source: src/GenPoly/Box.cpp@ 47bd204

Last change on this file since 47bd204 was be4335b, checked in by Andrew Beach <ajbeach@…>, 22 months ago

The remaining improvements I had planned for the Box pass are either very hard or (on reflection) of questionable value, and none are required. Cleans up some loose threads before I may move on.

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File size: 81.4 KB
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1//
2// Cforall Version 1.0.0 Copyright (C) 2015 University of Waterloo
3//
4// The contents of this file are covered under the licence agreement in the
5// file "LICENCE" distributed with Cforall.
6//
7// Box.cpp -- Implement polymorphic function calls and types.
8//
9// Author : Andrew Beach
10// Created On : Thr Oct 6 13:39:00 2022
11// Last Modified By : Peter A. Buhr
12// Last Modified On : Thu Dec 14 17:42:17 2023
13// Update Count : 7
14//
15
16#include "Box.h"
17
18#include "AST/Decl.hpp" // for Decl, FunctionDecl, ...
19#include "AST/Expr.hpp" // for AlignofExpr, ConstantExpr, ...
20#include "AST/Init.hpp" // for Init, SingleInit
21#include "AST/Inspect.hpp" // for getFunctionName
22#include "AST/Pass.hpp" // for Pass, WithDeclsToAdd, ...
23#include "AST/Stmt.hpp" // for CompoundStmt, ExprStmt, ...
24#include "AST/Vector.hpp" // for vector
25#include "AST/GenericSubstitution.hpp" // for genericSubstitution
26#include "CodeGen/OperatorTable.h" // for isAssignment
27#include "Common/Iterate.hpp" // for group_iterate
28#include "Common/ScopedMap.h" // for ScopedMap
29#include "Common/ToString.hpp" // for toCString
30#include "Common/UniqueName.h" // for UniqueName
31#include "GenPoly/FindFunction.h" // for findFunction
32#include "GenPoly/GenPoly.h" // for getFunctionType, ...
33#include "GenPoly/Lvalue.h" // for generalizedLvalue
34#include "GenPoly/ScopedSet.h" // for ScopedSet
35#include "GenPoly/ScrubTypeVars.hpp" // for scrubTypeVars, scrubAllTypeVars
36#include "ResolvExpr/Unify.h" // for typesCompatible
37#include "SymTab/Mangler.h" // for mangle, mangleType
38
39namespace GenPoly {
40
41namespace {
42
43/// The layout type is used to represent sizes, alignments and offsets.
44ast::BasicType * makeLayoutType() {
45 return new ast::BasicType( ast::BasicType::LongUnsignedInt );
46}
47
48/// Fixed version of layout type (just adding a 'C' in C++ style).
49ast::BasicType * makeLayoutCType() {
50 return new ast::BasicType( ast::BasicType::LongUnsignedInt,
51 ast::CV::Qualifiers( ast::CV::Const ) );
52}
53
54// --------------------------------------------------------------------------
55/// Adds layout-generation functions to polymorphic types.
56struct LayoutFunctionBuilder final :
57 public ast::WithDeclsToAdd<>,
58 public ast::WithShortCircuiting,
59 public ast::WithVisitorRef<LayoutFunctionBuilder> {
60 void previsit( ast::StructDecl const * decl );
61 void previsit( ast::UnionDecl const * decl );
62};
63
64/// Get all sized type declarations; those that affect a layout function.
65ast::vector<ast::TypeDecl> takeSizedParams(
66 ast::vector<ast::TypeDecl> const & decls ) {
67 ast::vector<ast::TypeDecl> sizedParams;
68 for ( ast::ptr<ast::TypeDecl> const & decl : decls ) {
69 if ( decl->isComplete() ) {
70 sizedParams.emplace_back( decl );
71 }
72 }
73 return sizedParams;
74}
75
76/// Adds parameters for otype size and alignment to a function type.
77void addSTypeParams(
78 ast::vector<ast::DeclWithType> & params,
79 ast::vector<ast::TypeDecl> const & sizedParams ) {
80 for ( ast::ptr<ast::TypeDecl> const & sizedParam : sizedParams ) {
81 ast::TypeInstType inst( sizedParam );
82 std::string paramName = Mangle::mangleType( &inst );
83 params.emplace_back( new ast::ObjectDecl(
84 sizedParam->location,
85 sizeofName( paramName ),
86 makeLayoutCType()
87 ) );
88 params.emplace_back( new ast::ObjectDecl(
89 sizedParam->location,
90 alignofName( paramName ),
91 makeLayoutCType()
92 ) );
93 }
94}
95
96ast::Type * makeLayoutOutType() {
97 return new ast::PointerType( makeLayoutType() );
98}
99
100struct LayoutData {
101 ast::FunctionDecl * function;
102 ast::ObjectDecl * sizeofParam;
103 ast::ObjectDecl * alignofParam;
104 ast::ObjectDecl * offsetofParam;
105};
106
107LayoutData buildLayoutFunction(
108 CodeLocation const & location, ast::AggregateDecl const * aggr,
109 ast::vector<ast::TypeDecl> const & sizedParams,
110 bool isInFunction, bool isStruct ) {
111 ast::ObjectDecl * sizeParam = new ast::ObjectDecl(
112 location,
113 sizeofName( aggr->name ),
114 makeLayoutOutType()
115 );
116 ast::ObjectDecl * alignParam = new ast::ObjectDecl(
117 location,
118 alignofName( aggr->name ),
119 makeLayoutOutType()
120 );
121 ast::ObjectDecl * offsetParam = nullptr;
122 ast::vector<ast::DeclWithType> params = { sizeParam, alignParam };
123 if ( isStruct ) {
124 offsetParam = new ast::ObjectDecl(
125 location,
126 offsetofName( aggr->name ),
127 makeLayoutOutType()
128 );
129 params.push_back( offsetParam );
130 }
131 addSTypeParams( params, sizedParams );
132
133 // Routines at global scope marked "static" to prevent multiple
134 // definitions is separate translation units because each unit generates
135 // copies of the default routines for each aggregate.
136 ast::FunctionDecl * layoutDecl = new ast::FunctionDecl(
137 location,
138 layoutofName( aggr ),
139 {}, // forall
140 {}, // assertions
141 std::move( params ),
142 {}, // returns
143 new ast::CompoundStmt( location ),
144 isInFunction ? ast::Storage::Classes() : ast::Storage::Static,
145 ast::Linkage::AutoGen,
146 {}, // attrs
147 ast::Function::Inline,
148 ast::FixedArgs
149 );
150 layoutDecl->fixUniqueId();
151 return LayoutData{ layoutDecl, sizeParam, alignParam, offsetParam };
152}
153
154/// Makes a binary operation.
155ast::Expr * makeOp( CodeLocation const & location, std::string const & name,
156 ast::Expr const * lhs, ast::Expr const * rhs ) {
157 return new ast::UntypedExpr( location,
158 new ast::NameExpr( location, name ), { lhs, rhs } );
159}
160
161/// Make a binary operation and wrap it in a statement.
162ast::Stmt * makeOpStmt( CodeLocation const & location, std::string const & name,
163 ast::Expr const * lhs, ast::Expr const * rhs ) {
164 return new ast::ExprStmt( location, makeOp( location, name, lhs, rhs ) );
165}
166
167/// Returns the dereference of a local pointer variable.
168ast::Expr * derefVar(
169 CodeLocation const & location, ast::ObjectDecl const * var ) {
170 return ast::UntypedExpr::createDeref( location,
171 new ast::VariableExpr( location, var ) );
172}
173
174/// Makes an if-statement with a single-expression then and no else.
175ast::Stmt * makeCond( CodeLocation const & location,
176 ast::Expr const * cond, ast::Expr const * thenPart ) {
177 return new ast::IfStmt( location,
178 cond, new ast::ExprStmt( location, thenPart ), nullptr );
179}
180
181/// Makes a statement that aligns lhs to rhs (rhs should be an integer
182/// power of two).
183ast::Stmt * makeAlignTo( CodeLocation const & location,
184 ast::Expr const * lhs, ast::Expr const * rhs ) {
185 // Check that the lhs is zeroed out to the level of rhs.
186 ast::Expr * ifCond = makeOp( location, "?&?", lhs,
187 makeOp( location, "?-?", rhs,
188 ast::ConstantExpr::from_ulong( location, 1 ) ) );
189 // If not aligned, increment to alignment.
190 ast::Expr * ifExpr = makeOp( location, "?+=?", ast::deepCopy( lhs ),
191 makeOp( location, "?-?", ast::deepCopy( rhs ),
192 ast::deepCopy( ifCond ) ) );
193 return makeCond( location, ifCond, ifExpr );
194}
195
196/// Makes a statement that assigns rhs to lhs if lhs < rhs.
197ast::Stmt * makeAssignMax( CodeLocation const & location,
198 ast::Expr const * lhs, ast::Expr const * rhs ) {
199 return makeCond( location,
200 makeOp( location, "?<?", ast::deepCopy( lhs ), ast::deepCopy( rhs ) ),
201 makeOp( location, "?=?", lhs, rhs ) );
202}
203
204void LayoutFunctionBuilder::previsit( ast::StructDecl const * decl ) {
205 // Do not generate layout function for empty tag structures.
206 visit_children = false;
207 if ( decl->members.empty() ) return;
208
209 // Get parameters that can change layout, exiting early if none.
210 ast::vector<ast::TypeDecl> sizedParams =
211 takeSizedParams( decl->params );
212 if ( sizedParams.empty() ) return;
213
214 CodeLocation const & location = decl->location;
215
216 // Build layout function signature.
217 LayoutData layout = buildLayoutFunction(
218 location, decl, sizedParams, isInFunction(), true );
219 ast::FunctionDecl * layoutDecl = layout.function;
220 // Also return these or extract them from the parameter list?
221 ast::ObjectDecl const * sizeofParam = layout.sizeofParam;
222 ast::ObjectDecl const * alignofParam = layout.alignofParam;
223 ast::ObjectDecl const * offsetofParam = layout.offsetofParam;
224 assert( nullptr != layout.offsetofParam );
225
226 // Calculate structure layout in function body.
227 // Initialize size and alignment to 0 and 1
228 // (Will have at least one member to update size).
229 auto & kids = layoutDecl->stmts.get_and_mutate()->kids;
230 kids.emplace_back( makeOpStmt( location, "?=?",
231 derefVar( location, sizeofParam ),
232 ast::ConstantExpr::from_ulong( location, 0 )
233 ) );
234 kids.emplace_back( makeOpStmt( location, "?=?",
235 derefVar( location, alignofParam ),
236 ast::ConstantExpr::from_ulong( location, 1 )
237 ) );
238 // TODO: Polymorphic types will be out of the struct declaration scope.
239 // This breaks invariants until it is corrected later.
240 for ( auto const & member : enumerate( decl->members ) ) {
241 auto dwt = member.val.strict_as<ast::DeclWithType>();
242 ast::Type const * memberType = dwt->get_type();
243
244 if ( 0 < member.idx ) {
245 // Make sure all later members have padding to align them.
246 kids.emplace_back( makeAlignTo( location,
247 derefVar( location, sizeofParam ),
248 new ast::AlignofExpr( location, ast::deepCopy( memberType ) )
249 ) );
250 }
251
252 // Place current size in the current offset index.
253 kids.emplace_back( makeOpStmt( location, "?=?",
254 makeOp( location, "?[?]",
255 new ast::VariableExpr( location, offsetofParam ),
256 ast::ConstantExpr::from_ulong( location, member.idx ) ),
257 derefVar( location, sizeofParam ) ) );
258
259 // Add member size to current size.
260 kids.emplace_back( makeOpStmt( location, "?+=?",
261 derefVar( location, sizeofParam ),
262 new ast::SizeofExpr( location, ast::deepCopy( memberType ) ) ) );
263
264 // Take max of member alignment and global alignment.
265 // (As align is always 2^n, this will always be a multiple of both.)
266 kids.emplace_back( makeAssignMax( location,
267 derefVar( location, alignofParam ),
268 new ast::AlignofExpr( location, ast::deepCopy( memberType ) ) ) );
269 }
270 // Make sure the type is end-padded to a multiple of its alignment.
271 kids.emplace_back( makeAlignTo( location,
272 derefVar( location, sizeofParam ),
273 derefVar( location, alignofParam ) ) );
274
275 declsToAddAfter.emplace_back( layoutDecl );
276}
277
278void LayoutFunctionBuilder::previsit( ast::UnionDecl const * decl ) {
279 visit_children = false;
280 // Do not generate layout function for empty tag unions.
281 if ( decl->members.empty() ) return;
282
283 // Get parameters that can change layout, exiting early if none.
284 ast::vector<ast::TypeDecl> sizedParams =
285 takeSizedParams( decl->params );
286 if ( sizedParams.empty() ) return;
287
288 CodeLocation const & location = decl->location;
289
290 // Build layout function signature.
291 LayoutData layout = buildLayoutFunction(
292 location, decl, sizedParams, isInFunction(), false );
293 ast::FunctionDecl * layoutDecl = layout.function;
294 // Also return these or extract them from the parameter list?
295 ast::ObjectDecl const * sizeofParam = layout.sizeofParam;
296 ast::ObjectDecl const * alignofParam = layout.alignofParam;
297 assert( nullptr == layout.offsetofParam );
298
299 // Calculate union layout in function body.
300 // Both are simply the maximum for union (actually align is always the
301 // LCM, but with powers of two that is also the maximum).
302 auto & kids = layoutDecl->stmts.get_and_mutate()->kids;
303 kids.emplace_back( makeOpStmt( location,
304 "?=?", derefVar( location, sizeofParam ),
305 ast::ConstantExpr::from_ulong( location, 1 )
306 ) );
307 kids.emplace_back( makeOpStmt( location,
308 "?=?", derefVar( location, alignofParam ),
309 ast::ConstantExpr::from_ulong( location, 1 )
310 ) );
311 // TODO: Polymorphic types will be out of the union declaration scope.
312 // This breaks invariants until it is corrected later.
313 for ( auto const & member : decl->members ) {
314 auto dwt = member.strict_as<ast::DeclWithType>();
315 ast::Type const * memberType = dwt->get_type();
316
317 // Take max member size and global size.
318 kids.emplace_back( makeAssignMax( location,
319 derefVar( location, sizeofParam ),
320 new ast::SizeofExpr( location, ast::deepCopy( memberType ) )
321 ) );
322
323 // Take max of member alignment and global alignment.
324 kids.emplace_back( makeAssignMax( location,
325 derefVar( location, alignofParam ),
326 new ast::AlignofExpr( location, ast::deepCopy( memberType ) )
327 ) );
328 }
329 kids.emplace_back( makeAlignTo( location,
330 derefVar( location, sizeofParam ),
331 derefVar( location, alignofParam ) ) );
332
333 declsToAddAfter.emplace_back( layoutDecl );
334}
335
336// --------------------------------------------------------------------------
337/// Application expression transformer.
338/// * Replaces polymorphic return types with out-parameters.
339/// * Replaces call to polymorphic functions with adapter calls which handles
340/// dynamic arguments and return values.
341/// * Adds appropriate type variables to the function calls.
342struct CallAdapter final :
343 public ast::WithConstTypeSubstitution,
344 public ast::WithGuards,
345 public ast::WithShortCircuiting,
346 public ast::WithStmtsToAdd<>,
347 public ast::WithVisitorRef<CallAdapter> {
348 CallAdapter();
349
350 void previsit( ast::Decl const * decl );
351 ast::FunctionDecl const * previsit( ast::FunctionDecl const * decl );
352 void previsit( ast::TypeDecl const * decl );
353 void previsit( ast::CommaExpr const * expr );
354 ast::Expr const * postvisit( ast::ApplicationExpr const * expr );
355 ast::Expr const * postvisit( ast::UntypedExpr const * expr );
356 void previsit( ast::AddressExpr const * expr );
357 ast::Expr const * postvisit( ast::AddressExpr const * expr );
358 ast::ReturnStmt const * previsit( ast::ReturnStmt const * stmt );
359
360 void beginScope();
361 void endScope();
362private:
363 // Many helpers here use a mutable ApplicationExpr as an in/out parameter
364 // instead of using the return value, to save on mutates and free up the
365 // return value.
366
367 /// Passes extra layout arguments for sized polymorphic type parameters.
368 ast::vector<ast::Expr>::iterator passTypeVars(
369 ast::ApplicationExpr * expr,
370 ast::FunctionType const * funcType );
371 /// Wraps a function application with a new temporary for the
372 /// out-parameter return value.
373 ast::Expr const * addRetParam(
374 ast::ApplicationExpr * expr, ast::Type const * retType );
375 /// Wraps a function application returning a polymorphic type with a new
376 /// temporary for the out-parameter return value.
377 ast::Expr const * addDynRetParam(
378 ast::ApplicationExpr * expr, ast::Type const * polyType );
379 /// Modify a call so it passes the function through the correct adapter.
380 ast::Expr const * applyAdapter(
381 ast::ApplicationExpr * expr,
382 ast::FunctionType const * function );
383 /// Convert a single argument into its boxed form to pass the parameter.
384 void boxParam( ast::ptr<ast::Expr> & arg,
385 ast::Type const * formal, TypeVarMap const & exprTyVars );
386 /// Box every argument from arg forward, matching the functionType
387 /// parameter list. arg should point into expr's argument list.
388 void boxParams(
389 ast::ApplicationExpr const * expr,
390 ast::vector<ast::Expr>::iterator arg,
391 ast::FunctionType const * function,
392 const TypeVarMap & typeVars );
393 /// Adds the inferred parameters derived from the assertions of the
394 /// expression to the call.
395 void addInferredParams(
396 ast::ApplicationExpr * expr,
397 ast::vector<ast::Expr>::iterator arg,
398 ast::FunctionType const * functionType,
399 const TypeVarMap & typeVars );
400 /// Stores assignment operators from assertion list in
401 /// local map of assignment operations.
402 void passAdapters(
403 ast::ApplicationExpr * expr,
404 ast::FunctionType const * type,
405 const TypeVarMap & typeVars );
406 /// Create an adapter function based on the type of the adaptee and the
407 /// real type with the type substitutions applied.
408 ast::FunctionDecl * makeAdapter(
409 ast::FunctionType const * adaptee,
410 ast::FunctionType const * realType,
411 std::string const & mangleName,
412 TypeVarMap const & typeVars,
413 CodeLocation const & location ) const;
414 /// Replaces intrinsic operator functions with their arithmetic desugaring.
415 ast::Expr const * handleIntrinsics( ast::ApplicationExpr const * );
416 /// Inserts a new temporary variable into the current scope with an
417 /// auto-generated name.
418 ast::ObjectDecl * makeTemporary(
419 CodeLocation const & location, ast::Type const * type );
420
421 TypeVarMap scopeTypeVars;
422 ScopedMap< std::string, ast::DeclWithType const * > adapters;
423 std::map< ast::ApplicationExpr const *, ast::Expr const * > retVals;
424 ast::DeclWithType const * retval;
425 UniqueName tmpNamer;
426};
427
428/// Replaces a polymorphic type with its concrete equivalant under the
429/// current environment (returns itself if concrete).
430/// If `doClone` is set to false, will not clone interior types
431ast::Type const * replaceWithConcrete(
432 ast::Type const * type,
433 ast::TypeSubstitution const & typeSubs,
434 bool doCopy = true );
435
436/// Replaces all the type parameters of a generic type with their
437/// concrete equivalents under the current environment.
438void replaceParametersWithConcrete(
439 ast::vector<ast::Expr> & params,
440 ast::TypeSubstitution const & typeSubs ) {
441 for ( ast::ptr<ast::Expr> & paramExpr : params ) {
442 ast::TypeExpr const * param = paramExpr.as<ast::TypeExpr>();
443 assertf( param, "Aggregate parameters should be type expressions." );
444 paramExpr = ast::mutate_field( param, &ast::TypeExpr::type,
445 replaceWithConcrete( param->type.get(), typeSubs, false ) );
446 }
447}
448
449ast::Type const * replaceWithConcrete(
450 ast::Type const * type,
451 ast::TypeSubstitution const & typeSubs,
452 bool doCopy ) {
453 if ( auto instType = dynamic_cast<ast::TypeInstType const *>( type ) ) {
454 ast::Type const * concrete = typeSubs.lookup( instType );
455 return ( nullptr != concrete ) ? concrete : instType;
456 } else if ( auto structType =
457 dynamic_cast<ast::StructInstType const *>( type ) ) {
458 ast::StructInstType * newType =
459 doCopy ? ast::deepCopy( structType ) : ast::mutate( structType );
460 replaceParametersWithConcrete( newType->params, typeSubs );
461 return newType;
462 } else if ( auto unionType =
463 dynamic_cast<ast::UnionInstType const *>( type ) ) {
464 ast::UnionInstType * newType =
465 doCopy ? ast::deepCopy( unionType ) : ast::mutate( unionType );
466 replaceParametersWithConcrete( newType->params, typeSubs );
467 return newType;
468 } else {
469 return type;
470 }
471}
472
473std::string makePolyMonoSuffix(
474 ast::FunctionType const * function,
475 TypeVarMap const & typeVars ) {
476 // If the return type or a parameter type involved polymorphic types,
477 // then the adapter will need to take those polymorphic types as pointers.
478 // Therefore, there can be two different functions with the same mangled
479 // name, so we need to further mangle the names.
480 std::stringstream name;
481 for ( auto ret : function->returns ) {
482 name << ( isPolyType( ret, typeVars ) ? 'P' : 'M' );
483 }
484 name << '_';
485 for ( auto arg : function->params ) {
486 name << ( isPolyType( arg, typeVars ) ? 'P' : 'M' );
487 }
488 return name.str();
489}
490
491std::string mangleAdapterName(
492 ast::FunctionType const * function,
493 TypeVarMap const & typeVars ) {
494 return Mangle::mangle( function, {} )
495 + makePolyMonoSuffix( function, typeVars );
496}
497
498std::string makeAdapterName( std::string const & mangleName ) {
499 return "_adapter" + mangleName;
500}
501
502void makeRetParam( ast::FunctionType * type ) {
503 ast::ptr<ast::Type> & retParam = type->returns.front();
504
505 // Make a new parameter that is a pointer to the type of the old return value.
506 retParam = new ast::PointerType( retParam.get() );
507 type->params.emplace( type->params.begin(), retParam );
508
509 // We don't need the return value any more.
510 type->returns.clear();
511}
512
513ast::FunctionType * makeAdapterType(
514 ast::FunctionType const * adaptee,
515 TypeVarMap const & typeVars ) {
516 ast::FunctionType * adapter = ast::deepCopy( adaptee );
517 if ( isDynRet( adapter, typeVars ) ) {
518 makeRetParam( adapter );
519 }
520 adapter->params.emplace( adapter->params.begin(),
521 new ast::PointerType( new ast::FunctionType( ast::VariableArgs ) )
522 );
523 return adapter;
524}
525
526CallAdapter::CallAdapter() : tmpNamer( "_temp" ) {}
527
528void CallAdapter::previsit( ast::Decl const * ) {
529 // Prevent type declaration information from leaking out.
530 GuardScope( scopeTypeVars );
531}
532
533ast::FunctionDecl const * CallAdapter::previsit( ast::FunctionDecl const * decl ) {
534 // Prevent type declaration information from leaking out.
535 GuardScope( scopeTypeVars );
536
537 if ( nullptr == decl->stmts ) {
538 return decl;
539 }
540
541 GuardValue( retval );
542
543 // Process polymorphic return value.
544 retval = nullptr;
545 ast::FunctionType const * type = decl->type;
546 if ( isDynRet( type ) && decl->linkage != ast::Linkage::C ) {
547 retval = decl->returns.front();
548
549 // Give names to unnamed return values.
550 if ( "" == retval->name ) {
551 auto mutRet = ast::mutate( retval );
552 mutRet->name = "_retparam";
553 mutRet->linkage = ast::Linkage::C;
554 retval = mutRet;
555 decl = ast::mutate_field_index( decl,
556 &ast::FunctionDecl::returns, 0, mutRet );
557 }
558 }
559
560 // The formal_usage/expr_id values may be off if we get them from the
561 // type, trying the declaration instead.
562 makeTypeVarMap( type, scopeTypeVars );
563
564 // Get all needed adapters from the call. We will forward them.
565 ast::vector<ast::FunctionType> functions;
566 for ( ast::ptr<ast::VariableExpr> const & assertion : type->assertions ) {
567 auto atype = assertion->result.get();
568 findFunction( atype, functions, scopeTypeVars, needsAdapter );
569 }
570
571 for ( ast::ptr<ast::Type> const & arg : type->params ) {
572 findFunction( arg, functions, scopeTypeVars, needsAdapter );
573 }
574
575 for ( auto funcType : functions ) {
576 std::string mangleName = mangleAdapterName( funcType, scopeTypeVars );
577 if ( adapters.contains( mangleName ) ) continue;
578 std::string adapterName = makeAdapterName( mangleName );
579 // NODE: This creates floating nodes, breaking invariants.
580 // This is corrected in the RewireAdapters sub-pass.
581 adapters.insert(
582 mangleName,
583 new ast::ObjectDecl(
584 decl->location,
585 adapterName,
586 new ast::PointerType(
587 makeAdapterType( funcType, scopeTypeVars ) ),
588 nullptr, // init
589 ast::Storage::Classes(),
590 ast::Linkage::C
591 )
592 );
593 }
594
595 return decl;
596}
597
598void CallAdapter::previsit( ast::TypeDecl const * decl ) {
599 addToTypeVarMap( decl, scopeTypeVars );
600}
601
602void CallAdapter::previsit( ast::CommaExpr const * expr ) {
603 // Attempting to find application expressions that were mutated by the
604 // copy constructor passes to use an explicit return variable, so that
605 // the variable can be reused as a parameter to the call rather than
606 // creating a new temporary variable. Previously this step was an
607 // optimization, but with the introduction of tuples and UniqueExprs,
608 // it is necessary to ensure that they use the same variable.
609 // Essentially, looking for pattern:
610 // (x=f(...), x)
611 // To compound the issue, the right side can be *x, etc.
612 // because of lvalue-returning functions
613 if ( auto assign = expr->arg1.as<ast::UntypedExpr>() ) {
614 if ( CodeGen::isAssignment( ast::getFunctionName( assign ) ) ) {
615 assert( 2 == assign->args.size() );
616 if ( auto app = assign->args.back().as<ast::ApplicationExpr>() ) {
617 // First argument is assignable, so it must be an lvalue,
618 // so it should be legal to takes its address.
619 retVals.insert_or_assign( app, assign->args.front() );
620 }
621 }
622 }
623}
624
625ast::Expr const * CallAdapter::postvisit( ast::ApplicationExpr const * expr ) {
626 assert( expr->func->result );
627 ast::FunctionType const * function = getFunctionType( expr->func->result );
628 assertf( function, "ApplicationExpr has non-function type %s",
629 toCString( expr->func->result ) );
630
631 if ( auto newExpr = handleIntrinsics( expr ) ) {
632 return newExpr;
633 }
634
635 ast::ApplicationExpr * mutExpr = ast::mutate( expr );
636 ast::Expr const * ret = expr;
637
638 // TODO: This entire section should probably be refactored to do less
639 // pushing to the front/middle of a vector.
640 ptrdiff_t initArgCount = mutExpr->args.size();
641
642 TypeVarMap exprTypeVars;
643 makeTypeVarMap( function, exprTypeVars );
644 auto dynRetType = isDynRet( function, exprTypeVars );
645
646 // NOTE: addDynRetParam needs to know the actual (generated) return type
647 // so it can make a temporary variable, so pass the result type form the
648 // `expr` `passTypeVars` needs to know the program-text return type ([ex]
649 // the distinction between _conc_T30 and T3(int)) concRetType may not be
650 // a good name in one or both of these places.
651 if ( dynRetType ) {
652 ast::Type const * result = mutExpr->result;
653 ast::Type const * concRetType = result->isVoid() ? nullptr : result;
654 // [Comment from before translation.]
655 // Used to use dynRetType instead of concRetType.
656 ret = addDynRetParam( mutExpr, concRetType );
657 } else if ( needsAdapter( function, scopeTypeVars )
658 && !needsAdapter( function, exprTypeVars ) ) {
659 // Change the application so it calls the adapter rather than the
660 // passed function.
661 ret = applyAdapter( mutExpr, function );
662 }
663
664 assert( typeSubs );
665 ast::vector<ast::Expr>::iterator argIt =
666 passTypeVars( mutExpr, function );
667 addInferredParams( mutExpr, argIt, function, exprTypeVars );
668
669 argIt = mutExpr->args.begin();
670 std::advance( argIt, ( mutExpr->args.size() - initArgCount ) );
671
672 boxParams( mutExpr, argIt, function, exprTypeVars );
673 passAdapters( mutExpr, function, exprTypeVars );
674
675 return ret;
676}
677
678bool isPolyDeref( ast::UntypedExpr const * expr,
679 TypeVarMap const & typeVars,
680 ast::TypeSubstitution const * typeSubs ) {
681 if ( expr->result && isPolyType( expr->result, typeVars, typeSubs ) ) {
682 if ( auto name = expr->func.as<ast::NameExpr>() ) {
683 if ( "*?" == name->name ) {
684 return true;
685 }
686 }
687 }
688 return false;
689}
690
691ast::Expr const * CallAdapter::postvisit( ast::UntypedExpr const * expr ) {
692 if ( isPolyDeref( expr, scopeTypeVars, typeSubs ) ) {
693 return expr->args.front();
694 }
695 return expr;
696}
697
698void CallAdapter::previsit( ast::AddressExpr const * ) {
699 visit_children = false;
700}
701
702ast::Expr const * CallAdapter::postvisit( ast::AddressExpr const * expr ) {
703 assert( expr->arg->result );
704 assert( !expr->arg->result->isVoid() );
705
706 bool doesNeedAdapter = false;
707 if ( auto un = expr->arg.as<ast::UntypedExpr>() ) {
708 if ( isPolyDeref( un, scopeTypeVars, typeSubs ) ) {
709 if ( auto app = un->args.front().as<ast::ApplicationExpr>() ) {
710 assert( app->func->result );
711 auto function = getFunctionType( app->func->result );
712 assert( function );
713 doesNeedAdapter = needsAdapter( function, scopeTypeVars );
714 }
715 }
716 }
717 // isPolyType check needs to happen before mutating expr arg,
718 // so pull it forward out of the if condition.
719 expr = ast::mutate_field( expr, &ast::AddressExpr::arg,
720 expr->arg->accept( *visitor ) );
721 // But must happen after mutate, since argument might change
722 // (ex. intrinsic *?, ?[?]) re-evaluate above comment.
723 bool polyType = isPolyType( expr->arg->result, scopeTypeVars, typeSubs );
724 if ( polyType || doesNeedAdapter ) {
725 ast::Expr * ret = ast::mutate( expr->arg.get() );
726 ret->result = ast::deepCopy( expr->result );
727 return ret;
728 } else {
729 return expr;
730 }
731}
732
733ast::ReturnStmt const * CallAdapter::previsit( ast::ReturnStmt const * stmt ) {
734 // Since retval is set when the return type is dynamic, this function
735 // should have been converted to void return & out parameter.
736 if ( retval && stmt->expr ) {
737 assert( stmt->expr->result );
738 assert( !stmt->expr->result->isVoid() );
739 return ast::mutate_field( stmt, &ast::ReturnStmt::expr, nullptr );
740 }
741 return stmt;
742}
743
744void CallAdapter::beginScope() {
745 adapters.beginScope();
746}
747
748void CallAdapter::endScope() {
749 adapters.endScope();
750}
751
752/// Find instances of polymorphic type parameters.
753struct PolyFinder {
754 TypeVarMap const & typeVars;
755 bool result = false;
756 PolyFinder( TypeVarMap const & tvs ) : typeVars( tvs ) {}
757
758 void previsit( ast::TypeInstType const * type ) {
759 if ( isPolyType( type, typeVars ) ) result = true;
760 }
761};
762
763/// True if these is an instance of a polymorphic type parameter in the type.
764bool hasPolymorphism( ast::Type const * type, TypeVarMap const & typeVars ) {
765 return ast::Pass<PolyFinder>::read( type, typeVars );
766}
767
768ast::vector<ast::Expr>::iterator CallAdapter::passTypeVars(
769 ast::ApplicationExpr * expr,
770 ast::FunctionType const * function ) {
771 assert( typeSubs );
772 ast::vector<ast::Expr>::iterator arg = expr->args.begin();
773 // Pass size/align for type variables.
774 for ( ast::ptr<ast::TypeInstType> const & typeVar : function->forall ) {
775 if ( !typeVar->base->isComplete() ) continue;
776 ast::Type const * concrete = typeSubs->lookup( typeVar );
777 if ( !concrete ) {
778 // Should this be an assertion?
779 SemanticError( expr->location, "\nunbound type variable %s in application %s",
780 toString( typeSubs ).c_str(), typeVar->typeString().c_str() );
781 }
782 arg = expr->args.insert( arg,
783 new ast::SizeofExpr( expr->location, ast::deepCopy( concrete ) ) );
784 arg++;
785 arg = expr->args.insert( arg,
786 new ast::AlignofExpr( expr->location, ast::deepCopy( concrete ) ) );
787 arg++;
788 }
789 return arg;
790}
791
792ast::Expr const * CallAdapter::addRetParam(
793 ast::ApplicationExpr * expr, ast::Type const * retType ) {
794 // Create temporary to hold return value of polymorphic function and
795 // produce that temporary as a result using a comma expression.
796 assert( retType );
797
798 ast::Expr * paramExpr = nullptr;
799 // Try to use existing return value parameter if it exists,
800 // otherwise create a new temporary.
801 if ( retVals.count( expr ) ) {
802 paramExpr = ast::deepCopy( retVals[ expr ] );
803 } else {
804 auto newObj = makeTemporary( expr->location, ast::deepCopy( retType ) );
805 paramExpr = new ast::VariableExpr( expr->location, newObj );
806 }
807 ast::Expr * retExpr = ast::deepCopy( paramExpr );
808
809 // If the type of the temporary is not polpmorphic, box temporary by
810 // taking its address; otherwise the temporary is already boxed and can
811 // be used directly.
812 if ( !isPolyType( paramExpr->result, scopeTypeVars, typeSubs ) ) {
813 paramExpr = new ast::AddressExpr( paramExpr->location, paramExpr );
814 }
815 // Add argument to function call.
816 expr->args.insert( expr->args.begin(), paramExpr );
817 // Build a comma expression to call the function and return a value.
818 ast::CommaExpr * comma = new ast::CommaExpr(
819 expr->location, expr, retExpr );
820 comma->env = expr->env;
821 expr->env = nullptr;
822 return comma;
823}
824
825ast::Expr const * CallAdapter::addDynRetParam(
826 ast::ApplicationExpr * expr, ast::Type const * polyType ) {
827 assert( typeSubs );
828 ast::Type const * concrete = replaceWithConcrete( polyType, *typeSubs );
829 // Add out-parameter for return value.
830 return addRetParam( expr, concrete );
831}
832
833ast::Expr const * CallAdapter::applyAdapter(
834 ast::ApplicationExpr * expr,
835 ast::FunctionType const * function ) {
836 ast::Expr const * ret = expr;
837 if ( isDynRet( function, scopeTypeVars ) ) {
838 ret = addRetParam( expr, function->returns.front() );
839 }
840 std::string mangleName = mangleAdapterName( function, scopeTypeVars );
841 std::string adapterName = makeAdapterName( mangleName );
842
843 // Cast adaptee to `void (*)()`, since it may have any type inside a
844 // polymorphic function.
845 ast::Type const * adapteeType = new ast::PointerType(
846 new ast::FunctionType( ast::VariableArgs ) );
847 expr->args.insert( expr->args.begin(),
848 new ast::CastExpr( expr->location, expr->func, adapteeType ) );
849 // The result field is never set on NameExpr. / Now it is.
850 auto head = new ast::NameExpr( expr->location, adapterName );
851 head->result = ast::deepCopy( adapteeType );
852 expr->func = head;
853
854 return ret;
855}
856
857/// Cast parameters to polymorphic functions so that types are replaced with
858/// `void *` if they are type parameters in the formal type.
859/// This gets rid of warnings from gcc.
860void addCast(
861 ast::ptr<ast::Expr> & actual,
862 ast::Type const * formal,
863 TypeVarMap const & typeVars ) {
864 // Type contains polymorphism, but isn't exactly a polytype, in which
865 // case it has some real actual type (ex. unsigned int) and casting to
866 // `void *` is wrong.
867 if ( hasPolymorphism( formal, typeVars )
868 && !isPolyType( formal, typeVars ) ) {
869 ast::Type const * newType = ast::deepCopy( formal );
870 newType = scrubTypeVars( newType, typeVars );
871 actual = new ast::CastExpr( actual->location, actual, newType );
872 }
873}
874
875void CallAdapter::boxParam( ast::ptr<ast::Expr> & arg,
876 ast::Type const * param, TypeVarMap const & exprTypeVars ) {
877 assertf( arg->result, "arg does not have result: %s", toCString( arg ) );
878 addCast( arg, param, exprTypeVars );
879 if ( !needsBoxing( param, arg->result, exprTypeVars, typeSubs ) ) {
880 return;
881 }
882 CodeLocation const & location = arg->location;
883
884 if ( arg->get_lvalue() ) {
885 // The argument expression may be CFA lvalue, but not C lvalue,
886 // so apply generalizedLvalue transformations.
887 // if ( auto var = dynamic_cast<ast::VariableExpr const *>( arg ) ) {
888 // if ( dynamic_cast<ast::ArrayType const *>( varExpr->var->get_type() ) ){
889 // // temporary hack - don't box arrays, because &arr is not the same as &arr[0]
890 // return;
891 // }
892 // }
893 arg = generalizedLvalue( new ast::AddressExpr( arg->location, arg ) );
894 if ( !ResolvExpr::typesCompatible( param, arg->result ) ) {
895 // Silence warnings by casting boxed parameters when the actually
896 // type does not match up with the formal type.
897 arg = new ast::CastExpr( location, arg, ast::deepCopy( param ) );
898 }
899 } else {
900 // Use type computed in unification to declare boxed variables.
901 ast::ptr<ast::Type> newType = ast::deepCopy( param );
902 if ( typeSubs ) typeSubs->apply( newType );
903 ast::ObjectDecl * newObj = makeTemporary( location, newType );
904 auto assign = ast::UntypedExpr::createCall( location, "?=?", {
905 new ast::VariableExpr( location, newObj ),
906 arg,
907 } );
908 stmtsToAddBefore.push_back( new ast::ExprStmt( location, assign ) );
909 arg = new ast::AddressExpr(
910 new ast::VariableExpr( location, newObj ) );
911 }
912}
913
914void CallAdapter::boxParams(
915 ast::ApplicationExpr const * expr,
916 ast::vector<ast::Expr>::iterator arg,
917 ast::FunctionType const * function,
918 const TypeVarMap & typeVars ) {
919 for ( auto param : function->params ) {
920 assertf( arg != expr->args.end(),
921 "boxParams: missing argument for param %s to %s in %s",
922 toCString( param ), toCString( function ), toCString( expr ) );
923 boxParam( *arg, param, typeVars );
924 ++arg;
925 }
926}
927
928void CallAdapter::addInferredParams(
929 ast::ApplicationExpr * expr,
930 ast::vector<ast::Expr>::iterator arg,
931 ast::FunctionType const * functionType,
932 TypeVarMap const & typeVars ) {
933 ast::vector<ast::Expr>::iterator cur = arg;
934 for ( auto assertion : functionType->assertions ) {
935 auto inferParam = expr->inferred.inferParams().find(
936 assertion->var->uniqueId );
937 assertf( inferParam != expr->inferred.inferParams().end(),
938 "addInferredParams missing inferred parameter: %s in: %s",
939 toCString( assertion ), toCString( expr ) );
940 ast::ptr<ast::Expr> newExpr = ast::deepCopy( inferParam->second.expr );
941 boxParam( newExpr, assertion->result, typeVars );
942 cur = expr->args.insert( cur, newExpr.release() );
943 ++cur;
944 }
945}
946
947/// Modifies the ApplicationExpr to accept adapter functions for its
948/// assertion and parameters, declares the required adapters.
949void CallAdapter::passAdapters(
950 ast::ApplicationExpr * expr,
951 ast::FunctionType const * type,
952 const TypeVarMap & exprTypeVars ) {
953 // Collect a list of function types passed as parameters or implicit
954 // parameters (assertions).
955 ast::vector<ast::Type> const & paramList = type->params;
956 ast::vector<ast::FunctionType> functions;
957
958 for ( ast::ptr<ast::VariableExpr> const & assertion : type->assertions ) {
959 findFunction( assertion->result, functions, exprTypeVars, needsAdapter );
960 }
961 for ( ast::ptr<ast::Type> const & arg : paramList ) {
962 findFunction( arg, functions, exprTypeVars, needsAdapter );
963 }
964
965 // Parameter function types for which an appropriate adapter has been
966 // generated. We cannot use the types after applying substitutions,
967 // since two different parameter types may be unified to the same type.
968 std::set<std::string> adaptersDone;
969
970 CodeLocation const & location = expr->location;
971
972 for ( ast::ptr<ast::FunctionType> const & funcType : functions ) {
973 std::string mangleName = Mangle::mangle( funcType );
974
975 // Only attempt to create an adapter or pass one as a parameter if we
976 // haven't already done so for this pre-substitution parameter
977 // function type.
978 // The second part of the result if is if the element was inserted.
979 if ( !adaptersDone.insert( mangleName ).second ) continue;
980
981 // Apply substitution to type variables to figure out what the
982 // adapter's type should look like. (Copy to make the release safe.)
983 assert( typeSubs );
984 auto result = typeSubs->apply( ast::deepCopy( funcType ) );
985 ast::FunctionType * realType = ast::mutate( result.node.release() );
986 mangleName = Mangle::mangle( realType );
987 mangleName += makePolyMonoSuffix( funcType, exprTypeVars );
988
989 // Check if the adapter has already been created, or has to be.
990 using AdapterIter = decltype(adapters)::iterator;
991 AdapterIter adapter = adapters.find( mangleName );
992 if ( adapter == adapters.end() ) {
993 ast::FunctionDecl * newAdapter = makeAdapter(
994 funcType, realType, mangleName, exprTypeVars, location );
995 std::pair<AdapterIter, bool> answer =
996 adapters.insert( mangleName, newAdapter );
997 adapter = answer.first;
998 stmtsToAddBefore.push_back(
999 new ast::DeclStmt( location, newAdapter ) );
1000 }
1001 assert( adapter != adapters.end() );
1002
1003 // Add the approprate adapter as a parameter.
1004 expr->args.insert( expr->args.begin(),
1005 new ast::VariableExpr( location, adapter->second ) );
1006 }
1007}
1008
1009// Parameter and argument may be used wrong around here.
1010ast::Expr * makeAdapterArg(
1011 ast::DeclWithType const * param,
1012 ast::Type const * arg,
1013 ast::Type const * realParam,
1014 TypeVarMap const & typeVars,
1015 CodeLocation const & location ) {
1016 assert( param );
1017 assert( arg );
1018 assert( realParam );
1019 if ( isPolyType( realParam, typeVars ) && !isPolyType( arg ) ) {
1020 ast::UntypedExpr * deref = ast::UntypedExpr::createDeref(
1021 location,
1022 new ast::CastExpr( location,
1023 new ast::VariableExpr( location, param ),
1024 new ast::PointerType( ast::deepCopy( arg ) )
1025 )
1026 );
1027 deref->result = ast::deepCopy( arg );
1028 return deref;
1029 }
1030 return new ast::VariableExpr( location, param );
1031}
1032
1033// This seems to be one of the problematic functions.
1034void addAdapterParams(
1035 ast::ApplicationExpr * adaptee,
1036 ast::vector<ast::Type>::const_iterator arg,
1037 ast::vector<ast::DeclWithType>::iterator param,
1038 ast::vector<ast::DeclWithType>::iterator paramEnd,
1039 ast::vector<ast::Type>::const_iterator realParam,
1040 TypeVarMap const & typeVars,
1041 CodeLocation const & location ) {
1042 UniqueName paramNamer( "_p" );
1043 for ( ; param != paramEnd ; ++param, ++arg, ++realParam ) {
1044 if ( "" == (*param)->name ) {
1045 auto mutParam = (*param).get_and_mutate();
1046 mutParam->name = paramNamer.newName();
1047 mutParam->linkage = ast::Linkage::C;
1048 }
1049 adaptee->args.push_back(
1050 makeAdapterArg( *param, *arg, *realParam, typeVars, location ) );
1051 }
1052}
1053
1054ast::FunctionDecl * CallAdapter::makeAdapter(
1055 ast::FunctionType const * adaptee,
1056 ast::FunctionType const * realType,
1057 std::string const & mangleName,
1058 TypeVarMap const & typeVars,
1059 CodeLocation const & location ) const {
1060 ast::FunctionType * adapterType = makeAdapterType( adaptee, typeVars );
1061 adapterType = ast::mutate( scrubTypeVars( adapterType, typeVars ) );
1062
1063 // Some of these names will be overwritten, but it gives a default.
1064 UniqueName pNamer( "_param" );
1065 UniqueName rNamer( "_ret" );
1066
1067 bool first = true;
1068
1069 ast::FunctionDecl * adapterDecl = new ast::FunctionDecl( location,
1070 makeAdapterName( mangleName ),
1071 {}, // forall
1072 {}, // assertions
1073 map_range<ast::vector<ast::DeclWithType>>( adapterType->params,
1074 [&pNamer, &location, &first]( ast::ptr<ast::Type> const & param ) {
1075 // [Trying to make the generated code match exactly more often.]
1076 if ( first ) {
1077 first = false;
1078 return new ast::ObjectDecl( location, "_adaptee", param );
1079 }
1080 return new ast::ObjectDecl( location, pNamer.newName(), param );
1081 } ),
1082 map_range<ast::vector<ast::DeclWithType>>( adapterType->returns,
1083 [&rNamer, &location]( ast::ptr<ast::Type> const & retval ) {
1084 return new ast::ObjectDecl( location, rNamer.newName(), retval );
1085 } ),
1086 nullptr, // stmts
1087 {}, // storage
1088 ast::Linkage::C
1089 );
1090
1091 ast::DeclWithType * adapteeDecl =
1092 adapterDecl->params.front().get_and_mutate();
1093 adapteeDecl->name = "_adaptee";
1094
1095 // Do not carry over attributes to real type parameters/return values.
1096 auto mutRealType = ast::mutate( realType );
1097 for ( ast::ptr<ast::Type> & decl : mutRealType->params ) {
1098 if ( decl->attributes.empty() ) continue;
1099 auto mut = ast::mutate( decl.get() );
1100 mut->attributes.clear();
1101 decl = mut;
1102 }
1103 for ( ast::ptr<ast::Type> & decl : mutRealType->returns ) {
1104 if ( decl->attributes.empty() ) continue;
1105 auto mut = ast::mutate( decl.get() );
1106 mut->attributes.clear();
1107 decl = mut;
1108 }
1109 realType = mutRealType;
1110
1111 ast::ApplicationExpr * adapteeApp = new ast::ApplicationExpr( location,
1112 new ast::CastExpr( location,
1113 new ast::VariableExpr( location, adapteeDecl ),
1114 new ast::PointerType( realType )
1115 )
1116 );
1117
1118 for ( auto group : group_iterate( realType->assertions,
1119 adapterType->assertions, adaptee->assertions ) ) {
1120 auto assertArg = std::get<0>( group );
1121 auto assertParam = std::get<1>( group );
1122 auto assertReal = std::get<2>( group );
1123 adapteeApp->args.push_back( makeAdapterArg(
1124 assertParam->var, assertArg->var->get_type(),
1125 assertReal->var->get_type(), typeVars, location
1126 ) );
1127 }
1128
1129 ast::vector<ast::Type>::const_iterator
1130 arg = realType->params.begin(),
1131 param = adapterType->params.begin(),
1132 realParam = adaptee->params.begin();
1133 ast::vector<ast::DeclWithType>::iterator
1134 paramDecl = adapterDecl->params.begin();
1135 // Skip adaptee parameter in the adapter type.
1136 ++param;
1137 ++paramDecl;
1138
1139 ast::Stmt * bodyStmt;
1140 // Returns void/nothing.
1141 if ( realType->returns.empty() ) {
1142 addAdapterParams( adapteeApp, arg, paramDecl, adapterDecl->params.end(),
1143 realParam, typeVars, location );
1144 bodyStmt = new ast::ExprStmt( location, adapteeApp );
1145 // Returns a polymorphic type.
1146 } else if ( isDynType( adaptee->returns.front(), typeVars ) ) {
1147 ast::UntypedExpr * assign = new ast::UntypedExpr( location,
1148 new ast::NameExpr( location, "?=?" ) );
1149 ast::UntypedExpr * deref = ast::UntypedExpr::createDeref( location,
1150 new ast::CastExpr( location,
1151 new ast::VariableExpr( location, *paramDecl++ ),
1152 new ast::PointerType(
1153 ast::deepCopy( realType->returns.front() ) ) ) );
1154 assign->args.push_back( deref );
1155 addAdapterParams( adapteeApp, arg, paramDecl, adapterDecl->params.end(),
1156 realParam, typeVars, location );
1157 assign->args.push_back( adapteeApp );
1158 bodyStmt = new ast::ExprStmt( location, assign );
1159 // Adapter for a function that returns a monomorphic value.
1160 } else {
1161 addAdapterParams( adapteeApp, arg, paramDecl, adapterDecl->params.end(),
1162 realParam, typeVars, location );
1163 bodyStmt = new ast::ReturnStmt( location, adapteeApp );
1164 }
1165
1166 adapterDecl->stmts = new ast::CompoundStmt( location, { bodyStmt } );
1167 return adapterDecl;
1168}
1169
1170ast::Expr const * makeIncrDecrExpr(
1171 CodeLocation const & location,
1172 ast::ApplicationExpr const * expr,
1173 ast::Type const * polyType,
1174 bool isIncr ) {
1175 ast::NameExpr * opExpr =
1176 new ast::NameExpr( location, isIncr ? "?+=?" : "?-=?" );
1177 ast::UntypedExpr * addAssign = new ast::UntypedExpr( location, opExpr );
1178 if ( auto address = expr->args.front().as<ast::AddressExpr>() ) {
1179 addAssign->args.push_back( address->arg );
1180 } else {
1181 addAssign->args.push_back( expr->args.front() );
1182 }
1183 addAssign->args.push_back( new ast::NameExpr( location,
1184 sizeofName( Mangle::mangleType( polyType ) ) ) );
1185 addAssign->result = ast::deepCopy( expr->result );
1186 addAssign->env = expr->env ? expr->env : addAssign->env;
1187 return addAssign;
1188}
1189
1190/// Handles intrinsic functions for postvisit ApplicationExpr.
1191ast::Expr const * CallAdapter::handleIntrinsics(
1192 ast::ApplicationExpr const * expr ) {
1193 auto varExpr = expr->func.as<ast::VariableExpr>();
1194 if ( !varExpr || varExpr->var->linkage != ast::Linkage::Intrinsic ) {
1195 return nullptr;
1196 }
1197 std::string const & varName = varExpr->var->name;
1198
1199 // Index Intrinsic:
1200 if ( "?[?]" == varName ) {
1201 assert( expr->result );
1202 assert( 2 == expr->args.size() );
1203
1204 ast::Type const * baseType1 =
1205 isPolyPtr( expr->args.front()->result, scopeTypeVars, typeSubs );
1206 ast::Type const * baseType2 =
1207 isPolyPtr( expr->args.back()->result, scopeTypeVars, typeSubs );
1208 // If neither argument is a polymorphic pointer, do nothing.
1209 if ( !baseType1 && !baseType2 ) {
1210 return expr;
1211 }
1212 // The arguments cannot both be polymorphic pointers.
1213 assert( !baseType1 || !baseType2 );
1214 // (So exactly one of the arguments is a polymorphic pointer.)
1215
1216 CodeLocation const & location = expr->location;
1217 CodeLocation const & location1 = expr->args.front()->location;
1218 CodeLocation const & location2 = expr->args.back()->location;
1219
1220 ast::UntypedExpr * ret = new ast::UntypedExpr( location,
1221 new ast::NameExpr( location, "?+?" ) );
1222 if ( baseType1 ) {
1223 auto multiply = ast::UntypedExpr::createCall( location2, "?*?", {
1224 expr->args.back(),
1225 new ast::SizeofExpr( location1, deepCopy( baseType1 ) ),
1226 } );
1227 ret->args.push_back( expr->args.front() );
1228 ret->args.push_back( multiply );
1229 } else {
1230 assert( baseType2 );
1231 auto multiply = ast::UntypedExpr::createCall( location1, "?*?", {
1232 expr->args.front(),
1233 new ast::SizeofExpr( location2, deepCopy( baseType2 ) ),
1234 } );
1235 ret->args.push_back( multiply );
1236 ret->args.push_back( expr->args.back() );
1237 }
1238 ret->result = ast::deepCopy( expr->result );
1239 ret->env = expr->env ? expr->env : ret->env;
1240 return ret;
1241 // Dereference Intrinsic:
1242 } else if ( "*?" == varName ) {
1243 assert( expr->result );
1244 assert( 1 == expr->args.size() );
1245
1246 // If this isn't for a poly type, then do nothing.
1247 if ( !isPolyType( expr->result, scopeTypeVars, typeSubs ) ) {
1248 return expr;
1249 }
1250
1251 // Remove dereference from polymorphic types since they are boxed.
1252 ast::Expr * ret = ast::deepCopy( expr->args.front() );
1253 // Fix expression type to remove pointer.
1254 ret->result = expr->result;
1255 ret->env = expr->env ? expr->env : ret->env;
1256 return ret;
1257 // Post-Increment/Decrement Intrinsics:
1258 } else if ( "?++" == varName || "?--" == varName ) {
1259 assert( expr->result );
1260 assert( 1 == expr->args.size() );
1261
1262 ast::Type const * baseType =
1263 isPolyType( expr->result, scopeTypeVars, typeSubs );
1264 if ( nullptr == baseType ) {
1265 return expr;
1266 }
1267 ast::Type * tempType = ast::deepCopy( expr->result );
1268 if ( typeSubs ) {
1269 auto result = typeSubs->apply( tempType );
1270 tempType = ast::mutate( result.node.release() );
1271 }
1272 CodeLocation const & location = expr->location;
1273 ast::ObjectDecl * newObj = makeTemporary( location, tempType );
1274 ast::VariableExpr * tempExpr =
1275 new ast::VariableExpr( location, newObj );
1276 ast::UntypedExpr * assignExpr = new ast::UntypedExpr( location,
1277 new ast::NameExpr( location, "?=?" ) );
1278 assignExpr->args.push_back( ast::deepCopy( tempExpr ) );
1279 if ( auto address = expr->args.front().as<ast::AddressExpr>() ) {
1280 assignExpr->args.push_back( ast::deepCopy( address->arg ) );
1281 } else {
1282 assignExpr->args.push_back( ast::deepCopy( expr->args.front() ) );
1283 }
1284 return new ast::CommaExpr( location,
1285 new ast::CommaExpr( location,
1286 assignExpr,
1287 makeIncrDecrExpr( location, expr, baseType, "?++" == varName )
1288 ),
1289 tempExpr
1290 );
1291 // Pre-Increment/Decrement Intrinsics:
1292 } else if ( "++?" == varName || "--?" == varName ) {
1293 assert( expr->result );
1294 assert( 1 == expr->args.size() );
1295
1296 ast::Type const * baseType =
1297 isPolyType( expr->result, scopeTypeVars, typeSubs );
1298 if ( nullptr == baseType ) {
1299 return expr;
1300 }
1301 return makeIncrDecrExpr(
1302 expr->location, expr, baseType, "++?" == varName );
1303 // Addition and Subtration Intrinsics:
1304 } else if ( "?+?" == varName || "?-?" == varName ) {
1305 assert( expr->result );
1306 assert( 2 == expr->args.size() );
1307
1308 auto baseType1 =
1309 isPolyPtr( expr->args.front()->result, scopeTypeVars, typeSubs );
1310 auto baseType2 =
1311 isPolyPtr( expr->args.back()->result, scopeTypeVars, typeSubs );
1312
1313 CodeLocation const & location = expr->location;
1314 CodeLocation const & location1 = expr->args.front()->location;
1315 CodeLocation const & location2 = expr->args.back()->location;
1316 // LHS op RHS -> (LHS op RHS) / sizeof(LHS)
1317 if ( baseType1 && baseType2 ) {
1318 auto divide = ast::UntypedExpr::createCall( location, "?/?", {
1319 expr,
1320 new ast::SizeofExpr( location, deepCopy( baseType1 ) ),
1321 } );
1322 if ( expr->env ) divide->env = expr->env;
1323 return divide;
1324 // LHS op RHS -> LHS op (RHS * sizeof(LHS))
1325 } else if ( baseType1 ) {
1326 auto multiply = ast::UntypedExpr::createCall( location2, "?*?", {
1327 expr->args.back(),
1328 new ast::SizeofExpr( location1, deepCopy( baseType1 ) ),
1329 } );
1330 return ast::mutate_field_index(
1331 expr, &ast::ApplicationExpr::args, 1, multiply );
1332 // LHS op RHS -> (LHS * sizeof(RHS)) op RHS
1333 } else if ( baseType2 ) {
1334 auto multiply = ast::UntypedExpr::createCall( location1, "?*?", {
1335 expr->args.front(),
1336 new ast::SizeofExpr( location2, deepCopy( baseType2 ) ),
1337 } );
1338 return ast::mutate_field_index(
1339 expr, &ast::ApplicationExpr::args, 0, multiply );
1340 }
1341 // Addition and Subtration Relative Assignment Intrinsics:
1342 } else if ( "?+=?" == varName || "?-=?" == varName ) {
1343 assert( expr->result );
1344 assert( 2 == expr->args.size() );
1345
1346 CodeLocation const & location1 = expr->args.front()->location;
1347 CodeLocation const & location2 = expr->args.back()->location;
1348 auto baseType = isPolyPtr( expr->result, scopeTypeVars, typeSubs );
1349 // LHS op RHS -> LHS op (RHS * sizeof(LHS))
1350 if ( baseType ) {
1351 auto multiply = ast::UntypedExpr::createCall( location2, "?*?", {
1352 expr->args.back(),
1353 new ast::SizeofExpr( location1, deepCopy( baseType ) ),
1354 } );
1355 return ast::mutate_field_index(
1356 expr, &ast::ApplicationExpr::args, 1, multiply );
1357 }
1358 }
1359 return expr;
1360}
1361
1362ast::ObjectDecl * CallAdapter::makeTemporary(
1363 CodeLocation const & location, ast::Type const * type ) {
1364 auto newObj = new ast::ObjectDecl( location, tmpNamer.newName(), type );
1365 stmtsToAddBefore.push_back( new ast::DeclStmt( location, newObj ) );
1366 return newObj;
1367}
1368
1369// --------------------------------------------------------------------------
1370/// Modifies declarations to accept implicit parameters.
1371/// * Move polymorphic returns in function types to pointer-type parameters.
1372/// * Adds type size and assertion parameters to parameter lists.
1373struct DeclAdapter final {
1374 ast::FunctionDecl const * previsit( ast::FunctionDecl const * decl );
1375 ast::FunctionDecl const * postvisit( ast::FunctionDecl const * decl );
1376private:
1377 void addAdapters( ast::FunctionDecl * decl, TypeVarMap & localTypeVars );
1378};
1379
1380ast::ObjectDecl * makeObj(
1381 CodeLocation const & location, std::string const & name ) {
1382 // The size/align parameters may be unused, so add the unused attribute.
1383 return new ast::ObjectDecl( location, name,
1384 makeLayoutCType(),
1385 nullptr, ast::Storage::Classes(), ast::Linkage::C, nullptr,
1386 { new ast::Attribute( "unused" ) } );
1387}
1388
1389/// A modified and specialized version of ast::add_qualifiers.
1390ast::Type const * addConst( ast::Type const * type ) {
1391 ast::CV::Qualifiers cvq = { ast::CV::Const };
1392 if ( ( type->qualifiers & cvq ) != 0 ) return type;
1393 auto mutType = ast::mutate( type );
1394 mutType->qualifiers |= cvq;
1395 return mutType;
1396}
1397
1398ast::FunctionDecl const * DeclAdapter::previsit( ast::FunctionDecl const * decl ) {
1399 TypeVarMap localTypeVars;
1400 makeTypeVarMap( decl, localTypeVars );
1401
1402 auto mutDecl = mutate( decl );
1403
1404 // Move polymorphic return type to parameter list.
1405 if ( isDynRet( mutDecl->type ) ) {
1406 auto ret = strict_dynamic_cast<ast::ObjectDecl *>(
1407 mutDecl->returns.front().get_and_mutate() );
1408 ret->set_type( new ast::PointerType( ret->type ) );
1409 mutDecl->params.insert( mutDecl->params.begin(), ret );
1410 mutDecl->returns.erase( mutDecl->returns.begin() );
1411 ret->init = nullptr;
1412 }
1413
1414 // Add size/align and assertions for type parameters to parameter list.
1415 ast::vector<ast::DeclWithType> inferredParams;
1416 ast::vector<ast::DeclWithType> layoutParams;
1417 for ( ast::ptr<ast::TypeDecl> & typeParam : mutDecl->type_params ) {
1418 auto mutParam = mutate( typeParam.get() );
1419 // Add all size and alignment parameters to parameter list.
1420 if ( mutParam->isComplete() ) {
1421 ast::TypeInstType paramType( mutParam );
1422 std::string paramName = Mangle::mangleType( &paramType );
1423
1424 auto sizeParam = makeObj( typeParam->location, sizeofName( paramName ) );
1425 layoutParams.emplace_back( sizeParam );
1426
1427 auto alignParam = makeObj( typeParam->location, alignofName( paramName ) );
1428 layoutParams.emplace_back( alignParam );
1429 }
1430 // Assertions should be stored in the main list.
1431 assert( mutParam->assertions.empty() );
1432 typeParam = mutParam;
1433 }
1434 for ( ast::ptr<ast::DeclWithType> & assert : mutDecl->assertions ) {
1435 ast::DeclWithType * mutAssert = ast::mutate( assert.get() );
1436 // Assertion parameters may not be used in body,
1437 // pass along with unused attribute.
1438 mutAssert->attributes.push_back( new ast::Attribute( "unused" ) );
1439 mutAssert->set_type( addConst( mutAssert->get_type() ) );
1440 inferredParams.emplace_back( mutAssert );
1441 }
1442 mutDecl->assertions.clear();
1443
1444 // Prepend each argument group. From last group to first. addAdapters
1445 // does do the same, it just does it itself and see all other parameters.
1446 spliceBegin( mutDecl->params, inferredParams );
1447 spliceBegin( mutDecl->params, layoutParams );
1448 addAdapters( mutDecl, localTypeVars );
1449
1450 // Now have to update the type to match the declaration.
1451 ast::FunctionType * type = new ast::FunctionType(
1452 mutDecl->type->isVarArgs, mutDecl->type->qualifiers );
1453 // The forall clauses don't match until Eraser. The assertions are empty.
1454 for ( auto param : mutDecl->params ) {
1455 type->params.emplace_back( param->get_type() );
1456 }
1457 for ( auto retval : mutDecl->returns ) {
1458 type->returns.emplace_back( retval->get_type() );
1459 }
1460 mutDecl->type = type;
1461
1462 return mutDecl;
1463}
1464
1465ast::FunctionDecl const * DeclAdapter::postvisit(
1466 ast::FunctionDecl const * decl ) {
1467 ast::FunctionDecl * mutDecl = mutate( decl );
1468 if ( !mutDecl->returns.empty() && mutDecl->stmts
1469 // Intrinsic functions won't be using the _retval so no need to
1470 // generate it.
1471 && mutDecl->linkage != ast::Linkage::Intrinsic
1472 // Remove check for prefix once thunks properly use ctor/dtors.
1473 && !isPrefix( mutDecl->name, "_thunk" )
1474 && !isPrefix( mutDecl->name, "_adapter" ) ) {
1475 assert( 1 == mutDecl->returns.size() );
1476 ast::DeclWithType const * retval = mutDecl->returns.front();
1477 if ( "" == retval->name ) {
1478 retval = ast::mutate_field(
1479 retval, &ast::DeclWithType::name, "_retval" );
1480 mutDecl->returns.front() = retval;
1481 }
1482 auto stmts = mutDecl->stmts.get_and_mutate();
1483 stmts->kids.push_front( new ast::DeclStmt( retval->location, retval ) );
1484 ast::DeclWithType * newRet = ast::deepCopy( retval );
1485 mutDecl->returns.front() = newRet;
1486 }
1487 // Errors should have been caught by this point, remove initializers from
1488 // parameters to allow correct codegen of default arguments.
1489 for ( ast::ptr<ast::DeclWithType> & param : mutDecl->params ) {
1490 if ( auto obj = param.as<ast::ObjectDecl>() ) {
1491 param = ast::mutate_field( obj, &ast::ObjectDecl::init, nullptr );
1492 }
1493 }
1494 return mutDecl;
1495}
1496
1497void DeclAdapter::addAdapters(
1498 ast::FunctionDecl * mutDecl, TypeVarMap & localTypeVars ) {
1499 ast::vector<ast::FunctionType> functions;
1500 for ( ast::ptr<ast::DeclWithType> & arg : mutDecl->params ) {
1501 ast::Type const * type = arg->get_type();
1502 type = findAndReplaceFunction( type, functions, localTypeVars, needsAdapter );
1503 arg.get_and_mutate()->set_type( type );
1504 }
1505 std::set<std::string> adaptersDone;
1506 for ( ast::ptr<ast::FunctionType> const & func : functions ) {
1507 std::string mangleName = mangleAdapterName( func, localTypeVars );
1508 if ( adaptersDone.find( mangleName ) != adaptersDone.end() ) {
1509 continue;
1510 }
1511 std::string adapterName = makeAdapterName( mangleName );
1512 // The adapter may not actually be used, so make sure it has unused.
1513 mutDecl->params.insert( mutDecl->params.begin(), new ast::ObjectDecl(
1514 mutDecl->location, adapterName,
1515 new ast::PointerType( makeAdapterType( func, localTypeVars ) ),
1516 nullptr, {}, {}, nullptr,
1517 { new ast::Attribute( "unused" ) } ) );
1518 adaptersDone.insert( adaptersDone.begin(), mangleName );
1519 }
1520}
1521
1522// --------------------------------------------------------------------------
1523/// Corrects the floating nodes created in CallAdapter.
1524struct RewireAdapters final : public ast::WithGuards {
1525 ScopedMap<std::string, ast::ObjectDecl const *> adapters;
1526 void beginScope() { adapters.beginScope(); }
1527 void endScope() { adapters.endScope(); }
1528 void previsit( ast::FunctionDecl const * decl );
1529 ast::VariableExpr const * previsit( ast::VariableExpr const * expr );
1530};
1531
1532void RewireAdapters::previsit( ast::FunctionDecl const * decl ) {
1533 GuardScope( adapters );
1534 for ( ast::ptr<ast::DeclWithType> const & param : decl->params ) {
1535 if ( auto objectParam = param.as<ast::ObjectDecl>() ) {
1536 adapters.insert( objectParam->name, objectParam );
1537 }
1538 }
1539}
1540
1541ast::VariableExpr const * RewireAdapters::previsit(
1542 ast::VariableExpr const * expr ) {
1543 // If the node is not floating, we can skip.
1544 if ( expr->var->isManaged() ) return expr;
1545 auto it = adapters.find( expr->var->name );
1546 assertf( it != adapters.end(), "Could not correct floating node." );
1547 return ast::mutate_field( expr, &ast::VariableExpr::var, it->second );
1548}
1549
1550// --------------------------------------------------------------------------
1551/// Inserts code to access polymorphic layout inforation.
1552/// * Replaces member and size/alignment/offsetof expressions on polymorphic
1553/// generic types with calculated expressions.
1554/// * Replaces member expressions for polymorphic types with calculated
1555/// add-field-offset-and-dereference.
1556/// * Calculates polymorphic offsetof expressions from offset array.
1557/// * Inserts dynamic calculation of polymorphic type layouts where needed.
1558struct PolyGenericCalculator final :
1559 public ast::WithConstTypeSubstitution,
1560 public ast::WithDeclsToAdd<>,
1561 public ast::WithGuards,
1562 public ast::WithStmtsToAdd<>,
1563 public ast::WithVisitorRef<PolyGenericCalculator> {
1564 PolyGenericCalculator();
1565
1566 void previsit( ast::FunctionDecl const * decl );
1567 void previsit( ast::TypedefDecl const * decl );
1568 void previsit( ast::TypeDecl const * decl );
1569 ast::Decl const * postvisit( ast::TypeDecl const * decl );
1570 ast::StructDecl const * previsit( ast::StructDecl const * decl );
1571 ast::UnionDecl const * previsit( ast::UnionDecl const * decl );
1572 ast::DeclStmt const * previsit( ast::DeclStmt const * stmt );
1573 ast::Expr const * postvisit( ast::MemberExpr const * expr );
1574 void previsit( ast::AddressExpr const * expr );
1575 ast::Expr const * postvisit( ast::AddressExpr const * expr );
1576 ast::Expr const * postvisit( ast::SizeofExpr const * expr );
1577 ast::Expr const * postvisit( ast::AlignofExpr const * expr );
1578 ast::Expr const * postvisit( ast::OffsetofExpr const * expr );
1579 ast::Expr const * postvisit( ast::OffsetPackExpr const * expr );
1580
1581 void beginScope();
1582 void endScope();
1583private:
1584 /// Makes a new variable in the current scope with the given name,
1585 /// type and optional initializer.
1586 ast::ObjectDecl * makeVar(
1587 CodeLocation const & location, std::string const & name,
1588 ast::Type const * type, ast::Init const * init = nullptr );
1589 /// Returns true if the type has a dynamic layout;
1590 /// such a layout will be stored in appropriately-named local variables
1591 /// when the function returns.
1592 bool findGeneric( CodeLocation const & location, ast::Type const * );
1593 /// Adds type parameters to the layout call; will generate the
1594 /// appropriate parameters if needed.
1595 void addSTypeParamsToLayoutCall(
1596 ast::UntypedExpr * layoutCall,
1597 const ast::vector<ast::Type> & otypeParams );
1598 /// Change the type of generic aggregate members to char[].
1599 void mutateMembers( ast::AggregateDecl * aggr );
1600 /// Returns the calculated sizeof expression for type, or nullptr for use
1601 /// C sizeof().
1602 ast::Expr const * genSizeof( CodeLocation const &, ast::Type const * );
1603 /// Enters a new scope for type-variables,
1604 /// adding the type variables from the provided type.
1605 void beginTypeScope( ast::Type const * );
1606
1607 /// The type variables and polymorphic parameters currently in scope.
1608 TypeVarMap scopeTypeVars;
1609 /// Set of generic type layouts known in the current scope,
1610 /// indexed by sizeofName.
1611 ScopedSet<std::string> knownLayouts;
1612 /// Set of non-generic types for which the offset array exists in the
1613 /// current scope, indexed by offsetofName.
1614 ScopedSet<std::string> knownOffsets;
1615 /// Namer for VLA (variable length array) buffers.
1616 UniqueName bufNamer;
1617 /// If the argument of an AddressExpr is MemberExpr, it is stored here.
1618 ast::MemberExpr const * addrMember = nullptr;
1619};
1620
1621PolyGenericCalculator::PolyGenericCalculator() :
1622 knownLayouts(), knownOffsets(), bufNamer( "_buf" )
1623{}
1624
1625/// Converts polymorphic type into a suitable monomorphic representation.
1626/// Currently: __attribute__(( aligned(8) )) char[size_T];
1627ast::Type * polyToMonoType( CodeLocation const & location,
1628 ast::Type const * declType ) {
1629 auto charType = new ast::BasicType( ast::BasicType::Char );
1630 auto size = new ast::NameExpr( location,
1631 sizeofName( Mangle::mangleType( declType ) ) );
1632 auto ret = new ast::ArrayType( charType, size,
1633 ast::VariableLen, ast::DynamicDim, ast::CV::Qualifiers() );
1634 ret->attributes.emplace_back( new ast::Attribute( "aligned",
1635 { ast::ConstantExpr::from_int( location, 8 ) } ) );
1636 return ret;
1637}
1638
1639void PolyGenericCalculator::previsit( ast::FunctionDecl const * decl ) {
1640 GuardScope( *this );
1641 beginTypeScope( decl->type );
1642}
1643
1644void PolyGenericCalculator::previsit( ast::TypedefDecl const * decl ) {
1645 assertf( false, "All typedef declarations should be removed." );
1646 beginTypeScope( decl->base );
1647}
1648
1649void PolyGenericCalculator::previsit( ast::TypeDecl const * decl ) {
1650 addToTypeVarMap( decl, scopeTypeVars );
1651}
1652
1653ast::Decl const * PolyGenericCalculator::postvisit(
1654 ast::TypeDecl const * decl ) {
1655 ast::Type const * base = decl->base;
1656 if ( nullptr == base ) return decl;
1657
1658 // Add size/align variables for opaque type declarations.
1659 ast::TypeInstType inst( decl->name, decl );
1660 std::string typeName = Mangle::mangleType( &inst );
1661
1662 ast::ObjectDecl * sizeDecl = new ast::ObjectDecl( decl->location,
1663 sizeofName( typeName ), makeLayoutCType(),
1664 new ast::SingleInit( decl->location,
1665 new ast::SizeofExpr( decl->location, deepCopy( base ) )
1666 )
1667 );
1668 ast::ObjectDecl * alignDecl = new ast::ObjectDecl( decl->location,
1669 alignofName( typeName ), makeLayoutCType(),
1670 new ast::SingleInit( decl->location,
1671 new ast::AlignofExpr( decl->location, deepCopy( base ) )
1672 )
1673 );
1674
1675 // Ensure that the initializing sizeof/alignof exprs are properly mutated.
1676 sizeDecl->accept( *visitor );
1677 alignDecl->accept( *visitor );
1678
1679 // A little trick to replace this with two declarations.
1680 // Adding after makes sure that there is no conflict with adding stmts.
1681 declsToAddAfter.push_back( alignDecl );
1682 return sizeDecl;
1683}
1684
1685ast::StructDecl const * PolyGenericCalculator::previsit(
1686 ast::StructDecl const * decl ) {
1687 auto mutDecl = mutate( decl );
1688 mutateMembers( mutDecl );
1689 return mutDecl;
1690}
1691
1692ast::UnionDecl const * PolyGenericCalculator::previsit(
1693 ast::UnionDecl const * decl ) {
1694 auto mutDecl = mutate( decl );
1695 mutateMembers( mutDecl );
1696 return mutDecl;
1697}
1698
1699ast::DeclStmt const * PolyGenericCalculator::previsit( ast::DeclStmt const * stmt ) {
1700 ast::ObjectDecl const * decl = stmt->decl.as<ast::ObjectDecl>();
1701 if ( !decl || !findGeneric( decl->location, decl->type ) ) {
1702 return stmt;
1703 }
1704
1705 // Change initialization of a polymorphic value object to allocate via a
1706 // variable-length-array (alloca cannot be safely used in loops).
1707 ast::ObjectDecl * newBuf = new ast::ObjectDecl( decl->location,
1708 bufNamer.newName(),
1709 polyToMonoType( decl->location, decl->type ),
1710 nullptr, {}, ast::Linkage::C
1711 );
1712 stmtsToAddBefore.push_back( new ast::DeclStmt( stmt->location, newBuf ) );
1713
1714 // If the object has a cleanup attribute, the clean-up should be on the
1715 // buffer, not the pointer. [Perhaps this should be lifted?]
1716 auto matchAndMove = [newBuf]( ast::ptr<ast::Attribute> & attr ) {
1717 if ( "cleanup" == attr->name ) {
1718 newBuf->attributes.push_back( attr );
1719 return true;
1720 }
1721 return false;
1722 };
1723
1724 auto mutDecl = mutate( decl );
1725
1726 // Forally, side effects are not safe in this function. But it works.
1727 erase_if( mutDecl->attributes, matchAndMove );
1728
1729 mutDecl->init = new ast::SingleInit( decl->location,
1730 new ast::VariableExpr( decl->location, newBuf ) );
1731
1732 return ast::mutate_field( stmt, &ast::DeclStmt::decl, mutDecl );
1733}
1734
1735/// Checks if memberDecl matches the decl from an aggregate.
1736bool isMember( ast::DeclWithType const * memberDecl, ast::Decl const * decl ) {
1737 // No matter the field, if the name is different it is not the same.
1738 if ( memberDecl->name != decl->name ) {
1739 return false;
1740 }
1741
1742 if ( memberDecl->name.empty() ) {
1743 // Plan-9 Field: Match on unique_id.
1744 return ( memberDecl->uniqueId == decl->uniqueId );
1745 }
1746
1747 ast::DeclWithType const * declWithType =
1748 strict_dynamic_cast<ast::DeclWithType const *>( decl );
1749
1750 if ( memberDecl->mangleName.empty() || declWithType->mangleName.empty() ) {
1751 // Tuple-Element Field: Expect neither had mangled name;
1752 // accept match on simple name (like field_2) only.
1753 assert( memberDecl->mangleName.empty() );
1754 assert( declWithType->mangleName.empty() );
1755 return true;
1756 }
1757
1758 // Ordinary Field: Use full name to accommodate overloading.
1759 return ( memberDecl->mangleName == declWithType->mangleName );
1760}
1761
1762/// Finds the member in the base list that matches the given declaration;
1763/// returns its index, or -1 if not present.
1764long findMember( ast::DeclWithType const * memberDecl,
1765 const ast::vector<ast::Decl> & baseDecls ) {
1766 for ( auto const & [index, value] : enumerate( baseDecls ) ) {
1767 if ( isMember( memberDecl, value.get() ) ) {
1768 return index;
1769 }
1770 }
1771 return -1;
1772}
1773
1774/// Returns an index expression into the offset array for a type.
1775ast::Expr * makeOffsetIndex( CodeLocation const & location,
1776 ast::Type const * objectType, long i ) {
1777 std::string name = offsetofName( Mangle::mangleType( objectType ) );
1778 return ast::UntypedExpr::createCall( location, "?[?]", {
1779 new ast::NameExpr( location, name ),
1780 ast::ConstantExpr::from_ulong( location, i ),
1781 } );
1782}
1783
1784ast::Expr const * PolyGenericCalculator::postvisit(
1785 ast::MemberExpr const * expr ) {
1786 // Only mutate member expressions for polymorphic types.
1787 ast::Type const * objectType = hasPolyBase(
1788 expr->aggregate->result, scopeTypeVars
1789 );
1790 if ( !objectType ) return expr;
1791 // Ensure layout for this type is available.
1792 // The boolean result is ignored.
1793 findGeneric( expr->location, objectType );
1794
1795 // Replace member expression with dynamically-computed layout expression.
1796 ast::Expr * newMemberExpr = nullptr;
1797 if ( auto structType = dynamic_cast<ast::StructInstType const *>( objectType ) ) {
1798 long offsetIndex = findMember( expr->member, structType->base->members );
1799 if ( -1 == offsetIndex ) return expr;
1800
1801 // Replace member expression with pointer to struct plus offset.
1802 ast::UntypedExpr * fieldLoc = new ast::UntypedExpr( expr->location,
1803 new ast::NameExpr( expr->location, "?+?" ) );
1804 ast::Expr * aggr = deepCopy( expr->aggregate );
1805 aggr->env = nullptr;
1806 fieldLoc->args.push_back( aggr );
1807 fieldLoc->args.push_back(
1808 makeOffsetIndex( expr->location, objectType, offsetIndex ) );
1809 fieldLoc->result = deepCopy( expr->result );
1810 newMemberExpr = fieldLoc;
1811 // Union members are all at offset zero, so just use the aggregate expr.
1812 } else if ( dynamic_cast<ast::UnionInstType const *>( objectType ) ) {
1813 ast::Expr * aggr = deepCopy( expr->aggregate );
1814 aggr->env = nullptr;
1815 aggr->result = deepCopy( expr->result );
1816 newMemberExpr = aggr;
1817 } else {
1818 return expr;
1819 }
1820 assert( newMemberExpr );
1821
1822 // Must apply the generic substitution to the member type to handle cases
1823 // where the member is a generic parameter subsituted by a known concrete
1824 // type. [ex]
1825 // forall( T ) struct Box { T x; }
1826 // forall( T ) void f() {
1827 // Box( T * ) b; b.x;
1828 // }
1829 // TODO: expr->result should be exactly expr->member->get_type() after
1830 // substitution, so it doesn't seem like it should be necessary to apply
1831 // the substitution manually. For some reason this is not currently the
1832 // case. This requires more investigation.
1833 ast::ptr<ast::Type> memberType = deepCopy( expr->member->get_type() );
1834 ast::TypeSubstitution sub = genericSubstitution( objectType );
1835 sub.apply( memberType );
1836
1837 // Not all members of a polymorphic type are themselves of a polymorphic
1838 // type; in this case the member expression should be wrapped and
1839 // dereferenced to form an lvalue.
1840 if ( !isPolyType( memberType, scopeTypeVars ) ) {
1841 auto ptrCastExpr = new ast::CastExpr( expr->location, newMemberExpr,
1842 new ast::PointerType( memberType ) );
1843 auto derefExpr = ast::UntypedExpr::createDeref( expr->location,
1844 ptrCastExpr );
1845 newMemberExpr = derefExpr;
1846 }
1847
1848 return newMemberExpr;
1849}
1850
1851void PolyGenericCalculator::previsit( ast::AddressExpr const * expr ) {
1852 GuardValue( addrMember ) = expr->arg.as<ast::MemberExpr>();
1853}
1854
1855ast::Expr const * PolyGenericCalculator::postvisit(
1856 ast::AddressExpr const * expr ) {
1857 // arg has to have been a MemberExpr and has been mutated.
1858 if ( nullptr == addrMember || expr->arg == addrMember ) {
1859 return expr;
1860 }
1861 ast::UntypedExpr const * untyped = expr->arg.as<ast::UntypedExpr>();
1862 if ( !untyped || getFunctionName( untyped ) != "?+?" ) {
1863 return expr;
1864 }
1865 // MemberExpr was converted to pointer + offset; and it is not valid C to
1866 // take the address of an addition, so strip away the address-of.
1867 // It also preserves the env value.
1868 return ast::mutate_field( expr->arg.get(), &ast::Expr::env, expr->env );
1869}
1870
1871ast::Expr const * PolyGenericCalculator::postvisit(
1872 ast::SizeofExpr const * expr ) {
1873 ast::Type const * type = expr->type ? expr->type : expr->expr->result;
1874 ast::Expr const * gen = genSizeof( expr->location, type );
1875 return ( gen ) ? gen : expr;
1876}
1877
1878ast::Expr const * PolyGenericCalculator::postvisit(
1879 ast::AlignofExpr const * expr ) {
1880 ast::Type const * type = expr->type ? expr->type : expr->expr->result;
1881 if ( findGeneric( expr->location, type ) ) {
1882 return new ast::NameExpr( expr->location,
1883 alignofName( Mangle::mangleType( type ) ) );
1884 } else {
1885 return expr;
1886 }
1887}
1888
1889ast::Expr const * PolyGenericCalculator::postvisit(
1890 ast::OffsetofExpr const * expr ) {
1891 ast::Type const * type = expr->type;
1892 if ( !findGeneric( expr->location, type ) ) return expr;
1893
1894 // Structures replace offsetof expression with an index into offset array.
1895 if ( auto structType = dynamic_cast<ast::StructInstType const *>( type ) ) {
1896 long offsetIndex = findMember( expr->member, structType->base->members );
1897 if ( -1 == offsetIndex ) return expr;
1898
1899 return makeOffsetIndex( expr->location, type, offsetIndex );
1900 // All union members are at offset zero.
1901 } else if ( dynamic_cast<ast::UnionInstType const *>( type ) ) {
1902 return ast::ConstantExpr::from_ulong( expr->location, 0 );
1903 } else {
1904 return expr;
1905 }
1906}
1907
1908ast::Expr const * PolyGenericCalculator::postvisit(
1909 ast::OffsetPackExpr const * expr ) {
1910 ast::StructInstType const * type = expr->type;
1911
1912 // Pull offset back from generated type information.
1913 if ( findGeneric( expr->location, type ) ) {
1914 return new ast::NameExpr( expr->location,
1915 offsetofName( Mangle::mangleType( type ) ) );
1916 }
1917
1918 std::string offsetName = offsetofName( Mangle::mangleType( type ) );
1919 // Use the already generated offsets for this type.
1920 if ( knownOffsets.contains( offsetName ) ) {
1921 return new ast::NameExpr( expr->location, offsetName );
1922 }
1923
1924 knownOffsets.insert( offsetName );
1925
1926 // Build initializer list for offset array.
1927 ast::vector<ast::Init> inits;
1928 for ( ast::ptr<ast::Decl> const & member : type->base->members ) {
1929 auto memberDecl = member.as<ast::DeclWithType>();
1930 assertf( memberDecl, "Requesting offset of non-DWT member: %s",
1931 toCString( member ) );
1932 inits.push_back( new ast::SingleInit( expr->location,
1933 new ast::OffsetofExpr( expr->location,
1934 deepCopy( type ),
1935 memberDecl
1936 )
1937 ) );
1938 }
1939
1940 auto offsetArray = makeVar( expr->location, offsetName,
1941 new ast::ArrayType(
1942 makeLayoutType(),
1943 ast::ConstantExpr::from_ulong( expr->location, inits.size() ),
1944 ast::FixedLen,
1945 ast::DynamicDim
1946 ),
1947 new ast::ListInit( expr->location, std::move( inits ) )
1948 );
1949
1950 return new ast::VariableExpr( expr->location, offsetArray );
1951}
1952
1953void PolyGenericCalculator::beginScope() {
1954 knownLayouts.beginScope();
1955 knownOffsets.beginScope();
1956}
1957
1958void PolyGenericCalculator::endScope() {
1959 knownOffsets.endScope();
1960 knownLayouts.endScope();
1961}
1962
1963ast::ObjectDecl * PolyGenericCalculator::makeVar(
1964 CodeLocation const & location, std::string const & name,
1965 ast::Type const * type, ast::Init const * init ) {
1966 ast::ObjectDecl * ret = new ast::ObjectDecl( location, name, type, init );
1967 stmtsToAddBefore.push_back( new ast::DeclStmt( location, ret ) );
1968 return ret;
1969}
1970
1971/// Returns true if any of the otype parameters have a dynamic layout; and
1972/// puts all otype parameters in the output list.
1973bool findGenericParams(
1974 ast::vector<ast::Type> & out,
1975 ast::vector<ast::TypeDecl> const & baseParams,
1976 ast::vector<ast::Expr> const & typeParams ) {
1977 bool hasDynamicLayout = false;
1978
1979 for ( auto pair : group_iterate( baseParams, typeParams ) ) {
1980 auto baseParam = std::get<0>( pair );
1981 auto typeParam = std::get<1>( pair );
1982 if ( !baseParam->isComplete() ) continue;
1983 ast::TypeExpr const * typeExpr = typeParam.as<ast::TypeExpr>();
1984 assertf( typeExpr, "All type parameters should be type expressions." );
1985
1986 ast::Type const * type = typeExpr->type.get();
1987 out.push_back( type );
1988 if ( isPolyType( type ) ) hasDynamicLayout = true;
1989 }
1990
1991 return hasDynamicLayout;
1992}
1993
1994bool PolyGenericCalculator::findGeneric(
1995 CodeLocation const & location, ast::Type const * type ) {
1996 type = replaceTypeInst( type, typeSubs );
1997
1998 if ( auto inst = dynamic_cast<ast::TypeInstType const *>( type ) ) {
1999 // Assumes that getting put in the scopeTypeVars includes having the
2000 // layout variables set.
2001 if ( scopeTypeVars.contains( *inst ) ) {
2002 return true;
2003 }
2004 } else if ( auto inst = dynamic_cast<ast::StructInstType const *>( type ) ) {
2005 // Check if this type already has a layout generated for it.
2006 std::string typeName = Mangle::mangleType( type );
2007 if ( knownLayouts.contains( typeName ) ) return true;
2008
2009 // Check if any type parameters have dynamic layout;
2010 // If none do, this type is (or will be) monomorphized.
2011 ast::vector<ast::Type> sizedParams;
2012 if ( !findGenericParams( sizedParams,
2013 inst->base->params, inst->params ) ) {
2014 return false;
2015 }
2016
2017 // Insert local variables for layout and generate call to layout
2018 // function.
2019 // Done early so as not to interfere with the later addition of
2020 // parameters to the layout call.
2021 knownLayouts.insert( typeName );
2022
2023 int memberCount = inst->base->members.size();
2024 if ( 0 == memberCount ) {
2025 // All empty structures have the same layout (size 1, align 1).
2026 makeVar( location,
2027 sizeofName( typeName ), makeLayoutType(),
2028 new ast::SingleInit( location,
2029 ast::ConstantExpr::from_ulong( location, 1 ) ) );
2030 makeVar( location,
2031 alignofName( typeName ), makeLayoutType(),
2032 new ast::SingleInit( location,
2033 ast::ConstantExpr::from_ulong( location, 1 ) ) );
2034 // Since 0-length arrays are forbidden in C, skip the offset array.
2035 } else {
2036 ast::ObjectDecl const * sizeofVar = makeVar( location,
2037 sizeofName( typeName ), makeLayoutType(), nullptr );
2038 ast::ObjectDecl const * alignofVar = makeVar( location,
2039 alignofName( typeName ), makeLayoutType(), nullptr );
2040 ast::ObjectDecl const * offsetofVar = makeVar( location,
2041 offsetofName( typeName ),
2042 new ast::ArrayType(
2043 makeLayoutType(),
2044 ast::ConstantExpr::from_int( location, memberCount ),
2045 ast::FixedLen,
2046 ast::DynamicDim
2047 ),
2048 nullptr
2049 );
2050
2051 // Generate call to layout function.
2052 ast::UntypedExpr * layoutCall = new ast::UntypedExpr( location,
2053 new ast::NameExpr( location, layoutofName( inst->base ) ),
2054 {
2055 new ast::AddressExpr(
2056 new ast::VariableExpr( location, sizeofVar ) ),
2057 new ast::AddressExpr(
2058 new ast::VariableExpr( location, alignofVar ) ),
2059 new ast::VariableExpr( location, offsetofVar ),
2060 } );
2061
2062 addSTypeParamsToLayoutCall( layoutCall, sizedParams );
2063
2064 stmtsToAddBefore.emplace_back(
2065 new ast::ExprStmt( location, layoutCall ) );
2066 }
2067
2068 return true;
2069 } else if ( auto inst = dynamic_cast<ast::UnionInstType const *>( type ) ) {
2070 // Check if this type already has a layout generated for it.
2071 std::string typeName = Mangle::mangleType( type );
2072 if ( knownLayouts.contains( typeName ) ) return true;
2073
2074 // Check if any type parameters have dynamic layout;
2075 // If none do, this type is (or will be) monomorphized.
2076 ast::vector<ast::Type> sizedParams;
2077 if ( !findGenericParams( sizedParams,
2078 inst->base->params, inst->params ) ) {
2079 return false;
2080 }
2081
2082 // Insert local variables for layout and generate call to layout
2083 // function.
2084 // Done early so as not to interfere with the later addition of
2085 // parameters to the layout call.
2086 knownLayouts.insert( typeName );
2087
2088 ast::ObjectDecl * sizeofVar = makeVar( location,
2089 sizeofName( typeName ), makeLayoutType() );
2090 ast::ObjectDecl * alignofVar = makeVar( location,
2091 alignofName( typeName ), makeLayoutType() );
2092
2093 ast::UntypedExpr * layoutCall = new ast::UntypedExpr( location,
2094 new ast::NameExpr( location, layoutofName( inst->base ) ),
2095 {
2096 new ast::AddressExpr(
2097 new ast::VariableExpr( location, sizeofVar ) ),
2098 new ast::AddressExpr(
2099 new ast::VariableExpr( location, alignofVar ) ),
2100 } );
2101
2102 addSTypeParamsToLayoutCall( layoutCall, sizedParams );
2103
2104 stmtsToAddBefore.emplace_back(
2105 new ast::ExprStmt( location, layoutCall ) );
2106
2107 return true;
2108 }
2109 return false;
2110}
2111
2112void PolyGenericCalculator::addSTypeParamsToLayoutCall(
2113 ast::UntypedExpr * layoutCall,
2114 const ast::vector<ast::Type> & otypeParams ) {
2115 CodeLocation const & location = layoutCall->location;
2116 ast::vector<ast::Expr> & args = layoutCall->args;
2117 for ( ast::ptr<ast::Type> const & param : otypeParams ) {
2118 if ( findGeneric( location, param ) ) {
2119 // Push size/align vars for a generic parameter back.
2120 std::string paramName = Mangle::mangleType( param );
2121 args.emplace_back(
2122 new ast::NameExpr( location, sizeofName( paramName ) ) );
2123 args.emplace_back(
2124 new ast::NameExpr( location, alignofName( paramName ) ) );
2125 } else {
2126 args.emplace_back(
2127 new ast::SizeofExpr( location, ast::deepCopy( param ) ) );
2128 args.emplace_back(
2129 new ast::AlignofExpr( location, ast::deepCopy( param ) ) );
2130 }
2131 }
2132}
2133
2134void PolyGenericCalculator::mutateMembers( ast::AggregateDecl * aggr ) {
2135 std::set<std::string> genericParams;
2136 for ( ast::ptr<ast::TypeDecl> const & decl : aggr->params ) {
2137 genericParams.insert( decl->name );
2138 }
2139 for ( ast::ptr<ast::Decl> & decl : aggr->members ) {
2140 auto field = decl.as<ast::ObjectDecl>();
2141 if ( nullptr == field ) continue;
2142
2143 ast::Type const * type = replaceTypeInst( field->type, typeSubs );
2144 auto typeInst = dynamic_cast<ast::TypeInstType const *>( type );
2145 if ( nullptr == typeInst ) continue;
2146
2147 // Do not try to monoporphize generic parameters.
2148 if ( scopeTypeVars.contains( ast::TypeEnvKey( *typeInst ) ) &&
2149 !genericParams.count( typeInst->name ) ) {
2150 // Polymorphic aggregate members should be converted into
2151 // monomorphic members. Using char[size_T] here respects
2152 // the expected sizing rules of an aggregate type.
2153 decl = ast::mutate_field( field, &ast::ObjectDecl::type,
2154 polyToMonoType( field->location, field->type ) );
2155 }
2156 }
2157}
2158
2159ast::Expr const * PolyGenericCalculator::genSizeof(
2160 CodeLocation const & location, ast::Type const * type ) {
2161 if ( auto * array = dynamic_cast<ast::ArrayType const *>( type ) ) {
2162 // Generate calculated size for possibly generic array.
2163 ast::Expr const * sizeofBase = genSizeof( location, array->base );
2164 if ( nullptr == sizeofBase ) return nullptr;
2165 ast::Expr const * dim = array->dimension;
2166 return makeOp( location, "?*?", sizeofBase, dim );
2167 } else if ( findGeneric( location, type ) ) {
2168 // Generate calculated size for generic type.
2169 return new ast::NameExpr( location, sizeofName(
2170 Mangle::mangleType( type ) ) );
2171 } else {
2172 return nullptr;
2173 }
2174}
2175
2176void PolyGenericCalculator::beginTypeScope( ast::Type const * type ) {
2177 GuardScope( scopeTypeVars );
2178 makeTypeVarMap( type, scopeTypeVars );
2179}
2180
2181// --------------------------------------------------------------------------
2182/// Removes unneeded or incorrect type information.
2183/// * Replaces initialization of polymorphic values with alloca.
2184/// * Replaces declaration of dtype/ftype with appropriate void expression.
2185/// * Replaces sizeof expressions of polymorphic types with a variable.
2186/// * Strips fields from generic structure declarations.
2187struct Eraser final :
2188 public ast::WithGuards {
2189 void guardTypeVarMap( ast::Type const * type ) {
2190 GuardScope( scopeTypeVars );
2191 makeTypeVarMap( type, scopeTypeVars );
2192 }
2193
2194 ast::ObjectDecl const * previsit( ast::ObjectDecl const * decl );
2195 ast::FunctionDecl const * previsit( ast::FunctionDecl const * decl );
2196 ast::FunctionDecl const * postvisit( ast::FunctionDecl const * decl );
2197 ast::TypedefDecl const * previsit( ast::TypedefDecl const * decl );
2198 ast::StructDecl const * previsit( ast::StructDecl const * decl );
2199 ast::UnionDecl const * previsit( ast::UnionDecl const * decl );
2200 void previsit( ast::TypeDecl const * decl );
2201 void previsit( ast::PointerType const * type );
2202 void previsit( ast::FunctionType const * type );
2203public:
2204 TypeVarMap scopeTypeVars;
2205};
2206
2207ast::ObjectDecl const * Eraser::previsit( ast::ObjectDecl const * decl ) {
2208 guardTypeVarMap( decl->type );
2209 return scrubAllTypeVars( decl );
2210}
2211
2212ast::FunctionDecl const * Eraser::previsit( ast::FunctionDecl const * decl ) {
2213 guardTypeVarMap( decl->type );
2214 return scrubAllTypeVars( decl );
2215}
2216
2217ast::FunctionDecl const * Eraser::postvisit( ast::FunctionDecl const * decl ) {
2218 if ( decl->type_params.empty() ) return decl;
2219 auto mutDecl = mutate( decl );
2220 mutDecl->type_params.clear();
2221 return mutDecl;
2222}
2223
2224ast::TypedefDecl const * Eraser::previsit( ast::TypedefDecl const * decl ) {
2225 guardTypeVarMap( decl->base );
2226 return scrubAllTypeVars( decl );
2227}
2228
2229/// Strips the members from a generic aggregate.
2230template<typename node_t>
2231node_t const * stripGenericMembers( node_t const * decl ) {
2232 if ( decl->params.empty() ) return decl;
2233 auto mutDecl = ast::mutate( decl );
2234 mutDecl->members.clear();
2235 return mutDecl;
2236}
2237
2238ast::StructDecl const * Eraser::previsit( ast::StructDecl const * decl ) {
2239 return stripGenericMembers( decl );
2240}
2241
2242ast::UnionDecl const * Eraser::previsit( ast::UnionDecl const * decl ) {
2243 return stripGenericMembers( decl );
2244}
2245
2246void Eraser::previsit( ast::TypeDecl const * decl ) {
2247 addToTypeVarMap( decl, scopeTypeVars );
2248}
2249
2250void Eraser::previsit( ast::PointerType const * type ) {
2251 guardTypeVarMap( type );
2252}
2253
2254void Eraser::previsit( ast::FunctionType const * type ) {
2255 guardTypeVarMap( type );
2256}
2257
2258} // namespace
2259
2260// --------------------------------------------------------------------------
2261void box( ast::TranslationUnit & translationUnit ) {
2262 ast::Pass<LayoutFunctionBuilder>::run( translationUnit );
2263 ast::Pass<CallAdapter>::run( translationUnit );
2264 ast::Pass<DeclAdapter>::run( translationUnit );
2265 ast::Pass<RewireAdapters>::run( translationUnit );
2266 ast::Pass<PolyGenericCalculator>::run( translationUnit );
2267 ast::Pass<Eraser>::run( translationUnit );
2268}
2269
2270} // namespace GenPoly
2271
2272// Local Variables: //
2273// tab-width: 4 //
2274// mode: c++ //
2275// compile-command: "make install" //
2276// End: //
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