rippled
ripple
crypto
impl
csprng.cpp
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//------------------------------------------------------------------------------
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/*
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This file is part of rippled: https://github.com/ripple/rippled
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Copyright (c) 2012, 2013 Ripple Labs Inc.
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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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THE SOFTWARE IS PROVIDED "AS IS" AND THE AUTHOR DISCLAIMS ALL WARRANTIES
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WITH REGARD TO THIS SOFTWARE INCLUDING ALL IMPLIED WARRANTIES OF
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MERCHANTABILITY AND FITNESS. IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR
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ANY SPECIAL , DIRECT, INDIRECT, OR CONSEQUENTIAL DAMAGES OR ANY DAMAGES
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WHATSOEVER RESULTING FROM LOSS OF USE, DATA OR PROFITS, WHETHER IN AN
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ACTION OF CONTRACT, NEGLIGENCE OR OTHER TORTIOUS ACTION, ARISING OUT OF
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OR IN CONNECTION WITH THE USE OR PERFORMANCE OF THIS SOFTWARE.
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*/
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//==============================================================================
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#include <ripple/basics/ByteUtilities.h>
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#include <ripple/basics/contract.h>
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#include <ripple/crypto/csprng.h>
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#include <
array
>
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#include <
cassert
>
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#include <openssl/rand.h>
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#include <
random
>
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#include <
stdexcept
>
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namespace
ripple
{
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void
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csprng_engine::mix
(
void
* data,
std::size_t
size,
double
bitsPerByte)
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{
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assert(data !=
nullptr
);
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assert(size != 0);
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assert(bitsPerByte != 0);
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std::lock_guard
lock(
mutex_
);
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RAND_add(data, size, (size * bitsPerByte) / 8.0);
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}
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csprng_engine::csprng_engine
()
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{
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mix_entropy
();
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}
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csprng_engine::~csprng_engine
()
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{
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RAND_cleanup();
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}
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void
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csprng_engine::mix_entropy
(
void
* buffer,
std::size_t
count)
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{
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std::array<std::random_device::result_type, 128>
entropy;
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{
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// On every platform we support, std::random_device
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// is non-deterministic and should provide some good
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// quality entropy.
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std::random_device
rd;
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for
(
auto
& e : entropy)
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e = rd();
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}
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// Assume 2 bits per byte for the system entropy:
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mix
(entropy.
data
(),
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entropy.
size
() *
sizeof
(std::random_device::result_type),
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2.0);
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// We want to be extremely conservative about estimating
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// how much entropy the buffer the user gives us contains
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// and assume only 0.5 bits of entropy per byte:
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if
(buffer !=
nullptr
&& count != 0)
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mix
(buffer, count, 0.5);
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}
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csprng_engine::result_type
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csprng_engine::operator()
()
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{
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result_type
ret;
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std::lock_guard
lock(
mutex_
);
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auto
const
result =
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RAND_bytes(
reinterpret_cast<
unsigned
char
*
>
(&ret),
sizeof
(ret));
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if
(result == 0)
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Throw<std::runtime_error>(
"Insufficient entropy"
);
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return
ret;
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}
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void
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csprng_engine::operator()
(
void
* ptr,
std::size_t
count)
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{
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std::lock_guard
lock(
mutex_
);
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auto
const
result =
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RAND_bytes(
reinterpret_cast<
unsigned
char
*
>
(ptr), count);
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if
(result != 1)
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Throw<std::runtime_error>(
"Insufficient entropy"
);
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}
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csprng_engine
&
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crypto_prng
()
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{
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static
csprng_engine
engine;
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return
engine;
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}
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}
// namespace ripple
ripple::csprng_engine::~csprng_engine
~csprng_engine()
Definition:
csprng.cpp:47
ripple::csprng_engine::mix_entropy
void mix_entropy(void *buffer=nullptr, std::size_t count=0)
Mix entropy into the pool.
Definition:
csprng.cpp:53
ripple::csprng_engine::mutex_
std::mutex mutex_
Definition:
csprng.h:40
std::array::size
T size(T... args)
ripple::crypto_prng
csprng_engine & crypto_prng()
The default cryptographically secure PRNG.
Definition:
csprng.cpp:108
random
std::lock_guard
STL class.
ripple::csprng_engine::mix
void mix(void *buffer, std::size_t count, double bitsPerByte)
Definition:
csprng.cpp:32
stdexcept
std::random_device
ripple::csprng_engine::operator()
result_type operator()()
Generate a random integer.
Definition:
csprng.cpp:80
ripple::csprng_engine::csprng_engine
csprng_engine()
Definition:
csprng.cpp:42
array
ripple::csprng_engine
A cryptographically secure random number engine.
Definition:
csprng.h:37
std::uint64_t
ripple
Use hash_* containers for keys that do not need a cryptographically secure hashing algorithm.
Definition:
RCLCensorshipDetector.h:29
cassert
std::size_t
std::array::data
T data(T... args)
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