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| #ifndef ABSL_ALGORITHM_CONTAINER_H_ |
| #define ABSL_ALGORITHM_CONTAINER_H_ |
|
|
| #include <algorithm> |
| #include <cassert> |
| #include <iterator> |
| #include <numeric> |
| #include <type_traits> |
| #include <unordered_map> |
| #include <unordered_set> |
| #include <utility> |
| #include <vector> |
|
|
| #include "absl/algorithm/algorithm.h" |
| #include "absl/base/macros.h" |
| #include "absl/base/nullability.h" |
| #include "absl/meta/type_traits.h" |
|
|
| namespace absl { |
| ABSL_NAMESPACE_BEGIN |
| namespace container_algorithm_internal { |
|
|
| |
| |
| |
| using std::begin; |
| using std::end; |
|
|
| |
| |
| |
| template <typename C> |
| using ContainerIter = decltype(begin(std::declval<C&>())); |
|
|
| |
| |
| template <typename C1, typename C2> |
| using ContainerIterPairType = |
| decltype(std::make_pair(ContainerIter<C1>(), ContainerIter<C2>())); |
|
|
| template <typename C> |
| using ContainerDifferenceType = decltype(std::distance( |
| std::declval<ContainerIter<C>>(), std::declval<ContainerIter<C>>())); |
|
|
| template <typename C> |
| using ContainerPointerType = |
| typename std::iterator_traits<ContainerIter<C>>::pointer; |
|
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|
|
| template <typename C> |
| ContainerIter<C> c_begin(C& c) { |
| return begin(c); |
| } |
|
|
| template <typename C> |
| ContainerIter<C> c_end(C& c) { |
| return end(c); |
| } |
|
|
| template <typename T> |
| struct IsUnorderedContainer : std::false_type {}; |
|
|
| template <class Key, class T, class Hash, class KeyEqual, class Allocator> |
| struct IsUnorderedContainer< |
| std::unordered_map<Key, T, Hash, KeyEqual, Allocator>> : std::true_type {}; |
|
|
| template <class Key, class Hash, class KeyEqual, class Allocator> |
| struct IsUnorderedContainer<std::unordered_set<Key, Hash, KeyEqual, Allocator>> |
| : std::true_type {}; |
|
|
| } |
|
|
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|
|
| |
| |
| |
| |
| template <typename C, typename EqualityComparable> |
| bool c_linear_search(const C& c, EqualityComparable&& value) { |
| return linear_search(container_algorithm_internal::c_begin(c), |
| container_algorithm_internal::c_end(c), |
| std::forward<EqualityComparable>(value)); |
| } |
|
|
| |
| |
| |
|
|
| |
| |
| |
| |
| template <typename C> |
| container_algorithm_internal::ContainerDifferenceType<const C> c_distance( |
| const C& c) { |
| return std::distance(container_algorithm_internal::c_begin(c), |
| container_algorithm_internal::c_end(c)); |
| } |
|
|
| |
| |
| |
|
|
| |
| |
| |
| |
| template <typename C, typename Pred> |
| bool c_all_of(const C& c, Pred&& pred) { |
| return std::all_of(container_algorithm_internal::c_begin(c), |
| container_algorithm_internal::c_end(c), |
| std::forward<Pred>(pred)); |
| } |
|
|
| |
| |
| |
| |
| template <typename C, typename Pred> |
| bool c_any_of(const C& c, Pred&& pred) { |
| return std::any_of(container_algorithm_internal::c_begin(c), |
| container_algorithm_internal::c_end(c), |
| std::forward<Pred>(pred)); |
| } |
|
|
| |
| |
| |
| |
| template <typename C, typename Pred> |
| bool c_none_of(const C& c, Pred&& pred) { |
| return std::none_of(container_algorithm_internal::c_begin(c), |
| container_algorithm_internal::c_end(c), |
| std::forward<Pred>(pred)); |
| } |
|
|
| |
| |
| |
| |
| template <typename C, typename Function> |
| decay_t<Function> c_for_each(C&& c, Function&& f) { |
| return std::for_each(container_algorithm_internal::c_begin(c), |
| container_algorithm_internal::c_end(c), |
| std::forward<Function>(f)); |
| } |
|
|
| |
| |
| |
| |
| template <typename C, typename T> |
| container_algorithm_internal::ContainerIter<C> c_find(C& c, T&& value) { |
| return std::find(container_algorithm_internal::c_begin(c), |
| container_algorithm_internal::c_end(c), |
| std::forward<T>(value)); |
| } |
|
|
| |
| |
| |
| |
| template <typename C, typename Pred> |
| container_algorithm_internal::ContainerIter<C> c_find_if(C& c, Pred&& pred) { |
| return std::find_if(container_algorithm_internal::c_begin(c), |
| container_algorithm_internal::c_end(c), |
| std::forward<Pred>(pred)); |
| } |
|
|
| |
| |
| |
| |
| template <typename C, typename Pred> |
| container_algorithm_internal::ContainerIter<C> c_find_if_not(C& c, |
| Pred&& pred) { |
| return std::find_if_not(container_algorithm_internal::c_begin(c), |
| container_algorithm_internal::c_end(c), |
| std::forward<Pred>(pred)); |
| } |
|
|
| |
| |
| |
| |
| template <typename Sequence1, typename Sequence2> |
| container_algorithm_internal::ContainerIter<Sequence1> c_find_end( |
| Sequence1& sequence, Sequence2& subsequence) { |
| return std::find_end(container_algorithm_internal::c_begin(sequence), |
| container_algorithm_internal::c_end(sequence), |
| container_algorithm_internal::c_begin(subsequence), |
| container_algorithm_internal::c_end(subsequence)); |
| } |
|
|
| |
| |
| template <typename Sequence1, typename Sequence2, typename BinaryPredicate> |
| container_algorithm_internal::ContainerIter<Sequence1> c_find_end( |
| Sequence1& sequence, Sequence2& subsequence, BinaryPredicate&& pred) { |
| return std::find_end(container_algorithm_internal::c_begin(sequence), |
| container_algorithm_internal::c_end(sequence), |
| container_algorithm_internal::c_begin(subsequence), |
| container_algorithm_internal::c_end(subsequence), |
| std::forward<BinaryPredicate>(pred)); |
| } |
|
|
| |
| |
| |
| |
| |
| template <typename C1, typename C2> |
| container_algorithm_internal::ContainerIter<C1> c_find_first_of(C1& container, |
| C2& options) { |
| return std::find_first_of(container_algorithm_internal::c_begin(container), |
| container_algorithm_internal::c_end(container), |
| container_algorithm_internal::c_begin(options), |
| container_algorithm_internal::c_end(options)); |
| } |
|
|
| |
| |
| template <typename C1, typename C2, typename BinaryPredicate> |
| container_algorithm_internal::ContainerIter<C1> c_find_first_of( |
| C1& container, C2& options, BinaryPredicate&& pred) { |
| return std::find_first_of(container_algorithm_internal::c_begin(container), |
| container_algorithm_internal::c_end(container), |
| container_algorithm_internal::c_begin(options), |
| container_algorithm_internal::c_end(options), |
| std::forward<BinaryPredicate>(pred)); |
| } |
|
|
| |
| |
| |
| |
| template <typename Sequence> |
| container_algorithm_internal::ContainerIter<Sequence> c_adjacent_find( |
| Sequence& sequence) { |
| return std::adjacent_find(container_algorithm_internal::c_begin(sequence), |
| container_algorithm_internal::c_end(sequence)); |
| } |
|
|
| |
| |
| template <typename Sequence, typename BinaryPredicate> |
| container_algorithm_internal::ContainerIter<Sequence> c_adjacent_find( |
| Sequence& sequence, BinaryPredicate&& pred) { |
| return std::adjacent_find(container_algorithm_internal::c_begin(sequence), |
| container_algorithm_internal::c_end(sequence), |
| std::forward<BinaryPredicate>(pred)); |
| } |
|
|
| |
| |
| |
| |
| template <typename C, typename T> |
| container_algorithm_internal::ContainerDifferenceType<const C> c_count( |
| const C& c, T&& value) { |
| return std::count(container_algorithm_internal::c_begin(c), |
| container_algorithm_internal::c_end(c), |
| std::forward<T>(value)); |
| } |
|
|
| |
| |
| |
| |
| template <typename C, typename Pred> |
| container_algorithm_internal::ContainerDifferenceType<const C> c_count_if( |
| const C& c, Pred&& pred) { |
| return std::count_if(container_algorithm_internal::c_begin(c), |
| container_algorithm_internal::c_end(c), |
| std::forward<Pred>(pred)); |
| } |
|
|
| |
| |
| |
| |
| |
| template <typename C1, typename C2> |
| container_algorithm_internal::ContainerIterPairType<C1, C2> c_mismatch(C1& c1, |
| C2& c2) { |
| return std::mismatch(container_algorithm_internal::c_begin(c1), |
| container_algorithm_internal::c_end(c1), |
| container_algorithm_internal::c_begin(c2), |
| container_algorithm_internal::c_end(c2)); |
| } |
|
|
| |
| |
| |
| template <typename C1, typename C2, typename BinaryPredicate> |
| container_algorithm_internal::ContainerIterPairType<C1, C2> c_mismatch( |
| C1& c1, C2& c2, BinaryPredicate pred) { |
| return std::mismatch(container_algorithm_internal::c_begin(c1), |
| container_algorithm_internal::c_end(c1), |
| container_algorithm_internal::c_begin(c2), |
| container_algorithm_internal::c_end(c2), pred); |
| } |
|
|
| |
| |
| |
| |
| template <typename C1, typename C2> |
| bool c_equal(const C1& c1, const C2& c2) { |
| return std::equal(container_algorithm_internal::c_begin(c1), |
| container_algorithm_internal::c_end(c1), |
| container_algorithm_internal::c_begin(c2), |
| container_algorithm_internal::c_end(c2)); |
| } |
|
|
| |
| |
| template <typename C1, typename C2, typename BinaryPredicate> |
| bool c_equal(const C1& c1, const C2& c2, BinaryPredicate&& pred) { |
| return std::equal(container_algorithm_internal::c_begin(c1), |
| container_algorithm_internal::c_end(c1), |
| container_algorithm_internal::c_begin(c2), |
| container_algorithm_internal::c_end(c2), |
| std::forward<BinaryPredicate>(pred)); |
| } |
|
|
| |
| |
| |
| |
| template <typename C1, typename C2> |
| bool c_is_permutation(const C1& c1, const C2& c2) { |
| return std::is_permutation(container_algorithm_internal::c_begin(c1), |
| container_algorithm_internal::c_end(c1), |
| container_algorithm_internal::c_begin(c2), |
| container_algorithm_internal::c_end(c2)); |
| } |
|
|
| |
| |
| template <typename C1, typename C2, typename BinaryPredicate> |
| bool c_is_permutation(const C1& c1, const C2& c2, BinaryPredicate&& pred) { |
| return std::is_permutation(container_algorithm_internal::c_begin(c1), |
| container_algorithm_internal::c_end(c1), |
| container_algorithm_internal::c_begin(c2), |
| container_algorithm_internal::c_end(c2), |
| std::forward<BinaryPredicate>(pred)); |
| } |
|
|
| |
| |
| |
| |
| template <typename Sequence1, typename Sequence2> |
| container_algorithm_internal::ContainerIter<Sequence1> c_search( |
| Sequence1& sequence, Sequence2& subsequence) { |
| return std::search(container_algorithm_internal::c_begin(sequence), |
| container_algorithm_internal::c_end(sequence), |
| container_algorithm_internal::c_begin(subsequence), |
| container_algorithm_internal::c_end(subsequence)); |
| } |
|
|
| |
| |
| template <typename Sequence1, typename Sequence2, typename BinaryPredicate> |
| container_algorithm_internal::ContainerIter<Sequence1> c_search( |
| Sequence1& sequence, Sequence2& subsequence, BinaryPredicate&& pred) { |
| return std::search(container_algorithm_internal::c_begin(sequence), |
| container_algorithm_internal::c_end(sequence), |
| container_algorithm_internal::c_begin(subsequence), |
| container_algorithm_internal::c_end(subsequence), |
| std::forward<BinaryPredicate>(pred)); |
| } |
|
|
| |
| |
| |
| |
| template <typename Sequence, typename Size, typename T> |
| container_algorithm_internal::ContainerIter<Sequence> c_search_n( |
| Sequence& sequence, Size count, T&& value) { |
| return std::search_n(container_algorithm_internal::c_begin(sequence), |
| container_algorithm_internal::c_end(sequence), count, |
| std::forward<T>(value)); |
| } |
|
|
| |
| |
| template <typename Sequence, typename Size, typename T, |
| typename BinaryPredicate> |
| container_algorithm_internal::ContainerIter<Sequence> c_search_n( |
| Sequence& sequence, Size count, T&& value, BinaryPredicate&& pred) { |
| return std::search_n(container_algorithm_internal::c_begin(sequence), |
| container_algorithm_internal::c_end(sequence), count, |
| std::forward<T>(value), |
| std::forward<BinaryPredicate>(pred)); |
| } |
|
|
| |
| |
| |
|
|
| |
| |
| |
| |
| template <typename InputSequence, typename OutputIterator> |
| OutputIterator c_copy(const InputSequence& input, OutputIterator output) { |
| return std::copy(container_algorithm_internal::c_begin(input), |
| container_algorithm_internal::c_end(input), output); |
| } |
|
|
| |
| |
| |
| |
| template <typename C, typename Size, typename OutputIterator> |
| OutputIterator c_copy_n(const C& input, Size n, OutputIterator output) { |
| return std::copy_n(container_algorithm_internal::c_begin(input), n, output); |
| } |
|
|
| |
| |
| |
| |
| template <typename InputSequence, typename OutputIterator, typename Pred> |
| OutputIterator c_copy_if(const InputSequence& input, OutputIterator output, |
| Pred&& pred) { |
| return std::copy_if(container_algorithm_internal::c_begin(input), |
| container_algorithm_internal::c_end(input), output, |
| std::forward<Pred>(pred)); |
| } |
|
|
| |
| |
| |
| |
| template <typename C, typename BidirectionalIterator> |
| BidirectionalIterator c_copy_backward(const C& src, |
| BidirectionalIterator dest) { |
| return std::copy_backward(container_algorithm_internal::c_begin(src), |
| container_algorithm_internal::c_end(src), dest); |
| } |
|
|
| |
| |
| |
| |
| template <typename C, typename OutputIterator> |
| OutputIterator c_move(C&& src, OutputIterator dest) { |
| return std::move(container_algorithm_internal::c_begin(src), |
| container_algorithm_internal::c_end(src), dest); |
| } |
|
|
| |
| |
| |
| |
| template <typename C, typename BidirectionalIterator> |
| BidirectionalIterator c_move_backward(C&& src, BidirectionalIterator dest) { |
| return std::move_backward(container_algorithm_internal::c_begin(src), |
| container_algorithm_internal::c_end(src), dest); |
| } |
|
|
| |
| |
| |
| |
| |
| template <typename C1, typename C2> |
| container_algorithm_internal::ContainerIter<C2> c_swap_ranges(C1& c1, C2& c2) { |
| auto first1 = container_algorithm_internal::c_begin(c1); |
| auto last1 = container_algorithm_internal::c_end(c1); |
| auto first2 = container_algorithm_internal::c_begin(c2); |
| auto last2 = container_algorithm_internal::c_end(c2); |
|
|
| using std::swap; |
| for (; first1 != last1 && first2 != last2; ++first1, (void)++first2) { |
| swap(*first1, *first2); |
| } |
| return first2; |
| } |
|
|
| |
| |
| |
| |
| |
| |
| template <typename InputSequence, typename OutputIterator, typename UnaryOp> |
| OutputIterator c_transform(const InputSequence& input, OutputIterator output, |
| UnaryOp&& unary_op) { |
| return std::transform(container_algorithm_internal::c_begin(input), |
| container_algorithm_internal::c_end(input), output, |
| std::forward<UnaryOp>(unary_op)); |
| } |
|
|
| |
| |
| |
| template <typename InputSequence1, typename InputSequence2, |
| typename OutputIterator, typename BinaryOp> |
| OutputIterator c_transform(const InputSequence1& input1, |
| const InputSequence2& input2, OutputIterator output, |
| BinaryOp&& binary_op) { |
| auto first1 = container_algorithm_internal::c_begin(input1); |
| auto last1 = container_algorithm_internal::c_end(input1); |
| auto first2 = container_algorithm_internal::c_begin(input2); |
| auto last2 = container_algorithm_internal::c_end(input2); |
| for (; first1 != last1 && first2 != last2; |
| ++first1, (void)++first2, ++output) { |
| *output = binary_op(*first1, *first2); |
| } |
|
|
| return output; |
| } |
|
|
| |
| |
| |
| |
| |
| template <typename Sequence, typename T> |
| void c_replace(Sequence& sequence, const T& old_value, const T& new_value) { |
| std::replace(container_algorithm_internal::c_begin(sequence), |
| container_algorithm_internal::c_end(sequence), old_value, |
| new_value); |
| } |
|
|
| |
| |
| |
| |
| |
| template <typename C, typename Pred, typename T> |
| void c_replace_if(C& c, Pred&& pred, T&& new_value) { |
| std::replace_if(container_algorithm_internal::c_begin(c), |
| container_algorithm_internal::c_end(c), |
| std::forward<Pred>(pred), std::forward<T>(new_value)); |
| } |
|
|
| |
| |
| |
| |
| |
| template <typename C, typename OutputIterator, typename T> |
| OutputIterator c_replace_copy(const C& c, OutputIterator result, T&& old_value, |
| T&& new_value) { |
| return std::replace_copy(container_algorithm_internal::c_begin(c), |
| container_algorithm_internal::c_end(c), result, |
| std::forward<T>(old_value), |
| std::forward<T>(new_value)); |
| } |
|
|
| |
| |
| |
| |
| |
| template <typename C, typename OutputIterator, typename Pred, typename T> |
| OutputIterator c_replace_copy_if(const C& c, OutputIterator result, Pred&& pred, |
| const T& new_value) { |
| return std::replace_copy_if(container_algorithm_internal::c_begin(c), |
| container_algorithm_internal::c_end(c), result, |
| std::forward<Pred>(pred), new_value); |
| } |
|
|
| |
| |
| |
| |
| template <typename C, typename T> |
| void c_fill(C& c, const T& value) { |
| std::fill(container_algorithm_internal::c_begin(c), |
| container_algorithm_internal::c_end(c), value); |
| } |
|
|
| |
| |
| |
| |
| template <typename C, typename Size, typename T> |
| void c_fill_n(C& c, Size n, const T& value) { |
| std::fill_n(container_algorithm_internal::c_begin(c), n, value); |
| } |
|
|
| |
| |
| |
| |
| template <typename C, typename Generator> |
| void c_generate(C& c, Generator&& gen) { |
| std::generate(container_algorithm_internal::c_begin(c), |
| container_algorithm_internal::c_end(c), |
| std::forward<Generator>(gen)); |
| } |
|
|
| |
| |
| |
| |
| |
| template <typename C, typename Size, typename Generator> |
| container_algorithm_internal::ContainerIter<C> c_generate_n(C& c, Size n, |
| Generator&& gen) { |
| return std::generate_n(container_algorithm_internal::c_begin(c), n, |
| std::forward<Generator>(gen)); |
| } |
|
|
| |
| |
| |
| |
|
|
| |
| |
| |
| |
| |
| template <typename C, typename OutputIterator, typename T> |
| OutputIterator c_remove_copy(const C& c, OutputIterator result, |
| const T& value) { |
| return std::remove_copy(container_algorithm_internal::c_begin(c), |
| container_algorithm_internal::c_end(c), result, |
| value); |
| } |
|
|
| |
| |
| |
| |
| |
| template <typename C, typename OutputIterator, typename Pred> |
| OutputIterator c_remove_copy_if(const C& c, OutputIterator result, |
| Pred&& pred) { |
| return std::remove_copy_if(container_algorithm_internal::c_begin(c), |
| container_algorithm_internal::c_end(c), result, |
| std::forward<Pred>(pred)); |
| } |
|
|
| |
| |
| |
| |
| |
| template <typename C, typename OutputIterator> |
| OutputIterator c_unique_copy(const C& c, OutputIterator result) { |
| return std::unique_copy(container_algorithm_internal::c_begin(c), |
| container_algorithm_internal::c_end(c), result); |
| } |
|
|
| |
| |
| template <typename C, typename OutputIterator, typename BinaryPredicate> |
| OutputIterator c_unique_copy(const C& c, OutputIterator result, |
| BinaryPredicate&& pred) { |
| return std::unique_copy(container_algorithm_internal::c_begin(c), |
| container_algorithm_internal::c_end(c), result, |
| std::forward<BinaryPredicate>(pred)); |
| } |
|
|
| |
| |
| |
| |
| template <typename Sequence> |
| void c_reverse(Sequence& sequence) { |
| std::reverse(container_algorithm_internal::c_begin(sequence), |
| container_algorithm_internal::c_end(sequence)); |
| } |
|
|
| |
| |
| |
| |
| template <typename C, typename OutputIterator> |
| OutputIterator c_reverse_copy(const C& sequence, OutputIterator result) { |
| return std::reverse_copy(container_algorithm_internal::c_begin(sequence), |
| container_algorithm_internal::c_end(sequence), |
| result); |
| } |
|
|
| |
| |
| |
| |
| |
| template <typename C, |
| typename Iterator = container_algorithm_internal::ContainerIter<C>> |
| Iterator c_rotate(C& sequence, Iterator middle) { |
| return absl::rotate(container_algorithm_internal::c_begin(sequence), middle, |
| container_algorithm_internal::c_end(sequence)); |
| } |
|
|
| |
| |
| |
| |
| |
| template <typename C, typename OutputIterator> |
| OutputIterator c_rotate_copy( |
| const C& sequence, |
| container_algorithm_internal::ContainerIter<const C> middle, |
| OutputIterator result) { |
| return std::rotate_copy(container_algorithm_internal::c_begin(sequence), |
| middle, container_algorithm_internal::c_end(sequence), |
| result); |
| } |
|
|
| |
| |
| |
| |
| |
| template <typename RandomAccessContainer, typename UniformRandomBitGenerator> |
| void c_shuffle(RandomAccessContainer& c, UniformRandomBitGenerator&& gen) { |
| std::shuffle(container_algorithm_internal::c_begin(c), |
| container_algorithm_internal::c_end(c), |
| std::forward<UniformRandomBitGenerator>(gen)); |
| } |
|
|
| |
| |
| |
| |
| |
| template <typename C, typename OutputIterator, typename Distance, |
| typename UniformRandomBitGenerator> |
| OutputIterator c_sample(const C& c, OutputIterator result, Distance n, |
| UniformRandomBitGenerator&& gen) { |
| #if defined(__cpp_lib_sample) && __cpp_lib_sample >= 201603L |
| return std::sample(container_algorithm_internal::c_begin(c), |
| container_algorithm_internal::c_end(c), result, n, |
| std::forward<UniformRandomBitGenerator>(gen)); |
| #else |
| |
| auto first = container_algorithm_internal::c_begin(c); |
| Distance unsampled_elements = c_distance(c); |
| n = (std::min)(n, unsampled_elements); |
| for (; n != 0; ++first) { |
| Distance r = |
| std::uniform_int_distribution<Distance>(0, --unsampled_elements)(gen); |
| if (r < n) { |
| *result++ = *first; |
| --n; |
| } |
| } |
| return result; |
| #endif |
| } |
|
|
| |
| |
| |
|
|
| |
| |
| |
| |
| |
| template <typename C, typename Pred> |
| bool c_is_partitioned(const C& c, Pred&& pred) { |
| return std::is_partitioned(container_algorithm_internal::c_begin(c), |
| container_algorithm_internal::c_end(c), |
| std::forward<Pred>(pred)); |
| } |
|
|
| |
| |
| |
| |
| |
| |
| template <typename C, typename Pred> |
| container_algorithm_internal::ContainerIter<C> c_partition(C& c, Pred&& pred) { |
| return std::partition(container_algorithm_internal::c_begin(c), |
| container_algorithm_internal::c_end(c), |
| std::forward<Pred>(pred)); |
| } |
|
|
| |
| |
| |
| |
| |
| |
| |
| template <typename C, typename Pred> |
| container_algorithm_internal::ContainerIter<C> c_stable_partition(C& c, |
| Pred&& pred) { |
| return std::stable_partition(container_algorithm_internal::c_begin(c), |
| container_algorithm_internal::c_end(c), |
| std::forward<Pred>(pred)); |
| } |
|
|
| |
| |
| |
| |
| |
|
|
| template <typename C, typename OutputIterator1, typename OutputIterator2, |
| typename Pred> |
| std::pair<OutputIterator1, OutputIterator2> c_partition_copy( |
| const C& c, OutputIterator1 out_true, OutputIterator2 out_false, |
| Pred&& pred) { |
| return std::partition_copy(container_algorithm_internal::c_begin(c), |
| container_algorithm_internal::c_end(c), out_true, |
| out_false, std::forward<Pred>(pred)); |
| } |
|
|
| |
| |
| |
| |
| |
| template <typename C, typename Pred> |
| container_algorithm_internal::ContainerIter<C> c_partition_point(C& c, |
| Pred&& pred) { |
| return std::partition_point(container_algorithm_internal::c_begin(c), |
| container_algorithm_internal::c_end(c), |
| std::forward<Pred>(pred)); |
| } |
|
|
| |
| |
| |
|
|
| |
| |
| |
| |
| template <typename C> |
| void c_sort(C& c) { |
| std::sort(container_algorithm_internal::c_begin(c), |
| container_algorithm_internal::c_end(c)); |
| } |
|
|
| |
| |
| template <typename C, typename LessThan> |
| void c_sort(C& c, LessThan&& comp) { |
| std::sort(container_algorithm_internal::c_begin(c), |
| container_algorithm_internal::c_end(c), |
| std::forward<LessThan>(comp)); |
| } |
|
|
| |
| |
| |
| |
| |
| template <typename C> |
| void c_stable_sort(C& c) { |
| std::stable_sort(container_algorithm_internal::c_begin(c), |
| container_algorithm_internal::c_end(c)); |
| } |
|
|
| |
| |
| template <typename C, typename LessThan> |
| void c_stable_sort(C& c, LessThan&& comp) { |
| std::stable_sort(container_algorithm_internal::c_begin(c), |
| container_algorithm_internal::c_end(c), |
| std::forward<LessThan>(comp)); |
| } |
|
|
| |
| |
| |
| |
| template <typename C> |
| bool c_is_sorted(const C& c) { |
| return std::is_sorted(container_algorithm_internal::c_begin(c), |
| container_algorithm_internal::c_end(c)); |
| } |
|
|
| |
| |
| template <typename C, typename LessThan> |
| bool c_is_sorted(const C& c, LessThan&& comp) { |
| return std::is_sorted(container_algorithm_internal::c_begin(c), |
| container_algorithm_internal::c_end(c), |
| std::forward<LessThan>(comp)); |
| } |
|
|
| |
| |
| |
| |
| |
| template <typename RandomAccessContainer> |
| void c_partial_sort( |
| RandomAccessContainer& sequence, |
| container_algorithm_internal::ContainerIter<RandomAccessContainer> middle) { |
| std::partial_sort(container_algorithm_internal::c_begin(sequence), middle, |
| container_algorithm_internal::c_end(sequence)); |
| } |
|
|
| |
| |
| template <typename RandomAccessContainer, typename LessThan> |
| void c_partial_sort( |
| RandomAccessContainer& sequence, |
| container_algorithm_internal::ContainerIter<RandomAccessContainer> middle, |
| LessThan&& comp) { |
| std::partial_sort(container_algorithm_internal::c_begin(sequence), middle, |
| container_algorithm_internal::c_end(sequence), |
| std::forward<LessThan>(comp)); |
| } |
|
|
| |
| |
| |
| |
| |
| |
| |
| template <typename C, typename RandomAccessContainer> |
| container_algorithm_internal::ContainerIter<RandomAccessContainer> |
| c_partial_sort_copy(const C& sequence, RandomAccessContainer& result) { |
| return std::partial_sort_copy(container_algorithm_internal::c_begin(sequence), |
| container_algorithm_internal::c_end(sequence), |
| container_algorithm_internal::c_begin(result), |
| container_algorithm_internal::c_end(result)); |
| } |
|
|
| |
| |
| template <typename C, typename RandomAccessContainer, typename LessThan> |
| container_algorithm_internal::ContainerIter<RandomAccessContainer> |
| c_partial_sort_copy(const C& sequence, RandomAccessContainer& result, |
| LessThan&& comp) { |
| return std::partial_sort_copy(container_algorithm_internal::c_begin(sequence), |
| container_algorithm_internal::c_end(sequence), |
| container_algorithm_internal::c_begin(result), |
| container_algorithm_internal::c_end(result), |
| std::forward<LessThan>(comp)); |
| } |
|
|
| |
| |
| |
| |
| |
| template <typename C> |
| container_algorithm_internal::ContainerIter<C> c_is_sorted_until(C& c) { |
| return std::is_sorted_until(container_algorithm_internal::c_begin(c), |
| container_algorithm_internal::c_end(c)); |
| } |
|
|
| |
| |
| template <typename C, typename LessThan> |
| container_algorithm_internal::ContainerIter<C> c_is_sorted_until( |
| C& c, LessThan&& comp) { |
| return std::is_sorted_until(container_algorithm_internal::c_begin(c), |
| container_algorithm_internal::c_end(c), |
| std::forward<LessThan>(comp)); |
| } |
|
|
| |
| |
| |
| |
| |
| |
| |
| template <typename RandomAccessContainer> |
| void c_nth_element( |
| RandomAccessContainer& sequence, |
| container_algorithm_internal::ContainerIter<RandomAccessContainer> nth) { |
| std::nth_element(container_algorithm_internal::c_begin(sequence), nth, |
| container_algorithm_internal::c_end(sequence)); |
| } |
|
|
| |
| |
| template <typename RandomAccessContainer, typename LessThan> |
| void c_nth_element( |
| RandomAccessContainer& sequence, |
| container_algorithm_internal::ContainerIter<RandomAccessContainer> nth, |
| LessThan&& comp) { |
| std::nth_element(container_algorithm_internal::c_begin(sequence), nth, |
| container_algorithm_internal::c_end(sequence), |
| std::forward<LessThan>(comp)); |
| } |
|
|
| |
| |
| |
|
|
| |
| |
| |
| |
| |
| template <typename Sequence, typename T> |
| container_algorithm_internal::ContainerIter<Sequence> c_lower_bound( |
| Sequence& sequence, const T& value) { |
| return std::lower_bound(container_algorithm_internal::c_begin(sequence), |
| container_algorithm_internal::c_end(sequence), value); |
| } |
|
|
| |
| |
| template <typename Sequence, typename T, typename LessThan> |
| container_algorithm_internal::ContainerIter<Sequence> c_lower_bound( |
| Sequence& sequence, const T& value, LessThan&& comp) { |
| return std::lower_bound(container_algorithm_internal::c_begin(sequence), |
| container_algorithm_internal::c_end(sequence), value, |
| std::forward<LessThan>(comp)); |
| } |
|
|
| |
| |
| |
| |
| |
| template <typename Sequence, typename T> |
| container_algorithm_internal::ContainerIter<Sequence> c_upper_bound( |
| Sequence& sequence, const T& value) { |
| return std::upper_bound(container_algorithm_internal::c_begin(sequence), |
| container_algorithm_internal::c_end(sequence), value); |
| } |
|
|
| |
| |
| template <typename Sequence, typename T, typename LessThan> |
| container_algorithm_internal::ContainerIter<Sequence> c_upper_bound( |
| Sequence& sequence, const T& value, LessThan&& comp) { |
| return std::upper_bound(container_algorithm_internal::c_begin(sequence), |
| container_algorithm_internal::c_end(sequence), value, |
| std::forward<LessThan>(comp)); |
| } |
|
|
| |
| |
| |
| |
| |
| template <typename Sequence, typename T> |
| container_algorithm_internal::ContainerIterPairType<Sequence, Sequence> |
| c_equal_range(Sequence& sequence, const T& value) { |
| return std::equal_range(container_algorithm_internal::c_begin(sequence), |
| container_algorithm_internal::c_end(sequence), value); |
| } |
|
|
| |
| |
| template <typename Sequence, typename T, typename LessThan> |
| container_algorithm_internal::ContainerIterPairType<Sequence, Sequence> |
| c_equal_range(Sequence& sequence, const T& value, LessThan&& comp) { |
| return std::equal_range(container_algorithm_internal::c_begin(sequence), |
| container_algorithm_internal::c_end(sequence), value, |
| std::forward<LessThan>(comp)); |
| } |
|
|
| |
| |
| |
| |
| |
| template <typename Sequence, typename T> |
| bool c_binary_search(const Sequence& sequence, const T& value) { |
| return std::binary_search(container_algorithm_internal::c_begin(sequence), |
| container_algorithm_internal::c_end(sequence), |
| value); |
| } |
|
|
| |
| |
| template <typename Sequence, typename T, typename LessThan> |
| bool c_binary_search(const Sequence& sequence, const T& value, |
| LessThan&& comp) { |
| return std::binary_search(container_algorithm_internal::c_begin(sequence), |
| container_algorithm_internal::c_end(sequence), |
| value, std::forward<LessThan>(comp)); |
| } |
|
|
| |
| |
| |
|
|
| |
| |
| |
| |
| template <typename C1, typename C2, typename OutputIterator> |
| OutputIterator c_merge(const C1& c1, const C2& c2, OutputIterator result) { |
| return std::merge(container_algorithm_internal::c_begin(c1), |
| container_algorithm_internal::c_end(c1), |
| container_algorithm_internal::c_begin(c2), |
| container_algorithm_internal::c_end(c2), result); |
| } |
|
|
| |
| |
| template <typename C1, typename C2, typename OutputIterator, typename LessThan> |
| OutputIterator c_merge(const C1& c1, const C2& c2, OutputIterator result, |
| LessThan&& comp) { |
| return std::merge(container_algorithm_internal::c_begin(c1), |
| container_algorithm_internal::c_end(c1), |
| container_algorithm_internal::c_begin(c2), |
| container_algorithm_internal::c_end(c2), result, |
| std::forward<LessThan>(comp)); |
| } |
|
|
| |
| |
| |
| |
| template <typename C> |
| void c_inplace_merge(C& c, |
| container_algorithm_internal::ContainerIter<C> middle) { |
| std::inplace_merge(container_algorithm_internal::c_begin(c), middle, |
| container_algorithm_internal::c_end(c)); |
| } |
|
|
| |
| |
| template <typename C, typename LessThan> |
| void c_inplace_merge(C& c, |
| container_algorithm_internal::ContainerIter<C> middle, |
| LessThan&& comp) { |
| std::inplace_merge(container_algorithm_internal::c_begin(c), middle, |
| container_algorithm_internal::c_end(c), |
| std::forward<LessThan>(comp)); |
| } |
|
|
| |
| |
| |
| |
| |
| template <typename C1, typename C2> |
| bool c_includes(const C1& c1, const C2& c2) { |
| return std::includes(container_algorithm_internal::c_begin(c1), |
| container_algorithm_internal::c_end(c1), |
| container_algorithm_internal::c_begin(c2), |
| container_algorithm_internal::c_end(c2)); |
| } |
|
|
| |
| |
| template <typename C1, typename C2, typename LessThan> |
| bool c_includes(const C1& c1, const C2& c2, LessThan&& comp) { |
| return std::includes(container_algorithm_internal::c_begin(c1), |
| container_algorithm_internal::c_end(c1), |
| container_algorithm_internal::c_begin(c2), |
| container_algorithm_internal::c_end(c2), |
| std::forward<LessThan>(comp)); |
| } |
|
|
| |
| |
| |
| |
| |
| template <typename C1, typename C2, typename OutputIterator, |
| typename = typename std::enable_if< |
| !container_algorithm_internal::IsUnorderedContainer<C1>::value, |
| void>::type, |
| typename = typename std::enable_if< |
| !container_algorithm_internal::IsUnorderedContainer<C2>::value, |
| void>::type> |
| OutputIterator c_set_union(const C1& c1, const C2& c2, OutputIterator output) { |
| return std::set_union(container_algorithm_internal::c_begin(c1), |
| container_algorithm_internal::c_end(c1), |
| container_algorithm_internal::c_begin(c2), |
| container_algorithm_internal::c_end(c2), output); |
| } |
|
|
| |
| |
| template <typename C1, typename C2, typename OutputIterator, typename LessThan, |
| typename = typename std::enable_if< |
| !container_algorithm_internal::IsUnorderedContainer<C1>::value, |
| void>::type, |
| typename = typename std::enable_if< |
| !container_algorithm_internal::IsUnorderedContainer<C2>::value, |
| void>::type> |
| OutputIterator c_set_union(const C1& c1, const C2& c2, OutputIterator output, |
| LessThan&& comp) { |
| return std::set_union(container_algorithm_internal::c_begin(c1), |
| container_algorithm_internal::c_end(c1), |
| container_algorithm_internal::c_begin(c2), |
| container_algorithm_internal::c_end(c2), output, |
| std::forward<LessThan>(comp)); |
| } |
|
|
| |
| |
| |
| |
| template <typename C1, typename C2, typename OutputIterator, |
| typename = typename std::enable_if< |
| !container_algorithm_internal::IsUnorderedContainer<C1>::value, |
| void>::type, |
| typename = typename std::enable_if< |
| !container_algorithm_internal::IsUnorderedContainer<C2>::value, |
| void>::type> |
| OutputIterator c_set_intersection(const C1& c1, const C2& c2, |
| OutputIterator output) { |
| |
| |
| |
| assert(absl::c_is_sorted(c1)); |
| assert(absl::c_is_sorted(c2)); |
| return std::set_intersection(container_algorithm_internal::c_begin(c1), |
| container_algorithm_internal::c_end(c1), |
| container_algorithm_internal::c_begin(c2), |
| container_algorithm_internal::c_end(c2), output); |
| } |
|
|
| |
| |
| template <typename C1, typename C2, typename OutputIterator, typename LessThan, |
| typename = typename std::enable_if< |
| !container_algorithm_internal::IsUnorderedContainer<C1>::value, |
| void>::type, |
| typename = typename std::enable_if< |
| !container_algorithm_internal::IsUnorderedContainer<C2>::value, |
| void>::type> |
| OutputIterator c_set_intersection(const C1& c1, const C2& c2, |
| OutputIterator output, LessThan&& comp) { |
| |
| |
| |
| assert(absl::c_is_sorted(c1, comp)); |
| assert(absl::c_is_sorted(c2, comp)); |
| return std::set_intersection(container_algorithm_internal::c_begin(c1), |
| container_algorithm_internal::c_end(c1), |
| container_algorithm_internal::c_begin(c2), |
| container_algorithm_internal::c_end(c2), output, |
| std::forward<LessThan>(comp)); |
| } |
|
|
| |
| |
| |
| |
| |
| template <typename C1, typename C2, typename OutputIterator, |
| typename = typename std::enable_if< |
| !container_algorithm_internal::IsUnorderedContainer<C1>::value, |
| void>::type, |
| typename = typename std::enable_if< |
| !container_algorithm_internal::IsUnorderedContainer<C2>::value, |
| void>::type> |
| OutputIterator c_set_difference(const C1& c1, const C2& c2, |
| OutputIterator output) { |
| return std::set_difference(container_algorithm_internal::c_begin(c1), |
| container_algorithm_internal::c_end(c1), |
| container_algorithm_internal::c_begin(c2), |
| container_algorithm_internal::c_end(c2), output); |
| } |
|
|
| |
| |
| template <typename C1, typename C2, typename OutputIterator, typename LessThan, |
| typename = typename std::enable_if< |
| !container_algorithm_internal::IsUnorderedContainer<C1>::value, |
| void>::type, |
| typename = typename std::enable_if< |
| !container_algorithm_internal::IsUnorderedContainer<C2>::value, |
| void>::type> |
| OutputIterator c_set_difference(const C1& c1, const C2& c2, |
| OutputIterator output, LessThan&& comp) { |
| return std::set_difference(container_algorithm_internal::c_begin(c1), |
| container_algorithm_internal::c_end(c1), |
| container_algorithm_internal::c_begin(c2), |
| container_algorithm_internal::c_end(c2), output, |
| std::forward<LessThan>(comp)); |
| } |
|
|
| |
| |
| |
| |
| |
| template <typename C1, typename C2, typename OutputIterator, |
| typename = typename std::enable_if< |
| !container_algorithm_internal::IsUnorderedContainer<C1>::value, |
| void>::type, |
| typename = typename std::enable_if< |
| !container_algorithm_internal::IsUnorderedContainer<C2>::value, |
| void>::type> |
| OutputIterator c_set_symmetric_difference(const C1& c1, const C2& c2, |
| OutputIterator output) { |
| return std::set_symmetric_difference( |
| container_algorithm_internal::c_begin(c1), |
| container_algorithm_internal::c_end(c1), |
| container_algorithm_internal::c_begin(c2), |
| container_algorithm_internal::c_end(c2), output); |
| } |
|
|
| |
| |
| template <typename C1, typename C2, typename OutputIterator, typename LessThan, |
| typename = typename std::enable_if< |
| !container_algorithm_internal::IsUnorderedContainer<C1>::value, |
| void>::type, |
| typename = typename std::enable_if< |
| !container_algorithm_internal::IsUnorderedContainer<C2>::value, |
| void>::type> |
| OutputIterator c_set_symmetric_difference(const C1& c1, const C2& c2, |
| OutputIterator output, |
| LessThan&& comp) { |
| return std::set_symmetric_difference( |
| container_algorithm_internal::c_begin(c1), |
| container_algorithm_internal::c_end(c1), |
| container_algorithm_internal::c_begin(c2), |
| container_algorithm_internal::c_end(c2), output, |
| std::forward<LessThan>(comp)); |
| } |
|
|
| |
| |
| |
|
|
| |
| |
| |
| |
| template <typename RandomAccessContainer> |
| void c_push_heap(RandomAccessContainer& sequence) { |
| std::push_heap(container_algorithm_internal::c_begin(sequence), |
| container_algorithm_internal::c_end(sequence)); |
| } |
|
|
| |
| |
| template <typename RandomAccessContainer, typename LessThan> |
| void c_push_heap(RandomAccessContainer& sequence, LessThan&& comp) { |
| std::push_heap(container_algorithm_internal::c_begin(sequence), |
| container_algorithm_internal::c_end(sequence), |
| std::forward<LessThan>(comp)); |
| } |
|
|
| |
| |
| |
| |
| template <typename RandomAccessContainer> |
| void c_pop_heap(RandomAccessContainer& sequence) { |
| std::pop_heap(container_algorithm_internal::c_begin(sequence), |
| container_algorithm_internal::c_end(sequence)); |
| } |
|
|
| |
| |
| template <typename RandomAccessContainer, typename LessThan> |
| void c_pop_heap(RandomAccessContainer& sequence, LessThan&& comp) { |
| std::pop_heap(container_algorithm_internal::c_begin(sequence), |
| container_algorithm_internal::c_end(sequence), |
| std::forward<LessThan>(comp)); |
| } |
|
|
| |
| |
| |
| |
| template <typename RandomAccessContainer> |
| void c_make_heap(RandomAccessContainer& sequence) { |
| std::make_heap(container_algorithm_internal::c_begin(sequence), |
| container_algorithm_internal::c_end(sequence)); |
| } |
|
|
| |
| |
| template <typename RandomAccessContainer, typename LessThan> |
| void c_make_heap(RandomAccessContainer& sequence, LessThan&& comp) { |
| std::make_heap(container_algorithm_internal::c_begin(sequence), |
| container_algorithm_internal::c_end(sequence), |
| std::forward<LessThan>(comp)); |
| } |
|
|
| |
| |
| |
| |
| template <typename RandomAccessContainer> |
| void c_sort_heap(RandomAccessContainer& sequence) { |
| std::sort_heap(container_algorithm_internal::c_begin(sequence), |
| container_algorithm_internal::c_end(sequence)); |
| } |
|
|
| |
| |
| template <typename RandomAccessContainer, typename LessThan> |
| void c_sort_heap(RandomAccessContainer& sequence, LessThan&& comp) { |
| std::sort_heap(container_algorithm_internal::c_begin(sequence), |
| container_algorithm_internal::c_end(sequence), |
| std::forward<LessThan>(comp)); |
| } |
|
|
| |
| |
| |
| |
| template <typename RandomAccessContainer> |
| bool c_is_heap(const RandomAccessContainer& sequence) { |
| return std::is_heap(container_algorithm_internal::c_begin(sequence), |
| container_algorithm_internal::c_end(sequence)); |
| } |
|
|
| |
| |
| template <typename RandomAccessContainer, typename LessThan> |
| bool c_is_heap(const RandomAccessContainer& sequence, LessThan&& comp) { |
| return std::is_heap(container_algorithm_internal::c_begin(sequence), |
| container_algorithm_internal::c_end(sequence), |
| std::forward<LessThan>(comp)); |
| } |
|
|
| |
| |
| |
| |
| template <typename RandomAccessContainer> |
| container_algorithm_internal::ContainerIter<RandomAccessContainer> |
| c_is_heap_until(RandomAccessContainer& sequence) { |
| return std::is_heap_until(container_algorithm_internal::c_begin(sequence), |
| container_algorithm_internal::c_end(sequence)); |
| } |
|
|
| |
| |
| template <typename RandomAccessContainer, typename LessThan> |
| container_algorithm_internal::ContainerIter<RandomAccessContainer> |
| c_is_heap_until(RandomAccessContainer& sequence, LessThan&& comp) { |
| return std::is_heap_until(container_algorithm_internal::c_begin(sequence), |
| container_algorithm_internal::c_end(sequence), |
| std::forward<LessThan>(comp)); |
| } |
|
|
| |
| |
| |
|
|
| |
| |
| |
| |
| |
| template <typename Sequence> |
| container_algorithm_internal::ContainerIter<Sequence> c_min_element( |
| Sequence& sequence) { |
| return std::min_element(container_algorithm_internal::c_begin(sequence), |
| container_algorithm_internal::c_end(sequence)); |
| } |
|
|
| |
| |
| template <typename Sequence, typename LessThan> |
| container_algorithm_internal::ContainerIter<Sequence> c_min_element( |
| Sequence& sequence, LessThan&& comp) { |
| return std::min_element(container_algorithm_internal::c_begin(sequence), |
| container_algorithm_internal::c_end(sequence), |
| std::forward<LessThan>(comp)); |
| } |
|
|
| |
| |
| |
| |
| |
| template <typename Sequence> |
| container_algorithm_internal::ContainerIter<Sequence> c_max_element( |
| Sequence& sequence) { |
| return std::max_element(container_algorithm_internal::c_begin(sequence), |
| container_algorithm_internal::c_end(sequence)); |
| } |
|
|
| |
| |
| template <typename Sequence, typename LessThan> |
| container_algorithm_internal::ContainerIter<Sequence> c_max_element( |
| Sequence& sequence, LessThan&& comp) { |
| return std::max_element(container_algorithm_internal::c_begin(sequence), |
| container_algorithm_internal::c_end(sequence), |
| std::forward<LessThan>(comp)); |
| } |
|
|
| |
| |
| |
| |
| |
| |
| template <typename C> |
| container_algorithm_internal::ContainerIterPairType<C, C> c_minmax_element( |
| C& c) { |
| return std::minmax_element(container_algorithm_internal::c_begin(c), |
| container_algorithm_internal::c_end(c)); |
| } |
|
|
| |
| |
| template <typename C, typename LessThan> |
| container_algorithm_internal::ContainerIterPairType<C, C> c_minmax_element( |
| C& c, LessThan&& comp) { |
| return std::minmax_element(container_algorithm_internal::c_begin(c), |
| container_algorithm_internal::c_end(c), |
| std::forward<LessThan>(comp)); |
| } |
|
|
| |
| |
| |
|
|
| |
| |
| |
| |
| |
| |
| |
| template <typename Sequence1, typename Sequence2> |
| bool c_lexicographical_compare(const Sequence1& sequence1, |
| const Sequence2& sequence2) { |
| return std::lexicographical_compare( |
| container_algorithm_internal::c_begin(sequence1), |
| container_algorithm_internal::c_end(sequence1), |
| container_algorithm_internal::c_begin(sequence2), |
| container_algorithm_internal::c_end(sequence2)); |
| } |
|
|
| |
| |
| template <typename Sequence1, typename Sequence2, typename LessThan> |
| bool c_lexicographical_compare(const Sequence1& sequence1, |
| const Sequence2& sequence2, LessThan&& comp) { |
| return std::lexicographical_compare( |
| container_algorithm_internal::c_begin(sequence1), |
| container_algorithm_internal::c_end(sequence1), |
| container_algorithm_internal::c_begin(sequence2), |
| container_algorithm_internal::c_end(sequence2), |
| std::forward<LessThan>(comp)); |
| } |
|
|
| |
| |
| |
| |
| |
| template <typename C> |
| bool c_next_permutation(C& c) { |
| return std::next_permutation(container_algorithm_internal::c_begin(c), |
| container_algorithm_internal::c_end(c)); |
| } |
|
|
| |
| |
| template <typename C, typename LessThan> |
| bool c_next_permutation(C& c, LessThan&& comp) { |
| return std::next_permutation(container_algorithm_internal::c_begin(c), |
| container_algorithm_internal::c_end(c), |
| std::forward<LessThan>(comp)); |
| } |
|
|
| |
| |
| |
| |
| |
| template <typename C> |
| bool c_prev_permutation(C& c) { |
| return std::prev_permutation(container_algorithm_internal::c_begin(c), |
| container_algorithm_internal::c_end(c)); |
| } |
|
|
| |
| |
| template <typename C, typename LessThan> |
| bool c_prev_permutation(C& c, LessThan&& comp) { |
| return std::prev_permutation(container_algorithm_internal::c_begin(c), |
| container_algorithm_internal::c_end(c), |
| std::forward<LessThan>(comp)); |
| } |
|
|
| |
| |
| |
|
|
| |
| |
| |
| |
| |
| template <typename Sequence, typename T> |
| void c_iota(Sequence& sequence, const T& value) { |
| std::iota(container_algorithm_internal::c_begin(sequence), |
| container_algorithm_internal::c_end(sequence), value); |
| } |
|
|
| |
| |
| |
| |
| |
| |
| |
| |
| |
| template <typename Sequence, typename T> |
| decay_t<T> c_accumulate(const Sequence& sequence, T&& init) { |
| return std::accumulate(container_algorithm_internal::c_begin(sequence), |
| container_algorithm_internal::c_end(sequence), |
| std::forward<T>(init)); |
| } |
|
|
| |
| |
| template <typename Sequence, typename T, typename BinaryOp> |
| decay_t<T> c_accumulate(const Sequence& sequence, T&& init, |
| BinaryOp&& binary_op) { |
| return std::accumulate(container_algorithm_internal::c_begin(sequence), |
| container_algorithm_internal::c_end(sequence), |
| std::forward<T>(init), |
| std::forward<BinaryOp>(binary_op)); |
| } |
|
|
| |
| |
| |
| |
| |
| |
| |
| |
| template <typename Sequence1, typename Sequence2, typename T> |
| decay_t<T> c_inner_product(const Sequence1& factors1, const Sequence2& factors2, |
| T&& sum) { |
| return std::inner_product(container_algorithm_internal::c_begin(factors1), |
| container_algorithm_internal::c_end(factors1), |
| container_algorithm_internal::c_begin(factors2), |
| std::forward<T>(sum)); |
| } |
|
|
| |
| |
| |
| template <typename Sequence1, typename Sequence2, typename T, |
| typename BinaryOp1, typename BinaryOp2> |
| decay_t<T> c_inner_product(const Sequence1& factors1, const Sequence2& factors2, |
| T&& sum, BinaryOp1&& op1, BinaryOp2&& op2) { |
| return std::inner_product(container_algorithm_internal::c_begin(factors1), |
| container_algorithm_internal::c_end(factors1), |
| container_algorithm_internal::c_begin(factors2), |
| std::forward<T>(sum), std::forward<BinaryOp1>(op1), |
| std::forward<BinaryOp2>(op2)); |
| } |
|
|
| |
| |
| |
| |
| |
| template <typename InputSequence, typename OutputIt> |
| OutputIt c_adjacent_difference(const InputSequence& input, |
| OutputIt output_first) { |
| return std::adjacent_difference(container_algorithm_internal::c_begin(input), |
| container_algorithm_internal::c_end(input), |
| output_first); |
| } |
|
|
| |
| |
| template <typename InputSequence, typename OutputIt, typename BinaryOp> |
| OutputIt c_adjacent_difference(const InputSequence& input, |
| OutputIt output_first, BinaryOp&& op) { |
| return std::adjacent_difference(container_algorithm_internal::c_begin(input), |
| container_algorithm_internal::c_end(input), |
| output_first, std::forward<BinaryOp>(op)); |
| } |
|
|
| |
| |
| |
| |
| |
| |
| template <typename InputSequence, typename OutputIt> |
| OutputIt c_partial_sum(const InputSequence& input, OutputIt output_first) { |
| return std::partial_sum(container_algorithm_internal::c_begin(input), |
| container_algorithm_internal::c_end(input), |
| output_first); |
| } |
|
|
| |
| |
| template <typename InputSequence, typename OutputIt, typename BinaryOp> |
| OutputIt c_partial_sum(const InputSequence& input, OutputIt output_first, |
| BinaryOp&& op) { |
| return std::partial_sum(container_algorithm_internal::c_begin(input), |
| container_algorithm_internal::c_end(input), |
| output_first, std::forward<BinaryOp>(op)); |
| } |
|
|
| ABSL_NAMESPACE_END |
| } |
|
|
| #endif |
|
|