parse_tree.cpp 7.1 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. #include "toolchain/parser/parse_tree.h"
  5. #include <cstdlib>
  6. #include "common/check.h"
  7. #include "llvm/ADT/ArrayRef.h"
  8. #include "llvm/ADT/Optional.h"
  9. #include "llvm/ADT/Sequence.h"
  10. #include "llvm/ADT/SmallSet.h"
  11. #include "llvm/ADT/SmallVector.h"
  12. #include "llvm/ADT/iterator.h"
  13. #include "llvm/Support/raw_ostream.h"
  14. #include "toolchain/lexer/token_kind.h"
  15. #include "toolchain/parser/parse_node_kind.h"
  16. #include "toolchain/parser/parser_impl.h"
  17. namespace Carbon {
  18. auto ParseTree::Parse(TokenizedBuffer& tokens, DiagnosticConsumer& consumer)
  19. -> ParseTree {
  20. TokenizedBuffer::TokenLocationTranslator translator(
  21. tokens, /*last_line_lexed_to_column=*/nullptr);
  22. TokenDiagnosticEmitter emitter(translator, consumer);
  23. // Delegate to the parser.
  24. return Parser::Parse(tokens, emitter);
  25. }
  26. auto ParseTree::Postorder() const -> llvm::iterator_range<PostorderIterator> {
  27. return {PostorderIterator(Node(0)),
  28. PostorderIterator(Node(node_impls_.size()))};
  29. }
  30. auto ParseTree::Postorder(Node n) const
  31. -> llvm::iterator_range<PostorderIterator> {
  32. // The postorder ends after this node, the root, and begins at the start of
  33. // its subtree.
  34. int end_index = n.index_ + 1;
  35. int start_index = end_index - node_impls_[n.index_].subtree_size;
  36. return {PostorderIterator(Node(start_index)),
  37. PostorderIterator(Node(end_index))};
  38. }
  39. auto ParseTree::Children(Node n) const
  40. -> llvm::iterator_range<SiblingIterator> {
  41. int end_index = n.index_ - node_impls_[n.index_].subtree_size;
  42. return {SiblingIterator(*this, Node(n.index_ - 1)),
  43. SiblingIterator(*this, Node(end_index))};
  44. }
  45. auto ParseTree::Roots() const -> llvm::iterator_range<SiblingIterator> {
  46. return {
  47. SiblingIterator(*this, Node(static_cast<int>(node_impls_.size()) - 1)),
  48. SiblingIterator(*this, Node(-1))};
  49. }
  50. auto ParseTree::HasErrorInNode(Node n) const -> bool {
  51. return node_impls_[n.index_].has_error;
  52. }
  53. auto ParseTree::GetNodeKind(Node n) const -> ParseNodeKind {
  54. return node_impls_[n.index_].kind;
  55. }
  56. auto ParseTree::GetNodeToken(Node n) const -> TokenizedBuffer::Token {
  57. return node_impls_[n.index_].token;
  58. }
  59. auto ParseTree::GetNodeText(Node n) const -> llvm::StringRef {
  60. return tokens_->GetTokenText(node_impls_[n.index_].token);
  61. }
  62. auto ParseTree::Print(llvm::raw_ostream& output) const -> void {
  63. output << "[\n";
  64. // The parse tree is stored in postorder, but the most natural order to
  65. // visualize is preorder. This is a tree, so the preorder can be constructed
  66. // by reversing the order of each level of siblings within an RPO. The sibling
  67. // iterators are directly built around RPO and so can be used with a stack to
  68. // produce preorder.
  69. // The roots, like siblings, are in RPO (so reversed), but we add them in
  70. // order here because we'll pop off the stack effectively reversing then.
  71. llvm::SmallVector<std::pair<Node, int>, 16> node_stack;
  72. for (Node n : Roots()) {
  73. node_stack.push_back({n, 0});
  74. }
  75. while (!node_stack.empty()) {
  76. Node n;
  77. int depth;
  78. std::tie(n, depth) = node_stack.pop_back_val();
  79. auto& n_impl = node_impls_[n.GetIndex()];
  80. for (int unused_indent : llvm::seq(0, depth)) {
  81. (void)unused_indent;
  82. output << " ";
  83. }
  84. output << "{node_index: " << n.index_ << ", kind: '"
  85. << n_impl.kind.GetName() << "', text: '"
  86. << tokens_->GetTokenText(n_impl.token) << "'";
  87. if (n_impl.has_error) {
  88. output << ", has_error: yes";
  89. }
  90. if (n_impl.subtree_size > 1) {
  91. output << ", subtree_size: " << n_impl.subtree_size;
  92. // Has children, so we descend.
  93. output << ", children: [\n";
  94. // We append the children in order here as well because they will get
  95. // reversed when popped off the stack.
  96. for (Node sibling_n : Children(n)) {
  97. node_stack.push_back({sibling_n, depth + 1});
  98. }
  99. continue;
  100. }
  101. // This node is finished, so close it up.
  102. CHECK(n_impl.subtree_size == 1)
  103. << "Subtree size must always be a positive integer!";
  104. output << "}";
  105. int next_depth = node_stack.empty() ? 0 : node_stack.back().second;
  106. CHECK(next_depth <= depth) << "Cannot have the next depth increase!";
  107. for (int close_children_count : llvm::seq(0, depth - next_depth)) {
  108. (void)close_children_count;
  109. output << "]}";
  110. }
  111. // We always end with a comma and a new line as we'll move to the next node
  112. // at whatever the current level ends up being.
  113. output << ",\n";
  114. }
  115. output << "]\n";
  116. }
  117. auto ParseTree::Verify() const -> bool {
  118. // Verify basic tree structure invariants.
  119. llvm::SmallVector<ParseTree::Node, 16> ancestors;
  120. for (Node n : llvm::reverse(Postorder())) {
  121. auto& n_impl = node_impls_[n.GetIndex()];
  122. if (n_impl.has_error && !has_errors_) {
  123. llvm::errs()
  124. << "Node #" << n.GetIndex()
  125. << " has errors, but the tree is not marked as having any.\n";
  126. return false;
  127. }
  128. if (n_impl.subtree_size > 1) {
  129. if (!ancestors.empty()) {
  130. auto parent_n = ancestors.back();
  131. auto& parent_n_impl = node_impls_[parent_n.GetIndex()];
  132. int end_index = n.GetIndex() - n_impl.subtree_size;
  133. int parent_end_index = parent_n.GetIndex() - parent_n_impl.subtree_size;
  134. if (parent_end_index > end_index) {
  135. llvm::errs() << "Node #" << n.GetIndex() << " has a subtree size of "
  136. << n_impl.subtree_size
  137. << " which extends beyond its parent's (node #"
  138. << parent_n.GetIndex() << ") subtree (size "
  139. << parent_n_impl.subtree_size << ")\n";
  140. return false;
  141. }
  142. }
  143. // Has children, so we descend.
  144. ancestors.push_back(n);
  145. continue;
  146. }
  147. if (n_impl.subtree_size < 1) {
  148. llvm::errs() << "Node #" << n.GetIndex()
  149. << " has an invalid subtree size of " << n_impl.subtree_size
  150. << "!\n";
  151. return false;
  152. }
  153. // We're going to pop off some levels of the tree. Check each ancestor to
  154. // make sure the offsets are correct.
  155. int next_index = n.GetIndex() - 1;
  156. while (!ancestors.empty()) {
  157. ParseTree::Node parent_n = ancestors.back();
  158. if ((parent_n.GetIndex() -
  159. node_impls_[parent_n.GetIndex()].subtree_size) != next_index) {
  160. break;
  161. }
  162. ancestors.pop_back();
  163. }
  164. }
  165. if (!ancestors.empty()) {
  166. llvm::errs()
  167. << "Finished walking the parse tree and there are still ancestors:\n";
  168. for (Node ancestor_n : ancestors) {
  169. llvm::errs() << " Node #" << ancestor_n.GetIndex() << "\n";
  170. }
  171. return false;
  172. }
  173. return true;
  174. }
  175. auto ParseTree::Node::Print(llvm::raw_ostream& output) const -> void {
  176. output << GetIndex();
  177. }
  178. auto ParseTree::PostorderIterator::Print(llvm::raw_ostream& output) const
  179. -> void {
  180. output << node_.GetIndex();
  181. }
  182. auto ParseTree::SiblingIterator::Print(llvm::raw_ostream& output) const
  183. -> void {
  184. output << node_.GetIndex();
  185. }
  186. } // namespace Carbon