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https://github.com/carbon-language/carbon-lang.git
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The Carbon style guide prefers `const` to be on the left wherever possible, and also has a de-facto standard for specifier order. Since the order of specifiers and qualifiers tends to become a part of muscle-memory, deferring the checking of this to tooling should lift a small burden on both contributors and reviewers. --------- Co-authored-by: Carbon Infra Bot <carbon-external-infra@google.com>
921 lines
37 KiB
C++
921 lines
37 KiB
C++
// Part of the Carbon Language project, under the Apache License v2.0 with LLVM
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// Exceptions. See /LICENSE for license information.
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// SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
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#include "testing/base/source_gen.h"
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#include <algorithm>
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#include <array>
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#include <numeric>
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#include <string>
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#include <utility>
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#include "common/raw_string_ostream.h"
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#include "llvm/ADT/ArrayRef.h"
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#include "llvm/ADT/Sequence.h"
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#include "llvm/ADT/SmallVector.h"
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#include "llvm/ADT/StringExtras.h"
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#include "llvm/Support/FormatVariadic.h"
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#include "toolchain/lex/token_kind.h"
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namespace Carbon::Testing {
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auto SourceGen::Global() -> SourceGen& {
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static SourceGen global_gen;
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return global_gen;
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}
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SourceGen::SourceGen(Language language) : language_(language) {}
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// Heuristic numbers used in synthesizing various identifier sequences.
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static constexpr int MinClassNameLength = 5;
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static constexpr int MinMemberNameLength = 4;
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// The shuffled state used to generate some number of classes.
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//
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// This state encodes everything used to generate class definitions. The state
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// will be consumed until empty.
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//
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// Detailed comments for out-of-line methods are on their definitions.
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class SourceGen::ClassGenState {
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public:
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ClassGenState(SourceGen& gen, int num_classes,
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const ClassParams& class_params,
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const TypeUseParams& type_use_params);
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auto public_function_param_counts() -> llvm::SmallVectorImpl<int>& {
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return public_function_param_counts_;
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}
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auto public_method_param_counts() -> llvm::SmallVectorImpl<int>& {
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return public_method_param_counts_;
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}
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auto private_function_param_counts() -> llvm::SmallVectorImpl<int>& {
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return private_function_param_counts_;
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}
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auto private_method_param_counts() -> llvm::SmallVectorImpl<int>& {
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return private_method_param_counts_;
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}
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auto class_names() -> llvm::SmallVectorImpl<llvm::StringRef>& {
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return class_names_;
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}
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auto member_names() -> llvm::SmallVectorImpl<llvm::StringRef>& {
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return member_names_;
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}
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auto param_names() -> llvm::SmallVectorImpl<llvm::StringRef>& {
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return param_names_;
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}
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auto type_names() -> llvm::SmallVectorImpl<llvm::StringRef>& {
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return type_names_;
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}
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auto AddValidTypeName(llvm::StringRef type_name) -> void {
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valid_type_names_.Insert(type_name);
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}
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auto GetValidTypeName() -> llvm::StringRef;
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private:
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auto BuildClassAndTypeNames(SourceGen& gen, int num_classes, int num_types,
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const TypeUseParams& type_use_params) -> void;
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llvm::SmallVector<int> public_function_param_counts_;
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llvm::SmallVector<int> public_method_param_counts_;
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llvm::SmallVector<int> private_function_param_counts_;
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llvm::SmallVector<int> private_method_param_counts_;
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llvm::SmallVector<llvm::StringRef> class_names_;
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llvm::SmallVector<llvm::StringRef> member_names_;
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llvm::SmallVector<llvm::StringRef> param_names_;
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llvm::SmallVector<llvm::StringRef> type_names_;
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Set<llvm::StringRef> valid_type_names_;
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int last_type_name_index_ = 0;
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};
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// A helper to sum elements of a range.
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template <typename T>
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static auto Sum(const T& range) -> int {
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return std::accumulate(range.begin(), range.end(), 0);
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}
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// Given a number of class definitions and the params with which to generate
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// them, builds the state that will be used while generating that many classes.
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//
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// We build the state first and across all the class definitions that will be
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// generated so that we can distribute random components across all the
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// definitions.
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SourceGen::ClassGenState::ClassGenState(SourceGen& gen, int num_classes,
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const ClassParams& class_params,
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const TypeUseParams& type_use_params) {
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public_function_param_counts_ =
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gen.GetShuffledInts(num_classes * class_params.public_function_decls, 0,
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class_params.public_function_decl_params.max_params);
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public_method_param_counts_ =
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gen.GetShuffledInts(num_classes * class_params.public_method_decls, 0,
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class_params.public_method_decl_params.max_params);
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private_function_param_counts_ =
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gen.GetShuffledInts(num_classes * class_params.private_function_decls, 0,
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class_params.private_function_decl_params.max_params);
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private_method_param_counts_ =
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gen.GetShuffledInts(num_classes * class_params.private_method_decls, 0,
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class_params.private_method_decl_params.max_params);
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int num_members =
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num_classes *
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(class_params.public_function_decls + class_params.public_method_decls +
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class_params.private_function_decls + class_params.private_method_decls +
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class_params.private_field_decls);
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member_names_ = gen.GetShuffledIdentifiers(
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num_members, /*min_length=*/MinMemberNameLength);
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int num_params =
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Sum(public_function_param_counts_) + Sum(public_method_param_counts_) +
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Sum(private_function_param_counts_) + Sum(private_method_param_counts_);
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param_names_ = gen.GetShuffledIdentifiers(num_params);
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BuildClassAndTypeNames(gen, num_classes, num_members + num_params,
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type_use_params);
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}
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auto SourceGen::ClassGenState::GetValidTypeName() -> llvm::StringRef {
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// Check that we don't completely wrap the type names by tracking where we
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// started.
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int initial_last_type_name_index = last_type_name_index_;
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// Now search the type names, starting from the last used index, to find the
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// first valid name.
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for (;;) {
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if (last_type_name_index_ == 0) {
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last_type_name_index_ = type_names_.size();
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}
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--last_type_name_index_;
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llvm::StringRef& type_name = type_names_[last_type_name_index_];
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if (valid_type_names_.Contains(type_name)) {
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// Found a valid type name, swap it with the back and pop that off.
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std::swap(type_names_.back(), type_name);
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return type_names_.pop_back_val();
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}
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CARBON_CHECK(last_type_name_index_ != initial_last_type_name_index,
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"Failed to find a valid type name with {0} candidates, an "
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"initial index of {1}, and with {2} classes left to emit!",
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type_names_.size(), initial_last_type_name_index,
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class_names_.size());
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}
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}
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// Build both the class names this file will declare and a list of type
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// references to use throughout those classes.
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//
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// We combine a list of fixed types in the `type_use_params` with the list of
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// class names that will be defined to form the spelling of all the referenced
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// types. The `type_use_params` provides weights for each fixed type as well as
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// an overall weight for referencing class names that are being declared. We
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// build a set of type references so that its histogram will roughly match these
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// weights.
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//
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// For each of the fixed types, `type_use_params` provides a spelling for both
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// Carbon and C++.
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//
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// We distribute our references to declared class names evenly to the extent
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// possible.
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//
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// Before all the references are formed, the class names are kept their original
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// unshuffled order. This ensures that any uneven sampling of names is done
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// deterministically. At the end, we randomly shuffle the sequences of both the
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// declared class names and type references to provide an unpredictable order in
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// the generated output.
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auto SourceGen::ClassGenState::BuildClassAndTypeNames(
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SourceGen& gen, int num_classes, int num_types,
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const TypeUseParams& type_use_params) -> void {
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// Initially get the sequence of class names without shuffling so we can
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// compute our type name pool from them prior to any shuffling.
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class_names_ =
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gen.GetUniqueIdentifiers(num_classes, /*min_length=*/MinClassNameLength);
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type_names_.reserve(num_types);
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// Compute the sum of weights and pre-process the fixed types.
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int type_weight_sum = type_use_params.declared_types_weight;
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for (const auto& fixed_type_weight : type_use_params.fixed_type_weights) {
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type_weight_sum += fixed_type_weight.weight;
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// Add all the fixed type spellings as immediately valid.
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valid_type_names_.Insert(gen.IsCpp() ? fixed_type_weight.cpp_spelling
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: fixed_type_weight.carbon_spelling);
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}
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// Compute the number of declared types used. We expect to have a decent
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// number of repeated names, so we repeatedly append the entire sequence of
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// class names until there is some remainder of names needed.
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int num_declared_types =
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num_types * type_use_params.declared_types_weight / type_weight_sum;
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for ([[maybe_unused]] auto _ : llvm::seq(num_declared_types / num_classes)) {
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llvm::append_range(type_names_, class_names_);
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}
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// Now append the remainder number of class names. This is where the class
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// names being un-shuffled is essential. We're going to have one extra
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// reference to some fraction of the class names and we want that to be a
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// stable subset.
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type_names_.append(class_names_.begin(),
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class_names_.begin() + (num_declared_types % num_classes));
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CARBON_CHECK(static_cast<int>(type_names_.size()) == num_declared_types);
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// Use each fixed type weight to append the expected number of copies of that
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// type. This isn't exact however, and is designed to stop short.
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for (const auto& fixed_type_weight : type_use_params.fixed_type_weights) {
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int num_fixed_type = num_types * fixed_type_weight.weight / type_weight_sum;
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type_names_.append(num_fixed_type, gen.IsCpp()
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? fixed_type_weight.cpp_spelling
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: fixed_type_weight.carbon_spelling);
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}
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// If we need a tail of types to hit the exact number, simply round-robin
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// through the fixed types without any weighting. With reasonably large
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// numbers of types this won't distort the distribution in an interesting way
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// and is simpler than trying to scale the distribution down.
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while (static_cast<int>(type_names_.size()) < num_types) {
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for (const auto& fixed_type_weight :
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llvm::ArrayRef(type_use_params.fixed_type_weights)
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.take_front(num_types - type_names_.size())) {
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type_names_.push_back(gen.IsCpp() ? fixed_type_weight.cpp_spelling
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: fixed_type_weight.carbon_spelling);
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}
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}
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CARBON_CHECK(static_cast<int>(type_names_.size()) == num_types);
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last_type_name_index_ = num_types;
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// Now shuffle both the class names and the type names.
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std::shuffle(class_names_.begin(), class_names_.end(), gen.rng_);
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std::shuffle(type_names_.begin(), type_names_.end(), gen.rng_);
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}
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// Some heuristic numbers used when formatting generated code. These heuristics
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// are loosely based on what we expect to make Carbon code readable, and might
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// not fit as well in C++, but we use the same heuristics across languages for
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// simplicity and to make the output in different languages more directly
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// comparable.
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static constexpr int NumSingleLineFunctionParams = 3;
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static constexpr int NumSingleLineMethodParams = 2;
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static constexpr int MaxParamsPerLine = 4;
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static auto EstimateAvgFunctionDeclLines(SourceGen::FunctionDeclParams params)
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-> double {
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// Currently model a uniform distribution [0, max] parameters. Assume a line
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// break before the first parameter for >3 and after every 4th.
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int param_lines = 0;
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for (int num_params : llvm::seq_inclusive(0, params.max_params)) {
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if (num_params > NumSingleLineFunctionParams) {
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param_lines += (num_params + MaxParamsPerLine - 1) / MaxParamsPerLine;
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}
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}
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return 1.0 + static_cast<double>(param_lines) / (params.max_params + 1);
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}
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static auto EstimateAvgMethodDeclLines(SourceGen::MethodDeclParams params)
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-> double {
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// Currently model a uniform distribution [0, max] parameters. Assume a line
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// break before the first parameter for >2 and after every 4th.
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int param_lines = 0;
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for (int num_params : llvm::seq_inclusive(0, params.max_params)) {
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if (num_params > NumSingleLineMethodParams) {
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param_lines += (num_params + MaxParamsPerLine - 1) / MaxParamsPerLine;
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}
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}
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return 1.0 + static_cast<double>(param_lines) / (params.max_params + 1);
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}
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// Note that this should match the heuristics used when formatting.
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// TODO: See top-level TODO about line estimates and formatting.
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static auto EstimateAvgClassDefLines(SourceGen::ClassParams params) -> double {
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// Comment line, and class open line.
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double avg = 2.0;
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// One comment line and blank line per function, plus the function lines.
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avg +=
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(2.0 + EstimateAvgFunctionDeclLines(params.public_function_decl_params)) *
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params.public_function_decls;
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avg += (2.0 + EstimateAvgMethodDeclLines(params.public_method_decl_params)) *
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params.public_method_decls;
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avg += (2.0 +
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EstimateAvgFunctionDeclLines(params.private_function_decl_params)) *
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params.private_function_decls;
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avg += (2.0 + EstimateAvgMethodDeclLines(params.private_method_decl_params)) *
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params.private_method_decls;
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// A blank line and all the fields (if any).
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if (params.private_field_decls > 0) {
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avg += 1.0 + params.private_field_decls;
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}
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// No need to account for the class close line, we have an extra blank line
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// count for the last of the above.
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return avg;
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}
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auto SourceGen::GenApiFileDenseDecls(int target_lines,
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const DenseDeclParams& params)
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-> std::string {
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RawStringOstream source;
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// Figure out how many classes fit in our target lines, each separated by a
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// blank line. We need to account the comment lines below to start the file.
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// Note that we want a blank line after our file comment block, so every class
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// needs a blank line.
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constexpr int NumFileCommentLines = 4;
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double avg_class_lines = EstimateAvgClassDefLines(params.class_params);
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CARBON_CHECK(target_lines > NumFileCommentLines + avg_class_lines,
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"Not enough target lines to generate a single class!");
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int num_classes = static_cast<double>(target_lines - NumFileCommentLines) /
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(avg_class_lines + 1);
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int expected_lines =
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NumFileCommentLines + num_classes * (avg_class_lines + 1);
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source << "// Generated " << (!IsCpp() ? "Carbon" : "C++")
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<< " source file.\n";
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source << llvm::formatv(
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"// {0} target lines: {1} classes, {2} expected lines",
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target_lines, num_classes, expected_lines)
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<< "\n";
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source << "//\n// Generating as an API file with dense declarations.\n";
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// Carbon uses an implicitly imported prelude to get builtin types, but C++
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// requires header files so include those.
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if (IsCpp()) {
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source << "\n";
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// Header for specific integer types like `std::int64_t`.
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source << "#include <cstdint>\n";
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// Header for `std::pair`.
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source << "#include <utility>\n";
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}
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auto class_gen_state = ClassGenState(*this, num_classes, params.class_params,
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params.type_use_params);
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for ([[maybe_unused]] auto _ : llvm::seq(num_classes)) {
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source << "\n";
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GenerateClassDef(params.class_params, class_gen_state, source);
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}
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// Make sure we consumed all the state.
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CARBON_CHECK(class_gen_state.public_function_param_counts().empty());
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CARBON_CHECK(class_gen_state.public_method_param_counts().empty());
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CARBON_CHECK(class_gen_state.private_function_param_counts().empty());
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CARBON_CHECK(class_gen_state.private_method_param_counts().empty());
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CARBON_CHECK(class_gen_state.class_names().empty());
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CARBON_CHECK(class_gen_state.type_names().empty());
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return source.TakeStr();
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}
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auto SourceGen::GetShuffledIdentifiers(int number, int min_length,
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int max_length, bool uniform)
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-> llvm::SmallVector<llvm::StringRef> {
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llvm::SmallVector<llvm::StringRef> idents =
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GetIdentifiers(number, min_length, max_length, uniform);
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std::shuffle(idents.begin(), idents.end(), rng_);
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return idents;
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}
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auto SourceGen::GetShuffledUniqueIdentifiers(int number, int min_length,
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int max_length, bool uniform)
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-> llvm::SmallVector<llvm::StringRef> {
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CARBON_CHECK(min_length >= 4,
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"Cannot trivially guarantee enough distinct, unique identifiers "
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"for lengths <= 3");
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llvm::SmallVector<llvm::StringRef> idents =
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GetUniqueIdentifiers(number, min_length, max_length, uniform);
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std::shuffle(idents.begin(), idents.end(), rng_);
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return idents;
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}
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auto SourceGen::GetIdentifiers(int number, int min_length, int max_length,
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bool uniform)
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-> llvm::SmallVector<llvm::StringRef> {
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llvm::SmallVector<llvm::StringRef> idents = GetIdentifiersImpl(
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number, min_length, max_length, uniform,
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[this](int length, int length_count,
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llvm::SmallVectorImpl<llvm::StringRef>& dest) {
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llvm::append_range(dest,
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GetSingleLengthIdentifiers(length, length_count));
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});
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return idents;
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}
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auto SourceGen::GetUniqueIdentifiers(int number, int min_length, int max_length,
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bool uniform)
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-> llvm::SmallVector<llvm::StringRef> {
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CARBON_CHECK(min_length >= 4,
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"Cannot trivially guarantee enough distinct, unique identifiers "
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"for lengths <= 3");
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llvm::SmallVector<llvm::StringRef> idents =
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GetIdentifiersImpl(number, min_length, max_length, uniform,
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[this](int length, int length_count,
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llvm::SmallVectorImpl<llvm::StringRef>& dest) {
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AppendUniqueIdentifiers(length, length_count, dest);
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});
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return idents;
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}
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auto SourceGen::GetSingleLengthIdentifiers(int length, int number)
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-> llvm::ArrayRef<llvm::StringRef> {
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llvm::SmallVector<llvm::StringRef>& idents =
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identifiers_by_length_.Insert(length, {}).value();
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if (static_cast<int>(idents.size()) < number) {
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idents.reserve(number);
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for ([[maybe_unused]] auto _ : llvm::seq<int>(idents.size(), number)) {
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auto ident_storage =
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llvm::MutableArrayRef(reinterpret_cast<char*>(storage_.Allocate(
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/*Size=*/length, /*Alignment=*/1)),
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length);
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GenerateRandomIdentifier(ident_storage);
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llvm::StringRef new_id(ident_storage.data(), length);
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idents.push_back(new_id);
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}
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CARBON_CHECK(static_cast<int>(idents.size()) == number);
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}
|
|
return llvm::ArrayRef(idents).slice(0, number);
|
|
}
|
|
|
|
static auto IdentifierStartChars() -> llvm::ArrayRef<char> {
|
|
static llvm::SmallVector<char> chars = [] {
|
|
llvm::SmallVector<char> chars;
|
|
for (char c : llvm::seq_inclusive('A', 'Z')) {
|
|
chars.push_back(c);
|
|
}
|
|
for (char c : llvm::seq_inclusive('a', 'z')) {
|
|
chars.push_back(c);
|
|
}
|
|
return chars;
|
|
}();
|
|
return chars;
|
|
}
|
|
|
|
static auto IdentifierChars() -> llvm::ArrayRef<char> {
|
|
static llvm::SmallVector<char> chars = [] {
|
|
llvm::ArrayRef<char> start_chars = IdentifierStartChars();
|
|
llvm::SmallVector<char> chars(start_chars.begin(), start_chars.end());
|
|
chars.push_back('_');
|
|
for (char c : llvm::seq_inclusive('0', '9')) {
|
|
chars.push_back(c);
|
|
}
|
|
return chars;
|
|
}();
|
|
return chars;
|
|
}
|
|
|
|
static constexpr llvm::StringRef NonCarbonCppKeywords[] = {
|
|
"asm", "do", "double", "float", "int", "long", "new", "signed",
|
|
"std", "try", "unix", "unsigned", "xor", "NAN", "M_E", "M_PI",
|
|
};
|
|
|
|
// Returns a random identifier string of the specified length.
|
|
//
|
|
// Ensures this is a valid identifier, avoiding any overlapping syntaxes or
|
|
// keywords both in Carbon and C++.
|
|
//
|
|
// This routine is somewhat expensive and so is useful to cache and reduce the
|
|
// frequency of calls. However, each time it is called it computes a completely
|
|
// new random identifier and so can be useful to eventually find a distinct
|
|
// identifier when needed.
|
|
auto SourceGen::GenerateRandomIdentifier(
|
|
llvm::MutableArrayRef<char> dest_storage) -> void {
|
|
llvm::ArrayRef<char> start_chars = IdentifierStartChars();
|
|
llvm::ArrayRef<char> chars = IdentifierChars();
|
|
|
|
llvm::StringRef ident(dest_storage.data(), dest_storage.size());
|
|
do {
|
|
dest_storage[0] =
|
|
start_chars[absl::Uniform<int>(rng_, 0, start_chars.size())];
|
|
for (int i : llvm::seq<int>(1, dest_storage.size())) {
|
|
dest_storage[i] = chars[absl::Uniform<int>(rng_, 0, chars.size())];
|
|
}
|
|
} while (
|
|
// TODO: Clean up and simplify this code. With some small refactorings and
|
|
// post-processing we should be able to make this both easier to read and
|
|
// less inefficient.
|
|
llvm::any_of(
|
|
Lex::TokenKind::KeywordTokens,
|
|
[ident](auto token) { return ident == token.fixed_spelling(); }) ||
|
|
llvm::is_contained(NonCarbonCppKeywords, ident) ||
|
|
ident.ends_with("_t") || ident.ends_with("_MIN") ||
|
|
ident.ends_with("_MAX") || ident.ends_with("_C") ||
|
|
(llvm::is_contained({'i', 'u', 'f'}, ident[0]) &&
|
|
llvm::all_of(ident.substr(1),
|
|
[](const char c) { return llvm::isDigit(c); })));
|
|
}
|
|
|
|
// Appends a number of unique, random identifiers with a particular length to
|
|
// the provided destination vector.
|
|
//
|
|
// Uses, and when necessary grows, a cached sequence of random identifiers with
|
|
// the specified length. Because these are cached, this is efficient to call
|
|
// repeatedly, but will not produce a different sequence of identifiers.
|
|
auto SourceGen::AppendUniqueIdentifiers(
|
|
int length, int number, llvm::SmallVectorImpl<llvm::StringRef>& dest)
|
|
-> void {
|
|
auto& [count, unique_idents] =
|
|
unique_identifiers_by_length_.Insert(length, {}).value();
|
|
|
|
// See if we need to grow our pool of unique identifiers with the requested
|
|
// length.
|
|
if (count < number) {
|
|
// We'll need to insert exactly the requested new unique identifiers. All
|
|
// our other inserts will find an existing entry.
|
|
unique_idents.GrowForInsertCount(count - number);
|
|
|
|
// Generate the needed number of identifiers.
|
|
for ([[maybe_unused]] auto _ : llvm::seq<int>(count, number)) {
|
|
// Allocate stable storage for the identifier so we can form stable
|
|
// `StringRef`s to it.
|
|
auto ident_storage =
|
|
llvm::MutableArrayRef(reinterpret_cast<char*>(storage_.Allocate(
|
|
/*Size=*/length, /*Alignment=*/1)),
|
|
length);
|
|
// Repeatedly generate novel identifiers of this length until we find a
|
|
// new unique one.
|
|
for (;;) {
|
|
GenerateRandomIdentifier(ident_storage);
|
|
auto result =
|
|
unique_idents.Insert(llvm::StringRef(ident_storage.data(), length));
|
|
if (result.is_inserted()) {
|
|
break;
|
|
}
|
|
}
|
|
}
|
|
count = number;
|
|
}
|
|
// Append all the identifiers directly out of the set. We make no guarantees
|
|
// about the relative order so we just use the non-deterministic order of the
|
|
// set and avoid additional storage.
|
|
//
|
|
// TODO: It's awkward the `ForEach` here can't early-exit. This just walks the
|
|
// whole set which is harmless if inefficient. We should add early exiting
|
|
// the loop support to `Set` and update this code.
|
|
unique_idents.ForEach([&](llvm::StringRef ident) {
|
|
if (number > 0) {
|
|
dest.push_back(ident);
|
|
--number;
|
|
}
|
|
});
|
|
CARBON_CHECK(number == 0);
|
|
}
|
|
|
|
// An array of the counts that should be used for each identifier length to
|
|
// produce our desired distribution.
|
|
//
|
|
// Note that the zero-based index corresponds to a 1-based length, so the count
|
|
// for identifiers of length 1 is at index 0.
|
|
static constexpr std::array<int, 64> IdentifierLengthCounts = [] {
|
|
std::array<int, 64> ident_length_counts;
|
|
// For non-uniform distribution, we simulate a distribution roughly based on
|
|
// the observed histogram of identifier lengths, but smoothed a bit and
|
|
// reduced to small counts so that we cycle through all the lengths
|
|
// reasonably quickly. We want sampling of even 10% of NumTokens from this
|
|
// in a round-robin form to not be skewed overly much. This still inherently
|
|
// compresses the long tail as we'd rather have coverage even though it
|
|
// distorts the distribution a bit.
|
|
//
|
|
// The distribution here comes from a script that analyzes source code run
|
|
// over a few directories of LLVM. The script renders a visual ascii-art
|
|
// histogram along with the data for each bucket, and that output is
|
|
// included in comments above each bucket size below to help visualize the
|
|
// rough shape we're aiming for.
|
|
//
|
|
// 1 characters [3976] ███████████████████████████████▊
|
|
ident_length_counts[0] = 40;
|
|
// 2 characters [3724] █████████████████████████████▊
|
|
ident_length_counts[1] = 40;
|
|
// 3 characters [4173] █████████████████████████████████▍
|
|
ident_length_counts[2] = 40;
|
|
// 4 characters [5000] ████████████████████████████████████████
|
|
ident_length_counts[3] = 50;
|
|
// 5 characters [1568] ████████████▌
|
|
ident_length_counts[4] = 20;
|
|
// 6 characters [2226] █████████████████▊
|
|
ident_length_counts[5] = 20;
|
|
// 7 characters [2380] ███████████████████
|
|
ident_length_counts[6] = 20;
|
|
// 8 characters [1786] ██████████████▎
|
|
ident_length_counts[7] = 18;
|
|
// 9 characters [1397] ███████████▏
|
|
ident_length_counts[8] = 12;
|
|
// 10 characters [ 739] █████▉
|
|
ident_length_counts[9] = 12;
|
|
// 11 characters [ 779] ██████▎
|
|
ident_length_counts[10] = 12;
|
|
// 12 characters [1344] ██████████▊
|
|
ident_length_counts[11] = 12;
|
|
// 13 characters [ 498] ████
|
|
ident_length_counts[12] = 5;
|
|
// 14 characters [ 284] ██▎
|
|
ident_length_counts[13] = 3;
|
|
// 15 characters [ 172] █▍
|
|
// 16 characters [ 278] ██▎
|
|
// 17 characters [ 191] █▌
|
|
// 18 characters [ 207] █▋
|
|
for (int i = 14; i < 18; ++i) {
|
|
ident_length_counts[i] = 2;
|
|
}
|
|
// 19 - 63 characters are all <100 but non-zero, and we map them to 1 for
|
|
// coverage despite slightly over weighting the tail.
|
|
for (int i = 18; i < 64; ++i) {
|
|
ident_length_counts[i] = 1;
|
|
}
|
|
return ident_length_counts;
|
|
}();
|
|
|
|
// A template function that implements the common logic of `GetIdentifiers` and
|
|
// `GetUniqueIdentifiers`. Most parameters correspond to the parameters of those
|
|
// functions. Additionally, an `AppendFunc` callable is provided to implement
|
|
// the appending operation.
|
|
//
|
|
// The main functionality provided here is collecting the correct number of
|
|
// identifiers from each of the lengths in the range [min_length, max_length]
|
|
// and either in our default representative distribution or a uniform
|
|
// distribution.
|
|
auto SourceGen::GetIdentifiersImpl(int number, int min_length, int max_length,
|
|
bool uniform,
|
|
llvm::function_ref<AppendFn> append)
|
|
-> llvm::SmallVector<llvm::StringRef> {
|
|
CARBON_CHECK(min_length <= max_length);
|
|
CARBON_CHECK(
|
|
uniform || max_length <= 64,
|
|
"Cannot produce a meaningful non-uniform distribution of lengths longer "
|
|
"than 64 as those are exceedingly rare in our observed data sets.");
|
|
|
|
llvm::SmallVector<llvm::StringRef> idents;
|
|
idents.reserve(number);
|
|
|
|
// First, compute the total weight of the distribution so we know how many
|
|
// identifiers we'll get each time we collect from it.
|
|
int num_lengths = max_length - min_length + 1;
|
|
auto length_counts =
|
|
llvm::ArrayRef(IdentifierLengthCounts).slice(min_length - 1, num_lengths);
|
|
int count_sum = uniform ? num_lengths : Sum(length_counts);
|
|
CARBON_CHECK(count_sum >= 1);
|
|
|
|
int number_rem = number % count_sum;
|
|
|
|
// Finally, walk through each length in the distribution.
|
|
for (int length : llvm::seq_inclusive(min_length, max_length)) {
|
|
// Scale how many identifiers we want of this length if computing a
|
|
// non-uniform distribution. For uniform, we always take one.
|
|
int scale = uniform ? 1 : IdentifierLengthCounts[length - 1];
|
|
|
|
// Now we can compute how many identifiers of this length to request.
|
|
int length_count = (number / count_sum) * scale;
|
|
if (number_rem > 0) {
|
|
int rem_adjustment = std::min(scale, number_rem);
|
|
length_count += rem_adjustment;
|
|
number_rem -= rem_adjustment;
|
|
}
|
|
append(length, length_count, idents);
|
|
}
|
|
CARBON_CHECK(number_rem == 0, "Unexpected number remaining: {0}", number_rem);
|
|
CARBON_CHECK(static_cast<int>(idents.size()) == number,
|
|
"Ended up with {0} identifiers instead of the requested {1}",
|
|
idents.size(), number);
|
|
|
|
return idents;
|
|
}
|
|
|
|
// Returns a shuffled sequence of integers in the range [min, max].
|
|
//
|
|
// The order of the returned integers is random, but each integer in the range
|
|
// appears the same number of times in the result, with the number of
|
|
// appearances rounded up for lower numbers and rounded down for higher numbers
|
|
// in order to exactly produce `number` results.
|
|
auto SourceGen::GetShuffledInts(int number, int min, int max)
|
|
-> llvm::SmallVector<int> {
|
|
llvm::SmallVector<int> ints;
|
|
ints.reserve(number);
|
|
|
|
// Evenly distribute to each value between min and max.
|
|
int num_values = max - min + 1;
|
|
for (int i : llvm::seq_inclusive(min, max)) {
|
|
int i_count = number / num_values;
|
|
i_count += i < (min + (number % num_values));
|
|
ints.append(i_count, i);
|
|
}
|
|
CARBON_CHECK(static_cast<int>(ints.size()) == number);
|
|
|
|
std::shuffle(ints.begin(), ints.end(), rng_);
|
|
return ints;
|
|
}
|
|
|
|
// A helper to pop series of unique identifiers off a sequence of random
|
|
// identifiers that may have duplicates.
|
|
//
|
|
// This is particularly designed to work with the sequences of non-unique
|
|
// identifiers produced by `GetShuffledIdentifiers` with the important property
|
|
// that while popping off unique identifiers found in the shuffled list, we
|
|
// don't change the distribution of identifier lengths.
|
|
//
|
|
// The uniqueness is only per-instance of the class, and so an instance can be
|
|
// used to extract a series of names that share a scope.
|
|
//
|
|
// It works by scanning the sequence to extract each unique identifier found,
|
|
// swapping it to the back and popping it off the list. This does shuffle the
|
|
// order, but it isn't expected to do so in an interesting way.
|
|
//
|
|
// It also provides a fallback path in case there are no unique identifiers left
|
|
// which computes fresh, random identifiers with the same length as the next one
|
|
// in the sequence until a unique one is found.
|
|
//
|
|
// For simplicity of the fallback path, the lifetime of the identifiers produced
|
|
// is bound to the lifetime of the popper instance, and not the generator as a
|
|
// whole. If this is ever a problematic constraint, we can start copying
|
|
// fallback identifiers into the generator's storage.
|
|
class SourceGen::UniqueIdentifierPopper {
|
|
public:
|
|
explicit UniqueIdentifierPopper(SourceGen& gen,
|
|
llvm::SmallVectorImpl<llvm::StringRef>& data)
|
|
: gen_(&gen), data_(&data), it_(data_->rbegin()) {}
|
|
|
|
// Pop the next unique identifier that can be found in the data, or synthesize
|
|
// one with a valid length. Always consumes exactly one identifier from the
|
|
// data.
|
|
//
|
|
// Note that the lifetime of the underlying identifier is that of the popper
|
|
// and not the underlying data.
|
|
auto Pop() -> llvm::StringRef {
|
|
for (auto end = data_->rend(); it_ != end; ++it_) {
|
|
auto insert = set_.Insert(*it_);
|
|
if (!insert.is_inserted()) {
|
|
continue;
|
|
}
|
|
|
|
if (it_ != data_->rbegin()) {
|
|
std::swap(*data_->rbegin(), *it_);
|
|
}
|
|
CARBON_CHECK(insert.key() == data_->back());
|
|
return data_->pop_back_val();
|
|
}
|
|
|
|
// Out of unique elements. Overwrite the back, preserving its length,
|
|
// generating a new identifiers until we find a unique one and return that.
|
|
// This ensures we continue to consume the structure and produce the same
|
|
// size identifiers even in the fallback.
|
|
int length = data_->pop_back_val().size();
|
|
auto fallback_ident_storage =
|
|
llvm::MutableArrayRef(reinterpret_cast<char*>(gen_->storage_.Allocate(
|
|
/*Size=*/length, /*Alignment=*/1)),
|
|
length);
|
|
for (;;) {
|
|
gen_->GenerateRandomIdentifier(fallback_ident_storage);
|
|
auto fallback_id = llvm::StringRef(fallback_ident_storage.data(), length);
|
|
if (set_.Insert(fallback_id).is_inserted()) {
|
|
return fallback_id;
|
|
}
|
|
}
|
|
}
|
|
|
|
private:
|
|
SourceGen* gen_;
|
|
llvm::SmallVectorImpl<llvm::StringRef>* data_;
|
|
llvm::SmallVectorImpl<llvm::StringRef>::reverse_iterator it_;
|
|
Set<llvm::StringRef> set_;
|
|
};
|
|
|
|
// Generates a function declaration and writes it to the provided stream.
|
|
//
|
|
// The declaration can be configured with a function name, private modifier,
|
|
// whether it is a method, the parameter count, an how indented it is.
|
|
//
|
|
// This is also provided a collection of identifiers to consume as parameter
|
|
// names -- it will use a unique popper to extract unique parameter names from
|
|
// this collection.
|
|
auto SourceGen::GenerateFunctionDecl(
|
|
llvm::StringRef name, bool is_private, bool is_method, int param_count,
|
|
llvm::StringRef indent, llvm::SmallVectorImpl<llvm::StringRef>& param_names,
|
|
llvm::function_ref<auto()->llvm::StringRef> get_type_name,
|
|
llvm::raw_ostream& os) -> void {
|
|
os << indent << "// TODO: make better comment text\n";
|
|
if (!IsCpp()) {
|
|
os << indent << (is_private ? "private " : "") << "fn " << name;
|
|
|
|
if (is_method) {
|
|
os << "[self: Self]";
|
|
}
|
|
} else {
|
|
os << indent;
|
|
if (!is_method) {
|
|
os << "static ";
|
|
}
|
|
os << "auto " << name;
|
|
}
|
|
|
|
os << "(";
|
|
|
|
if (param_count >
|
|
(is_method ? NumSingleLineMethodParams : NumSingleLineFunctionParams)) {
|
|
os << "\n" << indent << " ";
|
|
}
|
|
UniqueIdentifierPopper unique_param_names(*this, param_names);
|
|
for (int i : llvm::seq(param_count)) {
|
|
if (i > 0) {
|
|
if ((i % MaxParamsPerLine) == 0) {
|
|
os << ",\n" << indent << " ";
|
|
} else {
|
|
os << ", ";
|
|
}
|
|
}
|
|
if (!IsCpp()) {
|
|
os << unique_param_names.Pop() << ": " << get_type_name();
|
|
} else {
|
|
os << get_type_name() << " " << unique_param_names.Pop();
|
|
}
|
|
}
|
|
os << ")";
|
|
|
|
os << " -> " << get_type_name();
|
|
os << ";\n";
|
|
}
|
|
|
|
// Generate a class definition and write it to the provided stream.
|
|
//
|
|
// The structure of the definition is guided by the `params` provided, and it
|
|
// consumes the provided state.
|
|
auto SourceGen::GenerateClassDef(const ClassParams& params,
|
|
ClassGenState& state, llvm::raw_ostream& os)
|
|
-> void {
|
|
llvm::StringRef name = state.class_names().pop_back_val();
|
|
os << "// TODO: make better comment text\n";
|
|
os << "class " << name << " {\n";
|
|
if (IsCpp()) {
|
|
os << " public:\n";
|
|
}
|
|
|
|
// Field types can't be the class we're currently declaring. We enforce this
|
|
// by collecting them before inserting that type into the valid set.
|
|
llvm::SmallVector<llvm::StringRef> field_type_names;
|
|
field_type_names.reserve(params.private_field_decls);
|
|
for ([[maybe_unused]] auto _ : llvm::seq(params.private_field_decls)) {
|
|
field_type_names.push_back(state.GetValidTypeName());
|
|
}
|
|
|
|
// Mark this class as now a valid type now that field type names have been
|
|
// collected. We can reference this class from functions and methods within
|
|
// the definition.
|
|
state.AddValidTypeName(name);
|
|
|
|
UniqueIdentifierPopper unique_member_names(*this, state.member_names());
|
|
llvm::ListSeparator line_sep("\n");
|
|
for ([[maybe_unused]] auto _ : llvm::seq(params.public_function_decls)) {
|
|
os << line_sep;
|
|
GenerateFunctionDecl(
|
|
unique_member_names.Pop(), /*is_private=*/false,
|
|
/*is_method=*/false,
|
|
state.public_function_param_counts().pop_back_val(),
|
|
/*indent=*/" ", state.param_names(),
|
|
[&] { return state.GetValidTypeName(); }, os);
|
|
}
|
|
for ([[maybe_unused]] auto _ : llvm::seq(params.public_method_decls)) {
|
|
os << line_sep;
|
|
GenerateFunctionDecl(
|
|
unique_member_names.Pop(), /*is_private=*/false,
|
|
/*is_method=*/true, state.public_method_param_counts().pop_back_val(),
|
|
/*indent=*/" ", state.param_names(),
|
|
[&] { return state.GetValidTypeName(); }, os);
|
|
}
|
|
|
|
if (IsCpp()) {
|
|
os << "\n private:\n";
|
|
// Reset the separator.
|
|
line_sep = llvm::ListSeparator("\n");
|
|
}
|
|
|
|
for ([[maybe_unused]] auto _ : llvm::seq(params.private_function_decls)) {
|
|
os << line_sep;
|
|
GenerateFunctionDecl(
|
|
unique_member_names.Pop(), /*is_private=*/true,
|
|
/*is_method=*/false,
|
|
state.private_function_param_counts().pop_back_val(),
|
|
/*indent=*/" ", state.param_names(),
|
|
[&] { return state.GetValidTypeName(); }, os);
|
|
}
|
|
for ([[maybe_unused]] auto _ : llvm::seq(params.private_method_decls)) {
|
|
os << line_sep;
|
|
GenerateFunctionDecl(
|
|
unique_member_names.Pop(), /*is_private=*/true,
|
|
/*is_method=*/true, state.private_method_param_counts().pop_back_val(),
|
|
/*indent=*/" ", state.param_names(),
|
|
[&] { return state.GetValidTypeName(); }, os);
|
|
}
|
|
os << line_sep;
|
|
for (llvm::StringRef type_name : field_type_names) {
|
|
if (!IsCpp()) {
|
|
os << " private var " << unique_member_names.Pop() << ": " << type_name
|
|
<< ";\n";
|
|
} else {
|
|
os << " " << type_name << " " << unique_member_names.Pop() << ";\n";
|
|
}
|
|
}
|
|
os << "}" << (IsCpp() ? ";" : "") << "\n";
|
|
}
|
|
|
|
} // namespace Carbon::Testing
|