precedence.cpp 10 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/precedence.h"
  5. #include <utility>
  6. #include "common/check.h"
  7. namespace Carbon {
  8. namespace {
  9. enum PrecedenceLevel : int8_t {
  10. // Sentinel representing the absence of any operator.
  11. Highest,
  12. // Terms.
  13. TermPrefix,
  14. // Numeric.
  15. IncrementDecrement,
  16. NumericPrefix,
  17. Modulo,
  18. Multiplicative,
  19. Additive,
  20. // Bitwise.
  21. BitwisePrefix,
  22. BitwiseAnd,
  23. BitwiseOr,
  24. BitwiseXor,
  25. BitShift,
  26. // Type formation.
  27. TypePrefix,
  28. TypePostfix,
  29. // Casts.
  30. As,
  31. // Logical.
  32. LogicalPrefix,
  33. Relational,
  34. LogicalAnd,
  35. LogicalOr,
  36. // Conditional.
  37. If,
  38. // Assignment.
  39. Assignment,
  40. // Sentinel representing a context in which any operator can appear.
  41. Lowest,
  42. };
  43. constexpr int8_t NumPrecedenceLevels = Lowest + 1;
  44. // A precomputed lookup table determining the relative precedence of two
  45. // precedence groups.
  46. struct OperatorPriorityTable {
  47. constexpr OperatorPriorityTable() : table() {
  48. // Start with a list of <higher precedence>, <lower precedence>
  49. // relationships.
  50. MarkHigherThan({Highest}, {TermPrefix, LogicalPrefix});
  51. MarkHigherThan({TermPrefix},
  52. {NumericPrefix, BitwisePrefix, IncrementDecrement});
  53. MarkHigherThan({NumericPrefix, BitwisePrefix},
  54. {As, Multiplicative, Modulo, BitwiseAnd, BitwiseOr,
  55. BitwiseXor, BitShift});
  56. MarkHigherThan({Multiplicative}, {Additive});
  57. MarkHigherThan(
  58. {As, Additive, Modulo, BitwiseAnd, BitwiseOr, BitwiseXor, BitShift},
  59. {Relational});
  60. MarkHigherThan({Relational, LogicalPrefix}, {LogicalAnd, LogicalOr});
  61. MarkHigherThan({LogicalAnd, LogicalOr}, {If});
  62. MarkHigherThan({If}, {Assignment});
  63. MarkHigherThan({Assignment, IncrementDecrement}, {Lowest});
  64. // Types are mostly a separate precedence graph.
  65. MarkHigherThan({Highest}, {TypePrefix});
  66. MarkHigherThan({TypePrefix}, {TypePostfix});
  67. MarkHigherThan({TypePostfix}, {As});
  68. // Compute the transitive closure of the above relationships: if we parse
  69. // `a $ b @ c` as `(a $ b) @ c` and parse `b @ c % d` as `(b @ c) % d`,
  70. // then we will parse `a $ b @ c % d` as `((a $ b) @ c) % d` and should
  71. // also parse `a $ bc % d` as `(a $ bc) % d`.
  72. MakeTransitivelyClosed();
  73. // Make the relation symmetric. If we parse `a $ b @ c` as `(a $ b) @ c`
  74. // then we want to parse `a @ b $ c` as `a @ (b $ c)`.
  75. MakeSymmetric();
  76. // Fill in the diagonal, which represents operator associativity.
  77. AddAssociativityRules();
  78. ConsistencyCheck();
  79. }
  80. constexpr void MarkHigherThan(
  81. std::initializer_list<PrecedenceLevel> higher_group,
  82. std::initializer_list<PrecedenceLevel> lower_group) {
  83. for (auto higher : higher_group) {
  84. for (auto lower : lower_group) {
  85. table[higher][lower] = OperatorPriority::LeftFirst;
  86. }
  87. }
  88. }
  89. constexpr void MakeTransitivelyClosed() {
  90. // A naive algorithm compiles acceptably fast for now (~0.5s). This should
  91. // be revisited if we see compile time problems after adding precedence
  92. // groups; it's easy to do this faster.
  93. bool changed = false;
  94. do {
  95. changed = false;
  96. // NOLINTNEXTLINE(modernize-loop-convert)
  97. for (int8_t a = 0; a != NumPrecedenceLevels; ++a) {
  98. for (int8_t b = 0; b != NumPrecedenceLevels; ++b) {
  99. if (table[a][b] == OperatorPriority::LeftFirst) {
  100. for (int8_t c = 0; c != NumPrecedenceLevels; ++c) {
  101. if (table[b][c] == OperatorPriority::LeftFirst &&
  102. table[a][c] != OperatorPriority::LeftFirst) {
  103. table[a][c] = OperatorPriority::LeftFirst;
  104. changed = true;
  105. }
  106. }
  107. }
  108. }
  109. }
  110. } while (changed);
  111. }
  112. constexpr void MakeSymmetric() {
  113. for (int8_t a = 0; a != NumPrecedenceLevels; ++a) {
  114. for (int8_t b = 0; b != NumPrecedenceLevels; ++b) {
  115. if (table[a][b] == OperatorPriority::LeftFirst) {
  116. CARBON_CHECK(table[b][a] != OperatorPriority::LeftFirst)
  117. << "inconsistent lookup table entries";
  118. table[b][a] = OperatorPriority::RightFirst;
  119. }
  120. }
  121. }
  122. }
  123. constexpr void AddAssociativityRules() {
  124. // Associativity rules occupy the diagonal
  125. // For prefix operators, RightFirst would mean `@@x` is `@(@x)` and
  126. // Ambiguous would mean it's an error. LeftFirst is meaningless.
  127. for (PrecedenceLevel prefix : {TermPrefix, If}) {
  128. table[prefix][prefix] = OperatorPriority::RightFirst;
  129. }
  130. // Postfix operators are symmetric with prefix operators.
  131. for (PrecedenceLevel postfix : {TypePostfix}) {
  132. table[postfix][postfix] = OperatorPriority::LeftFirst;
  133. }
  134. // Traditionally-associative operators are given left-to-right
  135. // associativity.
  136. for (PrecedenceLevel assoc :
  137. {Multiplicative, Additive, BitwiseAnd, BitwiseOr, BitwiseXor,
  138. LogicalAnd, LogicalOr}) {
  139. table[assoc][assoc] = OperatorPriority::LeftFirst;
  140. }
  141. // For other operators, we require explicit parentheses.
  142. }
  143. constexpr void ConsistencyCheck() {
  144. for (int8_t level = 0; level != NumPrecedenceLevels; ++level) {
  145. if (level != Highest) {
  146. CARBON_CHECK(table[Highest][level] == OperatorPriority::LeftFirst &&
  147. table[level][Highest] == OperatorPriority::RightFirst)
  148. << "Highest is not highest priority";
  149. }
  150. if (level != Lowest) {
  151. CARBON_CHECK(table[Lowest][level] == OperatorPriority::RightFirst &&
  152. table[level][Lowest] == OperatorPriority::LeftFirst)
  153. << "Lowest is not lowest priority";
  154. }
  155. }
  156. }
  157. OperatorPriority table[NumPrecedenceLevels][NumPrecedenceLevels];
  158. };
  159. } // namespace
  160. auto PrecedenceGroup::ForPostfixExpression() -> PrecedenceGroup {
  161. return PrecedenceGroup(Highest);
  162. }
  163. auto PrecedenceGroup::ForTopLevelExpression() -> PrecedenceGroup {
  164. return PrecedenceGroup(If);
  165. }
  166. auto PrecedenceGroup::ForExpressionStatement() -> PrecedenceGroup {
  167. return PrecedenceGroup(Lowest);
  168. }
  169. auto PrecedenceGroup::ForType() -> PrecedenceGroup {
  170. return ForTopLevelExpression();
  171. }
  172. auto PrecedenceGroup::ForLeading(TokenKind kind)
  173. -> std::optional<PrecedenceGroup> {
  174. switch (kind) {
  175. case TokenKind::Star:
  176. case TokenKind::Amp:
  177. return PrecedenceGroup(TermPrefix);
  178. case TokenKind::Not:
  179. return PrecedenceGroup(LogicalPrefix);
  180. case TokenKind::Minus:
  181. return PrecedenceGroup(NumericPrefix);
  182. case TokenKind::MinusMinus:
  183. case TokenKind::PlusPlus:
  184. return PrecedenceGroup(IncrementDecrement);
  185. case TokenKind::Caret:
  186. return PrecedenceGroup(BitwisePrefix);
  187. case TokenKind::If:
  188. return PrecedenceGroup(If);
  189. case TokenKind::Const:
  190. return PrecedenceGroup(TypePrefix);
  191. default:
  192. return std::nullopt;
  193. }
  194. }
  195. auto PrecedenceGroup::ForTrailing(TokenKind kind, bool infix)
  196. -> std::optional<Trailing> {
  197. switch (kind) {
  198. // Assignment operators.
  199. case TokenKind::Equal:
  200. case TokenKind::PlusEqual:
  201. case TokenKind::MinusEqual:
  202. case TokenKind::StarEqual:
  203. case TokenKind::SlashEqual:
  204. case TokenKind::PercentEqual:
  205. case TokenKind::AmpEqual:
  206. case TokenKind::PipeEqual:
  207. case TokenKind::CaretEqual:
  208. case TokenKind::GreaterGreaterEqual:
  209. case TokenKind::LessLessEqual:
  210. return Trailing{.level = Assignment, .is_binary = true};
  211. // Logical operators.
  212. case TokenKind::And:
  213. return Trailing{.level = LogicalAnd, .is_binary = true};
  214. case TokenKind::Or:
  215. return Trailing{.level = LogicalOr, .is_binary = true};
  216. // Bitwise operators.
  217. case TokenKind::Amp:
  218. return Trailing{.level = BitwiseAnd, .is_binary = true};
  219. case TokenKind::Pipe:
  220. return Trailing{.level = BitwiseOr, .is_binary = true};
  221. case TokenKind::Caret:
  222. return Trailing{.level = BitwiseXor, .is_binary = true};
  223. case TokenKind::GreaterGreater:
  224. case TokenKind::LessLess:
  225. return Trailing{.level = BitShift, .is_binary = true};
  226. // Relational operators.
  227. case TokenKind::EqualEqual:
  228. case TokenKind::ExclaimEqual:
  229. case TokenKind::Less:
  230. case TokenKind::LessEqual:
  231. case TokenKind::Greater:
  232. case TokenKind::GreaterEqual:
  233. case TokenKind::LessEqualGreater:
  234. return Trailing{.level = Relational, .is_binary = true};
  235. // Additive operators.
  236. case TokenKind::Plus:
  237. case TokenKind::Minus:
  238. return Trailing{.level = Additive, .is_binary = true};
  239. // Multiplicative operators.
  240. case TokenKind::Slash:
  241. return Trailing{.level = Multiplicative, .is_binary = true};
  242. case TokenKind::Percent:
  243. return Trailing{.level = Modulo, .is_binary = true};
  244. // `*` could be multiplication or pointer type formation.
  245. case TokenKind::Star:
  246. return infix ? Trailing{.level = Multiplicative, .is_binary = true}
  247. : Trailing{.level = TypePostfix, .is_binary = false};
  248. // Cast operator.
  249. case TokenKind::As:
  250. return Trailing{.level = As, .is_binary = true};
  251. // Prefix-only operators.
  252. case TokenKind::Const:
  253. case TokenKind::MinusMinus:
  254. case TokenKind::Not:
  255. case TokenKind::PlusPlus:
  256. break;
  257. // Symbolic tokens that might be operators eventually.
  258. case TokenKind::Tilde:
  259. case TokenKind::Backslash:
  260. case TokenKind::Comma:
  261. case TokenKind::TildeEqual:
  262. case TokenKind::Exclaim:
  263. case TokenKind::LessGreater:
  264. case TokenKind::Question:
  265. case TokenKind::Colon:
  266. break;
  267. // Symbolic tokens that are intentionally not operators.
  268. case TokenKind::At:
  269. case TokenKind::LessMinus:
  270. case TokenKind::MinusGreater:
  271. case TokenKind::EqualGreater:
  272. case TokenKind::ColonEqual:
  273. case TokenKind::Period:
  274. case TokenKind::Semi:
  275. break;
  276. default:
  277. break;
  278. }
  279. return std::nullopt;
  280. }
  281. auto PrecedenceGroup::GetPriority(PrecedenceGroup left, PrecedenceGroup right)
  282. -> OperatorPriority {
  283. static constexpr OperatorPriorityTable Lookup;
  284. return Lookup.table[left.level_][right.level_];
  285. }
  286. } // namespace Carbon