stringify.cpp 27 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/sem_ir/stringify.h"
  5. #include <optional>
  6. #include <string>
  7. #include <utility>
  8. #include <variant>
  9. #include "common/concepts.h"
  10. #include "common/raw_string_ostream.h"
  11. #include "toolchain/base/kind_switch.h"
  12. #include "toolchain/sem_ir/entity_with_params_base.h"
  13. #include "toolchain/sem_ir/ids.h"
  14. #include "toolchain/sem_ir/inst_kind.h"
  15. #include "toolchain/sem_ir/singleton_insts.h"
  16. #include "toolchain/sem_ir/struct_type_field.h"
  17. #include "toolchain/sem_ir/type_info.h"
  18. #include "toolchain/sem_ir/typed_insts.h"
  19. namespace Carbon::SemIR {
  20. // Map an instruction kind representing an expression into an integer describing
  21. // the precedence of that expression's syntax. Higher numbers correspond to
  22. // higher precedence.
  23. static auto GetPrecedence(InstKind kind) -> int {
  24. if (kind == ConstType::Kind) {
  25. return -1;
  26. }
  27. if (kind == PointerType::Kind) {
  28. return -2;
  29. }
  30. // TODO: Handle other kinds of expressions with precedence.
  31. return 0;
  32. }
  33. namespace {
  34. // Contains the stack of steps for `Stringify`.
  35. //
  36. // Note that when pushing items onto the stack, they're printed in the reverse
  37. // order of when they were pushed. All reference lifetimes must match the
  38. // lifetime of `Stringify`.
  39. class StepStack {
  40. public:
  41. // An individual step in the stack, which stringifies some component of a type
  42. // name.
  43. using Step = std::variant<InstId, llvm::StringRef, NameId, ElementIndex>;
  44. // Support `Push` for a qualified name. e.g., `A.B.C`.
  45. using QualifiedNameItem = std::pair<NameScopeId, NameId>;
  46. // Support `Push` for a qualified entity name. e.g., `A.B.C`.
  47. using EntityNameItem = std::pair<const EntityWithParamsBase&, SpecificId>;
  48. // The full set of things which can be pushed, including all members of
  49. // `Step`.
  50. using PushItem =
  51. std::variant<InstId, llvm::StringRef, NameId, ElementIndex,
  52. QualifiedNameItem, EntityNameItem, EntityNameId, TypeId,
  53. SpecificInterface, llvm::ListSeparator*>;
  54. // Starts a new stack, which always contains the first instruction to
  55. // stringify.
  56. explicit StepStack(const File* file) : sem_ir_(file) {}
  57. // These push basic entries onto the stack.
  58. auto PushInstId(InstId inst_id) -> void { steps_.push_back(inst_id); }
  59. auto PushString(llvm::StringRef string) -> void { steps_.push_back(string); }
  60. auto PushNameId(NameId name_id) -> void { steps_.push_back(name_id); }
  61. auto PushElementIndex(ElementIndex element_index) -> void {
  62. steps_.push_back(element_index);
  63. }
  64. // Pushes all components of a qualified name (`A.B.C`) onto the stack.
  65. auto PushQualifiedName(NameScopeId name_scope_id, NameId name_id) -> void {
  66. PushNameId(name_id);
  67. while (name_scope_id.has_value() && name_scope_id != NameScopeId::Package) {
  68. const auto& name_scope = sem_ir_->name_scopes().Get(name_scope_id);
  69. // TODO: Decide how to print unnamed scopes.
  70. if (name_scope.name_id().has_value()) {
  71. PushString(".");
  72. // TODO: For a generic scope, pass a SpecificId to this function and
  73. // include the relevant arguments.
  74. PushNameId(name_scope.name_id());
  75. }
  76. name_scope_id = name_scope.parent_scope_id();
  77. }
  78. }
  79. // Pushes a specific's entity name onto the stack, such as `A.B(T)`.
  80. auto PushEntityName(const EntityWithParamsBase& entity,
  81. SpecificId specific_id) -> void {
  82. PushSpecificId(entity, specific_id);
  83. PushQualifiedName(entity.parent_scope_id, entity.name_id);
  84. }
  85. // Pushes a entity name onto the stack, such as `A.B`.
  86. auto PushEntityNameId(EntityNameId entity_name_id) -> void {
  87. const auto& entity_name = sem_ir_->entity_names().Get(entity_name_id);
  88. PushQualifiedName(entity_name.parent_scope_id, entity_name.name_id);
  89. }
  90. // Pushes an instruction by its TypeId.
  91. auto PushTypeId(TypeId type_id) -> void {
  92. PushInstId(sem_ir_->types().GetInstId(type_id));
  93. }
  94. // Pushes a specific interface.
  95. auto PushSpecificInterface(SpecificInterface specific_interface) -> void {
  96. PushEntityName(sem_ir_->interfaces().Get(specific_interface.interface_id),
  97. specific_interface.specific_id);
  98. }
  99. // Pushes a sequence of items onto the stack. This handles reversal, such that
  100. // the caller can pass items in print order instead of stack order.
  101. //
  102. // Note that with `ListSeparator`, the object's reference isn't stored, but
  103. // the separator `StringRef` will be. That should be a constant though, so is
  104. // safe.
  105. auto PushArray(llvm::ArrayRef<PushItem> items) -> void {
  106. for (auto item : llvm::reverse(items)) {
  107. CARBON_KIND_SWITCH(item) {
  108. case CARBON_KIND(InstId inst_id):
  109. PushInstId(inst_id);
  110. break;
  111. case CARBON_KIND(llvm::StringRef string):
  112. PushString(string);
  113. break;
  114. case CARBON_KIND(NameId name_id):
  115. PushNameId(name_id);
  116. break;
  117. case CARBON_KIND(ElementIndex element_index):
  118. PushElementIndex(element_index);
  119. break;
  120. case CARBON_KIND(QualifiedNameItem qualified_name):
  121. PushQualifiedName(qualified_name.first, qualified_name.second);
  122. break;
  123. case CARBON_KIND(EntityNameItem entity_name):
  124. PushEntityName(entity_name.first, entity_name.second);
  125. break;
  126. case CARBON_KIND(EntityNameId entity_name_id):
  127. PushEntityNameId(entity_name_id);
  128. break;
  129. case CARBON_KIND(TypeId type_id):
  130. PushTypeId(type_id);
  131. break;
  132. case CARBON_KIND(SpecificInterface specific_interface):
  133. PushSpecificInterface(specific_interface);
  134. break;
  135. case CARBON_KIND(llvm::ListSeparator * sep):
  136. PushString(*sep);
  137. break;
  138. }
  139. }
  140. }
  141. // Wraps `PushArray` without requiring `{}` for arguments.
  142. template <typename... T>
  143. auto Push(T... items) -> void {
  144. PushArray({items...});
  145. }
  146. auto empty() const -> bool { return steps_.empty(); }
  147. auto Pop() -> Step { return steps_.pop_back_val(); }
  148. private:
  149. // Handles the generic portion of a specific entity name, such as `(T)` in
  150. // `A.B(T)`.
  151. auto PushSpecificId(const EntityWithParamsBase& entity,
  152. SpecificId specific_id) -> void {
  153. if (!entity.param_patterns_id.has_value()) {
  154. return;
  155. }
  156. int num_params =
  157. sem_ir_->inst_blocks().Get(entity.param_patterns_id).size();
  158. if (!num_params) {
  159. PushString("()");
  160. return;
  161. }
  162. if (!specific_id.has_value()) {
  163. // The name of the generic was used within the generic itself.
  164. // TODO: Should we print the names of the generic parameters in this
  165. // case?
  166. return;
  167. }
  168. const auto& specific = sem_ir_->specifics().Get(specific_id);
  169. auto args =
  170. sem_ir_->inst_blocks().Get(specific.args_id).take_back(num_params);
  171. bool last = true;
  172. for (auto arg : llvm::reverse(args)) {
  173. PushString(last ? ")" : ", ");
  174. PushInstId(arg);
  175. last = false;
  176. }
  177. PushString("(");
  178. }
  179. const File* sem_ir_;
  180. // Remaining steps to take.
  181. llvm::SmallVector<Step> steps_;
  182. };
  183. // Provides `StringifyInst` overloads for each instruction.
  184. class Stringifier {
  185. public:
  186. explicit Stringifier(const File* sem_ir, StepStack* step_stack,
  187. llvm::raw_ostream* out)
  188. : sem_ir_(sem_ir), step_stack_(step_stack), out_(out) {}
  189. // By default try to print a constant, but otherwise may fail to
  190. // stringify.
  191. auto StringifyInstDefault(InstId inst_id, Inst inst) -> void {
  192. // We don't know how to print this instruction, but it might have a
  193. // constant value that we can print.
  194. auto const_inst_id = sem_ir_->constant_values().GetConstantInstId(inst_id);
  195. if (const_inst_id.has_value() && const_inst_id != inst_id) {
  196. step_stack_->PushInstId(const_inst_id);
  197. return;
  198. }
  199. // We don't need to handle stringification for instructions that don't
  200. // show up in errors, but make it clear what's going on so that it's
  201. // clearer when stringification is needed.
  202. *out_ << "<cannot stringify " << inst_id << ": " << inst << ">";
  203. }
  204. template <typename InstT>
  205. auto StringifyInst(InstId inst_id, InstT inst) -> void {
  206. // This doesn't use requires so that more specific overloads are chosen when
  207. // provided.
  208. static_assert(InstT::Kind.is_type() != InstIsType::Always ||
  209. std::same_as<InstT, WhereExpr>,
  210. "Types should have a dedicated overload");
  211. // TODO: We should have Stringify support for all types where
  212. // InstT::Kind.constant_kind() is neither Never nor Indirect.
  213. StringifyInstDefault(inst_id, inst);
  214. }
  215. // Singleton instructions use their IR name as a label.
  216. template <typename InstT>
  217. requires(IsSingletonInstKind(InstT::Kind))
  218. auto StringifyInst(InstId /*inst_id*/, InstT /*inst*/) -> void {
  219. *out_ << InstT::Kind.ir_name();
  220. }
  221. auto StringifyInst(InstId /*inst_id*/, ArrayType inst) -> void {
  222. *out_ << "array(";
  223. step_stack_->Push(inst.element_type_inst_id, ", ", inst.bound_id, ")");
  224. }
  225. auto StringifyInst(InstId /*inst_id*/, AssociatedConstantDecl inst) -> void {
  226. const auto& assoc_const =
  227. sem_ir_->associated_constants().Get(inst.assoc_const_id);
  228. step_stack_->PushQualifiedName(assoc_const.parent_scope_id,
  229. assoc_const.name_id);
  230. }
  231. auto StringifyInst(InstId /*inst_id*/, AssociatedEntityType inst) -> void {
  232. *out_ << "<associated entity in ";
  233. step_stack_->Push(">");
  234. step_stack_->PushSpecificInterface(
  235. SpecificInterface{inst.interface_id, inst.interface_specific_id});
  236. }
  237. auto StringifyInst(InstId /*inst_id*/, BoolLiteral inst) -> void {
  238. step_stack_->Push(inst.value.ToBool() ? "true" : "false");
  239. }
  240. template <typename InstT>
  241. requires(SameAsOneOf<InstT, BindAlias, BindSymbolicName, ExportDecl>)
  242. auto StringifyInst(InstId /*inst_id*/, InstT inst) -> void {
  243. step_stack_->PushEntityNameId(inst.entity_name_id);
  244. }
  245. auto StringifyInst(InstId /*inst_id*/, ClassType inst) -> void {
  246. const auto& class_info = sem_ir_->classes().Get(inst.class_id);
  247. if (auto literal_info = NumericTypeLiteralInfo::ForType(*sem_ir_, inst);
  248. literal_info.is_valid()) {
  249. literal_info.PrintLiteral(*sem_ir_, *out_);
  250. return;
  251. }
  252. step_stack_->PushEntityName(class_info, inst.specific_id);
  253. }
  254. auto StringifyInst(InstId /*inst_id*/, ConstType inst) -> void {
  255. *out_ << "const ";
  256. // Add parentheses if required.
  257. if (GetPrecedence(sem_ir_->insts().Get(inst.inner_id).kind()) <
  258. GetPrecedence(ConstType::Kind)) {
  259. *out_ << "(";
  260. // Note the `inst.inner_id` ends up here.
  261. step_stack_->PushString(")");
  262. }
  263. step_stack_->PushInstId(inst.inner_id);
  264. }
  265. auto StringifyInst(InstId /*inst_id*/, CustomLayoutType inst) -> void {
  266. auto layout = sem_ir_->custom_layouts().Get(inst.layout_id);
  267. *out_ << "<size " << layout[CustomLayoutId::SizeIndex] << ", align "
  268. << layout[CustomLayoutId::AlignIndex] << ">";
  269. }
  270. auto StringifyInst(InstId /*inst_id*/, FacetAccessType inst) -> void {
  271. // Given `T:! I`, print `T as type` as simply `T`.
  272. step_stack_->PushInstId(inst.facet_value_inst_id);
  273. }
  274. auto StringifyInst(InstId /*inst_id*/, FacetType inst) -> void {
  275. const FacetTypeInfo& facet_type_info =
  276. sem_ir_->facet_types().Get(inst.facet_type_id);
  277. // Output `where` restrictions.
  278. bool some_where = false;
  279. if (facet_type_info.other_requirements) {
  280. step_stack_->PushString("...");
  281. some_where = true;
  282. }
  283. for (auto rewrite : llvm::reverse(facet_type_info.rewrite_constraints)) {
  284. if (some_where) {
  285. step_stack_->PushString(" and");
  286. }
  287. step_stack_->Push(" ", rewrite.lhs_id, " = ", rewrite.rhs_id);
  288. some_where = true;
  289. }
  290. if (!facet_type_info.self_impls_constraints.empty()) {
  291. if (some_where) {
  292. step_stack_->PushString(" and");
  293. }
  294. llvm::ListSeparator sep(" & ");
  295. for (auto impls : llvm::reverse(facet_type_info.self_impls_constraints)) {
  296. step_stack_->Push(impls, &sep);
  297. }
  298. step_stack_->PushString(" .Self impls ");
  299. some_where = true;
  300. }
  301. // TODO: Other restrictions from facet_type_info.
  302. if (some_where) {
  303. step_stack_->PushString(" where");
  304. }
  305. // Output extend interface requirements.
  306. if (facet_type_info.extend_constraints.empty()) {
  307. step_stack_->PushString("type");
  308. return;
  309. }
  310. llvm::ListSeparator sep(" & ");
  311. for (auto impls : llvm::reverse(facet_type_info.extend_constraints)) {
  312. step_stack_->Push(impls, &sep);
  313. }
  314. }
  315. auto StringifyInst(InstId /*inst_id*/, FacetValue inst) -> void {
  316. // No need to output the witness.
  317. step_stack_->Push(inst.type_inst_id, " as ", inst.type_id);
  318. }
  319. auto StringifyInst(InstId /*inst_id*/, FloatType inst) -> void {
  320. // TODO: Is this okay?
  321. if (auto width_value =
  322. sem_ir_->insts().TryGetAs<IntValue>(inst.bit_width_id)) {
  323. *out_ << "f";
  324. sem_ir_->ints().Get(width_value->int_id).print(*out_, /*isSigned=*/false);
  325. } else {
  326. *out_ << "Core.Float(";
  327. step_stack_->Push(inst.bit_width_id, ")");
  328. }
  329. }
  330. auto StringifyInst(InstId /*inst_id*/, FunctionType inst) -> void {
  331. const auto& fn = sem_ir_->functions().Get(inst.function_id);
  332. *out_ << "<type of ";
  333. step_stack_->Push(
  334. StepStack::QualifiedNameItem{fn.parent_scope_id, fn.name_id}, ">");
  335. }
  336. auto StringifyInst(InstId /*inst_id*/, FunctionTypeWithSelfType inst)
  337. -> void {
  338. StepStack::PushItem fn_name = InstId::None;
  339. if (auto fn_inst = sem_ir_->insts().TryGetAs<FunctionType>(
  340. inst.interface_function_type_id)) {
  341. const auto& fn = sem_ir_->functions().Get(fn_inst->function_id);
  342. fn_name = StepStack::QualifiedNameItem(fn.parent_scope_id, fn.name_id);
  343. } else {
  344. fn_name = inst.interface_function_type_id;
  345. }
  346. *out_ << "<type of ";
  347. step_stack_->Push(fn_name, " in ", inst.self_id, ">");
  348. }
  349. auto StringifyInst(InstId /*inst_id*/, GenericClassType inst) -> void {
  350. const auto& class_info = sem_ir_->classes().Get(inst.class_id);
  351. *out_ << "<type of ";
  352. step_stack_->Push(StepStack::QualifiedNameItem{class_info.parent_scope_id,
  353. class_info.name_id},
  354. ">");
  355. }
  356. auto StringifyInst(InstId /*inst_id*/, GenericInterfaceType inst) -> void {
  357. const auto& interface = sem_ir_->interfaces().Get(inst.interface_id);
  358. *out_ << "<type of ";
  359. step_stack_->Push(StepStack::QualifiedNameItem{interface.parent_scope_id,
  360. interface.name_id},
  361. ">");
  362. }
  363. // Determine the specific interface that an impl witness instruction provides
  364. // an implementation of.
  365. // TODO: Should we track this in the type?
  366. auto TryGetSpecificInterfaceForImplWitness(InstId impl_witness_id)
  367. -> std::optional<SpecificInterface> {
  368. if (auto lookup =
  369. sem_ir_->insts().TryGetAs<LookupImplWitness>(impl_witness_id)) {
  370. return sem_ir_->specific_interfaces().Get(
  371. lookup->query_specific_interface_id);
  372. }
  373. // TODO: Handle ImplWitness.
  374. return std::nullopt;
  375. }
  376. auto StringifyInst(InstId /*inst_id*/, ImplWitnessAccess inst) -> void {
  377. auto witness_inst_id =
  378. sem_ir_->constant_values().GetConstantInstId(inst.witness_id);
  379. auto lookup = sem_ir_->insts().GetAs<LookupImplWitness>(witness_inst_id);
  380. auto specific_interface =
  381. sem_ir_->specific_interfaces().Get(lookup.query_specific_interface_id);
  382. const auto& interface =
  383. sem_ir_->interfaces().Get(specific_interface.interface_id);
  384. if (!interface.associated_entities_id.has_value()) {
  385. step_stack_->Push(".(TODO: element ", inst.index, " in incomplete ",
  386. witness_inst_id, ")");
  387. } else {
  388. auto entities =
  389. sem_ir_->inst_blocks().Get(interface.associated_entities_id);
  390. size_t index = inst.index.index;
  391. CARBON_CHECK(index < entities.size(), "Access out of bounds.");
  392. auto entity_inst_id = entities[index];
  393. step_stack_->PushString(")");
  394. if (auto associated_const =
  395. sem_ir_->insts().TryGetAs<AssociatedConstantDecl>(
  396. entity_inst_id)) {
  397. step_stack_->PushNameId(sem_ir_->associated_constants()
  398. .Get(associated_const->assoc_const_id)
  399. .name_id);
  400. } else if (auto function_decl =
  401. sem_ir_->insts().TryGetAs<FunctionDecl>(entity_inst_id)) {
  402. const auto& function =
  403. sem_ir_->functions().Get(function_decl->function_id);
  404. step_stack_->PushNameId(function.name_id);
  405. } else {
  406. step_stack_->PushInstId(entity_inst_id);
  407. }
  408. step_stack_->Push(
  409. ".(",
  410. StepStack::EntityNameItem{interface, specific_interface.specific_id},
  411. ".");
  412. }
  413. if (auto lookup =
  414. sem_ir_->insts().TryGetAs<LookupImplWitness>(witness_inst_id)) {
  415. bool period_self = false;
  416. if (auto sym_name = sem_ir_->insts().TryGetAs<BindSymbolicName>(
  417. lookup->query_self_inst_id)) {
  418. auto name_id =
  419. sem_ir_->entity_names().Get(sym_name->entity_name_id).name_id;
  420. period_self = (name_id == NameId::PeriodSelf);
  421. }
  422. if (!period_self) {
  423. step_stack_->PushInstId(lookup->query_self_inst_id);
  424. }
  425. } else {
  426. // TODO: Omit parens if not needed for precedence.
  427. step_stack_->Push("(", witness_inst_id, ")");
  428. }
  429. }
  430. auto StringifyInst(InstId /*inst_id*/, ImportRefUnloaded inst) -> void {
  431. if (inst.entity_name_id.has_value()) {
  432. step_stack_->PushEntityNameId(inst.entity_name_id);
  433. } else {
  434. *out_ << "<import ref unloaded invalid entity name>";
  435. }
  436. }
  437. auto StringifyInst(InstId /*inst_id*/, IntType inst) -> void {
  438. *out_ << "<builtin ";
  439. step_stack_->PushString(">");
  440. if (auto width_value =
  441. sem_ir_->insts().TryGetAs<IntValue>(inst.bit_width_id)) {
  442. *out_ << (inst.int_kind.is_signed() ? "i" : "u");
  443. sem_ir_->ints().Get(width_value->int_id).print(*out_, /*isSigned=*/false);
  444. } else {
  445. *out_ << (inst.int_kind.is_signed() ? "Int(" : "UInt(");
  446. step_stack_->Push(inst.bit_width_id, ")");
  447. }
  448. }
  449. auto StringifyInst(InstId /*inst_id*/, IntValue inst) -> void {
  450. sem_ir_->ints().Get(inst.int_id).print(*out_, /*isSigned=*/true);
  451. }
  452. auto StringifyInst(InstId /*inst_id*/, LookupImplWitness inst) -> void {
  453. step_stack_->Push(
  454. inst.query_self_inst_id, " as ",
  455. sem_ir_->specific_interfaces().Get(inst.query_specific_interface_id));
  456. }
  457. auto StringifyInst(InstId /*inst_id*/, NameRef inst) -> void {
  458. *out_ << sem_ir_->names().GetFormatted(inst.name_id);
  459. }
  460. auto StringifyInst(InstId /*inst_id*/, Namespace inst) -> void {
  461. const auto& name_scope = sem_ir_->name_scopes().Get(inst.name_scope_id);
  462. step_stack_->PushQualifiedName(name_scope.parent_scope_id(),
  463. name_scope.name_id());
  464. }
  465. auto StringifyInst(InstId /*inst_id*/, PartialType inst) -> void {
  466. *out_ << "partial ";
  467. step_stack_->PushInstId(inst.inner_id);
  468. }
  469. auto StringifyInst(InstId /*inst_id*/, PatternType inst) -> void {
  470. *out_ << "<pattern for ";
  471. step_stack_->Push(inst.scrutinee_type_inst_id, ">");
  472. }
  473. auto StringifyInst(InstId /*inst_id*/, PointerType inst) -> void {
  474. step_stack_->Push(inst.pointee_id, "*");
  475. }
  476. auto StringifyInst(InstId /*inst_id*/, SpecificFunction inst) -> void {
  477. auto callee = GetCalleeFunction(*sem_ir_, inst.callee_id);
  478. if (callee.function_id.has_value()) {
  479. step_stack_->PushEntityName(sem_ir_->functions().Get(callee.function_id),
  480. inst.specific_id);
  481. } else {
  482. step_stack_->PushString("<invalid specific function>");
  483. }
  484. }
  485. auto StringifyInst(InstId /*inst_id*/, SpecificImplFunction inst) -> void {
  486. auto callee = GetCalleeFunction(*sem_ir_, inst.callee_id);
  487. if (callee.function_id.has_value()) {
  488. // TODO: The specific_id here is for the interface member, but the
  489. // entity we're passing is the impl member. This might result in
  490. // strange output once we render specific arguments properly.
  491. step_stack_->PushEntityName(sem_ir_->functions().Get(callee.function_id),
  492. inst.specific_id);
  493. } else {
  494. step_stack_->PushString("<invalid specific function>");
  495. }
  496. }
  497. auto StringifyInst(InstId /*inst_id*/, StructType inst) -> void {
  498. auto fields = sem_ir_->struct_type_fields().Get(inst.fields_id);
  499. if (fields.empty()) {
  500. *out_ << "{}";
  501. return;
  502. }
  503. *out_ << "{";
  504. step_stack_->PushString("}");
  505. llvm::ListSeparator sep;
  506. for (auto field : llvm::reverse(fields)) {
  507. step_stack_->Push(".", field.name_id, ": ", field.type_inst_id, &sep);
  508. }
  509. }
  510. auto StringifyInst(InstId /*inst_id*/, StructValue inst) -> void {
  511. auto field_values = sem_ir_->inst_blocks().Get(inst.elements_id);
  512. if (field_values.empty()) {
  513. *out_ << "{}";
  514. return;
  515. }
  516. auto struct_type = sem_ir_->types().GetAs<StructType>(
  517. sem_ir_->types().GetObjectRepr(inst.type_id));
  518. auto fields = sem_ir_->struct_type_fields().Get(struct_type.fields_id);
  519. if (fields.size() != field_values.size()) {
  520. *out_ << "{<struct value type length mismatch>}";
  521. return;
  522. }
  523. *out_ << "{";
  524. step_stack_->PushString("}");
  525. llvm::ListSeparator sep;
  526. for (auto [field, value_inst_id] :
  527. llvm::reverse(llvm::zip(fields, field_values))) {
  528. step_stack_->Push(".", field.name_id, " = ", value_inst_id, &sep);
  529. }
  530. }
  531. auto StringifyInst(InstId /*inst_id*/, TupleType inst) -> void {
  532. auto refs = sem_ir_->inst_blocks().Get(inst.type_elements_id);
  533. if (refs.empty()) {
  534. *out_ << "()";
  535. return;
  536. }
  537. *out_ << "(";
  538. step_stack_->PushString(")");
  539. // A tuple of one element has a comma to disambiguate from an
  540. // expression.
  541. if (refs.size() == 1) {
  542. step_stack_->PushString(",");
  543. }
  544. llvm::ListSeparator sep;
  545. for (auto ref : llvm::reverse(refs)) {
  546. step_stack_->Push(ref, &sep);
  547. }
  548. }
  549. auto StringifyInst(InstId /*inst_id*/, TupleValue inst) -> void {
  550. auto refs = sem_ir_->inst_blocks().Get(inst.elements_id);
  551. if (refs.empty()) {
  552. *out_ << "()";
  553. return;
  554. }
  555. *out_ << "(";
  556. step_stack_->PushString(")");
  557. // A tuple of one element has a comma to disambiguate from an
  558. // expression.
  559. if (refs.size() == 1) {
  560. step_stack_->PushString(",");
  561. }
  562. llvm::ListSeparator sep;
  563. for (auto ref : llvm::reverse(refs)) {
  564. step_stack_->Push(ref, &sep);
  565. }
  566. }
  567. auto StringifyInst(InstId inst_id, TypeOfInst /*inst*/) -> void {
  568. // Print the constant value if we've already computed the inst.
  569. auto const_inst_id = sem_ir_->constant_values().GetConstantInstId(inst_id);
  570. if (const_inst_id.has_value() && const_inst_id != inst_id) {
  571. step_stack_->PushInstId(const_inst_id);
  572. return;
  573. }
  574. *out_ << "<dependent type>";
  575. }
  576. auto StringifyInst(InstId /*inst_id*/, UnboundElementType inst) -> void {
  577. *out_ << "<unbound element of class ";
  578. step_stack_->Push(inst.class_type_inst_id, ">");
  579. }
  580. auto StringifyInst(InstId /*inst_id*/, VtablePtr /*inst*/) -> void {
  581. *out_ << "<vtable ptr>";
  582. }
  583. private:
  584. const File* sem_ir_;
  585. StepStack* step_stack_;
  586. llvm::raw_ostream* out_;
  587. };
  588. } // namespace
  589. static auto Stringify(const File& sem_ir, StepStack& step_stack)
  590. -> std::string {
  591. RawStringOstream out;
  592. Stringifier stringifier(&sem_ir, &step_stack, &out);
  593. while (!step_stack.empty()) {
  594. CARBON_KIND_SWITCH(step_stack.Pop()) {
  595. case CARBON_KIND(InstId inst_id): {
  596. if (!inst_id.has_value()) {
  597. out << "<invalid>";
  598. break;
  599. }
  600. auto untyped_inst = sem_ir.insts().Get(inst_id);
  601. CARBON_KIND_SWITCH(untyped_inst) {
  602. #define CARBON_SEM_IR_INST_KIND(InstT) \
  603. case CARBON_KIND(InstT typed_inst): { \
  604. stringifier.StringifyInst(inst_id, typed_inst); \
  605. break; \
  606. }
  607. #include "toolchain/sem_ir/inst_kind.def"
  608. }
  609. break;
  610. }
  611. case CARBON_KIND(llvm::StringRef string):
  612. out << string;
  613. break;
  614. case CARBON_KIND(NameId name_id):
  615. out << sem_ir.names().GetFormatted(name_id);
  616. break;
  617. case CARBON_KIND(ElementIndex element_index):
  618. out << element_index.index;
  619. break;
  620. }
  621. }
  622. return out.TakeStr();
  623. }
  624. auto StringifyConstantInst(const File& sem_ir, InstId outer_inst_id)
  625. -> std::string {
  626. StepStack step_stack(&sem_ir);
  627. step_stack.PushInstId(outer_inst_id);
  628. return Stringify(sem_ir, step_stack);
  629. }
  630. auto StringifySpecific(const File& sem_ir, SpecificId specific_id)
  631. -> std::string {
  632. StepStack step_stack(&sem_ir);
  633. const auto& specific = sem_ir.specifics().Get(specific_id);
  634. const auto& generic = sem_ir.generics().Get(specific.generic_id);
  635. auto decl = sem_ir.insts().Get(generic.decl_id);
  636. CARBON_KIND_SWITCH(decl) {
  637. case CARBON_KIND(ClassDecl class_decl): {
  638. // Print `Core.Int(N)` as `iN`.
  639. // TODO: This duplicates work done in StringifyInst for ClassType.
  640. const auto& class_info = sem_ir.classes().Get(class_decl.class_id);
  641. if (auto literal_info = NumericTypeLiteralInfo::ForType(
  642. sem_ir, ClassType{.type_id = TypeType::TypeId,
  643. .class_id = class_decl.class_id,
  644. .specific_id = specific_id});
  645. literal_info.is_valid()) {
  646. RawStringOstream out;
  647. literal_info.PrintLiteral(sem_ir, out);
  648. return out.TakeStr();
  649. }
  650. step_stack.PushEntityName(class_info, specific_id);
  651. break;
  652. }
  653. case CARBON_KIND(FunctionDecl function_decl): {
  654. step_stack.PushEntityName(
  655. sem_ir.functions().Get(function_decl.function_id), specific_id);
  656. break;
  657. }
  658. case CARBON_KIND(ImplDecl impl_decl): {
  659. step_stack.PushEntityName(sem_ir.impls().Get(impl_decl.impl_id),
  660. specific_id);
  661. break;
  662. }
  663. case CARBON_KIND(InterfaceDecl interface_decl): {
  664. step_stack.PushEntityName(
  665. sem_ir.interfaces().Get(interface_decl.interface_id), specific_id);
  666. break;
  667. }
  668. default: {
  669. // TODO: Include the specific arguments here.
  670. step_stack.PushInstId(generic.decl_id);
  671. break;
  672. }
  673. }
  674. return Stringify(sem_ir, step_stack);
  675. }
  676. auto StringifySpecificInterface(const File& sem_ir,
  677. SpecificInterface specific_interface)
  678. -> std::string {
  679. if (specific_interface.specific_id.has_value()) {
  680. return StringifySpecific(sem_ir, specific_interface.specific_id);
  681. } else {
  682. auto name_id =
  683. sem_ir.interfaces().Get(specific_interface.interface_id).name_id;
  684. return sem_ir.names().GetFormatted(name_id).str();
  685. }
  686. }
  687. } // namespace Carbon::SemIR