tree.h 12 KB

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  1. // Part of the Carbon Language project, under the Apache License v2.0 with LLVM
  2. // Exceptions. See /LICENSE for license information.
  3. // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
  4. #ifndef CARBON_TOOLCHAIN_PARSE_TREE_H_
  5. #define CARBON_TOOLCHAIN_PARSE_TREE_H_
  6. #include <iterator>
  7. #include "common/check.h"
  8. #include "common/error.h"
  9. #include "common/ostream.h"
  10. #include "llvm/ADT/SmallVector.h"
  11. #include "llvm/ADT/iterator.h"
  12. #include "llvm/ADT/iterator_range.h"
  13. #include "toolchain/lex/tokenized_buffer.h"
  14. #include "toolchain/parse/node_ids.h"
  15. #include "toolchain/parse/node_kind.h"
  16. #include "toolchain/parse/typed_nodes.h"
  17. namespace Carbon::Parse {
  18. struct DeferredDefinition;
  19. // The index of a deferred function definition within the parse tree's deferred
  20. // definition store.
  21. struct DeferredDefinitionIndex : public IndexBase {
  22. using ValueType = DeferredDefinition;
  23. static const DeferredDefinitionIndex Invalid;
  24. using IndexBase::IndexBase;
  25. };
  26. constexpr DeferredDefinitionIndex DeferredDefinitionIndex::Invalid =
  27. DeferredDefinitionIndex(InvalidIndex);
  28. // A function whose definition is deferred because it is defined inline in a
  29. // class or similar scope.
  30. //
  31. // Such functions are type-checked out of order, with their bodies checked after
  32. // the enclosing declaration is complete. Some additional information is tracked
  33. // for these functions in the parse tree to support this reordering.
  34. struct DeferredDefinition {
  35. // The node that starts the function definition.
  36. FunctionDefinitionStartId start_id;
  37. // The function definition node.
  38. FunctionDefinitionId definition_id = NodeId::Invalid;
  39. // The index of the next method that is not nested within this one.
  40. DeferredDefinitionIndex next_definition_index =
  41. DeferredDefinitionIndex::Invalid;
  42. };
  43. // Defined in typed_nodes.h. Include that to call `Tree::ExtractFile()`.
  44. struct File;
  45. // A tree of parsed tokens based on the language grammar.
  46. //
  47. // This is a purely syntactic parse tree without any semantics yet attached. It
  48. // is based on the token stream and the grammar of the language without even
  49. // name lookup.
  50. //
  51. // The tree is designed to make depth-first traversal especially efficient, with
  52. // postorder and reverse postorder (RPO, a topological order) not even requiring
  53. // extra state.
  54. //
  55. // The nodes of the tree follow a flyweight pattern and are handles into the
  56. // tree. The tree itself must be available to query for information about those
  57. // nodes.
  58. //
  59. // Nodes also have a precise one-to-one correspondence to tokens from the parsed
  60. // token stream. Each node can be thought of as the tree-position of a
  61. // particular token from the stream.
  62. //
  63. // The tree is immutable once built, but is designed to support reasonably
  64. // efficient patterns that build a new tree with a specific transformation
  65. // applied.
  66. class Tree : public Printable<Tree> {
  67. public:
  68. class PostorderIterator;
  69. // Names in packaging, whether the file's packaging or an import. Links back
  70. // to the node for diagnostics.
  71. struct PackagingNames {
  72. ImportDeclId node_id;
  73. IdentifierId package_id = IdentifierId::Invalid;
  74. StringLiteralValueId library_id = StringLiteralValueId::Invalid;
  75. // Whether an import is exported. This is on the file's packaging
  76. // declaration even though it doesn't apply, for consistency in structure.
  77. bool is_export = false;
  78. };
  79. // The file's packaging.
  80. struct PackagingDecl {
  81. PackagingNames names;
  82. bool is_impl;
  83. };
  84. // Wires up the reference to the tokenized buffer. The `Parse` function should
  85. // be used to actually parse the tokens into a tree.
  86. explicit Tree(Lex::TokenizedBuffer& tokens_arg) : tokens_(&tokens_arg) {
  87. // If the tree is valid, there will be one node per token, so reserve once.
  88. node_impls_.reserve(tokens_->expected_parse_tree_size());
  89. }
  90. auto has_errors() const -> bool { return has_errors_; }
  91. auto set_has_errors(bool has_errors) -> void { has_errors_ = has_errors; }
  92. // Returns the number of nodes in this parse tree.
  93. auto size() const -> int { return node_impls_.size(); }
  94. // Returns an iterable range over the parse tree nodes in depth-first
  95. // postorder.
  96. auto postorder() const -> llvm::iterator_range<PostorderIterator>;
  97. // Tests whether a particular node contains an error and may not match the
  98. // full expected structure of the grammar.
  99. auto node_has_error(NodeId n) const -> bool {
  100. CARBON_DCHECK(n.is_valid());
  101. return node_impls_[n.index].has_error;
  102. }
  103. // Returns the kind of the given parse tree node.
  104. auto node_kind(NodeId n) const -> NodeKind {
  105. CARBON_DCHECK(n.is_valid());
  106. return node_impls_[n.index].kind;
  107. }
  108. // Returns the token the given parse tree node models.
  109. auto node_token(NodeId n) const -> Lex::TokenIndex;
  110. auto node_subtree_size(NodeId n) const -> int32_t;
  111. // Returns whether this node is a valid node of the specified type.
  112. template <typename T>
  113. auto IsValid(NodeId node_id) const -> bool {
  114. return node_kind(node_id) == T::Kind && !node_has_error(node_id);
  115. }
  116. template <typename IdT>
  117. auto IsValid(IdT id) const -> bool {
  118. using T = typename NodeForId<IdT>::TypedNode;
  119. CARBON_DCHECK(node_kind(id) == T::Kind);
  120. return !node_has_error(id);
  121. }
  122. // Converts `n` to a constrained node id `T` if the `node_kind(n)` matches
  123. // the constraint on `T`.
  124. template <typename T>
  125. auto TryAs(NodeId n) const -> std::optional<T> {
  126. CARBON_DCHECK(n.is_valid());
  127. if (ConvertTo<T>::AllowedFor(node_kind(n))) {
  128. return T(n);
  129. } else {
  130. return std::nullopt;
  131. }
  132. }
  133. // Converts to `n` to a constrained node id `T`. Checks that the
  134. // `node_kind(n)` matches the constraint on `T`.
  135. template <typename T>
  136. auto As(NodeId n) const -> T {
  137. CARBON_DCHECK(n.is_valid());
  138. CARBON_CHECK(ConvertTo<T>::AllowedFor(node_kind(n)));
  139. return T(n);
  140. }
  141. auto packaging_decl() const -> const std::optional<PackagingDecl>& {
  142. return packaging_decl_;
  143. }
  144. auto imports() const -> llvm::ArrayRef<PackagingNames> { return imports_; }
  145. auto deferred_definitions() const
  146. -> const ValueStore<DeferredDefinitionIndex>& {
  147. return deferred_definitions_;
  148. }
  149. // Builds TreeAndSubtrees to print the tree.
  150. auto Print(llvm::raw_ostream& output) const -> void;
  151. // Collects memory usage of members.
  152. auto CollectMemUsage(MemUsage& mem_usage, llvm::StringRef label) const
  153. -> void;
  154. // Verifies the parse tree structure. Checks invariants of the parse tree
  155. // structure and returns verification errors.
  156. //
  157. // In opt builds, this does some minimal checking. In debug builds, it'll
  158. // build a TreeAndSubtrees and run further verification. This doesn't directly
  159. // CHECK so that it can be used within a debugger.
  160. auto Verify() const -> ErrorOr<Success>;
  161. private:
  162. friend class Context;
  163. friend class TypedNodesTestPeer;
  164. template <typename T>
  165. struct ConvertTo;
  166. // The in-memory representation of data used for a particular node in the
  167. // tree.
  168. struct NodeImpl {
  169. explicit NodeImpl(NodeKind kind, bool has_error, Lex::TokenIndex token)
  170. : kind(kind), has_error(has_error), token(token) {}
  171. // The kind of this node. Note that this is only a single byte.
  172. NodeKind kind;
  173. // We have 3 bytes of padding here that we can pack flags or other compact
  174. // data into.
  175. // Whether this node is or contains a parse error.
  176. //
  177. // When this is true, this node and its children may not have the expected
  178. // grammatical production structure. Prior to reasoning about any specific
  179. // subtree structure, this flag must be checked.
  180. //
  181. // Not every node in the path from the root to an error will have this field
  182. // set to true. However, any node structure that fails to conform to the
  183. // expected grammatical production will be contained within a subtree with
  184. // this flag set. Whether parents of that subtree also have it set is
  185. // optional (and will depend on the particular parse implementation
  186. // strategy). The goal is that you can rely on grammar-based structural
  187. // invariants *until* you encounter a node with this set.
  188. bool has_error = false;
  189. // The token root of this node.
  190. Lex::TokenIndex token;
  191. };
  192. static_assert(sizeof(NodeImpl) == 8,
  193. "Unexpected size of node implementation!");
  194. // Sets the kind of a node. This is intended to allow putting the tree into a
  195. // state where verification can fail, in order to make the failure path of
  196. // `Verify` testable.
  197. auto SetNodeKindForTesting(NodeId node_id, NodeKind kind) -> void {
  198. node_impls_[node_id.index].kind = kind;
  199. }
  200. // Depth-first postorder sequence of node implementation data.
  201. llvm::SmallVector<NodeImpl> node_impls_;
  202. Lex::TokenizedBuffer* tokens_;
  203. // True if any lowering-blocking issues were encountered while parsing. Trees
  204. // are expected to still be structurally valid for checking.
  205. //
  206. // This doesn't indicate how much of the tree is structurally accurate with
  207. // respect to the grammar. That can be identified by looking at
  208. // `node_has_error` (see above for details). This simply indicates that some
  209. // errors were encountered somewhere. A key implication is that when this is
  210. // true we do *not* enforce the expected 1:1 mapping between tokens and parsed
  211. // nodes, because some tokens may have been skipped.
  212. bool has_errors_ = false;
  213. std::optional<PackagingDecl> packaging_decl_;
  214. llvm::SmallVector<PackagingNames> imports_;
  215. ValueStore<DeferredDefinitionIndex> deferred_definitions_;
  216. };
  217. // A random-access iterator to the depth-first postorder sequence of parse nodes
  218. // in the parse tree. It produces `Tree::NodeId` objects which are opaque
  219. // handles and must be used in conjunction with the `Tree` itself.
  220. class Tree::PostorderIterator
  221. : public llvm::iterator_facade_base<PostorderIterator,
  222. std::random_access_iterator_tag, NodeId,
  223. int, const NodeId*, NodeId>,
  224. public Printable<Tree::PostorderIterator> {
  225. public:
  226. // Returns an iterable range between the two parse tree nodes, in depth-first
  227. // postorder. The range is inclusive of the bounds: [begin, end].
  228. static auto MakeRange(NodeId begin, NodeId end)
  229. -> llvm::iterator_range<PostorderIterator>;
  230. // Prefer using the `postorder` range calls, but direct construction is
  231. // allowed if needed.
  232. explicit PostorderIterator(NodeId n) : node_(n) {}
  233. PostorderIterator() = delete;
  234. auto operator==(const PostorderIterator& rhs) const -> bool {
  235. return node_ == rhs.node_;
  236. }
  237. // While we don't want users to directly leverage the index of `NodeId` for
  238. // ordering, when we're explicitly walking in postorder, that becomes
  239. // reasonable so add the ordering here and reach down for the index
  240. // explicitly.
  241. auto operator<=>(const PostorderIterator& rhs) const -> std::strong_ordering {
  242. return node_.index <=> rhs.node_.index;
  243. }
  244. auto operator*() const -> NodeId { return node_; }
  245. auto operator-(const PostorderIterator& rhs) const -> int {
  246. return node_.index - rhs.node_.index;
  247. }
  248. auto operator+=(int offset) -> PostorderIterator& {
  249. node_.index += offset;
  250. return *this;
  251. }
  252. auto operator-=(int offset) -> PostorderIterator& {
  253. node_.index -= offset;
  254. return *this;
  255. }
  256. // Prints the underlying node index.
  257. auto Print(llvm::raw_ostream& output) const -> void;
  258. private:
  259. friend class Tree;
  260. NodeId node_;
  261. };
  262. template <const NodeKind& K>
  263. struct Tree::ConvertTo<NodeIdForKind<K>> {
  264. static auto AllowedFor(NodeKind kind) -> bool { return kind == K; }
  265. };
  266. template <NodeCategory::RawEnumType C>
  267. struct Tree::ConvertTo<NodeIdInCategory<C>> {
  268. static auto AllowedFor(NodeKind kind) -> bool {
  269. return kind.category().HasAnyOf(C);
  270. }
  271. };
  272. template <typename... T>
  273. struct Tree::ConvertTo<NodeIdOneOf<T...>> {
  274. static auto AllowedFor(NodeKind kind) -> bool {
  275. return ((kind == T::Kind) || ...);
  276. }
  277. };
  278. } // namespace Carbon::Parse
  279. #endif // CARBON_TOOLCHAIN_PARSE_TREE_H_