// Copyright 2005-2024 Google LLC
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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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// http://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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// See www.openfst.org for extensive documentation on this weighted
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// finite-state transducer library.
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//
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// FST utility inline definitions.
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#ifndef FST_UTIL_H_
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#define FST_UTIL_H_
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#include <array>
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#include <cstddef>
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#include <cstdint>
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#include <ios>
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#include <iostream>
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#include <istream>
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#include <iterator>
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#include <list>
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#include <map>
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#include <optional>
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#include <ostream>
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#include <set>
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#include <sstream>
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#include <string>
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#include <type_traits>
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#include <unordered_map>
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#include <unordered_set>
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#include <utility>
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#include <vector>
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#include <fst/compat.h>
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#include <fst/flags.h>
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#include <fst/log.h>
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#include <fstream>
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#include <fst/mapped-file.h>
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#include <unordered_map>
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#include <string_view>
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#include <optional>
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// Utility for error handling.
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DECLARE_bool(fst_error_fatal);
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#define FSTERROR() \
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(FST_FLAGS_fst_error_fatal ? LOG(FATAL) : LOG(ERROR))
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namespace fst {
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// Utility for type I/O. For portability of serialized objects across
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// architectures, care must be taken so that only fixed-size types (like
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// `int32_t`) are used with `WriteType`/`ReadType`, not types that may differ in
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// size depending on the architecture, such as `int`. For `enum` types, a
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// fixed-size base (like `enum E : int32_t`) should be used. Objects are
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// written and read in the host byte order, so will not be portable across
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// different endiannesses.
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namespace internal {
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// Whether the scalar type is supported by `ReadType`/`WriteType`.
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template <class T>
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inline constexpr bool IsScalarIOTypeV =
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std::is_arithmetic_v<T> || std::is_enum_v<T>;
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} // namespace internal
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// Reads types from an input stream.
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// Generic case.
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template <class T, typename std::enable_if_t<std::is_class_v<T>, T> * = nullptr>
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inline std::istream &ReadType(std::istream &strm, T *t) {
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return t->Read(strm);
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}
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// Numeric (boolean, integral, floating-point) or enum case.
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template <class T, typename std::enable_if_t<internal::IsScalarIOTypeV<T>, T>
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* = nullptr>
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inline std::istream &ReadType(std::istream &strm, T *t) {
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return strm.read(reinterpret_cast<char *>(t), sizeof(T));
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}
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// Numeric (boolean, integral, floating-point) or enum case only.
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template <class T>
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inline std::istream &ReadType(std::istream &strm, size_t n, T *t) {
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static_assert(internal::IsScalarIOTypeV<T>,
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"Type not supported for batch read.");
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return strm.read(reinterpret_cast<char *>(t), sizeof(T) * n);
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}
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// String case.
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inline std::istream &ReadType(std::istream &strm, std::string *s) {
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s->clear();
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int32_t ns = 0;
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ReadType(strm, &ns);
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if (ns <= 0) return strm;
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s->resize(ns);
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ReadType(strm, ns, s->data());
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return strm;
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}
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// Declares types that can be read from an input stream.
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template <class... T>
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std::istream &ReadType(std::istream &strm, std::vector<T...> *c);
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template <class... T>
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std::istream &ReadType(std::istream &strm, std::list<T...> *c);
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template <class... T>
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std::istream &ReadType(std::istream &strm, std::set<T...> *c);
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template <class... T>
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std::istream &ReadType(std::istream &strm, std::map<T...> *c);
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template <class... T>
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std::istream &ReadType(std::istream &strm, std::unordered_map<T...> *c);
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template <class... T>
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std::istream &ReadType(std::istream &strm, std::unordered_set<T...> *c);
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// Pair case.
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template <typename S, typename T>
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inline std::istream &ReadType(std::istream &strm, std::pair<S, T> *p) {
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ReadType(strm, &p->first);
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ReadType(strm, &p->second);
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return strm;
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}
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template <typename S, typename T>
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inline std::istream &ReadType(std::istream &strm, std::pair<const S, T> *p) {
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ReadType(strm, const_cast<S *>(&p->first));
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ReadType(strm, &p->second);
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return strm;
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}
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namespace internal {
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template <class C, class ReserveFn>
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std::istream &ReadContainerType(std::istream &strm, C *c, ReserveFn reserve) {
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c->clear();
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int64_t n = 0;
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ReadType(strm, &n);
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reserve(c, n);
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auto insert = std::inserter(*c, c->begin());
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for (int64_t i = 0; i < n; ++i) {
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typename C::value_type value;
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ReadType(strm, &value);
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*insert = value;
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}
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return strm;
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}
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// Generic vector case.
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template <typename T, class A,
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typename std::enable_if_t<std::is_class_v<T>, T> * = nullptr>
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inline std::istream &ReadVectorType(std::istream &strm, std::vector<T, A> *c) {
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return internal::ReadContainerType(
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strm, c, [](decltype(c) v, int n) { v->reserve(n); });
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}
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// Vector of numerics (boolean, integral, floating-point, char) or enum case.
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template <
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typename T, class A,
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typename std::enable_if_t<internal::IsScalarIOTypeV<T>, T> * = nullptr>
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inline std::istream &ReadVectorType(std::istream &strm, std::vector<T, A> *c) {
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c->clear();
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int64_t n = 0;
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ReadType(strm, &n);
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if (n == 0) return strm;
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c->resize(n);
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ReadType(strm, n, c->data());
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return strm;
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}
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} // namespace internal
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template <class T, size_t N>
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std::istream &ReadType(std::istream &strm, std::array<T, N> *c) {
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if constexpr (internal::IsScalarIOTypeV<T>) {
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ReadType(strm, c->size(), c->data());
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} else {
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for (auto &v : *c) ReadType(strm, &v);
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}
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return strm;
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}
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template <class... T>
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std::istream &ReadType(std::istream &strm, std::vector<T...> *c) {
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return internal::ReadVectorType(strm, c);
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}
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template <class... T>
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std::istream &ReadType(std::istream &strm, std::list<T...> *c) {
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return internal::ReadContainerType(strm, c, [](decltype(c) v, int n) {});
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}
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template <class... T>
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std::istream &ReadType(std::istream &strm, std::set<T...> *c) {
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return internal::ReadContainerType(strm, c, [](decltype(c) v, int n) {});
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}
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template <class... T>
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std::istream &ReadType(std::istream &strm, std::map<T...> *c) {
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return internal::ReadContainerType(strm, c, [](decltype(c) v, int n) {});
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}
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template <class... T>
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std::istream &ReadType(std::istream &strm, std::unordered_set<T...> *c) {
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return internal::ReadContainerType(
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strm, c, [](decltype(c) v, int n) { v->reserve(n); });
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}
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template <class... T>
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std::istream &ReadType(std::istream &strm, std::unordered_map<T...> *c) {
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return internal::ReadContainerType(
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strm, c, [](decltype(c) v, int n) { v->reserve(n); });
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}
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// Writes types to an output stream.
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// Generic case.
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template <class T, typename std::enable_if<
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std::is_class<T>::value &&
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// `string_view` is handled separately below.
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!std::is_convertible<T, std::string_view>::value,
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T>::type * = nullptr>
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inline std::ostream &WriteType(std::ostream &strm, const T t) {
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t.Write(strm);
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return strm;
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}
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// Numeric (boolean, integral, floating-point) or enum case.
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template <class T, typename std::enable_if_t<internal::IsScalarIOTypeV<T>, T>
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* = nullptr>
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inline std::ostream &WriteType(std::ostream &strm, const T t) {
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return strm.write(reinterpret_cast<const char *>(&t), sizeof(T));
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}
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// Numeric (boolean, integral, floating-point) or enum case only.
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template <class T>
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inline std::ostream &WriteType(std::ostream &strm, size_t n, const T *t) {
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static_assert(internal::IsScalarIOTypeV<T>,
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"Type not supported for batch write.");
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return strm.write(reinterpret_cast<const char *>(t), sizeof(T) * n);
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}
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inline std::ostream &WriteType(std::ostream &strm, std::string_view s) {
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int32_t ns = s.size();
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WriteType(strm, ns);
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return strm.write(s.data(), ns);
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}
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// Declares types that can be written to an output stream.
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template <typename... T>
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std::ostream &WriteType(std::ostream &strm, const std::vector<T...> &c);
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template <typename... T>
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std::ostream &WriteType(std::ostream &strm, const std::list<T...> &c);
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template <typename... T>
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std::ostream &WriteType(std::ostream &strm, const std::set<T...> &c);
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template <typename... T>
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std::ostream &WriteType(std::ostream &strm, const std::map<T...> &c);
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template <typename... T>
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std::ostream &WriteType(std::ostream &strm, const std::unordered_map<T...> &c);
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template <typename... T>
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std::ostream &WriteType(std::ostream &strm, const std::unordered_set<T...> &c);
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// Pair case.
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template <typename S, typename T>
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inline std::ostream &WriteType(std::ostream &strm, const std::pair<S, T> &p) {
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WriteType(strm, p.first);
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WriteType(strm, p.second);
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return strm;
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}
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namespace internal {
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template <class C>
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std::ostream &WriteSequence(std::ostream &strm, const C &c) {
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for (const auto &e : c) {
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WriteType(strm, e);
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}
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return strm;
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}
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template <class C>
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std::ostream &WriteContainer(std::ostream &strm, const C &c) {
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const int64_t n = c.size();
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WriteType(strm, n);
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WriteSequence(strm, c);
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return strm;
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}
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} // namespace internal
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template <class T, size_t N>
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std::ostream &WriteType(std::ostream &strm, const std::array<T, N> &c) {
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return internal::WriteSequence(strm, c);
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}
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template <typename... T>
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std::ostream &WriteType(std::ostream &strm, const std::vector<T...> &c) {
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return internal::WriteContainer(strm, c);
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}
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template <typename... T>
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std::ostream &WriteType(std::ostream &strm, const std::list<T...> &c) {
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return internal::WriteContainer(strm, c);
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}
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template <typename... T>
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std::ostream &WriteType(std::ostream &strm, const std::set<T...> &c) {
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return internal::WriteContainer(strm, c);
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}
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template <typename... T>
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std::ostream &WriteType(std::ostream &strm, const std::map<T...> &c) {
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return internal::WriteContainer(strm, c);
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}
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template <typename... T>
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std::ostream &WriteType(std::ostream &strm, const std::unordered_map<T...> &c) {
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return internal::WriteContainer(strm, c);
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}
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template <typename... T>
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std::ostream &WriteType(std::ostream &strm, const std::unordered_set<T...> &c) {
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return internal::WriteContainer(strm, c);
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}
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// Utilities for converting between int64_t or Weight and string.
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// Parses a 64-bit signed integer in some base out of an input string. The
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// string should consist only of digits (no prefixes such as "0x") and an
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// optionally preceding minus. Returns a value iff the entirety of the string is
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// consumed during integer parsing, otherwise returns `std::nullopt`.
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std::optional<int64_t> ParseInt64(std::string_view s, int base = 10);
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int64_t StrToInt64(std::string_view s, std::string_view source, size_t nline,
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bool * error = nullptr);
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template <typename Weight>
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Weight StrToWeight(std::string_view s) {
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Weight w;
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std::istringstream strm(std::string{s});
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strm >> w;
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if (!strm) {
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FSTERROR() << "StrToWeight: Bad weight: " << s;
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return Weight::NoWeight();
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}
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return w;
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}
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template <typename Weight>
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std::string WeightToStr(Weight w) {
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std::ostringstream strm;
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strm.precision(9);
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strm << w;
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return strm.str();
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}
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// Utilities for reading/writing integer pairs (typically labels).
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template <typename I>
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bool ReadIntPairs(std::string_view source,
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std::vector<std::pair<I, I>> *pairs) {
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std::ifstream strm(std::string(source), std::ios_base::in);
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if (!strm) {
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LOG(ERROR) << "ReadIntPairs: Can't open file: " << source;
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return false;
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}
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const int kLineLen = 8096;
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char line[kLineLen];
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size_t nline = 0;
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pairs->clear();
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while (strm.getline(line, kLineLen)) {
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++nline;
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std::vector<std::string_view> col =
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StrSplit(line, ByAnyChar("\n\t "), SkipEmpty());
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// empty line or comment?
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if (col.empty() || col[0].empty() || col[0][0] == '#') continue;
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if (col.size() != 2) {
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LOG(ERROR) << "ReadIntPairs: Bad number of columns, "
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<< "file = " << source << ", line = " << nline;
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return false;
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}
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bool err;
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I i1 = StrToInt64(col[0], source, nline, &err);
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if (err) return false;
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I i2 = StrToInt64(col[1], source, nline, &err);
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if (err) return false;
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pairs->emplace_back(i1, i2);
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}
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return true;
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}
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template <typename I>
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bool WriteIntPairs(std::string_view source,
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const std::vector<std::pair<I, I>> &pairs) {
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std::ofstream fstrm;
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if (!source.empty()) {
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fstrm.open(std::string(source));
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if (!fstrm) {
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LOG(ERROR) << "WriteIntPairs: Can't open file: " << source;
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return false;
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}
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}
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std::ostream &ostrm = fstrm.is_open() ? fstrm : std::cout;
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for (const auto &pair : pairs) {
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ostrm << pair.first << "\t" << pair.second << "\n";
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}
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return !!ostrm;
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}
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// Utilities for reading/writing label pairs.
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template <typename Label>
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bool ReadLabelPairs(std::string_view source,
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std::vector<std::pair<Label, Label>> *pairs) {
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return ReadIntPairs(source, pairs);
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}
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template <typename Label>
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bool WriteLabelPairs(std::string_view source,
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const std::vector<std::pair<Label, Label>> &pairs) {
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return WriteIntPairs(source, pairs);
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}
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// Utilities for converting a type name to a legal C symbol.
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void ConvertToLegalCSymbol(std::string *s);
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// Utilities for stream I/O.
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bool AlignInput(std::istream &strm, size_t align = MappedFile::kArchAlignment);
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bool AlignOutput(std::ostream &strm, size_t align = MappedFile::kArchAlignment);
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// An associative container for which testing membership is faster than an STL
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// set if members are restricted to an interval that excludes most non-members.
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// A Key must have ==, !=, and < operators defined. Element NoKey should be a
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// key that marks an uninitialized key and is otherwise unused. Find() returns
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// an STL const_iterator to the match found, otherwise it equals End().
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template <class Key, Key NoKey>
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class CompactSet {
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public:
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using const_iterator = typename std::set<Key>::const_iterator;
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CompactSet() : min_key_(NoKey), max_key_(NoKey) {}
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CompactSet(const CompactSet &) = default;
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void Insert(Key key) {
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set_.insert(key);
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if (min_key_ == NoKey || key < min_key_) min_key_ = key;
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if (max_key_ == NoKey || max_key_ < key) max_key_ = key;
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}
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void Erase(Key key) {
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set_.erase(key);
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if (set_.empty()) {
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min_key_ = max_key_ = NoKey;
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} else if (key == min_key_) {
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++min_key_;
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} else if (key == max_key_) {
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--max_key_;
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}
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}
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void Clear() {
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set_.clear();
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min_key_ = max_key_ = NoKey;
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}
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const_iterator Find(Key key) const {
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if (min_key_ == NoKey || key < min_key_ || max_key_ < key) {
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return set_.end();
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} else {
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return set_.find(key);
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}
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}
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bool Member(Key key) const {
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if (min_key_ == NoKey || key < min_key_ || max_key_ < key) {
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return false; // out of range
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} else if (min_key_ != NoKey && max_key_ + 1 == min_key_ + set_.size()) {
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return true; // dense range
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} else {
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return set_.count(key);
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}
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}
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const_iterator Begin() const { return set_.begin(); }
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const_iterator End() const { return set_.end(); }
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// All stored keys are greater than or equal to this value.
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Key LowerBound() const { return min_key_; }
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// All stored keys are less than or equal to this value.
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Key UpperBound() const { return max_key_; }
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private:
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std::set<Key> set_;
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Key min_key_;
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Key max_key_;
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void operator=(const CompactSet &) = delete;
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};
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} // namespace fst
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#endif // FST_UTIL_H_
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