source: src/InitTweak/InitTweak.cc@ 292642a

ADT arm-eh ast-experimental cleanup-dtors enum forall-pointer-decay jacob/cs343-translation jenkins-sandbox new-ast new-ast-unique-expr pthread-emulation qualifiedEnum
Last change on this file since 292642a was 77bfc80, checked in by Thierry Delisle <tdelisle@…>, 6 years ago

Fixed some warnings and better messaging for unimplemented stubs

  • Property mode set to 100644
File size: 26.6 KB
RevLine 
[d180746]1#include <algorithm> // for find, all_of
[e3e16bc]2#include <cassert> // for assertf, assert, strict_dynamic_cast
[d180746]3#include <iostream> // for ostream, cerr, endl
4#include <iterator> // for back_insert_iterator, back_inserter
5#include <memory> // for __shared_ptr
6
[9b4f329]7#include "AST/Expr.hpp"
8#include "AST/Stmt.hpp"
[9e1d485]9#include "AST/Type.hpp"
[fd236ed]10#include "Common/PassVisitor.h"
[d180746]11#include "Common/SemanticError.h" // for SemanticError
12#include "Common/UniqueName.h" // for UniqueName
13#include "Common/utility.h" // for toString, deleteAll, maybeClone
14#include "GenPoly/GenPoly.h" // for getFunctionType
[2b46a13]15#include "InitTweak.h"
[d180746]16#include "Parser/LinkageSpec.h" // for Spec, isBuiltin, Intrinsic
17#include "ResolvExpr/typeops.h" // for typesCompatibleIgnoreQualifiers
[f5c3b6c]18#include "SymTab/Autogen.h"
[d180746]19#include "SymTab/Indexer.h" // for Indexer
20#include "SynTree/Attribute.h" // for Attribute
21#include "SynTree/Constant.h" // for Constant
22#include "SynTree/Declaration.h" // for ObjectDecl, DeclarationWithType
23#include "SynTree/Expression.h" // for Expression, UntypedExpr, Applicati...
24#include "SynTree/Initializer.h" // for Initializer, ListInit, Designation
[ba3706f]25#include "SynTree/Label.h" // for Label
[d180746]26#include "SynTree/Statement.h" // for CompoundStmt, ExprStmt, BranchStmt
27#include "SynTree/Type.h" // for FunctionType, ArrayType, PointerType
28#include "SynTree/Visitor.h" // for Visitor, maybeAccept
[29bc63e]29#include "Tuples/Tuples.h" // for Tuples::isTtype
[d180746]30
[2b46a13]31namespace InitTweak {
[64071c2]32 namespace {
[1fbeebd]33 struct HasDesignations : public WithShortCircuiting {
[64071c2]34 bool hasDesignations = false;
[fd236ed]35
36 void previsit( BaseSyntaxNode * ) {
37 // short circuit if we already know there are designations
38 if ( hasDesignations ) visit_children = false;
39 }
40
41 void previsit( Designation * des ) {
42 // short circuit if we already know there are designations
43 if ( hasDesignations ) visit_children = false;
44 else if ( ! des->get_designators().empty() ) {
45 hasDesignations = true;
46 visit_children = false;
47 }
[64071c2]48 }
49 };
[2b46a13]50
[ef3d798]51 struct InitDepthChecker : public WithGuards {
[dcd73d1]52 bool depthOkay = true;
53 Type * type;
54 int curDepth = 0, maxDepth = 0;
55 InitDepthChecker( Type * type ) : type( type ) {
56 Type * t = type;
57 while ( ArrayType * at = dynamic_cast< ArrayType * >( t ) ) {
58 maxDepth++;
59 t = at->get_base();
60 }
61 maxDepth++;
62 }
[ef3d798]63 void previsit( ListInit * ) {
[dcd73d1]64 curDepth++;
[ef3d798]65 GuardAction( [this]() { curDepth--; } );
[dcd73d1]66 if ( curDepth > maxDepth ) depthOkay = false;
67 }
68 };
69
[c3f551b]70 struct InitFlattener : public WithShortCircuiting {
71 void previsit( SingleInit * singleInit ) {
72 visit_children = false;
73 argList.push_back( singleInit->value->clone() );
74 }
[64071c2]75 std::list< Expression * > argList;
76 };
[2b46a13]77
[64071c2]78 }
[2b46a13]79
[64071c2]80 std::list< Expression * > makeInitList( Initializer * init ) {
[c3f551b]81 PassVisitor<InitFlattener> flattener;
[4d2434a]82 maybeAccept( init, flattener );
[c3f551b]83 return flattener.pass.argList;
[64071c2]84 }
[2b46a13]85
[64071c2]86 bool isDesignated( Initializer * init ) {
[fd236ed]87 PassVisitor<HasDesignations> finder;
[64071c2]88 maybeAccept( init, finder );
[fd236ed]89 return finder.pass.hasDesignations;
[dcd73d1]90 }
91
92 bool checkInitDepth( ObjectDecl * objDecl ) {
[ef3d798]93 PassVisitor<InitDepthChecker> checker( objDecl->type );
94 maybeAccept( objDecl->init, checker );
95 return checker.pass.depthOkay;
[64071c2]96 }
[2b46a13]97
[39f84a4]98 class InitExpander::ExpanderImpl {
99 public:
[3351cc0]100 virtual ~ExpanderImpl() = default;
[39f84a4]101 virtual std::list< Expression * > next( std::list< Expression * > & indices ) = 0;
[4d2434a]102 virtual Statement * buildListInit( UntypedExpr * callExpr, std::list< Expression * > & indices ) = 0;
[39f84a4]103 };
104
105 class InitImpl : public InitExpander::ExpanderImpl {
106 public:
[4d2434a]107 InitImpl( Initializer * init ) : init( init ) {}
[bd41764]108 virtual ~InitImpl() = default;
[39f84a4]109
[7e003011]110 virtual std::list< Expression * > next( __attribute((unused)) std::list< Expression * > & indices ) {
[39f84a4]111 // this is wrong, but just a placeholder for now
[4d2434a]112 // if ( ! flattened ) flatten( indices );
113 // return ! inits.empty() ? makeInitList( inits.front() ) : std::list< Expression * >();
114 return makeInitList( init );
[39f84a4]115 }
[4d2434a]116
117 virtual Statement * buildListInit( UntypedExpr * callExpr, std::list< Expression * > & indices );
[39f84a4]118 private:
[4d2434a]119 Initializer * init;
[39f84a4]120 };
121
122 class ExprImpl : public InitExpander::ExpanderImpl {
123 public:
124 ExprImpl( Expression * expr ) : arg( expr ) {}
[bd41764]125 virtual ~ExprImpl() { delete arg; }
[9b4c936]126
[39f84a4]127 virtual std::list< Expression * > next( std::list< Expression * > & indices ) {
128 std::list< Expression * > ret;
129 Expression * expr = maybeClone( arg );
130 if ( expr ) {
131 for ( std::list< Expression * >::reverse_iterator it = indices.rbegin(); it != indices.rend(); ++it ) {
132 // go through indices and layer on subscript exprs ?[?]
133 ++it;
134 UntypedExpr * subscriptExpr = new UntypedExpr( new NameExpr( "?[?]") );
135 subscriptExpr->get_args().push_back( expr );
136 subscriptExpr->get_args().push_back( (*it)->clone() );
137 expr = subscriptExpr;
138 }
139 ret.push_back( expr );
140 }
141 return ret;
142 }
[4d2434a]143
144 virtual Statement * buildListInit( UntypedExpr * callExpr, std::list< Expression * > & indices );
[39f84a4]145 private:
146 Expression * arg;
147 };
148
149 InitExpander::InitExpander( Initializer * init ) : expander( new InitImpl( init ) ) {}
150
151 InitExpander::InitExpander( Expression * expr ) : expander( new ExprImpl( expr ) ) {}
152
153 std::list< Expression * > InitExpander::operator*() {
154 return cur;
155 }
156
157 InitExpander & InitExpander::operator++() {
158 cur = expander->next( indices );
159 return *this;
160 }
161
162 // use array indices list to build switch statement
163 void InitExpander::addArrayIndex( Expression * index, Expression * dimension ) {
164 indices.push_back( index );
165 indices.push_back( dimension );
166 }
167
[4d2434a]168 void InitExpander::clearArrayIndices() {
[9b4c936]169 deleteAll( indices );
[4d2434a]170 indices.clear();
[1a5ad8c]171 }
172
173 bool InitExpander::addReference() {
174 bool added = false;
175 for ( Expression *& expr : cur ) {
176 expr = new AddressExpr( expr );
177 added = true;
178 }
179 return added;
[4d2434a]180 }
181
182 namespace {
[f9cebb5]183 /// given index i, dimension d, initializer init, and callExpr f, generates
184 /// if (i < d) f(..., init)
185 /// ++i;
186 /// so that only elements within the range of the array are constructed
[4d2434a]187 template< typename OutIterator >
[f9cebb5]188 void buildCallExpr( UntypedExpr * callExpr, Expression * index, Expression * dimension, Initializer * init, OutIterator out ) {
[4d2434a]189 UntypedExpr * cond = new UntypedExpr( new NameExpr( "?<?") );
190 cond->get_args().push_back( index->clone() );
191 cond->get_args().push_back( dimension->clone() );
192
193 std::list< Expression * > args = makeInitList( init );
194 callExpr->get_args().splice( callExpr->get_args().end(), args );
195
[ba3706f]196 *out++ = new IfStmt( cond, new ExprStmt( callExpr ), nullptr );
[4d2434a]197
198 UntypedExpr * increment = new UntypedExpr( new NameExpr( "++?" ) );
[175ad32b]199 increment->get_args().push_back( index->clone() );
[ba3706f]200 *out++ = new ExprStmt( increment );
[4d2434a]201 }
202
203 template< typename OutIterator >
204 void build( UntypedExpr * callExpr, InitExpander::IndexList::iterator idx, InitExpander::IndexList::iterator idxEnd, Initializer * init, OutIterator out ) {
205 if ( idx == idxEnd ) return;
206 Expression * index = *idx++;
207 assert( idx != idxEnd );
208 Expression * dimension = *idx++;
209
[f9cebb5]210 // xxx - may want to eventually issue a warning here if we can detect
211 // that the number of elements exceeds to dimension of the array
[4d2434a]212 if ( idx == idxEnd ) {
213 if ( ListInit * listInit = dynamic_cast< ListInit * >( init ) ) {
214 for ( Initializer * init : *listInit ) {
[f9cebb5]215 buildCallExpr( callExpr->clone(), index, dimension, init, out );
[4d2434a]216 }
217 } else {
[f9cebb5]218 buildCallExpr( callExpr->clone(), index, dimension, init, out );
[4d2434a]219 }
220 } else {
221 std::list< Statement * > branches;
222
223 unsigned long cond = 0;
224 ListInit * listInit = dynamic_cast< ListInit * >( init );
225 if ( ! listInit ) {
226 // xxx - this shouldn't be an error, but need a way to
227 // terminate without creating output, so should catch this error
[a16764a6]228 SemanticError( init->location, "unbalanced list initializers" );
[4d2434a]229 }
[f9cebb5]230
231 static UniqueName targetLabel( "L__autogen__" );
232 Label switchLabel( targetLabel.newName(), 0, std::list< Attribute * >{ new Attribute("unused") } );
[4d2434a]233 for ( Initializer * init : *listInit ) {
234 Expression * condition;
235 // check for designations
236 // if ( init-> ) {
237 condition = new ConstantExpr( Constant::from_ulong( cond ) );
238 ++cond;
239 // } else {
240 // condition = // ... take designation
241 // cond = // ... take designation+1
242 // }
243 std::list< Statement * > stmts;
244 build( callExpr, idx, idxEnd, init, back_inserter( stmts ) );
[ba3706f]245 stmts.push_back( new BranchStmt( switchLabel, BranchStmt::Break ) );
246 CaseStmt * caseStmt = new CaseStmt( condition, stmts );
[4d2434a]247 branches.push_back( caseStmt );
248 }
[ba3706f]249 *out++ = new SwitchStmt( index->clone(), branches );
250 *out++ = new NullStmt( { switchLabel } );
[4d2434a]251 }
252 }
253 }
254
255 // if array came with an initializer list: initialize each element
256 // may have more initializers than elements in the array - need to check at each index that
257 // we haven't exceeded size.
258 // may have fewer initializers than elements in the array - need to default construct
259 // remaining elements.
260 // To accomplish this, generate switch statement, consuming all of expander's elements
261 Statement * InitImpl::buildListInit( UntypedExpr * dst, std::list< Expression * > & indices ) {
[22bc276]262 if ( ! init ) return nullptr;
[ba3706f]263 CompoundStmt * block = new CompoundStmt();
[f9cebb5]264 build( dst, indices.begin(), indices.end(), init, back_inserter( block->get_kids() ) );
265 if ( block->get_kids().empty() ) {
266 delete block;
[22bc276]267 return nullptr;
[4d2434a]268 } else {
[22bc276]269 init = nullptr; // init was consumed in creating the list init
[f9cebb5]270 return block;
[4d2434a]271 }
[39f84a4]272 }
273
[22bc276]274 Statement * ExprImpl::buildListInit( UntypedExpr *, std::list< Expression * > & ) {
275 return nullptr;
[4d2434a]276 }
277
278 Statement * InitExpander::buildListInit( UntypedExpr * dst ) {
279 return expander->buildListInit( dst, indices );
280 }
281
[549c006]282 Type * getTypeofThis( FunctionType * ftype ) {
283 assertf( ftype, "getTypeofThis: nullptr ftype" );
284 ObjectDecl * thisParam = getParamThis( ftype );
[7fc7cdb]285 ReferenceType * refType = strict_dynamic_cast< ReferenceType * >( thisParam->type );
286 return refType->base;
287 }
288
[549c006]289 ObjectDecl * getParamThis( FunctionType * ftype ) {
290 assertf( ftype, "getParamThis: nullptr ftype" );
[7fc7cdb]291 auto & params = ftype->parameters;
[549c006]292 assertf( ! params.empty(), "getParamThis: ftype with 0 parameters: %s", toString( ftype ).c_str() );
[7fc7cdb]293 return strict_dynamic_cast< ObjectDecl * >( params.front() );
294 }
295
[22bc276]296 bool tryConstruct( DeclarationWithType * dwt ) {
297 ObjectDecl * objDecl = dynamic_cast< ObjectDecl * >( dwt );
298 if ( ! objDecl ) return false;
[df7a162]299 return (objDecl->get_init() == nullptr ||
[22bc276]300 ( objDecl->get_init() != nullptr && objDecl->get_init()->get_maybeConstructed() ))
301 && ! objDecl->get_storageClasses().is_extern
[29bc63e]302 && isConstructable( objDecl->type );
303 }
304
305 bool isConstructable( Type * type ) {
306 return ! dynamic_cast< VarArgsType * >( type ) && ! dynamic_cast< ReferenceType * >( type ) && ! dynamic_cast< FunctionType * >( type ) && ! Tuples::isTtype( type );
[64071c2]307 }
[2b46a13]308
[0a6aad4]309 struct CallFinder {
[4d2434a]310 CallFinder( const std::list< std::string > & names ) : names( names ) {}
311
[0a6aad4]312 void postvisit( ApplicationExpr * appExpr ) {
[4d2434a]313 handleCallExpr( appExpr );
314 }
315
[0a6aad4]316 void postvisit( UntypedExpr * untypedExpr ) {
[4d2434a]317 handleCallExpr( untypedExpr );
318 }
319
320 std::list< Expression * > * matches;
321 private:
322 const std::list< std::string > names;
323
324 template< typename CallExpr >
325 void handleCallExpr( CallExpr * expr ) {
326 std::string fname = getFunctionName( expr );
327 if ( std::find( names.begin(), names.end(), fname ) != names.end() ) {
328 matches->push_back( expr );
[cad355a]329 }
[64071c2]330 }
[4d2434a]331 };
332
333 void collectCtorDtorCalls( Statement * stmt, std::list< Expression * > & matches ) {
[0a6aad4]334 static PassVisitor<CallFinder> finder( std::list< std::string >{ "?{}", "^?{}" } );
335 finder.pass.matches = &matches;
[4d2434a]336 maybeAccept( stmt, finder );
[64071c2]337 }
[4d2434a]338
339 Expression * getCtorDtorCall( Statement * stmt ) {
340 std::list< Expression * > matches;
341 collectCtorDtorCalls( stmt, matches );
342 assert( matches.size() <= 1 );
[22bc276]343 return matches.size() == 1 ? matches.front() : nullptr;
[4d2434a]344 }
345
[aedfd91]346 namespace {
[599b386]347 DeclarationWithType * getCalledFunction( Expression * expr );
348
349 template<typename CallExpr>
350 DeclarationWithType * handleDerefCalledFunction( CallExpr * expr ) {
351 // (*f)(x) => should get "f"
352 std::string name = getFunctionName( expr );
353 assertf( name == "*?", "Unexpected untyped expression: %s", name.c_str() );
[b128d3e]354 assertf( ! expr->get_args().empty(), "Cannot get called function from dereference with no arguments" );
[599b386]355 return getCalledFunction( expr->get_args().front() );
356 }
357
[ee1635c8]358 DeclarationWithType * getCalledFunction( Expression * expr ) {
359 assert( expr );
360 if ( VariableExpr * varExpr = dynamic_cast< VariableExpr * >( expr ) ) {
[6fc5c14]361 return varExpr->var;
[ee1635c8]362 } else if ( MemberExpr * memberExpr = dynamic_cast< MemberExpr * >( expr ) ) {
[6fc5c14]363 return memberExpr->member;
[ee1635c8]364 } else if ( CastExpr * castExpr = dynamic_cast< CastExpr * >( expr ) ) {
[6fc5c14]365 return getCalledFunction( castExpr->arg );
[599b386]366 } else if ( UntypedExpr * untypedExpr = dynamic_cast< UntypedExpr * >( expr ) ) {
367 return handleDerefCalledFunction( untypedExpr );
368 } else if ( ApplicationExpr * appExpr = dynamic_cast< ApplicationExpr * > ( expr ) ) {
369 return handleDerefCalledFunction( appExpr );
[f3b0a07]370 } else if ( AddressExpr * addrExpr = dynamic_cast< AddressExpr * >( expr ) ) {
[6fc5c14]371 return getCalledFunction( addrExpr->arg );
372 } else if ( CommaExpr * commaExpr = dynamic_cast< CommaExpr * >( expr ) ) {
373 return getCalledFunction( commaExpr->arg2 );
[ee1635c8]374 }
375 return nullptr;
[aedfd91]376 }
377 }
[70f89d00]378
[b7b8674]379 DeclarationWithType * getFunction( Expression * expr ) {
380 if ( ApplicationExpr * appExpr = dynamic_cast< ApplicationExpr * >( expr ) ) {
381 return getCalledFunction( appExpr->get_function() );
382 } else if ( UntypedExpr * untyped = dynamic_cast< UntypedExpr * > ( expr ) ) {
383 return getCalledFunction( untyped->get_function() );
384 }
385 assertf( false, "getFunction received unknown expression: %s", toString( expr ).c_str() );
386 }
387
[aedfd91]388 ApplicationExpr * isIntrinsicCallExpr( Expression * expr ) {
389 ApplicationExpr * appExpr = dynamic_cast< ApplicationExpr * >( expr );
[22bc276]390 if ( ! appExpr ) return nullptr;
[ee1635c8]391 DeclarationWithType * function = getCalledFunction( appExpr->get_function() );
[f3b0a07]392 assertf( function, "getCalledFunction returned nullptr: %s", toString( appExpr->get_function() ).c_str() );
[64071c2]393 // check for Intrinsic only - don't want to remove all overridable ctor/dtors because autogenerated ctor/dtor
394 // will call all member dtors, and some members may have a user defined dtor.
[22bc276]395 return function->get_linkage() == LinkageSpec::Intrinsic ? appExpr : nullptr;
[aedfd91]396 }
397
[a465caff]398 namespace {
399 template <typename Predicate>
400 bool allofCtorDtor( Statement * stmt, const Predicate & pred ) {
401 std::list< Expression * > callExprs;
402 collectCtorDtorCalls( stmt, callExprs );
403 // if ( callExprs.empty() ) return false; // xxx - do I still need this check?
404 return std::all_of( callExprs.begin(), callExprs.end(), pred);
405 }
406 }
407
[f9cebb5]408 bool isIntrinsicSingleArgCallStmt( Statement * stmt ) {
[a465caff]409 return allofCtorDtor( stmt, []( Expression * callExpr ){
[4d2434a]410 if ( ApplicationExpr * appExpr = isIntrinsicCallExpr( callExpr ) ) {
[f072892]411 FunctionType *funcType = GenPoly::getFunctionType( appExpr->function->result );
[4d2434a]412 assert( funcType );
413 return funcType->get_parameters().size() == 1;
414 }
415 return false;
416 });
[64071c2]417 }
[f1b1e4c]418
[a465caff]419 bool isIntrinsicCallStmt( Statement * stmt ) {
420 return allofCtorDtor( stmt, []( Expression * callExpr ) {
421 return isIntrinsicCallExpr( callExpr );
422 });
423 }
424
[64071c2]425 namespace {
426 template<typename CallExpr>
427 Expression *& callArg( CallExpr * callExpr, unsigned int pos ) {
[a61ad31]428 if ( pos >= callExpr->get_args().size() ) assertf( false, "getCallArg for argument that doesn't exist: (%u); %s.", pos, toString( callExpr ).c_str() );
[64071c2]429 for ( Expression *& arg : callExpr->get_args() ) {
430 if ( pos == 0 ) return arg;
431 pos--;
432 }
433 assert( false );
434 }
[9b4f329]435
436 // template<typename CallExpr>
437 // const ast::Expr * callArg( const CallExpr * call, unsigned int pos ) {
438 // if( pos >= call->args.size() ) {
[77bfc80]439 // assertf( false, "getCallArg for argument that doesn't exist: (%u); %s.",
[9b4f329]440 // pos, toString( call ).c_str() );
441 // }
442 // for ( const ast::Expr * arg : call->args ) {
443 // if ( pos == 0 ) return arg;
444 // --pos;
445 // }
446 // assert( false );
447 // }
[64071c2]448 }
[f1b1e4c]449
[64071c2]450 Expression *& getCallArg( Expression * callExpr, unsigned int pos ) {
451 if ( ApplicationExpr * appExpr = dynamic_cast< ApplicationExpr * >( callExpr ) ) {
452 return callArg( appExpr, pos );
453 } else if ( UntypedExpr * untypedExpr = dynamic_cast< UntypedExpr * >( callExpr ) ) {
454 return callArg( untypedExpr, pos );
[f3b0a07]455 } else if ( TupleAssignExpr * tupleExpr = dynamic_cast< TupleAssignExpr * > ( callExpr ) ) {
456 std::list< Statement * > & stmts = tupleExpr->get_stmtExpr()->get_statements()->get_kids();
457 assertf( ! stmts.empty(), "TupleAssignExpr somehow has no statements." );
[e3e16bc]458 ExprStmt * stmt = strict_dynamic_cast< ExprStmt * >( stmts.back() );
459 TupleExpr * tuple = strict_dynamic_cast< TupleExpr * >( stmt->get_expr() );
[f3b0a07]460 assertf( ! tuple->get_exprs().empty(), "TupleAssignExpr somehow has empty tuple expr." );
461 return getCallArg( tuple->get_exprs().front(), pos );
[62a05d1]462 } else if ( ImplicitCopyCtorExpr * copyCtor = dynamic_cast< ImplicitCopyCtorExpr * >( callExpr ) ) {
463 return getCallArg( copyCtor->callExpr, pos );
[64071c2]464 } else {
[f3b0a07]465 assertf( false, "Unexpected expression type passed to getCallArg: %s", toString( callExpr ).c_str() );
[64071c2]466 }
467 }
[9b4f329]468 const ast::Expr * getCallArg( const ast::Expr * call, unsigned pos ) {
[77bfc80]469 (void)call;
470 (void)pos;
471 #warning unimplemented; needs to build AST/Expr.cpp
472 assertf(false, "unimplemented; needs to build AST/Expr.cpp");
[9b4f329]473 // if ( auto app = dynamic_cast< const ast::ApplicationExpr * >( call ) ) {
474 // return callArg( app, pos );
475 // } else if ( auto untyped = dynamic_cast< const ast::UntypedExpr * >( call ) ) {
476 // return callArg( untyped, pos );
477 // } else if ( auto tupleAssn = dynamic_cast< const ast::TupleAssignExpr * >( call ) ) {
478 // const std::list<ast::ptr<ast::Stmt>>& stmts = tupleAssn->stmtExpr->stmts->kids;
479 // assertf( ! stmts.empty(), "TupleAssignExpr missing statements." );
480 // const ExprStmt * stmt = strict_dynamic_cast< const ast::ExprStmt * >( stmts.back() );
481 // const TupleExpr * tuple = strict_dynamic_cast< const ast::TupleExpr * >( stmt->expr );
482 // assertf( ! tuple->exprs.empty(), "TupleAssignExpr has empty tuple expr.");
483 // return getCallArg( tuple->exprs.front(), pos );
484 // } else if ( auto ctor = dynamic_cast< const ast::ImplicitCopyCtorExpr * >( call ) ) {
485 // return getCallArg( ctor->callExpr, pos );
486 // } else {
[77bfc80]487 // assertf( false, "Unexpected expression type passed to getCallArg: %s",
[9b4f329]488 // toString( call ).c_str() );
489 // }
490 }
[f1b1e4c]491
[64071c2]492 namespace {
[599b386]493 std::string funcName( Expression * func );
494
495 template<typename CallExpr>
496 std::string handleDerefName( CallExpr * expr ) {
497 // (*f)(x) => should get name "f"
498 std::string name = getFunctionName( expr );
499 assertf( name == "*?", "Unexpected untyped expression: %s", name.c_str() );
[b128d3e]500 assertf( ! expr->get_args().empty(), "Cannot get function name from dereference with no arguments" );
[599b386]501 return funcName( expr->get_args().front() );
502 }
503
[c738ca4]504 std::string funcName( Expression * func ) {
[64071c2]505 if ( NameExpr * nameExpr = dynamic_cast< NameExpr * >( func ) ) {
506 return nameExpr->get_name();
507 } else if ( VariableExpr * varExpr = dynamic_cast< VariableExpr * >( func ) ) {
508 return varExpr->get_var()->get_name();
[c738ca4]509 } else if ( CastExpr * castExpr = dynamic_cast< CastExpr * >( func ) ) {
510 return funcName( castExpr->get_arg() );
[ee1635c8]511 } else if ( MemberExpr * memberExpr = dynamic_cast< MemberExpr * >( func ) ) {
512 return memberExpr->get_member()->get_name();
[96a10cdd]513 } else if ( UntypedMemberExpr * memberExpr = dynamic_cast< UntypedMemberExpr * > ( func ) ) {
[fd782b2]514 return funcName( memberExpr->get_member() );
[599b386]515 } else if ( UntypedExpr * untypedExpr = dynamic_cast< UntypedExpr * >( func ) ) {
516 return handleDerefName( untypedExpr );
517 } else if ( ApplicationExpr * appExpr = dynamic_cast< ApplicationExpr * >( func ) ) {
518 return handleDerefName( appExpr );
[19a9822]519 } else if ( ConstructorExpr * ctorExpr = dynamic_cast< ConstructorExpr * >( func ) ) {
520 return funcName( getCallArg( ctorExpr->get_callExpr(), 0 ) );
[64071c2]521 } else {
[19a9822]522 assertf( false, "Unexpected expression type being called as a function in call expression: %s", toString( func ).c_str() );
[64071c2]523 }
524 }
525 }
[70f89d00]526
[64071c2]527 std::string getFunctionName( Expression * expr ) {
[599b386]528 // there's some unforunate overlap here with getCalledFunction. Ideally this would be able to use getCalledFunction and
529 // return the name of the DeclarationWithType, but this needs to work for NameExpr and UntypedMemberExpr, where getCalledFunction
530 // can't possibly do anything reasonable.
[64071c2]531 if ( ApplicationExpr * appExpr = dynamic_cast< ApplicationExpr * >( expr ) ) {
[c738ca4]532 return funcName( appExpr->get_function() );
[64071c2]533 } else if ( UntypedExpr * untypedExpr = dynamic_cast< UntypedExpr * > ( expr ) ) {
[c738ca4]534 return funcName( untypedExpr->get_function() );
[64071c2]535 } else {
[c738ca4]536 std::cerr << expr << std::endl;
[d1969a6]537 assertf( false, "Unexpected expression type passed to getFunctionName" );
[64071c2]538 }
539 }
[10a7775]540
[64071c2]541 Type * getPointerBase( Type * type ) {
542 if ( PointerType * ptrType = dynamic_cast< PointerType * >( type ) ) {
543 return ptrType->get_base();
544 } else if ( ArrayType * arrayType = dynamic_cast< ArrayType * >( type ) ) {
545 return arrayType->get_base();
[ce8c12f]546 } else if ( ReferenceType * refType = dynamic_cast< ReferenceType * >( type ) ) {
547 return refType->get_base();
[64071c2]548 } else {
[22bc276]549 return nullptr;
[64071c2]550 }
551 }
[9e1d485]552 const ast::Type* getPointerBase( const ast::Type* t ) {
[77bfc80]553 (void)t;
554 #warning needs to build Type.cpp before inclusion
555 assertf(false, "needs to build Type.cpp before inclusion");
[9b4f329]556 // if ( const auto * p = dynamic_cast< const ast::PointerType * >( t ) ) {
[3648d98]557 // return p->base;
[9b4f329]558 // } else if ( const auto * a = dynamic_cast< const ast::ArrayType * >( t ) ) {
[3648d98]559 // return a->base;
[9b4f329]560 // } else if ( const auto * r = dynamic_cast< const ast::ReferenceType * >( t ) ) {
[3648d98]561 // return r->base;
562 // } else return nullptr;
[9e1d485]563 }
[10a7775]564
[64071c2]565 Type * isPointerType( Type * type ) {
566 if ( getPointerBase( type ) ) return type;
[22bc276]567 else return nullptr;
[64071c2]568 }
[40e636a]569
[f5c3b6c]570 ApplicationExpr * createBitwiseAssignment( Expression * dst, Expression * src ) {
571 static FunctionDecl * assign = nullptr;
572 if ( ! assign ) {
573 // temporary? Generate a fake assignment operator to represent bitwise assignments.
574 // This operator could easily exist as a real function, but it's tricky because nothing should resolve to this function.
575 TypeDecl * td = new TypeDecl( "T", noStorageClasses, nullptr, TypeDecl::Dtype, true );
576 assign = new FunctionDecl( "?=?", noStorageClasses, LinkageSpec::Intrinsic, SymTab::genAssignType( new TypeInstType( noQualifiers, td->name, td ) ), nullptr );
577 }
578 if ( dynamic_cast< ReferenceType * >( dst->result ) ) {
[5002738]579 for (int depth = dst->result->referenceDepth(); depth > 0; depth--) {
580 dst = new AddressExpr( dst );
581 }
[f5c3b6c]582 } else {
583 dst = new CastExpr( dst, new ReferenceType( noQualifiers, dst->result->clone() ) );
584 }
585 if ( dynamic_cast< ReferenceType * >( src->result ) ) {
[5002738]586 for (int depth = src->result->referenceDepth(); depth > 0; depth--) {
587 src = new AddressExpr( src );
588 }
[ba89e9b7]589 // src = new CastExpr( src, new ReferenceType( noQualifiers, src->result->stripReferences()->clone() ) );
[f5c3b6c]590 }
591 return new ApplicationExpr( VariableExpr::functionPointer( assign ), { dst, src } );
592 }
593
[c5f3c68]594 struct ConstExprChecker : public WithShortCircuiting {
595 // most expressions are not const expr
596 void previsit( Expression * ) { isConstExpr = false; visit_children = false; }
[40e636a]597
[c5f3c68]598 void previsit( AddressExpr *addressExpr ) {
599 visit_children = false;
[65dc863]600
[1ba88a0]601 // address of a variable or member expression is constexpr
602 Expression * arg = addressExpr->get_arg();
603 if ( ! dynamic_cast< NameExpr * >( arg) && ! dynamic_cast< VariableExpr * >( arg ) && ! dynamic_cast< MemberExpr * >( arg ) && ! dynamic_cast< UntypedMemberExpr * >( arg ) ) isConstExpr = false;
604 }
[c5f3c68]605
606 // these expressions may be const expr, depending on their children
607 void previsit( SizeofExpr * ) {}
608 void previsit( AlignofExpr * ) {}
609 void previsit( UntypedOffsetofExpr * ) {}
610 void previsit( OffsetofExpr * ) {}
611 void previsit( OffsetPackExpr * ) {}
612 void previsit( AttrExpr * ) {}
613 void previsit( CommaExpr * ) {}
614 void previsit( LogicalExpr * ) {}
615 void previsit( ConditionalExpr * ) {}
616 void previsit( CastExpr * ) {}
617 void previsit( ConstantExpr * ) {}
618
[caab997]619 void previsit( VariableExpr * varExpr ) {
620 visit_children = false;
621
622 if ( EnumInstType * inst = dynamic_cast< EnumInstType * >( varExpr->result ) ) {
623 long long int value;
624 if ( inst->baseEnum->valueOf( varExpr->var, value ) ) {
625 // enumerators are const expr
626 return;
627 }
628 }
629 isConstExpr = false;
630 }
631
[c5f3c68]632 bool isConstExpr = true;
[40e636a]633 };
634
635 bool isConstExpr( Expression * expr ) {
636 if ( expr ) {
[c5f3c68]637 PassVisitor<ConstExprChecker> checker;
[40e636a]638 expr->accept( checker );
[c5f3c68]639 return checker.pass.isConstExpr;
[40e636a]640 }
641 return true;
642 }
643
644 bool isConstExpr( Initializer * init ) {
645 if ( init ) {
[c5f3c68]646 PassVisitor<ConstExprChecker> checker;
[40e636a]647 init->accept( checker );
[c5f3c68]648 return checker.pass.isConstExpr;
[40e636a]649 } // if
650 // for all intents and purposes, no initializer means const expr
651 return true;
652 }
653
[79970ed]654 bool isConstructor( const std::string & str ) { return str == "?{}"; }
655 bool isDestructor( const std::string & str ) { return str == "^?{}"; }
[ee1635c8]656 bool isAssignment( const std::string & str ) { return str == "?=?"; }
[79970ed]657 bool isCtorDtor( const std::string & str ) { return isConstructor( str ) || isDestructor( str ); }
[ee1635c8]658 bool isCtorDtorAssign( const std::string & str ) { return isCtorDtor( str ) || isAssignment( str ); }
[4d4882a]659
[ee1635c8]660 FunctionDecl * isCopyFunction( Declaration * decl, const std::string & fname ) {
[4d4882a]661 FunctionDecl * function = dynamic_cast< FunctionDecl * >( decl );
[0a267c1]662 if ( ! function ) return nullptr;
663 if ( function->name != fname ) return nullptr;
664 FunctionType * ftype = function->type;
665 if ( ftype->parameters.size() != 2 ) return nullptr;
[4d4882a]666
[ce8c12f]667 Type * t1 = getPointerBase( ftype->get_parameters().front()->get_type() );
[0a267c1]668 Type * t2 = ftype->parameters.back()->get_type();
[ce8c12f]669 assert( t1 );
[4d4882a]670
[ce8c12f]671 if ( ResolvExpr::typesCompatibleIgnoreQualifiers( t1, t2, SymTab::Indexer() ) ) {
[4d4882a]672 return function;
673 } else {
[ee1635c8]674 return nullptr;
[4d4882a]675 }
676 }
[ee1635c8]677
[207c7e1d]678 FunctionDecl * isAssignment( Declaration * decl ) {
679 return isCopyFunction( decl, "?=?" );
680 }
681 FunctionDecl * isDestructor( Declaration * decl ) {
682 if ( isDestructor( decl->get_name() ) ) {
683 return dynamic_cast< FunctionDecl * >( decl );
684 }
685 return nullptr;
686 }
687 FunctionDecl * isDefaultConstructor( Declaration * decl ) {
[0a267c1]688 if ( isConstructor( decl->name ) ) {
[207c7e1d]689 if ( FunctionDecl * func = dynamic_cast< FunctionDecl * >( decl ) ) {
[0a267c1]690 if ( func->type->parameters.size() == 1 ) {
[207c7e1d]691 return func;
692 }
693 }
694 }
695 return nullptr;
696 }
[ee1635c8]697 FunctionDecl * isCopyConstructor( Declaration * decl ) {
698 return isCopyFunction( decl, "?{}" );
699 }
[2b46a13]700}
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