Skip to main content
  • Home
  • login
  • Browse the archive

    swh mirror partner logo
swh logo
SoftwareHeritage
Software
Heritage
Mirror
Features
  • Search

  • Downloads

  • Save code now

  • Add forge now

  • Help

swh:1:snp:dc2a5002442a00b1c0eda7c65d04ea7455e166cd
  • Code
  • Branches (204)
  • Releases (207)
    • Branches
    • Releases
    • HEAD
    • refs/heads/OpenSSL-engine-0_9_6-stable
    • refs/heads/OpenSSL-fips-0_9_7-stable
    • refs/heads/OpenSSL-fips-0_9_8-stable
    • refs/heads/OpenSSL-fips-1_2-stable
    • refs/heads/OpenSSL-fips-2_0-dev
    • refs/heads/OpenSSL-fips-2_0-stable
    • refs/heads/OpenSSL-fips2-0_9_7-stable
    • refs/heads/OpenSSL_0_9_6-stable
    • refs/heads/OpenSSL_0_9_7-stable
    • refs/heads/OpenSSL_0_9_8-stable
    • refs/heads/OpenSSL_0_9_8fg-stable
    • refs/heads/OpenSSL_1_0_0-stable
    • refs/heads/OpenSSL_1_0_1-stable
    • refs/heads/OpenSSL_1_0_2-stable
    • refs/heads/OpenSSL_1_1_0-stable
    • refs/heads/OpenSSL_1_1_1-stable
    • refs/heads/SSLeay
    • refs/heads/feature/dtls-1.3
    • refs/heads/feature/ech
    • refs/heads/feature/quic-server
    • refs/heads/master
    • refs/heads/openssl-3.0
    • refs/heads/openssl-3.1
    • refs/heads/openssl-3.2
    • refs/heads/openssl-3.3
    • refs/heads/openssl-3.4
    • refs/heads/tls1.3-draft-18
    • refs/heads/tls1.3-draft-19
    • refs/tags/AFTER_COMPAQ_PATCH
    • refs/tags/BEFORE_COMPAQ_PATCH
    • refs/tags/BEFORE_engine
    • refs/tags/BEN_FIPS_TEST_1
    • refs/tags/BEN_FIPS_TEST_2
    • refs/tags/BEN_FIPS_TEST_3
    • refs/tags/BEN_FIPS_TEST_4
    • refs/tags/BEN_FIPS_TEST_5
    • refs/tags/BEN_FIPS_TEST_6
    • refs/tags/BEN_FIPS_TEST_7
    • refs/tags/BEN_FIPS_TEST_8
    • refs/tags/FIPS_098_TEST_1
    • refs/tags/FIPS_098_TEST_2
    • refs/tags/FIPS_098_TEST_3
    • refs/tags/FIPS_098_TEST_4
    • refs/tags/FIPS_098_TEST_5
    • refs/tags/FIPS_098_TEST_6
    • refs/tags/FIPS_098_TEST_7
    • refs/tags/FIPS_098_TEST_8
    • refs/tags/FIPS_TEST_10
    • refs/tags/FIPS_TEST_9
    • refs/tags/LEVITTE_after_const
    • refs/tags/LEVITTE_before_const
    • refs/tags/OpenSSL-engine-0_9_6
    • refs/tags/OpenSSL-engine-0_9_6-beta1
    • refs/tags/OpenSSL-engine-0_9_6-beta2
    • refs/tags/OpenSSL-engine-0_9_6-beta3
    • refs/tags/OpenSSL-engine-0_9_6a
    • refs/tags/OpenSSL-engine-0_9_6a-beta1
    • refs/tags/OpenSSL-engine-0_9_6a-beta2
    • refs/tags/OpenSSL-engine-0_9_6a-beta3
    • refs/tags/OpenSSL-engine-0_9_6b
    • refs/tags/OpenSSL-engine-0_9_6c
    • refs/tags/OpenSSL-engine-0_9_6d
    • refs/tags/OpenSSL-engine-0_9_6d-beta1
    • refs/tags/OpenSSL-engine-0_9_6e
    • refs/tags/OpenSSL-engine-0_9_6f
    • refs/tags/OpenSSL-engine-0_9_6g
    • refs/tags/OpenSSL-engine-0_9_6h
    • refs/tags/OpenSSL-engine-0_9_6i
    • refs/tags/OpenSSL-engine-0_9_6j
    • refs/tags/OpenSSL-engine-0_9_6k
    • refs/tags/OpenSSL-engine-0_9_6l
    • refs/tags/OpenSSL-engine-0_9_6m
    • refs/tags/OpenSSL-fips-1_2_0
    • refs/tags/OpenSSL-fips-1_2_1
    • refs/tags/OpenSSL-fips-1_2_2
    • refs/tags/OpenSSL-fips-1_2_3
    • refs/tags/OpenSSL-fips-2_0
    • refs/tags/OpenSSL-fips-2_0-pl1
    • refs/tags/OpenSSL-fips-2_0-rc1
    • refs/tags/OpenSSL-fips-2_0-rc2
    • refs/tags/OpenSSL-fips-2_0-rc3
    • refs/tags/OpenSSL-fips-2_0-rc4
    • refs/tags/OpenSSL-fips-2_0-rc5
    • refs/tags/OpenSSL-fips-2_0-rc6
    • refs/tags/OpenSSL-fips-2_0-rc7
    • refs/tags/OpenSSL-fips-2_0-rc8
    • refs/tags/OpenSSL-fips-2_0-rc9
    • refs/tags/OpenSSL-fips-2_0_1
    • refs/tags/OpenSSL_0_9_1c
    • refs/tags/OpenSSL_0_9_2b
    • refs/tags/OpenSSL_0_9_3
    • refs/tags/OpenSSL_0_9_3a
    • refs/tags/OpenSSL_0_9_3beta1
    • refs/tags/OpenSSL_0_9_3beta2
    • refs/tags/OpenSSL_0_9_4
    • refs/tags/OpenSSL_0_9_5
    • refs/tags/OpenSSL_0_9_5a
    • refs/tags/OpenSSL_0_9_5a-beta1
    • refs/tags/OpenSSL_0_9_5a-beta2
    • refs/tags/OpenSSL_0_9_5beta1
    • refs/tags/OpenSSL_0_9_5beta2
    • refs/tags/OpenSSL_0_9_6
    • refs/tags/OpenSSL_0_9_6-beta1
    • refs/tags/OpenSSL_0_9_6-beta2
    • refs/tags/OpenSSL_0_9_6-beta3
    • refs/tags/OpenSSL_0_9_6a
    • refs/tags/OpenSSL_0_9_6a-beta1
    • refs/tags/OpenSSL_0_9_6a-beta2
    • refs/tags/OpenSSL_0_9_6a-beta3
    • refs/tags/OpenSSL_0_9_6b
    • refs/tags/OpenSSL_0_9_6c
    • refs/tags/OpenSSL_0_9_6d
    • refs/tags/OpenSSL_0_9_6d-beta1
    • refs/tags/OpenSSL_0_9_6e
    • refs/tags/OpenSSL_0_9_6f
    • refs/tags/OpenSSL_0_9_6g
    • refs/tags/OpenSSL_0_9_6h
    • refs/tags/OpenSSL_0_9_6i
    • refs/tags/OpenSSL_0_9_6j
    • refs/tags/OpenSSL_0_9_6k
    • refs/tags/OpenSSL_0_9_6l
    • refs/tags/OpenSSL_0_9_6m
    • refs/tags/OpenSSL_0_9_7
    • refs/tags/OpenSSL_0_9_7-beta1
    • refs/tags/OpenSSL_0_9_7-beta2
    • refs/tags/OpenSSL_0_9_7-beta3
    • refs/tags/OpenSSL_0_9_7-beta4
    • refs/tags/OpenSSL_0_9_7-beta5
    • refs/tags/OpenSSL_0_9_7-beta6
    • refs/tags/OpenSSL_0_9_7a
    • refs/tags/OpenSSL_0_9_7b
    • refs/tags/OpenSSL_0_9_7c
    • refs/tags/OpenSSL_0_9_7d
    • refs/tags/OpenSSL_0_9_7e
    • refs/tags/OpenSSL_0_9_7f
    • refs/tags/OpenSSL_0_9_7g
    • refs/tags/OpenSSL_0_9_7h
    • refs/tags/OpenSSL_0_9_7i
    • refs/tags/OpenSSL_0_9_7j
    • refs/tags/OpenSSL_0_9_7k
    • refs/tags/OpenSSL_0_9_7l
    • refs/tags/OpenSSL_0_9_7m
    • refs/tags/OpenSSL_0_9_8
    • refs/tags/OpenSSL_0_9_8-beta1
    • refs/tags/OpenSSL_0_9_8-beta2
    • refs/tags/OpenSSL_0_9_8-beta3
    • refs/tags/OpenSSL_0_9_8-beta4
    • refs/tags/OpenSSL_0_9_8-beta5
    • refs/tags/OpenSSL_0_9_8-beta6
    • refs/tags/OpenSSL_0_9_8a
    • refs/tags/OpenSSL_0_9_8b
    • refs/tags/OpenSSL_0_9_8c
    • refs/tags/OpenSSL_0_9_8d
    • refs/tags/OpenSSL_0_9_8e
    • refs/tags/OpenSSL_0_9_8f
    • refs/tags/OpenSSL_0_9_8g
    • refs/tags/OpenSSL_0_9_8h
    • refs/tags/OpenSSL_0_9_8i
    • refs/tags/OpenSSL_0_9_8j
    • refs/tags/OpenSSL_0_9_8k
    • refs/tags/OpenSSL_0_9_8l
    • refs/tags/OpenSSL_0_9_8m
    • refs/tags/OpenSSL_0_9_8m-beta1
    • refs/tags/OpenSSL_0_9_8n
    • refs/tags/OpenSSL_0_9_8o
    • refs/tags/OpenSSL_0_9_8p
    • refs/tags/OpenSSL_0_9_8q
    • refs/tags/OpenSSL_0_9_8r
    • refs/tags/OpenSSL_0_9_8s
    • refs/tags/OpenSSL_0_9_8t
    • refs/tags/OpenSSL_0_9_8u
    • refs/tags/OpenSSL_0_9_8v
    • refs/tags/OpenSSL_0_9_8w
    • refs/tags/OpenSSL_0_9_8x
    • refs/tags/OpenSSL_1_0_0
    • refs/tags/OpenSSL_1_0_0-beta1
    • refs/tags/OpenSSL_1_0_0-beta2
    • refs/tags/OpenSSL_1_0_0-beta3
    • refs/tags/OpenSSL_1_0_0-beta4
    • refs/tags/OpenSSL_1_0_0-beta5
    • refs/tags/OpenSSL_1_0_0a
    • refs/tags/OpenSSL_1_0_0b
    • refs/tags/OpenSSL_1_0_0c
    • refs/tags/OpenSSL_1_0_0d
    • refs/tags/OpenSSL_1_0_0e
    • refs/tags/OpenSSL_1_0_0f
    • refs/tags/OpenSSL_1_0_0g
    • refs/tags/OpenSSL_1_0_0h
    • refs/tags/OpenSSL_1_0_0i
    • refs/tags/OpenSSL_1_0_0j
    • refs/tags/OpenSSL_1_0_1
    • refs/tags/OpenSSL_1_0_1-beta1
    • refs/tags/OpenSSL_1_0_1-beta2
    • refs/tags/OpenSSL_1_0_1-beta3
    • refs/tags/OpenSSL_1_0_1a
    • refs/tags/OpenSSL_1_0_1b
    • refs/tags/OpenSSL_1_0_1c
    • refs/tags/OpenSSL_FIPS_1_0
    • refs/tags/SSLeay_0_8_1b
    • refs/tags/SSLeay_0_9_0b
    • refs/tags/SSLeay_0_9_1b
    • refs/tags/STATE_after_zlib
    • refs/tags/STATE_before_zlib
    • refs/tags/rsaref
    • openssl-3.4.0-alpha1
    • openssl-3.3.2
    • openssl-3.3.1
    • openssl-3.3.0-beta1
    • openssl-3.3.0-alpha1
    • openssl-3.3.0
    • openssl-3.2.3
    • openssl-3.2.2
    • openssl-3.2.1
    • openssl-3.2.0-beta1
    • openssl-3.2.0-alpha2
    • openssl-3.2.0-alpha1
    • openssl-3.2.0
    • openssl-3.1.7
    • openssl-3.1.6
    • openssl-3.1.5
    • openssl-3.1.4
    • openssl-3.1.3
    • openssl-3.1.2
    • openssl-3.1.1
    • openssl-3.1.0-beta1
    • openssl-3.1.0-alpha1
    • openssl-3.1.0
    • openssl-3.0.9
    • openssl-3.0.8
    • openssl-3.0.7
    • openssl-3.0.6
    • openssl-3.0.5
    • openssl-3.0.4
    • openssl-3.0.3
    • openssl-3.0.2
    • openssl-3.0.15
    • openssl-3.0.14
    • openssl-3.0.13
    • openssl-3.0.12
    • openssl-3.0.11
    • openssl-3.0.10
    • openssl-3.0.1
    • openssl-3.0.0-beta2
    • openssl-3.0.0-beta1
    • openssl-3.0.0-alpha9
    • openssl-3.0.0-alpha8
    • openssl-3.0.0-alpha7
    • openssl-3.0.0-alpha6
    • openssl-3.0.0-alpha5
    • openssl-3.0.0-alpha4
    • openssl-3.0.0-alpha3
    • openssl-3.0.0-alpha2
    • openssl-3.0.0-alpha17
    • openssl-3.0.0-alpha16
    • openssl-3.0.0-alpha15
    • openssl-3.0.0-alpha14
    • openssl-3.0.0-alpha13
    • openssl-3.0.0-alpha12
    • openssl-3.0.0-alpha11
    • openssl-3.0.0-alpha10
    • openssl-3.0.0-alpha1
    • openssl-3.0.0
    • master-pre-reformat
    • master-pre-auto-reformat
    • master-post-reformat
    • master-post-auto-reformat
    • OpenSSL_1_1_1w
    • OpenSSL_1_1_1v
    • OpenSSL_1_1_1u
    • OpenSSL_1_1_1t
    • OpenSSL_1_1_1s
    • OpenSSL_1_1_1r
    • OpenSSL_1_1_1q
    • OpenSSL_1_1_1p
    • OpenSSL_1_1_1o
    • OpenSSL_1_1_1n
    • OpenSSL_1_1_1m
    • OpenSSL_1_1_1l
    • OpenSSL_1_1_1k
    • OpenSSL_1_1_1j
    • OpenSSL_1_1_1i
    • OpenSSL_1_1_1h
    • OpenSSL_1_1_1g
    • OpenSSL_1_1_1f
    • OpenSSL_1_1_1e
    • OpenSSL_1_1_1d
    • OpenSSL_1_1_1c
    • OpenSSL_1_1_1b
    • OpenSSL_1_1_1a
    • OpenSSL_1_1_1-pre9
    • OpenSSL_1_1_1-pre8
    • OpenSSL_1_1_1-pre7
    • OpenSSL_1_1_1-pre6
    • OpenSSL_1_1_1-pre5
    • OpenSSL_1_1_1-pre4
    • OpenSSL_1_1_1-pre3
    • OpenSSL_1_1_1-pre2
    • OpenSSL_1_1_1-pre1
    • OpenSSL_1_1_1
    • OpenSSL_1_1_0l
    • OpenSSL_1_1_0k
    • OpenSSL_1_1_0j
    • OpenSSL_1_1_0i
    • OpenSSL_1_1_0h
    • OpenSSL_1_1_0g
    • OpenSSL_1_1_0f
    • OpenSSL_1_1_0e
    • OpenSSL_1_1_0d
    • OpenSSL_1_1_0c
    • OpenSSL_1_1_0b
    • OpenSSL_1_1_0a
    • OpenSSL_1_1_0-pre6
    • OpenSSL_1_1_0-pre5
    • OpenSSL_1_1_0-pre4
    • OpenSSL_1_1_0-pre3
    • OpenSSL_1_1_0-pre2
    • OpenSSL_1_1_0-pre1
    • OpenSSL_1_1_0
    • OpenSSL_1_0_2u
    • OpenSSL_1_0_2t
    • OpenSSL_1_0_2s
    • OpenSSL_1_0_2r
    • OpenSSL_1_0_2q
    • OpenSSL_1_0_2p
    • OpenSSL_1_0_2o
    • OpenSSL_1_0_2n
    • OpenSSL_1_0_2m
    • OpenSSL_1_0_2l
    • OpenSSL_1_0_2k
    • OpenSSL_1_0_2j
    • OpenSSL_1_0_2i
    • OpenSSL_1_0_2h
    • OpenSSL_1_0_2g
    • OpenSSL_1_0_2f
    • OpenSSL_1_0_2e
    • OpenSSL_1_0_2d
    • OpenSSL_1_0_2c
    • OpenSSL_1_0_2b
    • OpenSSL_1_0_2a
    • OpenSSL_1_0_2-pre-reformat
    • OpenSSL_1_0_2-pre-auto-reformat
    • OpenSSL_1_0_2-post-reformat
    • OpenSSL_1_0_2-post-auto-reformat
    • OpenSSL_1_0_2-beta3
    • OpenSSL_1_0_2-beta2
    • OpenSSL_1_0_2-beta1
    • OpenSSL_1_0_2
    • OpenSSL_1_0_1u
    • OpenSSL_1_0_1t
    • OpenSSL_1_0_1s
    • OpenSSL_1_0_1r
    • OpenSSL_1_0_1q
    • OpenSSL_1_0_1p
    • OpenSSL_1_0_1o
    • OpenSSL_1_0_1n
    • OpenSSL_1_0_1m
    • OpenSSL_1_0_1l
    • OpenSSL_1_0_1k
    • OpenSSL_1_0_1j
    • OpenSSL_1_0_1i
    • OpenSSL_1_0_1h
    • OpenSSL_1_0_1g
    • OpenSSL_1_0_1f
    • OpenSSL_1_0_1e
    • OpenSSL_1_0_1d
    • OpenSSL_1_0_1-pre-reformat
    • OpenSSL_1_0_1-pre-auto-reformat
    • OpenSSL_1_0_1-post-reformat
    • OpenSSL_1_0_1-post-auto-reformat
    • OpenSSL_1_0_0t
    • OpenSSL_1_0_0s
    • OpenSSL_1_0_0r
    • OpenSSL_1_0_0q
    • OpenSSL_1_0_0p
    • OpenSSL_1_0_0o
    • OpenSSL_1_0_0n
    • OpenSSL_1_0_0m
    • OpenSSL_1_0_0l
    • OpenSSL_1_0_0k
    • OpenSSL_1_0_0-pre-reformat
    • OpenSSL_1_0_0-pre-auto-reformat
    • OpenSSL_1_0_0-post-reformat
    • OpenSSL_1_0_0-post-auto-reformat
    • OpenSSL_0_9_8zh
    • OpenSSL_0_9_8zg
    • OpenSSL_0_9_8zf
    • OpenSSL_0_9_8ze
    • OpenSSL_0_9_8zd
    • OpenSSL_0_9_8zc
    • OpenSSL_0_9_8zb
    • OpenSSL_0_9_8za
    • OpenSSL_0_9_8y
    • OpenSSL_0_9_8-pre-reformat
    • OpenSSL_0_9_8-pre-auto-reformat
    • OpenSSL_0_9_8-post-reformat
    • OpenSSL_0_9_8-post-auto-reformat
    • OpenSSL-fips-2_0_9
    • OpenSSL-fips-2_0_8
    • OpenSSL-fips-2_0_7
    • OpenSSL-fips-2_0_6
    • OpenSSL-fips-2_0_5
    • OpenSSL-fips-2_0_4
    • OpenSSL-fips-2_0_3
    • OpenSSL-fips-2_0_2
    • OpenSSL-fips-2_0_16
    • OpenSSL-fips-2_0_15
    • OpenSSL-fips-2_0_14
    • OpenSSL-fips-2_0_13
    • OpenSSL-fips-2_0_12
    • OpenSSL-fips-2_0_11
    • OpenSSL-fips-2_0_10
  • c998a61
  • /
  • crypto
  • /
  • mem_sec.c
Raw File
Permalinks

To reference or cite the objects present in the Software Heritage archive, permalinks based on SoftWare Hash IDentifiers (SWHIDs) must be used.
Select below a type of object currently browsed in order to display its associated SWHID and permalink.

  • content
  • directory
  • revision
  • snapshot
  • release
content badge Iframe embedding
swh:1:cnt:b6bdb6bb43595f621f57243955ae0957416c8d0e
directory badge Iframe embedding
swh:1:dir:91782c3eb2aca268197d24705fb089cf0d2af21e
revision badge
swh:1:rev:3c6a7a1c3b88d9afaf2828cff7adefba27b52493
snapshot badge
swh:1:snp:dc2a5002442a00b1c0eda7c65d04ea7455e166cd
release badge
swh:1:rel:6fa96219447f13d5f6ff1817d095a7f7a1a43751
Tip revision: 3c6a7a1c3b88d9afaf2828cff7adefba27b52493 authored by Tomas Mraz on 03 September 2024, 12:57:51 UTC
Prepare for release of 3.1.7
Tip revision: 3c6a7a1
mem_sec.c
/*
 * Copyright 2015-2023 The OpenSSL Project Authors. All Rights Reserved.
 * Copyright 2004-2014, Akamai Technologies. All Rights Reserved.
 *
 * Licensed under the Apache License 2.0 (the "License").  You may not use
 * this file except in compliance with the License.  You can obtain a copy
 * in the file LICENSE in the source distribution or at
 * https://www.openssl.org/source/license.html
 */

/*
 * This file is in two halves. The first half implements the public API
 * to be used by external consumers, and to be used by OpenSSL to store
 * data in a "secure arena." The second half implements the secure arena.
 * For details on that implementation, see below (look for uppercase
 * "SECURE HEAP IMPLEMENTATION").
 */
#include "internal/e_os.h"
#include <openssl/crypto.h>

#include <string.h>

#ifndef OPENSSL_NO_SECURE_MEMORY
# if defined(_WIN32)
#  include <windows.h>
#  if defined(WINAPI_FAMILY_PARTITION)
#   if !WINAPI_FAMILY_PARTITION(WINAPI_PARTITION_DESKTOP | WINAPI_PARTITION_SYSTEM)
/*
 * While VirtualLock is available under the app partition (e.g. UWP),
 * the headers do not define the API. Define it ourselves instead.
 */
WINBASEAPI
BOOL
WINAPI
VirtualLock(
    _In_ LPVOID lpAddress,
    _In_ SIZE_T dwSize
    );
#   endif
#  endif
# endif
# include <stdlib.h>
# include <assert.h>
# if defined(OPENSSL_SYS_UNIX)
#  include <unistd.h>
# endif
# include <sys/types.h>
# if defined(OPENSSL_SYS_UNIX)
#  include <sys/mman.h>
#  if defined(__FreeBSD__)
#    define MADV_DONTDUMP MADV_NOCORE
#  endif
#  if !defined(MAP_CONCEAL)
#    define MAP_CONCEAL 0
#  endif
# endif
# if defined(OPENSSL_SYS_LINUX)
#  include <sys/syscall.h>
#  if defined(SYS_mlock2)
#   include <linux/mman.h>
#   include <errno.h>
#  endif
#  include <sys/param.h>
# endif
# include <sys/stat.h>
# include <fcntl.h>
#endif

#define CLEAR(p, s) OPENSSL_cleanse(p, s)
#ifndef PAGE_SIZE
# define PAGE_SIZE    4096
#endif
#if !defined(MAP_ANON) && defined(MAP_ANONYMOUS)
# define MAP_ANON MAP_ANONYMOUS
#endif

#ifndef OPENSSL_NO_SECURE_MEMORY
static size_t secure_mem_used;

static int secure_mem_initialized;

static CRYPTO_RWLOCK *sec_malloc_lock = NULL;

/*
 * These are the functions that must be implemented by a secure heap (sh).
 */
static int sh_init(size_t size, size_t minsize);
static void *sh_malloc(size_t size);
static void sh_free(void *ptr);
static void sh_done(void);
static size_t sh_actual_size(char *ptr);
static int sh_allocated(const char *ptr);
#endif

int CRYPTO_secure_malloc_init(size_t size, size_t minsize)
{
#ifndef OPENSSL_NO_SECURE_MEMORY
    int ret = 0;

    if (!secure_mem_initialized) {
        sec_malloc_lock = CRYPTO_THREAD_lock_new();
        if (sec_malloc_lock == NULL)
            return 0;
        if ((ret = sh_init(size, minsize)) != 0) {
            secure_mem_initialized = 1;
        } else {
            CRYPTO_THREAD_lock_free(sec_malloc_lock);
            sec_malloc_lock = NULL;
        }
    }

    return ret;
#else
    return 0;
#endif /* OPENSSL_NO_SECURE_MEMORY */
}

int CRYPTO_secure_malloc_done(void)
{
#ifndef OPENSSL_NO_SECURE_MEMORY
    if (secure_mem_used == 0) {
        sh_done();
        secure_mem_initialized = 0;
        CRYPTO_THREAD_lock_free(sec_malloc_lock);
        sec_malloc_lock = NULL;
        return 1;
    }
#endif /* OPENSSL_NO_SECURE_MEMORY */
    return 0;
}

int CRYPTO_secure_malloc_initialized(void)
{
#ifndef OPENSSL_NO_SECURE_MEMORY
    return secure_mem_initialized;
#else
    return 0;
#endif /* OPENSSL_NO_SECURE_MEMORY */
}

void *CRYPTO_secure_malloc(size_t num, const char *file, int line)
{
#ifndef OPENSSL_NO_SECURE_MEMORY
    void *ret;
    size_t actual_size;

    if (!secure_mem_initialized) {
        return CRYPTO_malloc(num, file, line);
    }
    if (!CRYPTO_THREAD_write_lock(sec_malloc_lock))
        return NULL;
    ret = sh_malloc(num);
    actual_size = ret ? sh_actual_size(ret) : 0;
    secure_mem_used += actual_size;
    CRYPTO_THREAD_unlock(sec_malloc_lock);
    return ret;
#else
    return CRYPTO_malloc(num, file, line);
#endif /* OPENSSL_NO_SECURE_MEMORY */
}

void *CRYPTO_secure_zalloc(size_t num, const char *file, int line)
{
#ifndef OPENSSL_NO_SECURE_MEMORY
    if (secure_mem_initialized)
        /* CRYPTO_secure_malloc() zeroes allocations when it is implemented */
        return CRYPTO_secure_malloc(num, file, line);
#endif
    return CRYPTO_zalloc(num, file, line);
}

void CRYPTO_secure_free(void *ptr, const char *file, int line)
{
#ifndef OPENSSL_NO_SECURE_MEMORY
    size_t actual_size;

    if (ptr == NULL)
        return;
    if (!CRYPTO_secure_allocated(ptr)) {
        CRYPTO_free(ptr, file, line);
        return;
    }
    if (!CRYPTO_THREAD_write_lock(sec_malloc_lock))
        return;
    actual_size = sh_actual_size(ptr);
    CLEAR(ptr, actual_size);
    secure_mem_used -= actual_size;
    sh_free(ptr);
    CRYPTO_THREAD_unlock(sec_malloc_lock);
#else
    CRYPTO_free(ptr, file, line);
#endif /* OPENSSL_NO_SECURE_MEMORY */
}

void CRYPTO_secure_clear_free(void *ptr, size_t num,
                              const char *file, int line)
{
#ifndef OPENSSL_NO_SECURE_MEMORY
    size_t actual_size;

    if (ptr == NULL)
        return;
    if (!CRYPTO_secure_allocated(ptr)) {
        OPENSSL_cleanse(ptr, num);
        CRYPTO_free(ptr, file, line);
        return;
    }
    if (!CRYPTO_THREAD_write_lock(sec_malloc_lock))
        return;
    actual_size = sh_actual_size(ptr);
    CLEAR(ptr, actual_size);
    secure_mem_used -= actual_size;
    sh_free(ptr);
    CRYPTO_THREAD_unlock(sec_malloc_lock);
#else
    if (ptr == NULL)
        return;
    OPENSSL_cleanse(ptr, num);
    CRYPTO_free(ptr, file, line);
#endif /* OPENSSL_NO_SECURE_MEMORY */
}

int CRYPTO_secure_allocated(const void *ptr)
{
#ifndef OPENSSL_NO_SECURE_MEMORY
    if (!secure_mem_initialized)
        return 0;
    /*
     * Only read accesses to the arena take place in sh_allocated() and this
     * is only changed by the sh_init() and sh_done() calls which are not
     * locked.  Hence, it is safe to make this check without a lock too.
     */
    return sh_allocated(ptr);
#else
    return 0;
#endif /* OPENSSL_NO_SECURE_MEMORY */
}

size_t CRYPTO_secure_used(void)
{
    size_t ret = 0;

#ifndef OPENSSL_NO_SECURE_MEMORY
    if (!CRYPTO_THREAD_read_lock(sec_malloc_lock))
        return 0;

    ret = secure_mem_used;

    CRYPTO_THREAD_unlock(sec_malloc_lock);
#endif /* OPENSSL_NO_SECURE_MEMORY */
    return ret;
}

size_t CRYPTO_secure_actual_size(void *ptr)
{
#ifndef OPENSSL_NO_SECURE_MEMORY
    size_t actual_size;

    if (!CRYPTO_THREAD_write_lock(sec_malloc_lock))
        return 0;
    actual_size = sh_actual_size(ptr);
    CRYPTO_THREAD_unlock(sec_malloc_lock);
    return actual_size;
#else
    return 0;
#endif
}

/*
 * SECURE HEAP IMPLEMENTATION
 */
#ifndef OPENSSL_NO_SECURE_MEMORY


/*
 * The implementation provided here uses a fixed-sized mmap() heap,
 * which is locked into memory, not written to core files, and protected
 * on either side by an unmapped page, which will catch pointer overruns
 * (or underruns) and an attempt to read data out of the secure heap.
 * Free'd memory is zero'd or otherwise cleansed.
 *
 * This is a pretty standard buddy allocator.  We keep areas in a multiple
 * of "sh.minsize" units.  The freelist and bitmaps are kept separately,
 * so all (and only) data is kept in the mmap'd heap.
 *
 * This code assumes eight-bit bytes.  The numbers 3 and 7 are all over the
 * place.
 */

#define ONE ((size_t)1)

# define TESTBIT(t, b)  (t[(b) >> 3] &  (ONE << ((b) & 7)))
# define SETBIT(t, b)   (t[(b) >> 3] |= (ONE << ((b) & 7)))
# define CLEARBIT(t, b) (t[(b) >> 3] &= (0xFF & ~(ONE << ((b) & 7))))

#define WITHIN_ARENA(p) \
    ((char*)(p) >= sh.arena && (char*)(p) < &sh.arena[sh.arena_size])
#define WITHIN_FREELIST(p) \
    ((char*)(p) >= (char*)sh.freelist && (char*)(p) < (char*)&sh.freelist[sh.freelist_size])


typedef struct sh_list_st
{
    struct sh_list_st *next;
    struct sh_list_st **p_next;
} SH_LIST;

typedef struct sh_st
{
    char* map_result;
    size_t map_size;
    char *arena;
    size_t arena_size;
    char **freelist;
    ossl_ssize_t freelist_size;
    size_t minsize;
    unsigned char *bittable;
    unsigned char *bitmalloc;
    size_t bittable_size; /* size in bits */
} SH;

static SH sh;

static size_t sh_getlist(char *ptr)
{
    ossl_ssize_t list = sh.freelist_size - 1;
    size_t bit = (sh.arena_size + ptr - sh.arena) / sh.minsize;

    for (; bit; bit >>= 1, list--) {
        if (TESTBIT(sh.bittable, bit))
            break;
        OPENSSL_assert((bit & 1) == 0);
    }

    return list;
}


static int sh_testbit(char *ptr, int list, unsigned char *table)
{
    size_t bit;

    OPENSSL_assert(list >= 0 && list < sh.freelist_size);
    OPENSSL_assert(((ptr - sh.arena) & ((sh.arena_size >> list) - 1)) == 0);
    bit = (ONE << list) + ((ptr - sh.arena) / (sh.arena_size >> list));
    OPENSSL_assert(bit > 0 && bit < sh.bittable_size);
    return TESTBIT(table, bit);
}

static void sh_clearbit(char *ptr, int list, unsigned char *table)
{
    size_t bit;

    OPENSSL_assert(list >= 0 && list < sh.freelist_size);
    OPENSSL_assert(((ptr - sh.arena) & ((sh.arena_size >> list) - 1)) == 0);
    bit = (ONE << list) + ((ptr - sh.arena) / (sh.arena_size >> list));
    OPENSSL_assert(bit > 0 && bit < sh.bittable_size);
    OPENSSL_assert(TESTBIT(table, bit));
    CLEARBIT(table, bit);
}

static void sh_setbit(char *ptr, int list, unsigned char *table)
{
    size_t bit;

    OPENSSL_assert(list >= 0 && list < sh.freelist_size);
    OPENSSL_assert(((ptr - sh.arena) & ((sh.arena_size >> list) - 1)) == 0);
    bit = (ONE << list) + ((ptr - sh.arena) / (sh.arena_size >> list));
    OPENSSL_assert(bit > 0 && bit < sh.bittable_size);
    OPENSSL_assert(!TESTBIT(table, bit));
    SETBIT(table, bit);
}

static void sh_add_to_list(char **list, char *ptr)
{
    SH_LIST *temp;

    OPENSSL_assert(WITHIN_FREELIST(list));
    OPENSSL_assert(WITHIN_ARENA(ptr));

    temp = (SH_LIST *)ptr;
    temp->next = *(SH_LIST **)list;
    OPENSSL_assert(temp->next == NULL || WITHIN_ARENA(temp->next));
    temp->p_next = (SH_LIST **)list;

    if (temp->next != NULL) {
        OPENSSL_assert((char **)temp->next->p_next == list);
        temp->next->p_next = &(temp->next);
    }

    *list = ptr;
}

static void sh_remove_from_list(char *ptr)
{
    SH_LIST *temp, *temp2;

    temp = (SH_LIST *)ptr;
    if (temp->next != NULL)
        temp->next->p_next = temp->p_next;
    *temp->p_next = temp->next;
    if (temp->next == NULL)
        return;

    temp2 = temp->next;
    OPENSSL_assert(WITHIN_FREELIST(temp2->p_next) || WITHIN_ARENA(temp2->p_next));
}


static int sh_init(size_t size, size_t minsize)
{
    int ret;
    size_t i;
    size_t pgsize;
    size_t aligned;
#if defined(_WIN32)
    DWORD flOldProtect;
    SYSTEM_INFO systemInfo;
#endif

    memset(&sh, 0, sizeof(sh));

    /* make sure size is a powers of 2 */
    OPENSSL_assert(size > 0);
    OPENSSL_assert((size & (size - 1)) == 0);
    if (size == 0 || (size & (size - 1)) != 0)
        goto err;

    if (minsize <= sizeof(SH_LIST)) {
        OPENSSL_assert(sizeof(SH_LIST) <= 65536);
        /*
         * Compute the minimum possible allocation size.
         * This must be a power of 2 and at least as large as the SH_LIST
         * structure.
         */
        minsize = sizeof(SH_LIST) - 1;
        minsize |= minsize >> 1;
        minsize |= minsize >> 2;
        if (sizeof(SH_LIST) > 16)
            minsize |= minsize >> 4;
        if (sizeof(SH_LIST) > 256)
            minsize |= minsize >> 8;
        minsize++;
    } else {
        /* make sure minsize is a powers of 2 */
          OPENSSL_assert((minsize & (minsize - 1)) == 0);
          if ((minsize & (minsize - 1)) != 0)
              goto err;
    }

    sh.arena_size = size;
    sh.minsize = minsize;
    sh.bittable_size = (sh.arena_size / sh.minsize) * 2;

    /* Prevent allocations of size 0 later on */
    if (sh.bittable_size >> 3 == 0)
        goto err;

    sh.freelist_size = -1;
    for (i = sh.bittable_size; i; i >>= 1)
        sh.freelist_size++;

    sh.freelist = OPENSSL_zalloc(sh.freelist_size * sizeof(char *));
    OPENSSL_assert(sh.freelist != NULL);
    if (sh.freelist == NULL)
        goto err;

    sh.bittable = OPENSSL_zalloc(sh.bittable_size >> 3);
    OPENSSL_assert(sh.bittable != NULL);
    if (sh.bittable == NULL)
        goto err;

    sh.bitmalloc = OPENSSL_zalloc(sh.bittable_size >> 3);
    OPENSSL_assert(sh.bitmalloc != NULL);
    if (sh.bitmalloc == NULL)
        goto err;

    /* Allocate space for heap, and two extra pages as guards */
#if defined(_SC_PAGE_SIZE) || defined (_SC_PAGESIZE)
    {
# if defined(_SC_PAGE_SIZE)
        long tmppgsize = sysconf(_SC_PAGE_SIZE);
# else
        long tmppgsize = sysconf(_SC_PAGESIZE);
# endif
        if (tmppgsize < 1)
            pgsize = PAGE_SIZE;
        else
            pgsize = (size_t)tmppgsize;
    }
#elif defined(_WIN32)
    GetSystemInfo(&systemInfo);
    pgsize = (size_t)systemInfo.dwPageSize;
#else
    pgsize = PAGE_SIZE;
#endif
    sh.map_size = pgsize + sh.arena_size + pgsize;

#if !defined(_WIN32)
# ifdef MAP_ANON
    sh.map_result = mmap(NULL, sh.map_size,
                         PROT_READ|PROT_WRITE, MAP_ANON|MAP_PRIVATE|MAP_CONCEAL, -1, 0);
# else
    {
        int fd;

        sh.map_result = MAP_FAILED;
        if ((fd = open("/dev/zero", O_RDWR)) >= 0) {
            sh.map_result = mmap(NULL, sh.map_size,
                                 PROT_READ|PROT_WRITE, MAP_PRIVATE, fd, 0);
            close(fd);
        }
    }
# endif
    if (sh.map_result == MAP_FAILED)
        goto err;
#else
    sh.map_result = VirtualAlloc(NULL, sh.map_size, MEM_COMMIT | MEM_RESERVE, PAGE_READWRITE);

    if (sh.map_result == NULL)
            goto err;
#endif

    sh.arena = (char *)(sh.map_result + pgsize);
    sh_setbit(sh.arena, 0, sh.bittable);
    sh_add_to_list(&sh.freelist[0], sh.arena);

    /* Now try to add guard pages and lock into memory. */
    ret = 1;

#if !defined(_WIN32)
    /* Starting guard is already aligned from mmap. */
    if (mprotect(sh.map_result, pgsize, PROT_NONE) < 0)
        ret = 2;
#else
    if (VirtualProtect(sh.map_result, pgsize, PAGE_NOACCESS, &flOldProtect) == FALSE)
        ret = 2;
#endif

    /* Ending guard page - need to round up to page boundary */
    aligned = (pgsize + sh.arena_size + (pgsize - 1)) & ~(pgsize - 1);
#if !defined(_WIN32)
    if (mprotect(sh.map_result + aligned, pgsize, PROT_NONE) < 0)
        ret = 2;
#else
    if (VirtualProtect(sh.map_result + aligned, pgsize, PAGE_NOACCESS, &flOldProtect) == FALSE)
        ret = 2;
#endif

#if defined(OPENSSL_SYS_LINUX) && defined(MLOCK_ONFAULT) && defined(SYS_mlock2)
    if (syscall(SYS_mlock2, sh.arena, sh.arena_size, MLOCK_ONFAULT) < 0) {
        if (errno == ENOSYS) {
            if (mlock(sh.arena, sh.arena_size) < 0)
                ret = 2;
        } else {
            ret = 2;
        }
    }
#elif defined(_WIN32)
    if (VirtualLock(sh.arena, sh.arena_size) == FALSE)
        ret = 2;
#else
    if (mlock(sh.arena, sh.arena_size) < 0)
        ret = 2;
#endif
#ifdef MADV_DONTDUMP
    if (madvise(sh.arena, sh.arena_size, MADV_DONTDUMP) < 0)
        ret = 2;
#endif

    return ret;

 err:
    sh_done();
    return 0;
}

static void sh_done(void)
{
    OPENSSL_free(sh.freelist);
    OPENSSL_free(sh.bittable);
    OPENSSL_free(sh.bitmalloc);
#if !defined(_WIN32)
    if (sh.map_result != MAP_FAILED && sh.map_size)
        munmap(sh.map_result, sh.map_size);
#else
    if (sh.map_result != NULL && sh.map_size)
        VirtualFree(sh.map_result, 0, MEM_RELEASE);
#endif
    memset(&sh, 0, sizeof(sh));
}

static int sh_allocated(const char *ptr)
{
    return WITHIN_ARENA(ptr) ? 1 : 0;
}

static char *sh_find_my_buddy(char *ptr, int list)
{
    size_t bit;
    char *chunk = NULL;

    bit = (ONE << list) + (ptr - sh.arena) / (sh.arena_size >> list);
    bit ^= 1;

    if (TESTBIT(sh.bittable, bit) && !TESTBIT(sh.bitmalloc, bit))
        chunk = sh.arena + ((bit & ((ONE << list) - 1)) * (sh.arena_size >> list));

    return chunk;
}

static void *sh_malloc(size_t size)
{
    ossl_ssize_t list, slist;
    size_t i;
    char *chunk;

    if (size > sh.arena_size)
        return NULL;

    list = sh.freelist_size - 1;
    for (i = sh.minsize; i < size; i <<= 1)
        list--;
    if (list < 0)
        return NULL;

    /* try to find a larger entry to split */
    for (slist = list; slist >= 0; slist--)
        if (sh.freelist[slist] != NULL)
            break;
    if (slist < 0)
        return NULL;

    /* split larger entry */
    while (slist != list) {
        char *temp = sh.freelist[slist];

        /* remove from bigger list */
        OPENSSL_assert(!sh_testbit(temp, slist, sh.bitmalloc));
        sh_clearbit(temp, slist, sh.bittable);
        sh_remove_from_list(temp);
        OPENSSL_assert(temp != sh.freelist[slist]);

        /* done with bigger list */
        slist++;

        /* add to smaller list */
        OPENSSL_assert(!sh_testbit(temp, slist, sh.bitmalloc));
        sh_setbit(temp, slist, sh.bittable);
        sh_add_to_list(&sh.freelist[slist], temp);
        OPENSSL_assert(sh.freelist[slist] == temp);

        /* split in 2 */
        temp += sh.arena_size >> slist;
        OPENSSL_assert(!sh_testbit(temp, slist, sh.bitmalloc));
        sh_setbit(temp, slist, sh.bittable);
        sh_add_to_list(&sh.freelist[slist], temp);
        OPENSSL_assert(sh.freelist[slist] == temp);

        OPENSSL_assert(temp-(sh.arena_size >> slist) == sh_find_my_buddy(temp, slist));
    }

    /* peel off memory to hand back */
    chunk = sh.freelist[list];
    OPENSSL_assert(sh_testbit(chunk, list, sh.bittable));
    sh_setbit(chunk, list, sh.bitmalloc);
    sh_remove_from_list(chunk);

    OPENSSL_assert(WITHIN_ARENA(chunk));

    /* zero the free list header as a precaution against information leakage */
    memset(chunk, 0, sizeof(SH_LIST));

    return chunk;
}

static void sh_free(void *ptr)
{
    size_t list;
    void *buddy;

    if (ptr == NULL)
        return;
    OPENSSL_assert(WITHIN_ARENA(ptr));
    if (!WITHIN_ARENA(ptr))
        return;

    list = sh_getlist(ptr);
    OPENSSL_assert(sh_testbit(ptr, list, sh.bittable));
    sh_clearbit(ptr, list, sh.bitmalloc);
    sh_add_to_list(&sh.freelist[list], ptr);

    /* Try to coalesce two adjacent free areas. */
    while ((buddy = sh_find_my_buddy(ptr, list)) != NULL) {
        OPENSSL_assert(ptr == sh_find_my_buddy(buddy, list));
        OPENSSL_assert(ptr != NULL);
        OPENSSL_assert(!sh_testbit(ptr, list, sh.bitmalloc));
        sh_clearbit(ptr, list, sh.bittable);
        sh_remove_from_list(ptr);
        OPENSSL_assert(!sh_testbit(ptr, list, sh.bitmalloc));
        sh_clearbit(buddy, list, sh.bittable);
        sh_remove_from_list(buddy);

        list--;

        /* Zero the higher addressed block's free list pointers */
        memset(ptr > buddy ? ptr : buddy, 0, sizeof(SH_LIST));
        if (ptr > buddy)
            ptr = buddy;

        OPENSSL_assert(!sh_testbit(ptr, list, sh.bitmalloc));
        sh_setbit(ptr, list, sh.bittable);
        sh_add_to_list(&sh.freelist[list], ptr);
        OPENSSL_assert(sh.freelist[list] == ptr);
    }
}

static size_t sh_actual_size(char *ptr)
{
    int list;

    OPENSSL_assert(WITHIN_ARENA(ptr));
    if (!WITHIN_ARENA(ptr))
        return 0;
    list = sh_getlist(ptr);
    OPENSSL_assert(sh_testbit(ptr, list, sh.bittable));
    return sh.arena_size / (ONE << list);
}
#endif /* OPENSSL_NO_SECURE_MEMORY */

ENEA — Copyright (C), ENEA. License: GNU AGPLv3+.
Legal notes  ::  JavaScript license information ::  Web API

back to top