-- c99f979ad34f155fbeeea69b88bdc7458d89a21c by Derek Mauro <dmauro@google.com>: Remove a floating point division by zero test. This isn't testing behavior related to the library, and MSVC warns about it in opt mode. PiperOrigin-RevId: 285220804 -- 68b015491f0dbf1ab547994673281abd1f34cd4b by Gennadiy Rozental <rogeeff@google.com>: This CL introduces following changes to the class FlagImpl: * We eliminate the CommandLineFlagLocks struct. Instead callback guard and callback function are combined into a single CallbackData struct, while primary data lock is stored separately. * CallbackData member of class FlagImpl is initially set to be nullptr and is only allocated and initialized when a flag's callback is being set. For most flags we do not pay for the extra space and extra absl::Mutex now. * Primary data guard is stored in data_guard_ data member. This is a properly aligned character buffer of necessary size. During initialization of the flag we construct absl::Mutex in this space using placement new call. * We now avoid extra value copy after successful attempt to parse value out of string. Instead we swap flag's current value with tentative value we just produced. PiperOrigin-RevId: 285132636 -- ed45d118fb818969eb13094cf7827c885dfc562c by Tom Manshreck <shreck@google.com>: Change null-term* (and nul-term*) to NUL-term* in comments PiperOrigin-RevId: 285036610 -- 729619017944db895ce8d6d29c1995aa2e5628a5 by Derek Mauro <dmauro@google.com>: Use the Posix implementation of thread identity on MinGW. Some versions of MinGW suffer from thread_local bugs. PiperOrigin-RevId: 285022920 -- 39a25493503c76885bc3254c28f66a251c5b5bb0 by Greg Falcon <gfalcon@google.com>: Implementation detail change. Add further ABSL_NAMESPACE_BEGIN and _END annotation macros to files in Abseil. PiperOrigin-RevId: 285012012 GitOrigin-RevId: c99f979ad34f155fbeeea69b88bdc7458d89a21c Change-Id: I4c85d3704e45d11a9ac50d562f39640a6adbedc1
		
			
				
	
	
		
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			6.1 KiB
		
	
	
	
		
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			159 lines
		
	
	
	
		
			6.1 KiB
		
	
	
	
		
			C++
		
	
	
	
	
	
| // Copyright 2017 The Abseil Authors.
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| //
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| // Licensed under the Apache License, Version 2.0 (the "License");
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| // you may not use this file except in compliance with the License.
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| // You may obtain a copy of the License at
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| //
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| //      https://www.apache.org/licenses/LICENSE-2.0
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| //
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| // Unless required by applicable law or agreed to in writing, software
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| // distributed under the License is distributed on an "AS IS" BASIS,
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| // WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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| // See the License for the specific language governing permissions and
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| // limitations under the License.
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| //
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| // -----------------------------------------------------------------------------
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| // File: algorithm.h
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| // -----------------------------------------------------------------------------
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| //
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| // This header file contains Google extensions to the standard <algorithm> C++
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| // header.
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| 
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| #ifndef ABSL_ALGORITHM_ALGORITHM_H_
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| #define ABSL_ALGORITHM_ALGORITHM_H_
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| 
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| #include <algorithm>
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| #include <iterator>
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| #include <type_traits>
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| 
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| #include "absl/base/config.h"
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| 
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| namespace absl {
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| ABSL_NAMESPACE_BEGIN
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| 
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| namespace algorithm_internal {
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| 
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| // Performs comparisons with operator==, similar to C++14's `std::equal_to<>`.
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| struct EqualTo {
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|   template <typename T, typename U>
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|   bool operator()(const T& a, const U& b) const {
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|     return a == b;
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|   }
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| };
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| 
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| template <typename InputIter1, typename InputIter2, typename Pred>
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| bool EqualImpl(InputIter1 first1, InputIter1 last1, InputIter2 first2,
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|                InputIter2 last2, Pred pred, std::input_iterator_tag,
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|                std::input_iterator_tag) {
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|   while (true) {
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|     if (first1 == last1) return first2 == last2;
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|     if (first2 == last2) return false;
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|     if (!pred(*first1, *first2)) return false;
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|     ++first1;
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|     ++first2;
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|   }
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| }
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| 
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| template <typename InputIter1, typename InputIter2, typename Pred>
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| bool EqualImpl(InputIter1 first1, InputIter1 last1, InputIter2 first2,
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|                InputIter2 last2, Pred&& pred, std::random_access_iterator_tag,
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|                std::random_access_iterator_tag) {
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|   return (last1 - first1 == last2 - first2) &&
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|          std::equal(first1, last1, first2, std::forward<Pred>(pred));
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| }
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| 
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| // When we are using our own internal predicate that just applies operator==, we
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| // forward to the non-predicate form of std::equal. This enables an optimization
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| // in libstdc++ that can result in std::memcmp being used for integer types.
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| template <typename InputIter1, typename InputIter2>
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| bool EqualImpl(InputIter1 first1, InputIter1 last1, InputIter2 first2,
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|                InputIter2 last2, algorithm_internal::EqualTo /* unused */,
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|                std::random_access_iterator_tag,
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|                std::random_access_iterator_tag) {
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|   return (last1 - first1 == last2 - first2) &&
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|          std::equal(first1, last1, first2);
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| }
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| 
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| template <typename It>
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| It RotateImpl(It first, It middle, It last, std::true_type) {
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|   return std::rotate(first, middle, last);
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| }
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| 
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| template <typename It>
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| It RotateImpl(It first, It middle, It last, std::false_type) {
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|   std::rotate(first, middle, last);
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|   return std::next(first, std::distance(middle, last));
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| }
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| 
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| }  // namespace algorithm_internal
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| 
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| // equal()
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| //
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| // Compares the equality of two ranges specified by pairs of iterators, using
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| // the given predicate, returning true iff for each corresponding iterator i1
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| // and i2 in the first and second range respectively, pred(*i1, *i2) == true
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| //
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| // This comparison takes at most min(`last1` - `first1`, `last2` - `first2`)
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| // invocations of the predicate. Additionally, if InputIter1 and InputIter2 are
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| // both random-access iterators, and `last1` - `first1` != `last2` - `first2`,
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| // then the predicate is never invoked and the function returns false.
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| //
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| // This is a C++11-compatible implementation of C++14 `std::equal`.  See
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| // https://en.cppreference.com/w/cpp/algorithm/equal for more information.
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| template <typename InputIter1, typename InputIter2, typename Pred>
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| bool equal(InputIter1 first1, InputIter1 last1, InputIter2 first2,
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|            InputIter2 last2, Pred&& pred) {
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|   return algorithm_internal::EqualImpl(
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|       first1, last1, first2, last2, std::forward<Pred>(pred),
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|       typename std::iterator_traits<InputIter1>::iterator_category{},
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|       typename std::iterator_traits<InputIter2>::iterator_category{});
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| }
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| 
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| // Overload of equal() that performs comparison of two ranges specified by pairs
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| // of iterators using operator==.
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| template <typename InputIter1, typename InputIter2>
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| bool equal(InputIter1 first1, InputIter1 last1, InputIter2 first2,
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|            InputIter2 last2) {
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|   return absl::equal(first1, last1, first2, last2,
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|                      algorithm_internal::EqualTo{});
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| }
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| 
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| // linear_search()
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| //
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| // Performs a linear search for `value` using the iterator `first` up to
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| // but not including `last`, returning true if [`first`, `last`) contains an
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| // element equal to `value`.
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| //
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| // A linear search is of O(n) complexity which is guaranteed to make at most
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| // n = (`last` - `first`) comparisons. A linear search over short containers
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| // may be faster than a binary search, even when the container is sorted.
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| template <typename InputIterator, typename EqualityComparable>
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| bool linear_search(InputIterator first, InputIterator last,
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|                    const EqualityComparable& value) {
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|   return std::find(first, last, value) != last;
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| }
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| 
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| // rotate()
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| //
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| // Performs a left rotation on a range of elements (`first`, `last`) such that
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| // `middle` is now the first element. `rotate()` returns an iterator pointing to
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| // the first element before rotation. This function is exactly the same as
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| // `std::rotate`, but fixes a bug in gcc
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| // <= 4.9 where `std::rotate` returns `void` instead of an iterator.
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| //
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| // The complexity of this algorithm is the same as that of `std::rotate`, but if
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| // `ForwardIterator` is not a random-access iterator, then `absl::rotate`
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| // performs an additional pass over the range to construct the return value.
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| template <typename ForwardIterator>
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| ForwardIterator rotate(ForwardIterator first, ForwardIterator middle,
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|                        ForwardIterator last) {
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|   return algorithm_internal::RotateImpl(
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|       first, middle, last,
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|       std::is_same<decltype(std::rotate(first, middle, last)),
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|                    ForwardIterator>());
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| }
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| 
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| ABSL_NAMESPACE_END
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| }  // namespace absl
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| 
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| #endif  // ABSL_ALGORITHM_ALGORITHM_H_
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