_get_ciphersuite_name(id), "TLS1-3", 6) == 0)
continue;
for(i = 0; i < count && selected[i] != id; i++);
if(i < count)
continue;
selected[count++] = id;
}
}
#endif
selected[count] = 0;
if(count == 0) {
free(selected);
failf(data, "mbedTLS: no supported cipher in list");
return CURLE_SSL_CIPHER;
}
backend->ciphersuites = selected;
mbedtls_ssl_conf_ciphersuites(&backend->config, backend->ciphersuites);
return CURLE_OK;
}
static void
mbed_dump_cert_info(struct Curl_easy *data, const mbedtls_x509_crt *crt)
{
#if defined(CURL_DISABLE_VERBOSE_STRINGS) || defined(MBEDTLS_X509_REMOVE_INFO)
(void)data, (void)crt;
#else
const size_t bufsize = 16384;
char *p, *buffer = malloc(bufsize);
if(buffer && mbedtls_x509_crt_info(buffer, bufsize, " ", crt) > 0) {
infof(data, "Server certificate:");
for(p = buffer; *p; p += *p != '\0') {
size_t s = strcspn(p, "\n");
infof(data, "%.*s", (int) s, p);
p += s;
}
}
else
infof(data, "Unable to dump certificate information");
free(buffer);
#endif
}
static void
mbed_extract_certinfo(struct Curl_easy *data, const mbedtls_x509_crt *crt)
{
CURLcode result;
const mbedtls_x509_crt *cur;
int i;
for(i = 0, cur = crt; cur; ++i, cur = cur->next);
result = Curl_ssl_init_certinfo(data, i);
for(i = 0, cur = crt; result == CURLE_OK && cur; ++i, cur = cur->next) {
const char *beg = (const char *) cur->raw.p;
const char *end = beg + cur->raw.len;
result = Curl_extract_certinfo(data, i, beg, end);
}
}
static int mbed_verify_cb(void *ptr, mbedtls_x509_crt *crt,
int depth, uint32_t *flags)
{
struct Curl_cfilter *cf = (struct Curl_cfilter *) ptr;
struct ssl_primary_config *conn_config = Curl_ssl_cf_get_primary_config(cf);
struct Curl_easy *data = CF_DATA_CURRENT(cf);
if(depth == 0) {
if(data->set.verbose)
mbed_dump_cert_info(data, crt);
if(data->set.ssl.certinfo)
mbed_extract_certinfo(data, crt);
}
if(!conn_config->verifypeer)
*flags = 0;
else if(!conn_config->verifyhost)
*flags &= ~MBEDTLS_X509_BADCERT_CN_MISMATCH;
if(*flags) {
#ifndef MBEDTLS_X509_REMOVE_INFO
char buf[128];
mbedtls_x509_crt_verify_info(buf, sizeof(buf), "", *flags);
failf(data, "mbedTLS: %s", buf);
#else
failf(data, "mbedTLS: certificate verification error 0x%08x", *flags);
#endif
}
return 0;
}
static CURLcode
mbed_connect_step1(struct Curl_cfilter *cf, struct Curl_easy *data)
{
struct ssl_connect_data *connssl = cf->ctx;
struct mbed_ssl_backend_data *backend =
(struct mbed_ssl_backend_data *)connssl->backend;
struct ssl_primary_config *conn_config = Curl_ssl_cf_get_primary_config(cf);
const struct curl_blob *ca_info_blob = conn_config->ca_info_blob;
struct ssl_config_data *ssl_config = Curl_ssl_cf_get_config(cf, data);
const char * const ssl_cafile =
(ca_info_blob ? NULL : conn_config->CAfile);
const bool verifypeer = conn_config->verifypeer;
const char * const ssl_capath = conn_config->CApath;
char * const ssl_cert = ssl_config->primary.clientcert;
const struct curl_blob *ssl_cert_blob = ssl_config->primary.cert_blob;
const char * const ssl_crlfile = ssl_config->primary.CRLfile;
const char *hostname = connssl->peer.hostname;
int ret = -1;
char errorbuf[128];
DEBUGASSERT(backend);
DEBUGASSERT(!backend->initialized);
if((conn_config->version == CURL_SSLVERSION_SSLv2) ||
(conn_config->version == CURL_SSLVERSION_SSLv3)) {
failf(data, "Not supported SSL version");
return CURLE_NOT_BUILT_IN;
}
#ifdef CURL_MBEDTLS_DRBG
#ifdef HAS_THREADING_SUPPORT
mbedtls_ctr_drbg_init(&backend->ctr_drbg);
ret = mbedtls_ctr_drbg_seed(&backend->ctr_drbg, entropy_func_mutex,
&ts_entropy, NULL, 0);
if(ret) {
mbedtls_strerror(ret, errorbuf, sizeof(errorbuf));
failf(data, "mbedtls_ctr_drbg_seed returned (-0x%04X) %s",
-ret, errorbuf);
return CURLE_FAILED_INIT;
}
#else
mbedtls_entropy_init(&backend->entropy);
mbedtls_ctr_drbg_init(&backend->ctr_drbg);
ret = mbedtls_ctr_drbg_seed(&backend->ctr_drbg, mbedtls_entropy_func,
&backend->entropy, NULL, 0);
if(ret) {
mbedtls_strerror(ret, errorbuf, sizeof(errorbuf));
failf(data, "mbedtls_ctr_drbg_seed returned (-0x%04X) %s",
-ret, errorbuf);
return CURLE_FAILED_INIT;
}
#endif
#endif
mbedtls_x509_crt_init(&backend->cacert);
if(ca_info_blob && verifypeer) {
unsigned char *newblob = Curl_memdup0(ca_info_blob->data,
ca_info_blob->len);
if(!newblob)
return CURLE_OUT_OF_MEMORY;
ret = mbedtls_x509_crt_parse(&backend->cacert, newblob,
ca_info_blob->len + 1);
free(newblob);
if(ret < 0) {
mbedtls_strerror(ret, errorbuf, sizeof(errorbuf));
failf(data, "Error importing ca cert blob - mbedTLS: (-0x%04X) %s",
-ret, errorbuf);
return CURLE_SSL_CERTPROBLEM;
}
}
if(ssl_cafile && verifypeer) {
#ifdef MBEDTLS_FS_IO
ret = mbedtls_x509_crt_parse_file(&backend->cacert, ssl_cafile);
if(ret < 0) {
mbedtls_strerror(ret, errorbuf, sizeof(errorbuf));
failf(data, "Error reading ca cert file %s - mbedTLS: (-0x%04X) %s",
ssl_cafile, -ret, errorbuf);
return CURLE_SSL_CACERT_BADFILE;
}
#else
failf(data, "mbedtls: functions that use the file system not built in");
return CURLE_NOT_BUILT_IN;
#endif
}
if(ssl_capath) {
#ifdef MBEDTLS_FS_IO
ret = mbedtls_x509_crt_parse_path(&backend->cacert, ssl_capath);
if(ret < 0) {
mbedtls_strerror(ret, errorbuf, sizeof(errorbuf));
failf(data, "Error reading ca cert path %s - mbedTLS: (-0x%04X) %s",
ssl_capath, -ret, errorbuf);
if(verifypeer)
return CURLE_SSL_CACERT_BADFILE;
}
#else
failf(data, "mbedtls: functions that use the file system not built in");
return CURLE_NOT_BUILT_IN;
#endif
}
mbedtls_x509_crt_init(&backend->clicert);
if(ssl_cert) {
#ifdef MBEDTLS_FS_IO
ret = mbedtls_x509_crt_parse_file(&backend->clicert, ssl_cert);
if(ret) {
mbedtls_strerror(ret, errorbuf, sizeof(errorbuf));
failf(data, "Error reading client cert file %s - mbedTLS: (-0x%04X) %s",
ssl_cert, -ret, errorbuf);
return CURLE_SSL_CERTPROBLEM;
}
#else
failf(data, "mbedtls: functions that use the file system not built in");
return CURLE_NOT_BUILT_IN;
#endif
}
if(ssl_cert_blob) {
unsigned char *newblob = Curl_memdup0(ssl_cert_blob->data,
ssl_cert_blob->len);
if(!newblob)
return CURLE_OUT_OF_MEMORY;
ret = mbedtls_x509_crt_parse(&backend->clicert, newblob,
ssl_cert_blob->len + 1);
free(newblob);
if(ret) {
mbedtls_strerror(ret, errorbuf, sizeof(errorbuf));
failf(data, "Error reading client cert data %s - mbedTLS: (-0x%04X) %s",
ssl_config->key, -ret, errorbuf);
return CURLE_SSL_CERTPROBLEM;
}
}
mbedtls_pk_init(&backend->pk);
if(ssl_config->key || ssl_config->key_blob) {
if(ssl_config->key) {
#ifdef MBEDTLS_FS_IO
#if MBEDTLS_VERSION_NUMBER >= 0x04000000
ret = mbedtls_pk_parse_keyfile(&backend->pk, ssl_config->key,
ssl_config->key_passwd);
if(ret == 0 && !(mbedtls_pk_can_do_psa(&backend->pk,
PSA_ALG_RSA_PKCS1V15_SIGN(PSA_ALG_ANY_HASH),
PSA_KEY_USAGE_SIGN_HASH) ||
mbedtls_pk_can_do_psa(&backend->pk,
MBEDTLS_PK_ALG_ECDSA(PSA_ALG_ANY_HASH),
PSA_KEY_USAGE_SIGN_HASH)))
ret = MBEDTLS_ERR_PK_TYPE_MISMATCH;
#else
ret = mbedtls_pk_parse_keyfile(&backend->pk, ssl_config->key,
ssl_config->key_passwd,
mbedtls_ctr_drbg_random,
&backend->ctr_drbg);
if(ret == 0 && !(mbedtls_pk_can_do(&backend->pk, MBEDTLS_PK_RSA) ||
mbedtls_pk_can_do(&backend->pk, MBEDTLS_PK_ECKEY)))
ret = MBEDTLS_ERR_PK_TYPE_MISMATCH;
#endif
if(ret) {
mbedtls_strerror(ret, errorbuf, sizeof(errorbuf));
failf(data, "Error reading private key %s - mbedTLS: (-0x%04X) %s",
ssl_config->key, -ret, errorbuf);
return CURLE_SSL_CERTPROBLEM;
}
#else
failf(data, "mbedtls: functions that use the file system not built in");
return CURLE_NOT_BUILT_IN;
#endif
}
else {
const struct curl_blob *ssl_key_blob = ssl_config->key_blob;
const unsigned char *key_data =
(const unsigned char *)ssl_key_blob->data;
const char *passwd = ssl_config->key_passwd;
#if MBEDTLS_VERSION_NUMBER >= 0x04000000
ret = mbedtls_pk_parse_key(&backend->pk, key_data, ssl_key_blob->len,
(const unsigned char *)passwd,
passwd ? strlen(passwd) : 0);
if(ret == 0 && !(mbedtls_pk_can_do_psa(&backend->pk,
PSA_ALG_RSA_PKCS1V15_SIGN(PSA_ALG_ANY_HASH),
PSA_KEY_USAGE_SIGN_HASH) ||
mbedtls_pk_can_do_psa(&backend->pk,
MBEDTLS_PK_ALG_ECDSA(PSA_ALG_ANY_HASH),
PSA_KEY_USAGE_SIGN_HASH)))
ret = MBEDTLS_ERR_PK_TYPE_MISMATCH;
#else
ret = mbedtls_pk_parse_key(&backend->pk, key_data, ssl_key_blob->len,
(const unsigned char *)passwd,
passwd ? strlen(passwd) : 0,
mbedtls_ctr_drbg_random,
&backend->ctr_drbg);
if(ret == 0 && !(mbedtls_pk_can_do(&backend->pk, MBEDTLS_PK_RSA) ||
mbedtls_pk_can_do(&backend->pk, MBEDTLS_PK_ECKEY)))
ret = MBEDTLS_ERR_PK_TYPE_MISMATCH;
#endif
if(ret) {
mbedtls_strerror(ret, errorbuf, sizeof(errorbuf));
failf(data, "Error parsing private key - mbedTLS: (-0x%04X) %s",
-ret, errorbuf);
return CURLE_SSL_CERTPROBLEM;
}
}
}
#ifdef MBEDTLS_X509_CRL_PARSE_C
mbedtls_x509_crl_init(&backend->crl);
if(ssl_crlfile) {
#ifdef MBEDTLS_FS_IO
ret = mbedtls_x509_crl_parse_file(&backend->crl, ssl_crlfile);
if(ret) {
mbedtls_strerror(ret, errorbuf, sizeof(errorbuf));
failf(data, "Error reading CRL file %s - mbedTLS: (-0x%04X) %s",
ssl_crlfile, -ret, errorbuf);
return CURLE_SSL_CRL_BADFILE;
}
#else
failf(data, "mbedtls: functions that use the file system not built in");
return CURLE_NOT_BUILT_IN;
#endif
}
#else
if(ssl_crlfile) {
failf(data, "mbedtls: crl support not built in");
return CURLE_NOT_BUILT_IN;
}
#endif
infof(data, "mbedTLS: Connecting to %s:%d", hostname, connssl->peer.port);
mbedtls_ssl_config_init(&backend->config);
ret = mbedtls_ssl_config_defaults(&backend->config,
MBEDTLS_SSL_IS_CLIENT,
MBEDTLS_SSL_TRANSPORT_STREAM,
MBEDTLS_SSL_PRESET_DEFAULT);
if(ret) {
failf(data, "mbedTLS: ssl_config failed");
return CURLE_SSL_CONNECT_ERROR;
}
#if defined(MBEDTLS_SSL_SESSION_TICKETS) && \
MBEDTLS_VERSION_NUMBER >= 0x03060100 && MBEDTLS_VERSION_NUMBER < 0x04000000
mbedtls_ssl_conf_tls13_enable_signal_new_session_tickets(&backend->config,
MBEDTLS_SSL_TLS1_3_SIGNAL_NEW_SESSION_TICKETS_ENABLED);
#endif
mbedtls_ssl_conf_verify(&backend->config, mbed_verify_cb, cf);
mbedtls_ssl_conf_authmode(&backend->config, MBEDTLS_SSL_VERIFY_REQUIRED);
mbedtls_ssl_init(&backend->ssl);
backend->initialized = TRUE;
mbedtls_ssl_conf_cert_profile(&backend->config,
&mbedtls_x509_crt_profile_fr);
ret = mbed_set_ssl_version_min_max(data, backend, conn_config);
if(ret != CURLE_OK)
return ret;
#ifdef CURL_MBEDTLS_DRBG
mbedtls_ssl_conf_rng(&backend->config, mbedtls_ctr_drbg_random,
&backend->ctr_drbg);
#endif
ret = mbedtls_ssl_setup(&backend->ssl, &backend->config);
if(ret) {
mbedtls_strerror(ret, errorbuf, sizeof(errorbuf));
failf(data, "ssl_setup failed - mbedTLS: (-0x%04X) %s",
-ret, errorbuf);
return CURLE_SSL_CONNECT_ERROR;
}
mbedtls_ssl_set_bio(&backend->ssl, cf,
mbedtls_bio_cf_write,
mbedtls_bio_cf_read,
NULL );
#ifndef MBEDTLS_SSL_PROTO_TLS1_3
if(conn_config->cipher_list) {
CURLcode result = mbed_set_selected_ciphers(data, backend,
conn_config->cipher_list,
NULL);
#else
if(conn_config->cipher_list || conn_config->cipher_list13) {
CURLcode result = mbed_set_selected_ciphers(data, backend,
conn_config->cipher_list,
conn_config->cipher_list13);
#endif
if(result != CURLE_OK) {
failf(data, "mbedTLS: failed to set cipher suites");
return result;
}
}
else {
mbedtls_ssl_conf_ciphersuites(&backend->config,
mbedtls_ssl_list_ciphersuites());
}
#ifdef MBEDTLS_SSL_RENEGOTIATION
mbedtls_ssl_conf_renegotiation(&backend->config,
MBEDTLS_SSL_RENEGOTIATION_ENABLED);
#endif
#ifdef MBEDTLS_SSL_SESSION_TICKETS
mbedtls_ssl_conf_session_tickets(&backend->config,
MBEDTLS_SSL_SESSION_TICKETS_DISABLED);
#endif
if(Curl_ssl_scache_use(cf, data)) {
struct Curl_ssl_session *sc_session = NULL;
CURLcode result;
result = Curl_ssl_scache_take(cf, data, connssl->peer.scache_key,
&sc_session);
if(!result && sc_session && sc_session->sdata && sc_session->sdata_len) {
mbedtls_ssl_session session;
mbedtls_ssl_session_init(&session);
ret = mbedtls_ssl_session_load(&session, sc_session->sdata,
sc_session->sdata_len);
if(ret) {
failf(data, "SSL session error loading: -0x%x", -ret);
}
else {
ret = mbedtls_ssl_set_session(&backend->ssl, &session);
if(ret)
failf(data, "SSL session error setting: -0x%x", -ret);
else
infof(data, "SSL reusing session ID");
}
mbedtls_ssl_session_free(&session);
}
Curl_ssl_scache_return(cf, data, connssl->peer.scache_key, sc_session);
}
mbedtls_ssl_conf_ca_chain(&backend->config,
&backend->cacert,
#ifdef MBEDTLS_X509_CRL_PARSE_C
&backend->crl);
#else
NULL);
#endif
if(ssl_config->key || ssl_config->key_blob) {
mbedtls_ssl_conf_own_cert(&backend->config,
&backend->clicert, &backend->pk);
}
if(mbedtls_ssl_set_hostname(&backend->ssl, connssl->peer.sni ?
connssl->peer.sni : connssl->peer.hostname)) {
failf(data, "Failed to set SNI");
return CURLE_SSL_CONNECT_ERROR;
}
#ifdef HAS_ALPN_MBEDTLS
if(connssl->alpn) {
struct alpn_proto_buf proto;
size_t i;
for(i = 0; i < connssl->alpn->count; ++i) {
backend->protocols[i] = connssl->alpn->entries[i];
}
if(mbedtls_ssl_conf_alpn_protocols(&backend->config,
&backend->protocols[0])) {
failf(data, "Failed setting ALPN protocols");
return CURLE_SSL_CONNECT_ERROR;
}
Curl_alpn_to_proto_str(&proto, connssl->alpn);
infof(data, VTLS_INFOF_ALPN_OFFER_1STR, proto.data);
}
#endif
#ifdef MBEDTLS_DEBUG
mbedtls_ssl_conf_dbg(&backend->config, mbed_debug, data);
mbedtls_debug_set_threshold(4);
#endif
if(data->set.ssl.fsslctx) {
CURLcode result = (*data->set.ssl.fsslctx)(data, &backend->config,
data->set.ssl.fsslctxp);
if(result != CURLE_OK) {
failf(data, "error signaled by ssl ctx callback");
return result;
}
}
connssl->connecting_state = ssl_connect_2;
return CURLE_OK;
}
static CURLcode
mbed_connect_step2(struct Curl_cfilter *cf, struct Curl_easy *data)
{
CURLcode result;
int ret;
struct ssl_connect_data *connssl = cf->ctx;
struct mbed_ssl_backend_data *backend =
(struct mbed_ssl_backend_data *)connssl->backend;
#ifndef CURL_DISABLE_PROXY
const char * const pinnedpubkey = Curl_ssl_cf_is_proxy(cf) ?
data->set.str[STRING_SSL_PINNEDPUBLICKEY_PROXY] :
data->set.str[STRING_SSL_PINNEDPUBLICKEY];
#else
const char * const pinnedpubkey = data->set.str[STRING_SSL_PINNEDPUBLICKEY];
#endif
DEBUGASSERT(backend);
ret = mbedtls_ssl_handshake(&backend->ssl);
if(ret == MBEDTLS_ERR_SSL_WANT_READ) {
connssl->io_need = CURL_SSL_IO_NEED_RECV;
return CURLE_OK;
}
else if(ret == MBEDTLS_ERR_SSL_WANT_WRITE) {
connssl->io_need = CURL_SSL_IO_NEED_SEND;
return CURLE_OK;
}
else if(ret == MBEDTLS_ERR_X509_CERT_VERIFY_FAILED) {
failf(data, "peer certificate could not be verified");
return CURLE_PEER_FAILED_VERIFICATION;
}
else if(ret) {
char errorbuf[128];
CURL_TRC_CF(data, cf, "TLS version %04X",
mbedtls_ssl_get_version_number(&backend->ssl));
mbedtls_strerror(ret, errorbuf, sizeof(errorbuf));
failf(data, "ssl_handshake returned: (-0x%04X) %s",
-ret, errorbuf);
return CURLE_SSL_CONNECT_ERROR;
}
{
char cipher_str[64];
uint16_t cipher_id;
cipher_id = (uint16_t)
mbedtls_ssl_get_ciphersuite_id_from_ssl(&backend->ssl);
mbed_cipher_suite_get_str(cipher_id, cipher_str, sizeof(cipher_str), TRUE);
infof(data, "mbedTLS: %s Handshake complete, cipher is %s",
mbedtls_ssl_get_version(&backend->ssl), cipher_str);
}
if(pinnedpubkey) {
int size;
const mbedtls_x509_crt *peercert;
mbedtls_x509_crt *p = NULL;
unsigned char *pubkey = NULL;
peercert = mbedtls_ssl_get_peer_cert(&backend->ssl);
if(!peercert || !peercert->raw.p || !peercert->raw.len) {
failf(data, "Failed due to missing peer certificate");
return CURLE_SSL_PINNEDPUBKEYNOTMATCH;
}
p = calloc(1, sizeof(*p));
if(!p)
return CURLE_OUT_OF_MEMORY;
pubkey = malloc(PUB_DER_MAX_BYTES);
if(!pubkey) {
result = CURLE_OUT_OF_MEMORY;
goto pinnedpubkey_error;
}
mbedtls_x509_crt_init(p);
if(mbedtls_x509_crt_parse_der(p, peercert->raw.p, peercert->raw.len)) {
failf(data, "Failed copying peer certificate");
result = CURLE_SSL_PINNEDPUBKEYNOTMATCH;
goto pinnedpubkey_error;
}
size = mbedtls_pk_write_pubkey_der(&p->pk, pubkey, PUB_DER_MAX_BYTES);
if(size <= 0) {
failf(data, "Failed copying public key from peer certificate");
result = CURLE_SSL_PINNEDPUBKEYNOTMATCH;
goto pinnedpubkey_error;
}
result = Curl_pin_peer_pubkey(data,
pinnedpubkey,
&pubkey[PUB_DER_MAX_BYTES - size], size);
pinnedpubkey_error:
mbedtls_x509_crt_free(p);
free(p);
free(pubkey);
if(result)
return result;
}
#ifdef HAS_ALPN_MBEDTLS
if(connssl->alpn) {
const char *proto = mbedtls_ssl_get_alpn_protocol(&backend->ssl);
result = Curl_alpn_set_negotiated(cf, data, connssl,
(const unsigned char *)proto,
proto ? strlen(proto) : 0);
if(result)
return result;
}
#endif
connssl->connecting_state = ssl_connect_3;
infof(data, "SSL connected");
return CURLE_OK;
}
static CURLcode
mbed_new_session(struct Curl_cfilter *cf, struct Curl_easy *data)
{
struct ssl_connect_data *connssl = cf->ctx;
struct mbed_ssl_backend_data *backend =
(struct mbed_ssl_backend_data *)connssl->backend;
mbedtls_ssl_session session;
bool msession_alloced = FALSE;
struct Curl_ssl_session *sc_session = NULL;
unsigned char *sdata = NULL;
size_t slen = 0;
int ietf_tls_id;
CURLcode result = CURLE_OK;
int ret;
DEBUGASSERT(backend);
if(!Curl_ssl_scache_use(cf, data))
return CURLE_OK;
mbedtls_ssl_session_init(&session);
ret = mbedtls_ssl_get_session(&backend->ssl, &session);
msession_alloced = (ret != MBEDTLS_ERR_SSL_ALLOC_FAILED);
if(ret) {
failf(data, "mbedtls_ssl_get_session returned -0x%x", -ret);
result = CURLE_SSL_CONNECT_ERROR;
goto out;
}
mbedtls_ssl_session_save(&session, NULL, 0, &slen);
if(!slen) {
failf(data, "failed to serialize session: length is 0");
goto out;
}
sdata = malloc(slen);
if(!sdata) {
result = CURLE_OUT_OF_MEMORY;
goto out;
}
ret = mbedtls_ssl_session_save(&session, sdata, slen, &slen);
if(ret) {
failf(data, "failed to serialize session: -0x%x", -ret);
goto out;
}
ietf_tls_id = mbedtls_ssl_get_version_number(&backend->ssl);
result = Curl_ssl_session_create(sdata, slen,
ietf_tls_id,
connssl->negotiated.alpn, 0, 0,
&sc_session);
sdata = NULL;
if(!result)
result = Curl_ssl_scache_put(cf, data, connssl->peer.scache_key,
sc_session);
out:
if(msession_alloced)
mbedtls_ssl_session_free(&session);
free(sdata);
return result;
}
static CURLcode mbed_send(struct Curl_cfilter *cf, struct Curl_easy *data,
const void *mem, size_t len,
size_t *pnwritten)
{
struct ssl_connect_data *connssl = cf->ctx;
struct mbed_ssl_backend_data *backend =
(struct mbed_ssl_backend_data *)connssl->backend;
CURLcode result = CURLE_OK;
int nwritten;
(void)data;
DEBUGASSERT(backend);
*pnwritten = 0;
connssl->io_need = CURL_SSL_IO_NEED_NONE;
if(backend->send_blocked) {
DEBUGASSERT(backend->send_blocked_len <= len);
CURL_TRC_CF(data, cf, "mbedtls_ssl_write(len=%zu) -> previously blocked "
"on %zu bytes", len, backend->send_blocked_len);
len = backend->send_blocked_len;
}
nwritten = mbedtls_ssl_write(&backend->ssl, (const unsigned char *)mem, len);
if(nwritten >= 0) {
*pnwritten = (size_t)nwritten;
backend->send_blocked = FALSE;
}
else {
CURL_TRC_CF(data, cf, "mbedtls_ssl_write(len=%zu) -> -0x%04X",
len, -nwritten);
switch(nwritten) {
#ifdef MBEDTLS_SSL_PROTO_TLS1_3
case MBEDTLS_ERR_SSL_RECEIVED_NEW_SESSION_TICKET:
#endif
case MBEDTLS_ERR_SSL_WANT_READ:
connssl->io_need = CURL_SSL_IO_NEED_RECV;
result = CURLE_AGAIN;
break;
case MBEDTLS_ERR_SSL_WANT_WRITE:
connssl->io_need = CURL_SSL_IO_NEED_SEND;
result = CURLE_AGAIN;
break;
default:
result = CURLE_SEND_ERROR;
break;
}
if((result == CURLE_AGAIN) && !backend->send_blocked) {
backend->send_blocked = TRUE;
backend->send_blocked_len = len;
}
}
CURL_TRC_CF(data, cf, "mbedtls_ssl_write(len=%zu) -> %d, %zu",
len, result, *pnwritten);
return result;
}
static CURLcode mbedtls_shutdown(struct Curl_cfilter *cf,
struct Curl_easy *data,
bool send_shutdown, bool *done)
{
struct ssl_connect_data *connssl = cf->ctx;
struct mbed_ssl_backend_data *backend =
(struct mbed_ssl_backend_data *)connssl->backend;
unsigned char buf[1024];
CURLcode result = CURLE_OK;
int ret = 0;
size_t i;
DEBUGASSERT(backend);
if(!backend->initialized || cf->shutdown) {
*done = TRUE;
return CURLE_OK;
}
connssl->io_need = CURL_SSL_IO_NEED_NONE;
*done = FALSE;
if(!backend->sent_shutdown) {
backend->sent_shutdown = TRUE;
if(send_shutdown) {
ret = mbedtls_ssl_close_notify(&backend->ssl);
switch(ret) {
case 0:
break;
case MBEDTLS_ERR_SSL_PEER_CLOSE_NOTIFY:
*done = TRUE;
goto out;
case MBEDTLS_ERR_SSL_WANT_READ:
connssl->io_need = CURL_SSL_IO_NEED_RECV;
goto out;
case MBEDTLS_ERR_SSL_WANT_WRITE:
connssl->io_need = CURL_SSL_IO_NEED_SEND;
goto out;
default:
CURL_TRC_CF(data, cf, "mbedtls_shutdown error -0x%04X", -ret);
result = CURLE_RECV_ERROR;
goto out;
}
}
}
for(i = 0; i < 10; ++i) {
ret = mbedtls_ssl_read(&backend->ssl, buf, sizeof(buf));
if(ret == MBEDTLS_ERR_SSL_WANT_READ)
ret = mbedtls_ssl_read(&backend->ssl, buf, sizeof(buf));
#ifdef MBEDTLS_SSL_PROTO_TLS1_3
if(ret == MBEDTLS_ERR_SSL_RECEIVED_NEW_SESSION_TICKET)
continue;
#endif
if(ret <= 0)
break;
}
if(ret > 0) {
CURL_TRC_CF(data, cf, "mbedtls_shutdown, still getting data");
}
else if(ret == 0 || (ret == MBEDTLS_ERR_SSL_PEER_CLOSE_NOTIFY)) {
CURL_TRC_CF(data, cf, "mbedtls_shutdown done");
*done = TRUE;
}
else if(ret == MBEDTLS_ERR_SSL_WANT_READ) {
CURL_TRC_CF(data, cf, "mbedtls_shutdown, need RECV");
connssl->io_need = CURL_SSL_IO_NEED_RECV;
}
else if(ret == MBEDTLS_ERR_SSL_WANT_WRITE) {
CURL_TRC_CF(data, cf, "mbedtls_shutdown, need SEND");
connssl->io_need = CURL_SSL_IO_NEED_SEND;
}
else {
CURL_TRC_CF(data, cf, "mbedtls_shutdown error -0x%04X", -ret);
result = CURLE_RECV_ERROR;
}
out:
cf->shutdown = (result || *done);
return result;
}
static void mbedtls_close(struct Curl_cfilter *cf, struct Curl_easy *data)
{
struct ssl_connect_data *connssl = cf->ctx;
struct mbed_ssl_backend_data *backend =
(struct mbed_ssl_backend_data *)connssl->backend;
(void)data;
DEBUGASSERT(backend);
if(backend->initialized) {
mbedtls_pk_free(&backend->pk);
mbedtls_x509_crt_free(&backend->clicert);
mbedtls_x509_crt_free(&backend->cacert);
#ifdef MBEDTLS_X509_CRL_PARSE_C
mbedtls_x509_crl_free(&backend->crl);
#endif
Curl_safefree(backend->ciphersuites);
mbedtls_ssl_config_free(&backend->config);
mbedtls_ssl_free(&backend->ssl);
#ifdef CURL_MBEDTLS_DRBG
mbedtls_ctr_drbg_free(&backend->ctr_drbg);
#ifndef HAS_THREADING_SUPPORT
mbedtls_entropy_free(&backend->entropy);
#endif
#endif
backend->initialized = FALSE;
}
}
static CURLcode mbed_recv(struct Curl_cfilter *cf, struct Curl_easy *data,
char *buf, size_t buffersize,
size_t *pnread)
{
struct ssl_connect_data *connssl = cf->ctx;
struct mbed_ssl_backend_data *backend =
(struct mbed_ssl_backend_data *)connssl->backend;
CURLcode result = CURLE_OK;
int nread;
(void)data;
DEBUGASSERT(backend);
*pnread = 0;
connssl->io_need = CURL_SSL_IO_NEED_NONE;
nread = mbedtls_ssl_read(&backend->ssl, (unsigned char *)buf, buffersize);
if(nread > 0)
*pnread = (size_t)nread;
else {
CURL_TRC_CF(data, cf, "mbedtls_ssl_read(len=%zu) -> -0x%04X",
buffersize, -nread);
switch(nread) {
#ifdef MBEDTLS_SSL_SESSION_TICKETS
case MBEDTLS_ERR_SSL_RECEIVED_NEW_SESSION_TICKET:
mbed_new_session(cf, data);
FALLTHROUGH();
#endif
case MBEDTLS_ERR_SSL_WANT_READ:
connssl->io_need = CURL_SSL_IO_NEED_RECV;
result = CURLE_AGAIN;
break;
case MBEDTLS_ERR_SSL_WANT_WRITE:
connssl->io_need = CURL_SSL_IO_NEED_SEND;
result = CURLE_AGAIN;
break;
case MBEDTLS_ERR_SSL_PEER_CLOSE_NOTIFY:
result = CURLE_OK;
break;
default: {
char errorbuf[128];
mbedtls_strerror(nread, errorbuf, sizeof(errorbuf));
failf(data, "ssl_read returned: (-0x%04X) %s", -nread, errorbuf);
result = CURLE_RECV_ERROR;
break;
}
}
}
return result;
}
static size_t mbedtls_version(char *buffer, size_t size)
{
#ifdef MBEDTLS_VERSION_C
unsigned int version = mbedtls_version_get_number();
return curl_msnprintf(buffer, size, "mbedTLS/%u.%u.%u", version >> 24,
(version >> 16) & 0xff, (version >> 8) & 0xff);
#else
return curl_msnprintf(buffer, size, "mbedTLS/%s", MBEDTLS_VERSION_STRING);
#endif
}
static CURLcode mbedtls_random(struct Curl_easy *data,
unsigned char *entropy, size_t length)
{
psa_status_t status;
(void)data;
status = psa_generate_random(entropy, length);
return status == PSA_SUCCESS ? CURLE_OK : CURLE_FAILED_INIT;
}
static CURLcode mbedtls_connect(struct Curl_cfilter *cf,
struct Curl_easy *data,
bool *done)
{
CURLcode retcode;
struct ssl_connect_data *connssl = cf->ctx;
if(ssl_connection_complete == connssl->state) {
*done = TRUE;
return CURLE_OK;
}
*done = FALSE;
connssl->io_need = CURL_SSL_IO_NEED_NONE;
if(ssl_connect_1 == connssl->connecting_state) {
retcode = mbed_connect_step1(cf, data);
if(retcode)
return retcode;
}
if(ssl_connect_2 == connssl->connecting_state) {
retcode = mbed_connect_step2(cf, data);
if(retcode)
return retcode;
}
if(ssl_connect_3 == connssl->connecting_state) {
struct ssl_connect_data *ctx = cf->ctx;
struct mbed_ssl_backend_data *backend =
(struct mbed_ssl_backend_data *)ctx->backend;
if(mbedtls_ssl_get_version_number(&backend->ssl) <=
MBEDTLS_SSL_VERSION_TLS1_2) {
retcode = mbed_new_session(cf, data);
if(retcode)
return retcode;
}
connssl->connecting_state = ssl_connect_done;
}
if(ssl_connect_done == connssl->connecting_state) {
connssl->state = ssl_connection_complete;
*done = TRUE;
}
return CURLE_OK;
}
static int mbedtls_init(void)
{
psa_status_t status;
status = psa_crypto_init();
if(status != PSA_SUCCESS)
return 0;
if(!Curl_mbedtlsthreadlock_thread_setup())
return 0;
#if defined(CURL_MBEDTLS_DRBG) && defined(HAS_THREADING_SUPPORT)
entropy_init_mutex(&ts_entropy);
#endif
return 1;
}
static void mbedtls_cleanup(void)
{
#if defined(CURL_MBEDTLS_DRBG) && defined(HAS_THREADING_SUPPORT)
entropy_cleanup_mutex(&ts_entropy);
#endif
(void)Curl_mbedtlsthreadlock_thread_cleanup();
mbedtls_psa_crypto_free();
}
static bool mbedtls_data_pending(struct Curl_cfilter *cf,
const struct Curl_easy *data)
{
struct ssl_connect_data *ctx = cf->ctx;
struct mbed_ssl_backend_data *backend;
(void)data;
DEBUGASSERT(ctx && ctx->backend);
backend = (struct mbed_ssl_backend_data *)ctx->backend;
return mbedtls_ssl_get_bytes_avail(&backend->ssl) != 0;
}
static CURLcode mbedtls_sha256sum(const unsigned char *input,
size_t inputlen,
unsigned char *sha256sum,
size_t sha256len)
{
#if defined(PSA_WANT_ALG_SHA_256) && PSA_WANT_ALG_SHA_256
psa_status_t status;
size_t sha256len_actual;
status = psa_hash_compute(PSA_ALG_SHA_256, input, inputlen,
sha256sum, sha256len,
&sha256len_actual);
if(status != PSA_SUCCESS)
return CURLE_BAD_FUNCTION_ARGUMENT;
return CURLE_OK;
#else
(void)sha256len;
return Curl_sha256it(sha256sum, input, inputlen);
#endif
}
static void *mbedtls_get_internals(struct ssl_connect_data *connssl,
CURLINFO info)
{
struct mbed_ssl_backend_data *backend =
(struct mbed_ssl_backend_data *)connssl->backend;
(void)info;
DEBUGASSERT(backend);
return &backend->ssl;
}
const struct Curl_ssl Curl_ssl_mbedtls = {
{ CURLSSLBACKEND_MBEDTLS, "mbedtls" },
SSLSUPP_CA_PATH |
SSLSUPP_CAINFO_BLOB |
SSLSUPP_CERTINFO |
SSLSUPP_PINNEDPUBKEY |
SSLSUPP_SSL_CTX |
#ifdef MBEDTLS_SSL_PROTO_TLS1_3
SSLSUPP_TLS13_CIPHERSUITES |
#endif
SSLSUPP_HTTPS_PROXY |
SSLSUPP_CIPHER_LIST,
sizeof(struct mbed_ssl_backend_data),
mbedtls_init,
mbedtls_cleanup,
mbedtls_version,
mbedtls_shutdown,
mbedtls_data_pending,
mbedtls_random,
NULL,
mbedtls_connect,
Curl_ssl_adjust_pollset,
mbedtls_get_internals,
mbedtls_close,
NULL,
NULL,
NULL,
NULL,
mbedtls_sha256sum,
mbed_recv,
mbed_send,
NULL,
};
#endif