Abseil Common Libraries (C++) (grcp 依赖) https://abseil.io/
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Export of internal Abseil changes -- f012012ef78234a6a4585321b67d7b7c92ebc266 by Laramie Leavitt <lar@google.com>: Slight restructuring of absl/random/internal randen implementation. Convert round-keys.inc into randen_round_keys.cc file. Consistently use a 128-bit pointer type for internal method parameters. This allows simpler pointer arithmetic in C++ & permits removal of some constants and casts. Remove some redundancy in comments & constexpr variables. Specifically, all references to Randen algorithm parameters use RandenTraits; duplication in RandenSlow removed. PiperOrigin-RevId: 312190313 -- dc8b42e054046741e9ed65335bfdface997c6063 by Abseil Team <absl-team@google.com>: Internal change. PiperOrigin-RevId: 312167304 -- f13d248fafaf206492c1362c3574031aea3abaf7 by Matthew Brown <matthewbr@google.com>: Cleanup StrFormat extensions a little. PiperOrigin-RevId: 312166336 -- 9d9117589667afe2332bb7ad42bc967ca7c54502 by Derek Mauro <dmauro@google.com>: Internal change PiperOrigin-RevId: 312105213 -- 9a12b9b3aa0e59b8ee6cf9408ed0029045543a9b by Abseil Team <absl-team@google.com>: Complete IGNORE_TYPE macro renaming. PiperOrigin-RevId: 311999699 -- 64756f20d61021d999bd0d4c15e9ad3857382f57 by Gennadiy Rozental <rogeeff@google.com>: Switch to fixed bytes specific default value. This fixes the Abseil Flags for big endian platforms. PiperOrigin-RevId: 311844448 -- bdbe6b5b29791dbc3816ada1828458b3010ff1e9 by Laramie Leavitt <lar@google.com>: Change many distribution tests to use pcg_engine as a deterministic source of entropy. It's reasonable to test that the BitGen itself has good entropy, however when testing the cross product of all random distributions x all the architecture variations x all submitted changes results in a large number of tests. In order to account for these failures while still using good entropy requires that our allowed sigma need to account for all of these independent tests. Our current sigma values are too restrictive, and we see a lot of failures, so we have to either relax the sigma values or convert some of the statistical tests to use deterministic values. This changelist does the latter. PiperOrigin-RevId: 311840096 GitOrigin-RevId: f012012ef78234a6a4585321b67d7b7c92ebc266 Change-Id: Ic84886f38ff30d7d72c126e9b63c9a61eb729a1a
5 years ago
// Copyright 2017 The Abseil Authors.
//
// Licensed under the Apache License, Version 2.0 (the "License");
// you may not use this file except in compliance with the License.
// You may obtain a copy of the License at
//
// https://www.apache.org/licenses/LICENSE-2.0
//
// Unless required by applicable law or agreed to in writing, software
// distributed under the License is distributed on an "AS IS" BASIS,
// WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
// See the License for the specific language governing permissions and
// limitations under the License.
#ifndef ABSL_RANDOM_INTERNAL_SALTED_SEED_SEQ_H_
#define ABSL_RANDOM_INTERNAL_SALTED_SEED_SEQ_H_
#include <cstdint>
#include <cstdlib>
#include <initializer_list>
#include <iterator>
#include <memory>
#include <type_traits>
#include <utility>
#include "absl/container/inlined_vector.h"
#include "absl/meta/type_traits.h"
#include "absl/random/internal/seed_material.h"
#include "absl/types/optional.h"
#include "absl/types/span.h"
namespace absl {
ABSL_NAMESPACE_BEGIN
namespace random_internal {
// This class conforms to the C++ Standard "Seed Sequence" concept
// [rand.req.seedseq].
//
// A `SaltedSeedSeq` is meant to wrap an existing seed sequence and modify
// generated sequence by mixing with extra entropy. This entropy may be
// build-dependent or process-dependent. The implementation may change to be
// have either or both kinds of entropy. If salt is not available sequence is
// not modified.
template <typename SSeq>
class SaltedSeedSeq {
public:
using inner_sequence_type = SSeq;
using result_type = typename SSeq::result_type;
SaltedSeedSeq() : seq_(absl::make_unique<SSeq>()) {}
template <typename Iterator>
SaltedSeedSeq(Iterator begin, Iterator end)
: seq_(absl::make_unique<SSeq>(begin, end)) {}
template <typename T>
SaltedSeedSeq(std::initializer_list<T> il)
: SaltedSeedSeq(il.begin(), il.end()) {}
SaltedSeedSeq(const SaltedSeedSeq&) = delete;
SaltedSeedSeq& operator=(const SaltedSeedSeq&) = delete;
SaltedSeedSeq(SaltedSeedSeq&&) = default;
SaltedSeedSeq& operator=(SaltedSeedSeq&&) = default;
template <typename RandomAccessIterator>
void generate(RandomAccessIterator begin, RandomAccessIterator end) {
// The common case is that generate is called with ContiguousIterators
// to uint arrays. Such contiguous memory regions may be optimized,
// which we detect here.
using tag = absl::conditional_t<
(std::is_pointer<RandomAccessIterator>::value &&
std::is_same<absl::decay_t<decltype(*begin)>, uint32_t>::value),
ContiguousAndUint32Tag, DefaultTag>;
if (begin != end) {
generate_impl(begin, end, tag{});
}
}
template <typename OutIterator>
void param(OutIterator out) const {
seq_->param(out);
}
size_t size() const { return seq_->size(); }
private:
struct ContiguousAndUint32Tag {};
struct DefaultTag {};
// Generate which requires the iterators are contiguous pointers to uint32_t.
void generate_impl(uint32_t* begin, uint32_t* end, ContiguousAndUint32Tag) {
generate_contiguous(absl::MakeSpan(begin, end));
}
// The uncommon case for generate is that it is called with iterators over
// some other buffer type which is assignable from a 32-bit value. In this
// case we allocate a temporary 32-bit buffer and then copy-assign back
// to the initial inputs.
template <typename RandomAccessIterator>
void generate_impl(RandomAccessIterator begin, RandomAccessIterator end,
DefaultTag) {
return generate_and_copy(std::distance(begin, end), begin);
}
// Fills the initial seed buffer the underlying SSeq::generate() call,
// mixing in the salt material.
void generate_contiguous(absl::Span<uint32_t> buffer) {
seq_->generate(buffer.begin(), buffer.end());
const uint32_t salt = absl::random_internal::GetSaltMaterial().value_or(0);
MixIntoSeedMaterial(absl::MakeConstSpan(&salt, 1), buffer);
}
// Allocates a seed buffer of `n` elements, generates the seed, then
// copies the result into the `out` iterator.
template <typename Iterator>
void generate_and_copy(size_t n, Iterator out) {
// Allocate a temporary buffer, generate, and then copy.
absl::InlinedVector<uint32_t, 8> data(n, 0);
generate_contiguous(absl::MakeSpan(data.data(), data.size()));
std::copy(data.begin(), data.end(), out);
}
// Because [rand.req.seedseq] is not required to be copy-constructible,
// copy-assignable nor movable, we wrap it with unique pointer to be able
// to move SaltedSeedSeq.
std::unique_ptr<SSeq> seq_;
};
// is_salted_seed_seq indicates whether the type is a SaltedSeedSeq.
template <typename T, typename = void>
struct is_salted_seed_seq : public std::false_type {};
template <typename T>
struct is_salted_seed_seq<
T, typename std::enable_if<std::is_same<
T, SaltedSeedSeq<typename T::inner_sequence_type>>::value>::type>
: public std::true_type {};
// MakeSaltedSeedSeq returns a salted variant of the seed sequence.
// When provided with an existing SaltedSeedSeq, returns the input parameter,
// otherwise constructs a new SaltedSeedSeq which embodies the original
// non-salted seed parameters.
template <
typename SSeq, //
typename EnableIf = absl::enable_if_t<is_salted_seed_seq<SSeq>::value>>
SSeq MakeSaltedSeedSeq(SSeq&& seq) {
return SSeq(std::forward<SSeq>(seq));
}
template <
typename SSeq, //
typename EnableIf = absl::enable_if_t<!is_salted_seed_seq<SSeq>::value>>
SaltedSeedSeq<typename std::decay<SSeq>::type> MakeSaltedSeedSeq(SSeq&& seq) {
using sseq_type = typename std::decay<SSeq>::type;
using result_type = typename sseq_type::result_type;
absl::InlinedVector<result_type, 8> data;
seq.param(std::back_inserter(data));
return SaltedSeedSeq<sseq_type>(data.begin(), data.end());
}
} // namespace random_internal
ABSL_NAMESPACE_END
} // namespace absl
#endif // ABSL_RANDOM_INTERNAL_SALTED_SEED_SEQ_H_