Coverage Report

Created: 2026-07-25 06:24

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/src/abseil-cpp/absl/strings/cord.h
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// Copyright 2020 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: cord.h
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// -----------------------------------------------------------------------------
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//
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// This file defines the `absl::Cord` data structure and operations on that data
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// structure. A Cord is a string-like sequence of characters optimized for
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// specific use cases. Unlike a `std::string`, which stores an array of
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// contiguous characters, Cord data is stored in a structure consisting of
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// separate, reference-counted "chunks."
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//
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// Because a Cord consists of these chunks, data can be added to or removed from
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// a Cord during its lifetime. Chunks may also be shared between Cords. Unlike a
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// `std::string`, a Cord can therefore accommodate data that changes over its
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// lifetime, though it's not quite "mutable"; it can change only in the
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// attachment, detachment, or rearrangement of chunks of its constituent data.
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//
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// A Cord provides some benefit over `std::string` under the following (albeit
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// narrow) circumstances:
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//
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//   * Cord data is designed to grow and shrink over a Cord's lifetime. Cord
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//     provides efficient insertions and deletions at the start and end of the
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//     character sequences, avoiding copies in those cases. Static data should
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//     generally be stored as strings.
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//   * External memory consisting of string-like data can be directly added to
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//     a Cord without requiring copies or allocations.
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//   * Cord data may be shared and copied cheaply. Cord provides a copy-on-write
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//     implementation and cheap sub-Cord operations. Copying a Cord is an O(1)
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//     operation.
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//
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// As a consequence to the above, Cord data is generally large. Small data
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// should generally use strings, as construction of a Cord requires some
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// overhead. Small Cords (<= 15 bytes) are represented inline, but most small
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// Cords are expected to grow over their lifetimes.
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//
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// Note that because a Cord is made up of separate chunked data, random access
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// to character data within a Cord is slower than within a `std::string`.
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//
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// Thread Safety
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//
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// Cord has the same thread-safety properties as many other types like
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// std::string, std::vector<>, int, etc -- it is thread-compatible. In
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// particular, if threads do not call non-const methods, then it is safe to call
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// const methods without synchronization. Copying a Cord produces a new instance
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// that can be used concurrently with the original in arbitrary ways.
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#ifndef ABSL_STRINGS_CORD_H_
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#define ABSL_STRINGS_CORD_H_
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#include <algorithm>
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#include <cstddef>
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#include <cstdint>
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#include <cstring>
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#include <iosfwd>
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#include <iterator>
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#include <string>
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#include <type_traits>
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#include "absl/base/attributes.h"
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#include "absl/base/config.h"
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#include "absl/base/internal/endian.h"
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#include "absl/base/internal/per_thread_tls.h"
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#include "absl/base/macros.h"
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#include "absl/base/nullability.h"
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#include "absl/base/port.h"
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#include "absl/container/inlined_vector.h"
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#include "absl/crc/internal/crc_cord_state.h"
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#include "absl/functional/function_ref.h"
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#include "absl/meta/type_traits.h"
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#include "absl/strings/cord_analysis.h"
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#include "absl/strings/cord_buffer.h"
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#include "absl/strings/internal/cord_data_edge.h"
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#include "absl/strings/internal/cord_internal.h"
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#include "absl/strings/internal/cord_rep_btree.h"
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#include "absl/strings/internal/cord_rep_btree_reader.h"
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#include "absl/strings/internal/cord_rep_crc.h"
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#include "absl/strings/internal/cordz_functions.h"
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#include "absl/strings/internal/cordz_info.h"
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#include "absl/strings/internal/cordz_statistics.h"
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#include "absl/strings/internal/cordz_update_scope.h"
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#include "absl/strings/internal/cordz_update_tracker.h"
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#include "absl/strings/internal/resize_uninitialized.h"
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#include "absl/strings/internal/string_constant.h"
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#include "absl/strings/string_view.h"
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#include "absl/types/optional.h"
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namespace absl {
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ABSL_NAMESPACE_BEGIN
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class Cord;
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class CordTestPeer;
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template <typename Releaser>
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Cord MakeCordFromExternal(absl::string_view, Releaser&&);
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void CopyCordToString(const Cord& src, absl::Nonnull<std::string*> dst);
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// Cord memory accounting modes
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enum class CordMemoryAccounting {
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  // Counts the *approximate* number of bytes held in full or in part by this
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  // Cord (which may not remain the same between invocations). Cords that share
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  // memory could each be "charged" independently for the same shared memory.
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  // See also comment on `kTotalMorePrecise` on internally shared memory.
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  kTotal,
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  // Counts the *approximate* number of bytes held in full or in part by this
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  // Cord for the distinct memory held by this cord. This option is similar
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  // to `kTotal`, except that if the cord has multiple references to the same
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  // memory, that memory is only counted once.
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  //
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  // For example:
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  //   absl::Cord cord;
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  //   cord.Append(some_other_cord);
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  //   cord.Append(some_other_cord);
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  //   // Counts `some_other_cord` twice:
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  //   cord.EstimatedMemoryUsage(kTotal);
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  //   // Counts `some_other_cord` once:
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  //   cord.EstimatedMemoryUsage(kTotalMorePrecise);
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  //
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  // The `kTotalMorePrecise` number is more expensive to compute as it requires
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  // deduplicating all memory references. Applications should prefer to use
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  // `kFairShare` or `kTotal` unless they really need a more precise estimate
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  // on "how much memory is potentially held / kept alive by this cord?"
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  kTotalMorePrecise,
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  // Counts the *approximate* number of bytes held in full or in part by this
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  // Cord weighted by the sharing ratio of that data. For example, if some data
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  // edge is shared by 4 different Cords, then each cord is attributed 1/4th of
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  // the total memory usage as a 'fair share' of the total memory usage.
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  kFairShare,
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};
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// Cord
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//
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// A Cord is a sequence of characters, designed to be more efficient than a
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// `std::string` in certain circumstances: namely, large string data that needs
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// to change over its lifetime or shared, especially when such data is shared
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// across API boundaries.
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//
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// A Cord stores its character data in a structure that allows efficient prepend
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// and append operations. This makes a Cord useful for large string data sent
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// over in a wire format that may need to be prepended or appended at some point
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// during the data exchange (e.g. HTTP, protocol buffers). For example, a
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// Cord is useful for storing an HTTP request, and prepending an HTTP header to
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// such a request.
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//
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// Cords should not be used for storing general string data, however. They
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// require overhead to construct and are slower than strings for random access.
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//
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// The Cord API provides the following common API operations:
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//
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// * Create or assign Cords out of existing string data, memory, or other Cords
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// * Append and prepend data to an existing Cord
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// * Create new Sub-Cords from existing Cord data
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// * Swap Cord data and compare Cord equality
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// * Write out Cord data by constructing a `std::string`
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//
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// Additionally, the API provides iterator utilities to iterate through Cord
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// data via chunks or character bytes.
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//
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class Cord {
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 private:
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  template <typename T>
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  using EnableIfString =
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      absl::enable_if_t<std::is_same<T, std::string>::value, int>;
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 public:
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  // Cord::Cord() Constructors.
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  // Creates an empty Cord.
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  constexpr Cord() noexcept;
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  // Creates a Cord from an existing Cord. Cord is copyable and efficiently
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  // movable. The moved-from state is valid but unspecified.
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  Cord(const Cord& src);
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  Cord(Cord&& src) noexcept;
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  Cord& operator=(const Cord& x);
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  Cord& operator=(Cord&& x) noexcept;
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  // Creates a Cord from a `src` string. This constructor is marked explicit to
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  // prevent implicit Cord constructions from arguments convertible to an
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  // `absl::string_view`.
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  explicit Cord(absl::string_view src);
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  Cord& operator=(absl::string_view src);
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  // Creates a Cord from a `std::string&&` rvalue. These constructors are
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  // templated to avoid ambiguities for types that are convertible to both
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  // `absl::string_view` and `std::string`, such as `const char*`.
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  template <typename T, EnableIfString<T> = 0>
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  explicit Cord(T&& src);
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  template <typename T, EnableIfString<T> = 0>
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  Cord& operator=(T&& src);
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  // Cord::~Cord()
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  //
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  // Destructs the Cord.
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0
  ~Cord() {
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0
    if (contents_.is_tree()) DestroyCordSlow();
209
0
  }
210
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  // MakeCordFromExternal()
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  //
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  // Creates a Cord that takes ownership of external string memory. The
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  // contents of `data` are not copied to the Cord; instead, the external
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  // memory is added to the Cord and reference-counted. This data may not be
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  // changed for the life of the Cord, though it may be prepended or appended
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  // to.
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  //
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  // `MakeCordFromExternal()` takes a callable "releaser" that is invoked when
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  // the reference count for `data` reaches zero. As noted above, this data must
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  // remain live until the releaser is invoked. The callable releaser also must:
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  //
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  //   * be move constructible
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  //   * support `void operator()(absl::string_view) const` or `void operator()`
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  //
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  // Example:
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  //
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  // Cord MakeCord(BlockPool* pool) {
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  //   Block* block = pool->NewBlock();
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  //   FillBlock(block);
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  //   return absl::MakeCordFromExternal(
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  //       block->ToStringView(),
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  //       [pool, block](absl::string_view v) {
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  //         pool->FreeBlock(block, v);
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  //       });
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  // }
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  //
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  // WARNING: Because a Cord can be reference-counted, it's likely a bug if your
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  // releaser doesn't do anything. For example, consider the following:
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  //
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  // void Foo(const char* buffer, int len) {
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  //   auto c = absl::MakeCordFromExternal(absl::string_view(buffer, len),
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  //                                       [](absl::string_view) {});
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  //
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  //   // BUG: If Bar() copies its cord for any reason, including keeping a
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  //   // substring of it, the lifetime of buffer might be extended beyond
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  //   // when Foo() returns.
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  //   Bar(c);
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  // }
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  template <typename Releaser>
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  friend Cord MakeCordFromExternal(absl::string_view data, Releaser&& releaser);
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  // Cord::Clear()
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  //
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  // Releases the Cord data. Any nodes that share data with other Cords, if
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  // applicable, will have their reference counts reduced by 1.
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  ABSL_ATTRIBUTE_REINITIALIZES void Clear();
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  // Cord::Append()
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  //
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  // Appends data to the Cord, which may come from another Cord or other string
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  // data.
263
  void Append(const Cord& src);
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  void Append(Cord&& src);
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  void Append(absl::string_view src);
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  template <typename T, EnableIfString<T> = 0>
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  void Append(T&& src);
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  // Appends `buffer` to this cord, unless `buffer` has a zero length in which
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  // case this method has no effect on this cord instance.
271
  // This method is guaranteed to consume `buffer`.
272
  void Append(CordBuffer buffer);
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274
  // Returns a CordBuffer, re-using potential existing capacity in this cord.
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  //
276
  // Cord instances may have additional unused capacity in the last (or first)
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  // nodes of the underlying tree to facilitate amortized growth. This method
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  // allows applications to explicitly use this spare capacity if available,
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  // or create a new CordBuffer instance otherwise.
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  // If this cord has a final non-shared node with at least `min_capacity`
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  // available, then this method will return that buffer including its data
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  // contents. I.e.; the returned buffer will have a non-zero length, and
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  // a capacity of at least `buffer.length + min_capacity`. Otherwise, this
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  // method will return `CordBuffer::CreateWithDefaultLimit(capacity)`.
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  //
286
  // Below an example of using GetAppendBuffer. Notice that in this example we
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  // use `GetAppendBuffer()` only on the first iteration. As we know nothing
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  // about any initial extra capacity in `cord`, we may be able to use the extra
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  // capacity. But as we add new buffers with fully utilized contents after that
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  // we avoid calling `GetAppendBuffer()` on subsequent iterations: while this
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  // works fine, it results in an unnecessary inspection of cord contents:
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  //
293
  //   void AppendRandomDataToCord(absl::Cord &cord, size_t n) {
294
  //     bool first = true;
295
  //     while (n > 0) {
296
  //       CordBuffer buffer = first ? cord.GetAppendBuffer(n)
297
  //                                 : CordBuffer::CreateWithDefaultLimit(n);
298
  //       absl::Span<char> data = buffer.available_up_to(n);
299
  //       FillRandomValues(data.data(), data.size());
300
  //       buffer.IncreaseLengthBy(data.size());
301
  //       cord.Append(std::move(buffer));
302
  //       n -= data.size();
303
  //       first = false;
304
  //     }
305
  //   }
306
  CordBuffer GetAppendBuffer(size_t capacity, size_t min_capacity = 16);
307
308
  // Returns a CordBuffer, re-using potential existing capacity in this cord.
309
  //
310
  // This function is identical to `GetAppendBuffer`, except that in the case
311
  // where a new `CordBuffer` is allocated, it is allocated using the provided
312
  // custom limit instead of the default limit. `GetAppendBuffer` will default
313
  // to `CordBuffer::CreateWithDefaultLimit(capacity)` whereas this method
314
  // will default to `CordBuffer::CreateWithCustomLimit(block_size, capacity)`.
315
  // This method is equivalent to `GetAppendBuffer` if `block_size` is zero.
316
  // See the documentation for `CreateWithCustomLimit` for more details on the
317
  // restrictions and legal values for `block_size`.
318
  CordBuffer GetCustomAppendBuffer(size_t block_size, size_t capacity,
319
                                   size_t min_capacity = 16);
320
321
  // Cord::Prepend()
322
  //
323
  // Prepends data to the Cord, which may come from another Cord or other string
324
  // data.
325
  void Prepend(const Cord& src);
326
  void Prepend(absl::string_view src);
327
  template <typename T, EnableIfString<T> = 0>
328
  void Prepend(T&& src);
329
330
  // Prepends `buffer` to this cord, unless `buffer` has a zero length in which
331
  // case this method has no effect on this cord instance.
332
  // This method is guaranteed to consume `buffer`.
333
  void Prepend(CordBuffer buffer);
334
335
  // Cord::RemovePrefix()
336
  //
337
  // Removes the first `n` bytes of a Cord.
338
  void RemovePrefix(size_t n);
339
  void RemoveSuffix(size_t n);
340
341
  // Cord::Subcord()
342
  //
343
  // Returns a new Cord representing the subrange [pos, pos + new_size) of
344
  // *this. If pos >= size(), the result is empty(). If
345
  // (pos + new_size) >= size(), the result is the subrange [pos, size()).
346
  Cord Subcord(size_t pos, size_t new_size) const;
347
348
  // Cord::swap()
349
  //
350
  // Swaps the contents of the Cord with `other`.
351
  void swap(Cord& other) noexcept;
352
353
  // swap()
354
  //
355
  // Swaps the contents of two Cords.
356
  friend void swap(Cord& x, Cord& y) noexcept { x.swap(y); }
357
358
  // Cord::size()
359
  //
360
  // Returns the size of the Cord.
361
  size_t size() const;
362
363
  // Cord::empty()
364
  //
365
  // Determines whether the given Cord is empty, returning `true` if so.
366
  bool empty() const;
367
368
  // Cord::EstimatedMemoryUsage()
369
  //
370
  // Returns the *approximate* number of bytes held by this cord.
371
  // See CordMemoryAccounting for more information on the accounting method.
372
  size_t EstimatedMemoryUsage(CordMemoryAccounting accounting_method =
373
                                  CordMemoryAccounting::kTotal) const;
374
375
  // Cord::Compare()
376
  //
377
  // Compares 'this' Cord with rhs. This function and its relatives treat Cords
378
  // as sequences of unsigned bytes. The comparison is a straightforward
379
  // lexicographic comparison. `Cord::Compare()` returns values as follows:
380
  //
381
  //   -1  'this' Cord is smaller
382
  //    0  two Cords are equal
383
  //    1  'this' Cord is larger
384
  int Compare(absl::string_view rhs) const;
385
  int Compare(const Cord& rhs) const;
386
387
  // Cord::StartsWith()
388
  //
389
  // Determines whether the Cord starts with the passed string data `rhs`.
390
  bool StartsWith(const Cord& rhs) const;
391
  bool StartsWith(absl::string_view rhs) const;
392
393
  // Cord::EndsWith()
394
  //
395
  // Determines whether the Cord ends with the passed string data `rhs`.
396
  bool EndsWith(absl::string_view rhs) const;
397
  bool EndsWith(const Cord& rhs) const;
398
399
  // Cord::Contains()
400
  //
401
  // Determines whether the Cord contains the passed string data `rhs`.
402
  bool Contains(absl::string_view rhs) const;
403
  bool Contains(const Cord& rhs) const;
404
405
  // Cord::operator std::string()
406
  //
407
  // Converts a Cord into a `std::string()`. This operator is marked explicit to
408
  // prevent unintended Cord usage in functions that take a string.
409
  explicit operator std::string() const;
410
411
  // CopyCordToString()
412
  //
413
  // Copies the contents of a `src` Cord into a `*dst` string.
414
  //
415
  // This function optimizes the case of reusing the destination string since it
416
  // can reuse previously allocated capacity. However, this function does not
417
  // guarantee that pointers previously returned by `dst->data()` remain valid
418
  // even if `*dst` had enough capacity to hold `src`. If `*dst` is a new
419
  // object, prefer to simply use the conversion operator to `std::string`.
420
  friend void CopyCordToString(const Cord& src,
421
                               absl::Nonnull<std::string*> dst);
422
423
  class CharIterator;
424
425
  //----------------------------------------------------------------------------
426
  // Cord::ChunkIterator
427
  //----------------------------------------------------------------------------
428
  //
429
  // A `Cord::ChunkIterator` allows iteration over the constituent chunks of its
430
  // Cord. Such iteration allows you to perform non-const operations on the data
431
  // of a Cord without modifying it.
432
  //
433
  // Generally, you do not instantiate a `Cord::ChunkIterator` directly;
434
  // instead, you create one implicitly through use of the `Cord::Chunks()`
435
  // member function.
436
  //
437
  // The `Cord::ChunkIterator` has the following properties:
438
  //
439
  //   * The iterator is invalidated after any non-const operation on the
440
  //     Cord object over which it iterates.
441
  //   * The `string_view` returned by dereferencing a valid, non-`end()`
442
  //     iterator is guaranteed to be non-empty.
443
  //   * Two `ChunkIterator` objects can be compared equal if and only if they
444
  //     remain valid and iterate over the same Cord.
445
  //   * The iterator in this case is a proxy iterator; the `string_view`
446
  //     returned by the iterator does not live inside the Cord, and its
447
  //     lifetime is limited to the lifetime of the iterator itself. To help
448
  //     prevent lifetime issues, `ChunkIterator::reference` is not a true
449
  //     reference type and is equivalent to `value_type`.
450
  //   * The iterator keeps state that can grow for Cords that contain many
451
  //     nodes and are imbalanced due to sharing. Prefer to pass this type by
452
  //     const reference instead of by value.
453
  class ChunkIterator {
454
   public:
455
    using iterator_category = std::input_iterator_tag;
456
    using value_type = absl::string_view;
457
    using difference_type = ptrdiff_t;
458
    using pointer = absl::Nonnull<const value_type*>;
459
    using reference = value_type;
460
461
0
    ChunkIterator() = default;
462
463
    ChunkIterator& operator++();
464
    ChunkIterator operator++(int);
465
    bool operator==(const ChunkIterator& other) const;
466
    bool operator!=(const ChunkIterator& other) const;
467
    reference operator*() const;
468
    pointer operator->() const;
469
470
    friend class Cord;
471
    friend class CharIterator;
472
473
   private:
474
    using CordRep = absl::cord_internal::CordRep;
475
    using CordRepBtree = absl::cord_internal::CordRepBtree;
476
    using CordRepBtreeReader = absl::cord_internal::CordRepBtreeReader;
477
478
    // Constructs a `begin()` iterator from `tree`.
479
    explicit ChunkIterator(absl::Nonnull<cord_internal::CordRep*> tree);
480
481
    // Constructs a `begin()` iterator from `cord`.
482
    explicit ChunkIterator(absl::Nonnull<const Cord*> cord);
483
484
    // Initializes this instance from a tree. Invoked by constructors.
485
    void InitTree(absl::Nonnull<cord_internal::CordRep*> tree);
486
487
    // Removes `n` bytes from `current_chunk_`. Expects `n` to be smaller than
488
    // `current_chunk_.size()`.
489
    void RemoveChunkPrefix(size_t n);
490
    Cord AdvanceAndReadBytes(size_t n);
491
    void AdvanceBytes(size_t n);
492
493
    // Btree specific operator++
494
    ChunkIterator& AdvanceBtree();
495
    void AdvanceBytesBtree(size_t n);
496
497
    // A view into bytes of the current `CordRep`. It may only be a view to a
498
    // suffix of bytes if this is being used by `CharIterator`.
499
    absl::string_view current_chunk_;
500
    // The current leaf, or `nullptr` if the iterator points to short data.
501
    // If the current chunk is a substring node, current_leaf_ points to the
502
    // underlying flat or external node.
503
    absl::Nullable<absl::cord_internal::CordRep*> current_leaf_ = nullptr;
504
    // The number of bytes left in the `Cord` over which we are iterating.
505
    size_t bytes_remaining_ = 0;
506
507
    // Cord reader for cord btrees. Empty if not traversing a btree.
508
    CordRepBtreeReader btree_reader_;
509
  };
510
511
  // Cord::chunk_begin()
512
  //
513
  // Returns an iterator to the first chunk of the `Cord`.
514
  //
515
  // Generally, prefer using `Cord::Chunks()` within a range-based for loop for
516
  // iterating over the chunks of a Cord. This method may be useful for getting
517
  // a `ChunkIterator` where range-based for-loops are not useful.
518
  //
519
  // Example:
520
  //
521
  //   absl::Cord::ChunkIterator FindAsChunk(const absl::Cord& c,
522
  //                                         absl::string_view s) {
523
  //     return std::find(c.chunk_begin(), c.chunk_end(), s);
524
  //   }
525
  ChunkIterator chunk_begin() const ABSL_ATTRIBUTE_LIFETIME_BOUND;
526
527
  // Cord::chunk_end()
528
  //
529
  // Returns an iterator one increment past the last chunk of the `Cord`.
530
  //
531
  // Generally, prefer using `Cord::Chunks()` within a range-based for loop for
532
  // iterating over the chunks of a Cord. This method may be useful for getting
533
  // a `ChunkIterator` where range-based for-loops may not be available.
534
  ChunkIterator chunk_end() const ABSL_ATTRIBUTE_LIFETIME_BOUND;
535
536
  //----------------------------------------------------------------------------
537
  // Cord::ChunkRange
538
  //----------------------------------------------------------------------------
539
  //
540
  // `ChunkRange` is a helper class for iterating over the chunks of the `Cord`,
541
  // producing an iterator which can be used within a range-based for loop.
542
  // Construction of a `ChunkRange` will return an iterator pointing to the
543
  // first chunk of the Cord. Generally, do not construct a `ChunkRange`
544
  // directly; instead, prefer to use the `Cord::Chunks()` method.
545
  //
546
  // Implementation note: `ChunkRange` is simply a convenience wrapper over
547
  // `Cord::chunk_begin()` and `Cord::chunk_end()`.
548
  class ChunkRange {
549
   public:
550
    // Fulfill minimum c++ container requirements [container.requirements]
551
    // These (partial) container type definitions allow ChunkRange to be used
552
    // in various utilities expecting a subset of [container.requirements].
553
    // For example, the below enables using `::testing::ElementsAre(...)`
554
    using value_type = absl::string_view;
555
    using reference = value_type&;
556
    using const_reference = const value_type&;
557
    using iterator = ChunkIterator;
558
    using const_iterator = ChunkIterator;
559
560
0
    explicit ChunkRange(absl::Nonnull<const Cord*> cord) : cord_(cord) {}
561
562
    ChunkIterator begin() const;
563
    ChunkIterator end() const;
564
565
   private:
566
    absl::Nonnull<const Cord*> cord_;
567
  };
568
569
  // Cord::Chunks()
570
  //
571
  // Returns a `Cord::ChunkRange` for iterating over the chunks of a `Cord` with
572
  // a range-based for-loop. For most iteration tasks on a Cord, use
573
  // `Cord::Chunks()` to retrieve this iterator.
574
  //
575
  // Example:
576
  //
577
  //   void ProcessChunks(const Cord& cord) {
578
  //     for (absl::string_view chunk : cord.Chunks()) { ... }
579
  //   }
580
  //
581
  // Note that the ordinary caveats of temporary lifetime extension apply:
582
  //
583
  //   void Process() {
584
  //     for (absl::string_view chunk : CordFactory().Chunks()) {
585
  //       // The temporary Cord returned by CordFactory has been destroyed!
586
  //     }
587
  //   }
588
  ChunkRange Chunks() const ABSL_ATTRIBUTE_LIFETIME_BOUND;
589
590
  //----------------------------------------------------------------------------
591
  // Cord::CharIterator
592
  //----------------------------------------------------------------------------
593
  //
594
  // A `Cord::CharIterator` allows iteration over the constituent characters of
595
  // a `Cord`.
596
  //
597
  // Generally, you do not instantiate a `Cord::CharIterator` directly; instead,
598
  // you create one implicitly through use of the `Cord::Chars()` member
599
  // function.
600
  //
601
  // A `Cord::CharIterator` has the following properties:
602
  //
603
  //   * The iterator is invalidated after any non-const operation on the
604
  //     Cord object over which it iterates.
605
  //   * Two `CharIterator` objects can be compared equal if and only if they
606
  //     remain valid and iterate over the same Cord.
607
  //   * The iterator keeps state that can grow for Cords that contain many
608
  //     nodes and are imbalanced due to sharing. Prefer to pass this type by
609
  //     const reference instead of by value.
610
  //   * This type cannot act as a forward iterator because a `Cord` can reuse
611
  //     sections of memory. This fact violates the requirement for forward
612
  //     iterators to compare equal if dereferencing them returns the same
613
  //     object.
614
  class CharIterator {
615
   public:
616
    using iterator_category = std::input_iterator_tag;
617
    using value_type = char;
618
    using difference_type = ptrdiff_t;
619
    using pointer = absl::Nonnull<const char*>;
620
    using reference = const char&;
621
622
0
    CharIterator() = default;
623
624
    CharIterator& operator++();
625
    CharIterator operator++(int);
626
    bool operator==(const CharIterator& other) const;
627
    bool operator!=(const CharIterator& other) const;
628
    reference operator*() const;
629
    pointer operator->() const;
630
631
    friend Cord;
632
633
   private:
634
    explicit CharIterator(absl::Nonnull<const Cord*> cord)
635
0
        : chunk_iterator_(cord) {}
636
637
    ChunkIterator chunk_iterator_;
638
  };
639
640
  // Cord::AdvanceAndRead()
641
  //
642
  // Advances the `Cord::CharIterator` by `n_bytes` and returns the bytes
643
  // advanced as a separate `Cord`. `n_bytes` must be less than or equal to the
644
  // number of bytes within the Cord; otherwise, behavior is undefined. It is
645
  // valid to pass `char_end()` and `0`.
646
  static Cord AdvanceAndRead(absl::Nonnull<CharIterator*> it, size_t n_bytes);
647
648
  // Cord::Advance()
649
  //
650
  // Advances the `Cord::CharIterator` by `n_bytes`. `n_bytes` must be less than
651
  // or equal to the number of bytes remaining within the Cord; otherwise,
652
  // behavior is undefined. It is valid to pass `char_end()` and `0`.
653
  static void Advance(absl::Nonnull<CharIterator*> it, size_t n_bytes);
654
655
  // Cord::ChunkRemaining()
656
  //
657
  // Returns the longest contiguous view starting at the iterator's position.
658
  //
659
  // `it` must be dereferenceable.
660
  static absl::string_view ChunkRemaining(const CharIterator& it);
661
662
  // Cord::char_begin()
663
  //
664
  // Returns an iterator to the first character of the `Cord`.
665
  //
666
  // Generally, prefer using `Cord::Chars()` within a range-based for loop for
667
  // iterating over the chunks of a Cord. This method may be useful for getting
668
  // a `CharIterator` where range-based for-loops may not be available.
669
  CharIterator char_begin() const ABSL_ATTRIBUTE_LIFETIME_BOUND;
670
671
  // Cord::char_end()
672
  //
673
  // Returns an iterator to one past the last character of the `Cord`.
674
  //
675
  // Generally, prefer using `Cord::Chars()` within a range-based for loop for
676
  // iterating over the chunks of a Cord. This method may be useful for getting
677
  // a `CharIterator` where range-based for-loops are not useful.
678
  CharIterator char_end() const ABSL_ATTRIBUTE_LIFETIME_BOUND;
679
680
  // Cord::CharRange
681
  //
682
  // `CharRange` is a helper class for iterating over the characters of a
683
  // producing an iterator which can be used within a range-based for loop.
684
  // Construction of a `CharRange` will return an iterator pointing to the first
685
  // character of the Cord. Generally, do not construct a `CharRange` directly;
686
  // instead, prefer to use the `Cord::Chars()` method shown below.
687
  //
688
  // Implementation note: `CharRange` is simply a convenience wrapper over
689
  // `Cord::char_begin()` and `Cord::char_end()`.
690
  class CharRange {
691
   public:
692
    // Fulfill minimum c++ container requirements [container.requirements]
693
    // These (partial) container type definitions allow CharRange to be used
694
    // in various utilities expecting a subset of [container.requirements].
695
    // For example, the below enables using `::testing::ElementsAre(...)`
696
    using value_type = char;
697
    using reference = value_type&;
698
    using const_reference = const value_type&;
699
    using iterator = CharIterator;
700
    using const_iterator = CharIterator;
701
702
    explicit CharRange(absl::Nonnull<const Cord*> cord) : cord_(cord) {}
703
704
    CharIterator begin() const;
705
    CharIterator end() const;
706
707
   private:
708
    absl::Nonnull<const Cord*> cord_;
709
  };
710
711
  // Cord::Chars()
712
  //
713
  // Returns a `Cord::CharRange` for iterating over the characters of a `Cord`
714
  // with a range-based for-loop. For most character-based iteration tasks on a
715
  // Cord, use `Cord::Chars()` to retrieve this iterator.
716
  //
717
  // Example:
718
  //
719
  //   void ProcessCord(const Cord& cord) {
720
  //     for (char c : cord.Chars()) { ... }
721
  //   }
722
  //
723
  // Note that the ordinary caveats of temporary lifetime extension apply:
724
  //
725
  //   void Process() {
726
  //     for (char c : CordFactory().Chars()) {
727
  //       // The temporary Cord returned by CordFactory has been destroyed!
728
  //     }
729
  //   }
730
  CharRange Chars() const ABSL_ATTRIBUTE_LIFETIME_BOUND;
731
732
  // Cord::operator[]
733
  //
734
  // Gets the "i"th character of the Cord and returns it, provided that
735
  // 0 <= i < Cord.size().
736
  //
737
  // NOTE: This routine is reasonably efficient. It is roughly
738
  // logarithmic based on the number of chunks that make up the cord. Still,
739
  // if you need to iterate over the contents of a cord, you should
740
  // use a CharIterator/ChunkIterator rather than call operator[] or Get()
741
  // repeatedly in a loop.
742
  char operator[](size_t i) const;
743
744
  // Cord::TryFlat()
745
  //
746
  // If this cord's representation is a single flat array, returns a
747
  // string_view referencing that array.  Otherwise returns nullopt.
748
  absl::optional<absl::string_view> TryFlat() const
749
      ABSL_ATTRIBUTE_LIFETIME_BOUND;
750
751
  // Cord::Flatten()
752
  //
753
  // Flattens the cord into a single array and returns a view of the data.
754
  //
755
  // If the cord was already flat, the contents are not modified.
756
  absl::string_view Flatten() ABSL_ATTRIBUTE_LIFETIME_BOUND;
757
758
  // Cord::Find()
759
  //
760
  // Returns an iterator to the first occurrance of the substring `needle`.
761
  //
762
  // If the substring `needle` does not occur, `Cord::char_end()` is returned.
763
  CharIterator Find(absl::string_view needle) const;
764
  CharIterator Find(const absl::Cord& needle) const;
765
766
  // Supports absl::Cord as a sink object for absl::Format().
767
  friend void AbslFormatFlush(absl::Nonnull<absl::Cord*> cord,
768
                              absl::string_view part) {
769
    cord->Append(part);
770
  }
771
772
  // Support automatic stringification with absl::StrCat and absl::StrFormat.
773
  template <typename Sink>
774
  friend void AbslStringify(Sink& sink, const absl::Cord& cord) {
775
    for (absl::string_view chunk : cord.Chunks()) {
776
      sink.Append(chunk);
777
    }
778
  }
779
780
  // Cord::SetExpectedChecksum()
781
  //
782
  // Stores a checksum value with this non-empty cord instance, for later
783
  // retrieval.
784
  //
785
  // The expected checksum is a number stored out-of-band, alongside the data.
786
  // It is preserved across copies and assignments, but any mutations to a cord
787
  // will cause it to lose its expected checksum.
788
  //
789
  // The expected checksum is not part of a Cord's value, and does not affect
790
  // operations such as equality or hashing.
791
  //
792
  // This field is intended to store a CRC32C checksum for later validation, to
793
  // help support end-to-end checksum workflows.  However, the Cord API itself
794
  // does no CRC validation, and assigns no meaning to this number.
795
  //
796
  // This call has no effect if this cord is empty.
797
  void SetExpectedChecksum(uint32_t crc);
798
799
  // Returns this cord's expected checksum, if it has one.  Otherwise, returns
800
  // nullopt.
801
  absl::optional<uint32_t> ExpectedChecksum() const;
802
803
  template <typename H>
804
  friend H AbslHashValue(H hash_state, const absl::Cord& c) {
805
    absl::optional<absl::string_view> maybe_flat = c.TryFlat();
806
    if (maybe_flat.has_value()) {
807
      return H::combine(std::move(hash_state), *maybe_flat);
808
    }
809
    return c.HashFragmented(std::move(hash_state));
810
  }
811
812
  // Create a Cord with the contents of StringConstant<T>::value.
813
  // No allocations will be done and no data will be copied.
814
  // This is an INTERNAL API and subject to change or removal. This API can only
815
  // be used by spelling absl::strings_internal::MakeStringConstant, which is
816
  // also an internal API.
817
  template <typename T>
818
  // NOLINTNEXTLINE(google-explicit-constructor)
819
  constexpr Cord(strings_internal::StringConstant<T>);
820
821
 private:
822
  using CordRep = absl::cord_internal::CordRep;
823
  using CordRepFlat = absl::cord_internal::CordRepFlat;
824
  using CordzInfo = cord_internal::CordzInfo;
825
  using CordzUpdateScope = cord_internal::CordzUpdateScope;
826
  using CordzUpdateTracker = cord_internal::CordzUpdateTracker;
827
  using InlineData = cord_internal::InlineData;
828
  using MethodIdentifier = CordzUpdateTracker::MethodIdentifier;
829
830
  // Creates a cord instance with `method` representing the originating
831
  // public API call causing the cord to be created.
832
  explicit Cord(absl::string_view src, MethodIdentifier method);
833
834
  friend class CordTestPeer;
835
  friend bool operator==(const Cord& lhs, const Cord& rhs);
836
  friend bool operator==(const Cord& lhs, absl::string_view rhs);
837
838
  friend absl::Nullable<const CordzInfo*> GetCordzInfoForTesting(
839
      const Cord& cord);
840
841
  // Calls the provided function once for each cord chunk, in order.  Unlike
842
  // Chunks(), this API will not allocate memory.
843
  void ForEachChunk(absl::FunctionRef<void(absl::string_view)>) const;
844
845
  // Allocates new contiguous storage for the contents of the cord. This is
846
  // called by Flatten() when the cord was not already flat.
847
  absl::string_view FlattenSlowPath();
848
849
  // Actual cord contents are hidden inside the following simple
850
  // class so that we can isolate the bulk of cord.cc from changes
851
  // to the representation.
852
  //
853
  // InlineRep holds either a tree pointer, or an array of kMaxInline bytes.
854
  class InlineRep {
855
   public:
856
    static constexpr unsigned char kMaxInline = cord_internal::kMaxInline;
857
    static_assert(kMaxInline >= sizeof(absl::cord_internal::CordRep*), "");
858
859
0
    constexpr InlineRep() : data_() {}
860
0
    explicit InlineRep(InlineData::DefaultInitType init) : data_(init) {}
861
    InlineRep(const InlineRep& src);
862
    InlineRep(InlineRep&& src);
863
    InlineRep& operator=(const InlineRep& src);
864
    InlineRep& operator=(InlineRep&& src) noexcept;
865
866
    explicit constexpr InlineRep(absl::string_view sv,
867
                                 absl::Nullable<CordRep*> rep);
868
869
    void Swap(absl::Nonnull<InlineRep*> rhs);
870
    size_t size() const;
871
    // Returns nullptr if holding pointer
872
    absl::Nullable<const char*> data() const;
873
    // Discards pointer, if any
874
    void set_data(absl::Nonnull<const char*> data, size_t n);
875
    absl::Nonnull<char*> set_data(size_t n);  // Write data to the result
876
    // Returns nullptr if holding bytes
877
    absl::Nullable<absl::cord_internal::CordRep*> tree() const;
878
    absl::Nonnull<absl::cord_internal::CordRep*> as_tree() const;
879
    absl::Nonnull<const char*> as_chars() const;
880
    // Returns non-null iff was holding a pointer
881
    absl::Nullable<absl::cord_internal::CordRep*> clear();
882
    // Converts to pointer if necessary.
883
    void reduce_size(size_t n);    // REQUIRES: holding data
884
    void remove_prefix(size_t n);  // REQUIRES: holding data
885
    void AppendArray(absl::string_view src, MethodIdentifier method);
886
    absl::string_view FindFlatStartPiece() const;
887
888
    // Creates a CordRepFlat instance from the current inlined data with `extra'
889
    // bytes of desired additional capacity.
890
    absl::Nonnull<CordRepFlat*> MakeFlatWithExtraCapacity(size_t extra);
891
892
    // Sets the tree value for this instance. `rep` must not be null.
893
    // Requires the current instance to hold a tree, and a lock to be held on
894
    // any CordzInfo referenced by this instance. The latter is enforced through
895
    // the CordzUpdateScope argument. If the current instance is sampled, then
896
    // the CordzInfo instance is updated to reference the new `rep` value.
897
    void SetTree(absl::Nonnull<CordRep*> rep, const CordzUpdateScope& scope);
898
899
    // Identical to SetTree(), except that `rep` is allowed to be null, in
900
    // which case the current instance is reset to an empty value.
901
    void SetTreeOrEmpty(absl::Nullable<CordRep*> rep,
902
                        const CordzUpdateScope& scope);
903
904
    // Sets the tree value for this instance, and randomly samples this cord.
905
    // This function disregards existing contents in `data_`, and should be
906
    // called when a Cord is 'promoted' from an 'uninitialized' or 'inlined'
907
    // value to a non-inlined (tree / ring) value.
908
    void EmplaceTree(absl::Nonnull<CordRep*> rep, MethodIdentifier method);
909
910
    // Identical to EmplaceTree, except that it copies the parent stack from
911
    // the provided `parent` data if the parent is sampled.
912
    void EmplaceTree(absl::Nonnull<CordRep*> rep, const InlineData& parent,
913
                     MethodIdentifier method);
914
915
    // Commits the change of a newly created, or updated `rep` root value into
916
    // this cord. `old_rep` indicates the old (inlined or tree) value of the
917
    // cord, and determines if the commit invokes SetTree() or EmplaceTree().
918
    void CommitTree(absl::Nullable<const CordRep*> old_rep,
919
                    absl::Nonnull<CordRep*> rep, const CordzUpdateScope& scope,
920
                    MethodIdentifier method);
921
922
    void AppendTreeToInlined(absl::Nonnull<CordRep*> tree,
923
                             MethodIdentifier method);
924
    void AppendTreeToTree(absl::Nonnull<CordRep*> tree,
925
                          MethodIdentifier method);
926
    void AppendTree(absl::Nonnull<CordRep*> tree, MethodIdentifier method);
927
    void PrependTreeToInlined(absl::Nonnull<CordRep*> tree,
928
                              MethodIdentifier method);
929
    void PrependTreeToTree(absl::Nonnull<CordRep*> tree,
930
                           MethodIdentifier method);
931
    void PrependTree(absl::Nonnull<CordRep*> tree, MethodIdentifier method);
932
933
0
    bool IsSame(const InlineRep& other) const { return data_ == other.data_; }
934
935
0
    void CopyTo(absl::Nonnull<std::string*> dst) const {
936
      // memcpy is much faster when operating on a known size. On most supported
937
      // platforms, the small string optimization is large enough that resizing
938
      // to 15 bytes does not cause a memory allocation.
939
0
      absl::strings_internal::STLStringResizeUninitialized(dst, kMaxInline);
940
0
      data_.copy_max_inline_to(&(*dst)[0]);
941
      // erase is faster than resize because the logic for memory allocation is
942
      // not needed.
943
0
      dst->erase(inline_size());
944
0
    }
945
946
    // Copies the inline contents into `dst`. Assumes the cord is not empty.
947
    void CopyToArray(absl::Nonnull<char*> dst) const;
948
949
0
    bool is_tree() const { return data_.is_tree(); }
950
951
    // Returns true if the Cord is being profiled by cordz.
952
    bool is_profiled() const { return data_.is_tree() && data_.is_profiled(); }
953
954
    // Returns the available inlined capacity, or 0 if is_tree() == true.
955
0
    size_t remaining_inline_capacity() const {
956
0
      return data_.is_tree() ? 0 : kMaxInline - data_.inline_size();
957
0
    }
958
959
    // Returns the profiled CordzInfo, or nullptr if not sampled.
960
0
    absl::Nullable<absl::cord_internal::CordzInfo*> cordz_info() const {
961
0
      return data_.cordz_info();
962
0
    }
963
964
    // Sets the profiled CordzInfo.
965
    void set_cordz_info(absl::Nonnull<cord_internal::CordzInfo*> cordz_info) {
966
      assert(cordz_info != nullptr);
967
      data_.set_cordz_info(cordz_info);
968
    }
969
970
    // Resets the current cordz_info to null / empty.
971
    void clear_cordz_info() { data_.clear_cordz_info(); }
972
973
   private:
974
    friend class Cord;
975
976
    void AssignSlow(const InlineRep& src);
977
    // Unrefs the tree and stops profiling.
978
    void UnrefTree();
979
980
0
    void ResetToEmpty() { data_ = {}; }
981
982
0
    void set_inline_size(size_t size) { data_.set_inline_size(size); }
983
0
    size_t inline_size() const { return data_.inline_size(); }
984
985
    // Empty cords that carry a checksum have a CordRepCrc node with a null
986
    // child node. The code can avoid lots of special cases where it would
987
    // otherwise transition from tree to inline storage if we just remove the
988
    // CordRepCrc node before mutations. Must never be called inside a
989
    // CordzUpdateScope since it untracks the cordz info.
990
    void MaybeRemoveEmptyCrcNode();
991
992
    cord_internal::InlineData data_;
993
  };
994
  InlineRep contents_;
995
996
  // Helper for GetFlat() and TryFlat().
997
  static bool GetFlatAux(absl::Nonnull<absl::cord_internal::CordRep*> rep,
998
                         absl::Nonnull<absl::string_view*> fragment);
999
1000
  // Helper for ForEachChunk().
1001
  static void ForEachChunkAux(
1002
      absl::Nonnull<absl::cord_internal::CordRep*> rep,
1003
      absl::FunctionRef<void(absl::string_view)> callback);
1004
1005
  // The destructor for non-empty Cords.
1006
  void DestroyCordSlow();
1007
1008
  // Out-of-line implementation of slower parts of logic.
1009
  void CopyToArraySlowPath(absl::Nonnull<char*> dst) const;
1010
  int CompareSlowPath(absl::string_view rhs, size_t compared_size,
1011
                      size_t size_to_compare) const;
1012
  int CompareSlowPath(const Cord& rhs, size_t compared_size,
1013
                      size_t size_to_compare) const;
1014
  bool EqualsImpl(absl::string_view rhs, size_t size_to_compare) const;
1015
  bool EqualsImpl(const Cord& rhs, size_t size_to_compare) const;
1016
  int CompareImpl(const Cord& rhs) const;
1017
1018
  template <typename ResultType, typename RHS>
1019
  friend ResultType GenericCompare(const Cord& lhs, const RHS& rhs,
1020
                                   size_t size_to_compare);
1021
  static absl::string_view GetFirstChunk(const Cord& c);
1022
  static absl::string_view GetFirstChunk(absl::string_view sv);
1023
1024
  // Returns a new reference to contents_.tree(), or steals an existing
1025
  // reference if called on an rvalue.
1026
  absl::Nonnull<absl::cord_internal::CordRep*> TakeRep() const&;
1027
  absl::Nonnull<absl::cord_internal::CordRep*> TakeRep() &&;
1028
1029
  // Helper for Append().
1030
  template <typename C>
1031
  void AppendImpl(C&& src);
1032
1033
  // Appends / Prepends `src` to this instance, using precise sizing.
1034
  // This method does explicitly not attempt to use any spare capacity
1035
  // in any pending last added private owned flat.
1036
  // Requires `src` to be <= kMaxFlatLength.
1037
  void AppendPrecise(absl::string_view src, MethodIdentifier method);
1038
  void PrependPrecise(absl::string_view src, MethodIdentifier method);
1039
1040
  CordBuffer GetAppendBufferSlowPath(size_t block_size, size_t capacity,
1041
                                     size_t min_capacity);
1042
1043
  // Prepends the provided data to this instance. `method` contains the public
1044
  // API method for this action which is tracked for Cordz sampling purposes.
1045
  void PrependArray(absl::string_view src, MethodIdentifier method);
1046
1047
  // Assigns the value in 'src' to this instance, 'stealing' its contents.
1048
  // Requires src.length() > kMaxBytesToCopy.
1049
  Cord& AssignLargeString(std::string&& src);
1050
1051
  // Helper for AbslHashValue().
1052
  template <typename H>
1053
  H HashFragmented(H hash_state) const {
1054
    typename H::AbslInternalPiecewiseCombiner combiner;
1055
    ForEachChunk([&combiner, &hash_state](absl::string_view chunk) {
1056
      hash_state = combiner.add_buffer(std::move(hash_state), chunk.data(),
1057
                                       chunk.size());
1058
    });
1059
    return H::combine(combiner.finalize(std::move(hash_state)), size());
1060
  }
1061
1062
  friend class CrcCord;
1063
  void SetCrcCordState(crc_internal::CrcCordState state);
1064
  absl::Nullable<const crc_internal::CrcCordState*> MaybeGetCrcCordState()
1065
      const;
1066
1067
  CharIterator FindImpl(CharIterator it, absl::string_view needle) const;
1068
};
1069
1070
ABSL_NAMESPACE_END
1071
}  // namespace absl
1072
1073
namespace absl {
1074
ABSL_NAMESPACE_BEGIN
1075
1076
// allow a Cord to be logged
1077
extern std::ostream& operator<<(std::ostream& out, const Cord& cord);
1078
1079
// ------------------------------------------------------------------
1080
// Internal details follow.  Clients should ignore.
1081
1082
namespace cord_internal {
1083
1084
// Does non-template-specific `CordRepExternal` initialization.
1085
// Requires `data` to be non-empty.
1086
void InitializeCordRepExternal(absl::string_view data,
1087
                               absl::Nonnull<CordRepExternal*> rep);
1088
1089
// Creates a new `CordRep` that owns `data` and `releaser` and returns a pointer
1090
// to it. Requires `data` to be non-empty.
1091
template <typename Releaser>
1092
// NOLINTNEXTLINE - suppress clang-tidy raw pointer return.
1093
absl::Nonnull<CordRep*> NewExternalRep(absl::string_view data,
1094
0
                                       Releaser&& releaser) {
1095
0
  assert(!data.empty());
1096
0
  using ReleaserType = absl::decay_t<Releaser>;
1097
0
  CordRepExternal* rep = new CordRepExternalImpl<ReleaserType>(
1098
0
      std::forward<Releaser>(releaser), 0);
1099
0
  InitializeCordRepExternal(data, rep);
1100
0
  return rep;
1101
0
}
Unexecuted instantiation: cord.cc:absl::lts_20240116::cord_internal::CordRep* absl::lts_20240116::cord_internal::NewExternalRep<absl::lts_20240116::CordRepFromString(std::__1::basic_string<char, std::__1::char_traits<char>, std::__1::allocator<char> >&&)::StringReleaser>(std::__1::basic_string_view<char, std::__1::char_traits<char> >, absl::lts_20240116::CordRepFromString(std::__1::basic_string<char, std::__1::char_traits<char>, std::__1::allocator<char> >&&)::StringReleaser&&)
Unexecuted instantiation: cord.cc:absl::lts_20240116::cord_internal::CordRep* absl::lts_20240116::cord_internal::NewExternalRep<absl::lts_20240116::Cord::FlattenSlowPath()::$_0>(std::__1::basic_string_view<char, std::__1::char_traits<char> >, absl::lts_20240116::Cord::FlattenSlowPath()::$_0&&)
1102
1103
// Overload for function reference types that dispatches using a function
1104
// pointer because there are no `alignof()` or `sizeof()` a function reference.
1105
// NOLINTNEXTLINE - suppress clang-tidy raw pointer return.
1106
inline absl::Nonnull<CordRep*> NewExternalRep(absl::string_view data,
1107
                               void (&releaser)(absl::string_view)) {
1108
  return NewExternalRep(data, &releaser);
1109
}
1110
1111
}  // namespace cord_internal
1112
1113
template <typename Releaser>
1114
Cord MakeCordFromExternal(absl::string_view data, Releaser&& releaser) {
1115
  Cord cord;
1116
  if (ABSL_PREDICT_TRUE(!data.empty())) {
1117
    cord.contents_.EmplaceTree(::absl::cord_internal::NewExternalRep(
1118
                                   data, std::forward<Releaser>(releaser)),
1119
                               Cord::MethodIdentifier::kMakeCordFromExternal);
1120
  } else {
1121
    using ReleaserType = absl::decay_t<Releaser>;
1122
    cord_internal::InvokeReleaser(
1123
        cord_internal::Rank0{}, ReleaserType(std::forward<Releaser>(releaser)),
1124
        data);
1125
  }
1126
  return cord;
1127
}
1128
1129
constexpr Cord::InlineRep::InlineRep(absl::string_view sv,
1130
                                     absl::Nullable<CordRep*> rep)
1131
    : data_(sv, rep) {}
1132
1133
inline Cord::InlineRep::InlineRep(const Cord::InlineRep& src)
1134
0
    : data_(InlineData::kDefaultInit) {
1135
0
  if (CordRep* tree = src.tree()) {
1136
0
    EmplaceTree(CordRep::Ref(tree), src.data_,
1137
0
                CordzUpdateTracker::kConstructorCord);
1138
0
  } else {
1139
0
    data_ = src.data_;
1140
0
  }
1141
0
}
1142
1143
0
inline Cord::InlineRep::InlineRep(Cord::InlineRep&& src) : data_(src.data_) {
1144
0
  src.ResetToEmpty();
1145
0
}
1146
1147
inline Cord::InlineRep& Cord::InlineRep::operator=(const Cord::InlineRep& src) {
1148
  if (this == &src) {
1149
    return *this;
1150
  }
1151
  if (!is_tree() && !src.is_tree()) {
1152
    data_ = src.data_;
1153
    return *this;
1154
  }
1155
  AssignSlow(src);
1156
  return *this;
1157
}
1158
1159
inline Cord::InlineRep& Cord::InlineRep::operator=(
1160
0
    Cord::InlineRep&& src) noexcept {
1161
0
  if (is_tree()) {
1162
0
    UnrefTree();
1163
0
  }
1164
0
  data_ = src.data_;
1165
0
  src.ResetToEmpty();
1166
0
  return *this;
1167
0
}
1168
1169
inline void Cord::InlineRep::Swap(absl::Nonnull<Cord::InlineRep*> rhs) {
1170
  if (rhs == this) {
1171
    return;
1172
  }
1173
  std::swap(data_, rhs->data_);
1174
}
1175
1176
0
inline absl::Nullable<const char*> Cord::InlineRep::data() const {
1177
0
  return is_tree() ? nullptr : data_.as_chars();
1178
0
}
1179
1180
inline absl::Nonnull<const char*> Cord::InlineRep::as_chars() const {
1181
  assert(!data_.is_tree());
1182
  return data_.as_chars();
1183
}
1184
1185
inline absl::Nonnull<absl::cord_internal::CordRep*> Cord::InlineRep::as_tree()
1186
0
    const {
1187
0
  assert(data_.is_tree());
1188
0
  return data_.as_tree();
1189
0
}
1190
1191
inline absl::Nullable<absl::cord_internal::CordRep*> Cord::InlineRep::tree()
1192
0
    const {
1193
0
  if (is_tree()) {
1194
0
    return as_tree();
1195
0
  } else {
1196
0
    return nullptr;
1197
0
  }
1198
0
}
1199
1200
0
inline size_t Cord::InlineRep::size() const {
1201
0
  return is_tree() ? as_tree()->length : inline_size();
1202
0
}
1203
1204
inline absl::Nonnull<cord_internal::CordRepFlat*>
1205
0
Cord::InlineRep::MakeFlatWithExtraCapacity(size_t extra) {
1206
0
  static_assert(cord_internal::kMinFlatLength >= sizeof(data_), "");
1207
0
  size_t len = data_.inline_size();
1208
0
  auto* result = CordRepFlat::New(len + extra);
1209
0
  result->length = len;
1210
0
  data_.copy_max_inline_to(result->Data());
1211
0
  return result;
1212
0
}
1213
1214
inline void Cord::InlineRep::EmplaceTree(absl::Nonnull<CordRep*> rep,
1215
0
                                         MethodIdentifier method) {
1216
0
  assert(rep);
1217
0
  data_.make_tree(rep);
1218
0
  CordzInfo::MaybeTrackCord(data_, method);
1219
0
}
1220
1221
inline void Cord::InlineRep::EmplaceTree(absl::Nonnull<CordRep*> rep,
1222
                                         const InlineData& parent,
1223
0
                                         MethodIdentifier method) {
1224
0
  data_.make_tree(rep);
1225
0
  CordzInfo::MaybeTrackCord(data_, parent, method);
1226
0
}
1227
1228
inline void Cord::InlineRep::SetTree(absl::Nonnull<CordRep*> rep,
1229
0
                                     const CordzUpdateScope& scope) {
1230
0
  assert(rep);
1231
0
  assert(data_.is_tree());
1232
0
  data_.set_tree(rep);
1233
0
  scope.SetCordRep(rep);
1234
0
}
1235
1236
inline void Cord::InlineRep::SetTreeOrEmpty(absl::Nullable<CordRep*> rep,
1237
0
                                            const CordzUpdateScope& scope) {
1238
0
  assert(data_.is_tree());
1239
0
  if (rep) {
1240
0
    data_.set_tree(rep);
1241
0
  } else {
1242
0
    data_ = {};
1243
0
  }
1244
0
  scope.SetCordRep(rep);
1245
0
}
1246
1247
inline void Cord::InlineRep::CommitTree(absl::Nullable<const CordRep*> old_rep,
1248
                                        absl::Nonnull<CordRep*> rep,
1249
                                        const CordzUpdateScope& scope,
1250
0
                                        MethodIdentifier method) {
1251
0
  if (old_rep) {
1252
0
    SetTree(rep, scope);
1253
0
  } else {
1254
0
    EmplaceTree(rep, method);
1255
0
  }
1256
0
}
1257
1258
0
inline absl::Nullable<absl::cord_internal::CordRep*> Cord::InlineRep::clear() {
1259
0
  if (is_tree()) {
1260
0
    CordzInfo::MaybeUntrackCord(cordz_info());
1261
0
  }
1262
0
  absl::cord_internal::CordRep* result = tree();
1263
0
  ResetToEmpty();
1264
0
  return result;
1265
0
}
1266
1267
inline void Cord::InlineRep::CopyToArray(absl::Nonnull<char*> dst) const {
1268
  assert(!is_tree());
1269
  size_t n = inline_size();
1270
  assert(n != 0);
1271
  cord_internal::SmallMemmove(dst, data_.as_chars(), n);
1272
}
1273
1274
0
inline void Cord::InlineRep::MaybeRemoveEmptyCrcNode() {
1275
0
  CordRep* rep = tree();
1276
0
  if (rep == nullptr || ABSL_PREDICT_TRUE(rep->length > 0)) {
1277
0
    return;
1278
0
  }
1279
0
  assert(rep->IsCrc());
1280
0
  assert(rep->crc()->child == nullptr);
1281
0
  CordzInfo::MaybeUntrackCord(cordz_info());
1282
0
  CordRep::Unref(rep);
1283
0
  ResetToEmpty();
1284
0
}
1285
1286
0
constexpr inline Cord::Cord() noexcept {}
1287
1288
inline Cord::Cord(absl::string_view src)
1289
    : Cord(src, CordzUpdateTracker::kConstructorString) {}
1290
1291
template <typename T>
1292
constexpr Cord::Cord(strings_internal::StringConstant<T>)
1293
    : contents_(strings_internal::StringConstant<T>::value,
1294
                strings_internal::StringConstant<T>::value.size() <=
1295
                        cord_internal::kMaxInline
1296
                    ? nullptr
1297
                    : &cord_internal::ConstInitExternalStorage<
1298
                          strings_internal::StringConstant<T>>::value) {}
1299
1300
inline Cord& Cord::operator=(const Cord& x) {
1301
  contents_ = x.contents_;
1302
  return *this;
1303
}
1304
1305
template <typename T, Cord::EnableIfString<T>>
1306
Cord& Cord::operator=(T&& src) {
1307
  if (src.size() <= cord_internal::kMaxBytesToCopy) {
1308
    return operator=(absl::string_view(src));
1309
  } else {
1310
    return AssignLargeString(std::forward<T>(src));
1311
  }
1312
}
1313
1314
0
inline Cord::Cord(const Cord& src) : contents_(src.contents_) {}
1315
1316
0
inline Cord::Cord(Cord&& src) noexcept : contents_(std::move(src.contents_)) {}
1317
1318
inline void Cord::swap(Cord& other) noexcept {
1319
  contents_.Swap(&other.contents_);
1320
}
1321
1322
0
inline Cord& Cord::operator=(Cord&& x) noexcept {
1323
0
  contents_ = std::move(x.contents_);
1324
0
  return *this;
1325
0
}
1326
1327
extern template Cord::Cord(std::string&& src);
1328
1329
0
inline size_t Cord::size() const {
1330
  // Length is 1st field in str.rep_
1331
0
  return contents_.size();
1332
0
}
1333
1334
0
inline bool Cord::empty() const { return size() == 0; }
1335
1336
inline size_t Cord::EstimatedMemoryUsage(
1337
    CordMemoryAccounting accounting_method) const {
1338
  size_t result = sizeof(Cord);
1339
  if (const absl::cord_internal::CordRep* rep = contents_.tree()) {
1340
    switch (accounting_method) {
1341
      case CordMemoryAccounting::kFairShare:
1342
        result += cord_internal::GetEstimatedFairShareMemoryUsage(rep);
1343
        break;
1344
      case CordMemoryAccounting::kTotalMorePrecise:
1345
        result += cord_internal::GetMorePreciseMemoryUsage(rep);
1346
        break;
1347
      case CordMemoryAccounting::kTotal:
1348
        result += cord_internal::GetEstimatedMemoryUsage(rep);
1349
        break;
1350
    }
1351
  }
1352
  return result;
1353
}
1354
1355
inline absl::optional<absl::string_view> Cord::TryFlat() const {
1356
  absl::cord_internal::CordRep* rep = contents_.tree();
1357
  if (rep == nullptr) {
1358
    return absl::string_view(contents_.data(), contents_.size());
1359
  }
1360
  absl::string_view fragment;
1361
  if (GetFlatAux(rep, &fragment)) {
1362
    return fragment;
1363
  }
1364
  return absl::nullopt;
1365
}
1366
1367
inline absl::string_view Cord::Flatten() {
1368
  absl::cord_internal::CordRep* rep = contents_.tree();
1369
  if (rep == nullptr) {
1370
    return absl::string_view(contents_.data(), contents_.size());
1371
  } else {
1372
    absl::string_view already_flat_contents;
1373
    if (GetFlatAux(rep, &already_flat_contents)) {
1374
      return already_flat_contents;
1375
    }
1376
  }
1377
  return FlattenSlowPath();
1378
}
1379
1380
0
inline void Cord::Append(absl::string_view src) {
1381
0
  contents_.AppendArray(src, CordzUpdateTracker::kAppendString);
1382
0
}
1383
1384
0
inline void Cord::Prepend(absl::string_view src) {
1385
0
  PrependArray(src, CordzUpdateTracker::kPrependString);
1386
0
}
1387
1388
inline void Cord::Append(CordBuffer buffer) {
1389
  if (ABSL_PREDICT_FALSE(buffer.length() == 0)) return;
1390
  absl::string_view short_value;
1391
  if (CordRep* rep = buffer.ConsumeValue(short_value)) {
1392
    contents_.AppendTree(rep, CordzUpdateTracker::kAppendCordBuffer);
1393
  } else {
1394
    AppendPrecise(short_value, CordzUpdateTracker::kAppendCordBuffer);
1395
  }
1396
}
1397
1398
inline void Cord::Prepend(CordBuffer buffer) {
1399
  if (ABSL_PREDICT_FALSE(buffer.length() == 0)) return;
1400
  absl::string_view short_value;
1401
  if (CordRep* rep = buffer.ConsumeValue(short_value)) {
1402
    contents_.PrependTree(rep, CordzUpdateTracker::kPrependCordBuffer);
1403
  } else {
1404
    PrependPrecise(short_value, CordzUpdateTracker::kPrependCordBuffer);
1405
  }
1406
}
1407
1408
inline CordBuffer Cord::GetAppendBuffer(size_t capacity, size_t min_capacity) {
1409
  if (empty()) return CordBuffer::CreateWithDefaultLimit(capacity);
1410
  return GetAppendBufferSlowPath(0, capacity, min_capacity);
1411
}
1412
1413
inline CordBuffer Cord::GetCustomAppendBuffer(size_t block_size,
1414
                                              size_t capacity,
1415
                                              size_t min_capacity) {
1416
  if (empty()) {
1417
    return block_size ? CordBuffer::CreateWithCustomLimit(block_size, capacity)
1418
                      : CordBuffer::CreateWithDefaultLimit(capacity);
1419
  }
1420
  return GetAppendBufferSlowPath(block_size, capacity, min_capacity);
1421
}
1422
1423
extern template void Cord::Append(std::string&& src);
1424
extern template void Cord::Prepend(std::string&& src);
1425
1426
inline int Cord::Compare(const Cord& rhs) const {
1427
  if (!contents_.is_tree() && !rhs.contents_.is_tree()) {
1428
    return contents_.data_.Compare(rhs.contents_.data_);
1429
  }
1430
1431
  return CompareImpl(rhs);
1432
}
1433
1434
// Does 'this' cord start/end with rhs
1435
inline bool Cord::StartsWith(const Cord& rhs) const {
1436
  if (contents_.IsSame(rhs.contents_)) return true;
1437
  size_t rhs_size = rhs.size();
1438
  if (size() < rhs_size) return false;
1439
  return EqualsImpl(rhs, rhs_size);
1440
}
1441
1442
inline bool Cord::StartsWith(absl::string_view rhs) const {
1443
  size_t rhs_size = rhs.size();
1444
  if (size() < rhs_size) return false;
1445
  return EqualsImpl(rhs, rhs_size);
1446
}
1447
1448
inline void Cord::ChunkIterator::InitTree(
1449
0
    absl::Nonnull<cord_internal::CordRep*> tree) {
1450
0
  tree = cord_internal::SkipCrcNode(tree);
1451
0
  if (tree->tag == cord_internal::BTREE) {
1452
0
    current_chunk_ = btree_reader_.Init(tree->btree());
1453
0
  } else {
1454
0
    current_leaf_ = tree;
1455
0
    current_chunk_ = cord_internal::EdgeData(tree);
1456
0
  }
1457
0
}
1458
1459
inline Cord::ChunkIterator::ChunkIterator(
1460
0
    absl::Nonnull<cord_internal::CordRep*> tree) {
1461
0
  bytes_remaining_ = tree->length;
1462
0
  InitTree(tree);
1463
0
}
1464
1465
0
inline Cord::ChunkIterator::ChunkIterator(absl::Nonnull<const Cord*> cord) {
1466
0
  if (CordRep* tree = cord->contents_.tree()) {
1467
0
    bytes_remaining_ = tree->length;
1468
0
    if (ABSL_PREDICT_TRUE(bytes_remaining_ != 0)) {
1469
0
      InitTree(tree);
1470
0
    } else {
1471
0
      current_chunk_ = {};
1472
0
    }
1473
0
  } else {
1474
0
    bytes_remaining_ = cord->contents_.inline_size();
1475
0
    current_chunk_ = {cord->contents_.data(), bytes_remaining_};
1476
0
  }
1477
0
}
1478
1479
0
inline Cord::ChunkIterator& Cord::ChunkIterator::AdvanceBtree() {
1480
0
  current_chunk_ = btree_reader_.Next();
1481
0
  return *this;
1482
0
}
1483
1484
0
inline void Cord::ChunkIterator::AdvanceBytesBtree(size_t n) {
1485
0
  assert(n >= current_chunk_.size());
1486
0
  bytes_remaining_ -= n;
1487
0
  if (bytes_remaining_) {
1488
0
    if (n == current_chunk_.size()) {
1489
0
      current_chunk_ = btree_reader_.Next();
1490
0
    } else {
1491
0
      size_t offset = btree_reader_.length() - bytes_remaining_;
1492
0
      current_chunk_ = btree_reader_.Seek(offset);
1493
0
    }
1494
0
  } else {
1495
0
    current_chunk_ = {};
1496
0
  }
1497
0
}
1498
1499
0
inline Cord::ChunkIterator& Cord::ChunkIterator::operator++() {
1500
0
  ABSL_HARDENING_ASSERT(bytes_remaining_ > 0 &&
1501
0
                        "Attempted to iterate past `end()`");
1502
0
  assert(bytes_remaining_ >= current_chunk_.size());
1503
0
  bytes_remaining_ -= current_chunk_.size();
1504
0
  if (bytes_remaining_ > 0) {
1505
0
    if (btree_reader_) {
1506
0
      return AdvanceBtree();
1507
0
    } else {
1508
0
      assert(!current_chunk_.empty());  // Called on invalid iterator.
1509
0
    }
1510
0
    current_chunk_ = {};
1511
0
  }
1512
0
  return *this;
1513
0
}
1514
1515
inline Cord::ChunkIterator Cord::ChunkIterator::operator++(int) {
1516
  ChunkIterator tmp(*this);
1517
  operator++();
1518
  return tmp;
1519
}
1520
1521
0
inline bool Cord::ChunkIterator::operator==(const ChunkIterator& other) const {
1522
0
  return bytes_remaining_ == other.bytes_remaining_;
1523
0
}
1524
1525
0
inline bool Cord::ChunkIterator::operator!=(const ChunkIterator& other) const {
1526
0
  return !(*this == other);
1527
0
}
1528
1529
0
inline Cord::ChunkIterator::reference Cord::ChunkIterator::operator*() const {
1530
0
  ABSL_HARDENING_ASSERT(bytes_remaining_ != 0);
1531
0
  return current_chunk_;
1532
0
}
1533
1534
0
inline Cord::ChunkIterator::pointer Cord::ChunkIterator::operator->() const {
1535
0
  ABSL_HARDENING_ASSERT(bytes_remaining_ != 0);
1536
0
  return &current_chunk_;
1537
0
}
1538
1539
0
inline void Cord::ChunkIterator::RemoveChunkPrefix(size_t n) {
1540
0
  assert(n < current_chunk_.size());
1541
0
  current_chunk_.remove_prefix(n);
1542
0
  bytes_remaining_ -= n;
1543
0
}
1544
1545
0
inline void Cord::ChunkIterator::AdvanceBytes(size_t n) {
1546
0
  assert(bytes_remaining_ >= n);
1547
0
  if (ABSL_PREDICT_TRUE(n < current_chunk_.size())) {
1548
0
    RemoveChunkPrefix(n);
1549
0
  } else if (n != 0) {
1550
0
    if (btree_reader_) {
1551
0
      AdvanceBytesBtree(n);
1552
0
    } else {
1553
0
      bytes_remaining_ = 0;
1554
0
    }
1555
0
  }
1556
0
}
1557
1558
0
inline Cord::ChunkIterator Cord::chunk_begin() const {
1559
0
  return ChunkIterator(this);
1560
0
}
1561
1562
0
inline Cord::ChunkIterator Cord::chunk_end() const { return ChunkIterator(); }
1563
1564
0
inline Cord::ChunkIterator Cord::ChunkRange::begin() const {
1565
0
  return cord_->chunk_begin();
1566
0
}
1567
1568
0
inline Cord::ChunkIterator Cord::ChunkRange::end() const {
1569
0
  return cord_->chunk_end();
1570
0
}
1571
1572
0
inline Cord::ChunkRange Cord::Chunks() const { return ChunkRange(this); }
1573
1574
inline Cord::CharIterator& Cord::CharIterator::operator++() {
1575
  if (ABSL_PREDICT_TRUE(chunk_iterator_->size() > 1)) {
1576
    chunk_iterator_.RemoveChunkPrefix(1);
1577
  } else {
1578
    ++chunk_iterator_;
1579
  }
1580
  return *this;
1581
}
1582
1583
inline Cord::CharIterator Cord::CharIterator::operator++(int) {
1584
  CharIterator tmp(*this);
1585
  operator++();
1586
  return tmp;
1587
}
1588
1589
0
inline bool Cord::CharIterator::operator==(const CharIterator& other) const {
1590
0
  return chunk_iterator_ == other.chunk_iterator_;
1591
0
}
1592
1593
0
inline bool Cord::CharIterator::operator!=(const CharIterator& other) const {
1594
0
  return !(*this == other);
1595
0
}
1596
1597
inline Cord::CharIterator::reference Cord::CharIterator::operator*() const {
1598
  return *chunk_iterator_->data();
1599
}
1600
1601
inline Cord::CharIterator::pointer Cord::CharIterator::operator->() const {
1602
  return chunk_iterator_->data();
1603
}
1604
1605
inline Cord Cord::AdvanceAndRead(absl::Nonnull<CharIterator*> it,
1606
                                 size_t n_bytes) {
1607
  assert(it != nullptr);
1608
  return it->chunk_iterator_.AdvanceAndReadBytes(n_bytes);
1609
}
1610
1611
0
inline void Cord::Advance(absl::Nonnull<CharIterator*> it, size_t n_bytes) {
1612
0
  assert(it != nullptr);
1613
0
  it->chunk_iterator_.AdvanceBytes(n_bytes);
1614
0
}
1615
1616
0
inline absl::string_view Cord::ChunkRemaining(const CharIterator& it) {
1617
0
  return *it.chunk_iterator_;
1618
0
}
1619
1620
0
inline Cord::CharIterator Cord::char_begin() const {
1621
0
  return CharIterator(this);
1622
0
}
1623
1624
0
inline Cord::CharIterator Cord::char_end() const { return CharIterator(); }
1625
1626
inline Cord::CharIterator Cord::CharRange::begin() const {
1627
  return cord_->char_begin();
1628
}
1629
1630
inline Cord::CharIterator Cord::CharRange::end() const {
1631
  return cord_->char_end();
1632
}
1633
1634
inline Cord::CharRange Cord::Chars() const { return CharRange(this); }
1635
1636
inline void Cord::ForEachChunk(
1637
    absl::FunctionRef<void(absl::string_view)> callback) const {
1638
  absl::cord_internal::CordRep* rep = contents_.tree();
1639
  if (rep == nullptr) {
1640
    callback(absl::string_view(contents_.data(), contents_.size()));
1641
  } else {
1642
    ForEachChunkAux(rep, callback);
1643
  }
1644
}
1645
1646
// Nonmember Cord-to-Cord relational operators.
1647
0
inline bool operator==(const Cord& lhs, const Cord& rhs) {
1648
0
  if (lhs.contents_.IsSame(rhs.contents_)) return true;
1649
0
  size_t rhs_size = rhs.size();
1650
0
  if (lhs.size() != rhs_size) return false;
1651
0
  return lhs.EqualsImpl(rhs, rhs_size);
1652
0
}
1653
1654
0
inline bool operator!=(const Cord& x, const Cord& y) { return !(x == y); }
1655
inline bool operator<(const Cord& x, const Cord& y) { return x.Compare(y) < 0; }
1656
inline bool operator>(const Cord& x, const Cord& y) { return x.Compare(y) > 0; }
1657
inline bool operator<=(const Cord& x, const Cord& y) {
1658
  return x.Compare(y) <= 0;
1659
}
1660
inline bool operator>=(const Cord& x, const Cord& y) {
1661
  return x.Compare(y) >= 0;
1662
}
1663
1664
// Nonmember Cord-to-absl::string_view relational operators.
1665
//
1666
// Due to implicit conversions, these also enable comparisons of Cord with
1667
// std::string and const char*.
1668
0
inline bool operator==(const Cord& lhs, absl::string_view rhs) {
1669
0
  size_t lhs_size = lhs.size();
1670
0
  size_t rhs_size = rhs.size();
1671
0
  if (lhs_size != rhs_size) return false;
1672
0
  return lhs.EqualsImpl(rhs, rhs_size);
1673
0
}
1674
1675
inline bool operator==(absl::string_view x, const Cord& y) { return y == x; }
1676
inline bool operator!=(const Cord& x, absl::string_view y) { return !(x == y); }
1677
inline bool operator!=(absl::string_view x, const Cord& y) { return !(x == y); }
1678
inline bool operator<(const Cord& x, absl::string_view y) {
1679
  return x.Compare(y) < 0;
1680
}
1681
inline bool operator<(absl::string_view x, const Cord& y) {
1682
  return y.Compare(x) > 0;
1683
}
1684
inline bool operator>(const Cord& x, absl::string_view y) { return y < x; }
1685
inline bool operator>(absl::string_view x, const Cord& y) { return y < x; }
1686
inline bool operator<=(const Cord& x, absl::string_view y) { return !(y < x); }
1687
inline bool operator<=(absl::string_view x, const Cord& y) { return !(y < x); }
1688
inline bool operator>=(const Cord& x, absl::string_view y) { return !(x < y); }
1689
inline bool operator>=(absl::string_view x, const Cord& y) { return !(x < y); }
1690
1691
// Some internals exposed to test code.
1692
namespace strings_internal {
1693
class CordTestAccess {
1694
 public:
1695
  static size_t FlatOverhead();
1696
  static size_t MaxFlatLength();
1697
  static size_t SizeofCordRepExternal();
1698
  static size_t SizeofCordRepSubstring();
1699
  static size_t FlatTagToLength(uint8_t tag);
1700
  static uint8_t LengthToTag(size_t s);
1701
};
1702
}  // namespace strings_internal
1703
ABSL_NAMESPACE_END
1704
}  // namespace absl
1705
1706
#endif  // ABSL_STRINGS_CORD_H_