1 //===--- PPExpressions.cpp - Preprocessor Expression Evaluation -----------===//
2 //
3 //                     The LLVM Compiler Infrastructure
4 //
5 // This file is distributed under the University of Illinois Open Source
6 // License. See LICENSE.TXT for details.
7 //
8 //===----------------------------------------------------------------------===//
9 //
10 // This file implements the Preprocessor::EvaluateDirectiveExpression method,
11 // which parses and evaluates integer constant expressions for #if directives.
12 //
13 //===----------------------------------------------------------------------===//
14 //
15 // FIXME: implement testing for #assert's.
16 //
17 //===----------------------------------------------------------------------===//
18 
19 #include "clang/Lex/Preprocessor.h"
20 #include "clang/Basic/TargetInfo.h"
21 #include "clang/Lex/CodeCompletionHandler.h"
22 #include "clang/Lex/LexDiagnostic.h"
23 #include "clang/Lex/LiteralSupport.h"
24 #include "clang/Lex/MacroInfo.h"
25 #include "llvm/ADT/APSInt.h"
26 #include "llvm/Support/ErrorHandling.h"
27 #include "llvm/Support/SaveAndRestore.h"
28 using namespace clang;
29 
30 namespace {
31 
32 /// PPValue - Represents the value of a subexpression of a preprocessor
33 /// conditional and the source range covered by it.
34 class PPValue {
35   SourceRange Range;
36 public:
37   llvm::APSInt Val;
38 
39   // Default ctor - Construct an 'invalid' PPValue.
40   PPValue(unsigned BitWidth) : Val(BitWidth) {}
41 
42   unsigned getBitWidth() const { return Val.getBitWidth(); }
43   bool isUnsigned() const { return Val.isUnsigned(); }
44 
45   SourceRange getRange() const { return Range; }
46 
47   void setRange(SourceLocation L) { Range.setBegin(L); Range.setEnd(L); }
48   void setRange(SourceLocation B, SourceLocation E) {
49     Range.setBegin(B); Range.setEnd(E);
50   }
51   void setBegin(SourceLocation L) { Range.setBegin(L); }
52   void setEnd(SourceLocation L) { Range.setEnd(L); }
53 };
54 
55 }
56 
57 static bool EvaluateDirectiveSubExpr(PPValue &LHS, unsigned MinPrec,
58                                      Token &PeekTok, bool ValueLive,
59                                      Preprocessor &PP);
60 
61 /// DefinedTracker - This struct is used while parsing expressions to keep track
62 /// of whether !defined(X) has been seen.
63 ///
64 /// With this simple scheme, we handle the basic forms:
65 ///    !defined(X)   and !defined X
66 /// but we also trivially handle (silly) stuff like:
67 ///    !!!defined(X) and +!defined(X) and !+!+!defined(X) and !(defined(X)).
68 struct DefinedTracker {
69   /// Each time a Value is evaluated, it returns information about whether the
70   /// parsed value is of the form defined(X), !defined(X) or is something else.
71   enum TrackerState {
72     DefinedMacro,        // defined(X)
73     NotDefinedMacro,     // !defined(X)
74     Unknown              // Something else.
75   } State;
76   /// TheMacro - When the state is DefinedMacro or NotDefinedMacro, this
77   /// indicates the macro that was checked.
78   IdentifierInfo *TheMacro;
79 };
80 
81 /// EvaluateDefined - Process a 'defined(sym)' expression.
82 static bool EvaluateDefined(PPValue &Result, Token &PeekTok, DefinedTracker &DT,
83                             bool ValueLive, Preprocessor &PP) {
84   SourceLocation beginLoc(PeekTok.getLocation());
85   Result.setBegin(beginLoc);
86 
87   // Get the next token, don't expand it.
88   PP.LexUnexpandedNonComment(PeekTok);
89 
90   // Two options, it can either be a pp-identifier or a (.
91   SourceLocation LParenLoc;
92   if (PeekTok.is(tok::l_paren)) {
93     // Found a paren, remember we saw it and skip it.
94     LParenLoc = PeekTok.getLocation();
95     PP.LexUnexpandedNonComment(PeekTok);
96   }
97 
98   if (PeekTok.is(tok::code_completion)) {
99     if (PP.getCodeCompletionHandler())
100       PP.getCodeCompletionHandler()->CodeCompleteMacroName(false);
101     PP.setCodeCompletionReached();
102     PP.LexUnexpandedNonComment(PeekTok);
103   }
104 
105   // If we don't have a pp-identifier now, this is an error.
106   if (PP.CheckMacroName(PeekTok, MU_Other))
107     return true;
108 
109   // Otherwise, we got an identifier, is it defined to something?
110   IdentifierInfo *II = PeekTok.getIdentifierInfo();
111   MacroDefinition Macro = PP.getMacroDefinition(II);
112   Result.Val = !!Macro;
113   Result.Val.setIsUnsigned(false); // Result is signed intmax_t.
114 
115   // If there is a macro, mark it used.
116   if (Result.Val != 0 && ValueLive)
117     PP.markMacroAsUsed(Macro.getMacroInfo());
118 
119   // Save macro token for callback.
120   Token macroToken(PeekTok);
121 
122   // If we are in parens, ensure we have a trailing ).
123   if (LParenLoc.isValid()) {
124     // Consume identifier.
125     Result.setEnd(PeekTok.getLocation());
126     PP.LexUnexpandedNonComment(PeekTok);
127 
128     if (PeekTok.isNot(tok::r_paren)) {
129       PP.Diag(PeekTok.getLocation(), diag::err_pp_expected_after)
130           << "'defined'" << tok::r_paren;
131       PP.Diag(LParenLoc, diag::note_matching) << tok::l_paren;
132       return true;
133     }
134     // Consume the ).
135     Result.setEnd(PeekTok.getLocation());
136     PP.LexNonComment(PeekTok);
137   } else {
138     // Consume identifier.
139     Result.setEnd(PeekTok.getLocation());
140     PP.LexNonComment(PeekTok);
141   }
142 
143   // [cpp.cond]p4:
144   //   Prior to evaluation, macro invocations in the list of preprocessing
145   //   tokens that will become the controlling constant expression are replaced
146   //   (except for those macro names modified by the 'defined' unary operator),
147   //   just as in normal text. If the token 'defined' is generated as a result
148   //   of this replacement process or use of the 'defined' unary operator does
149   //   not match one of the two specified forms prior to macro replacement, the
150   //   behavior is undefined.
151   // This isn't an idle threat, consider this program:
152   //   #define FOO
153   //   #define BAR defined(FOO)
154   //   #if BAR
155   //   ...
156   //   #else
157   //   ...
158   //   #endif
159   // clang and gcc will pick the #if branch while Visual Studio will take the
160   // #else branch.  Emit a warning about this undefined behavior.
161   if (beginLoc.isMacroID()) {
162     bool IsFunctionTypeMacro =
163         PP.getSourceManager()
164             .getSLocEntry(PP.getSourceManager().getFileID(beginLoc))
165             .getExpansion()
166             .isFunctionMacroExpansion();
167     // For object-type macros, it's easy to replace
168     //   #define FOO defined(BAR)
169     // with
170     //   #if defined(BAR)
171     //   #define FOO 1
172     //   #else
173     //   #define FOO 0
174     //   #endif
175     // and doing so makes sense since compilers handle this differently in
176     // practice (see example further up).  But for function-type macros,
177     // there is no good way to write
178     //   # define FOO(x) (defined(M_ ## x) && M_ ## x)
179     // in a different way, and compilers seem to agree on how to behave here.
180     // So warn by default on object-type macros, but only warn in -pedantic
181     // mode on function-type macros.
182     if (IsFunctionTypeMacro)
183       PP.Diag(beginLoc, diag::warn_defined_in_function_type_macro);
184     else
185       PP.Diag(beginLoc, diag::warn_defined_in_object_type_macro);
186   }
187 
188   // Invoke the 'defined' callback.
189   if (PPCallbacks *Callbacks = PP.getPPCallbacks()) {
190     Callbacks->Defined(macroToken, Macro,
191                        SourceRange(beginLoc, PeekTok.getLocation()));
192   }
193 
194   // Success, remember that we saw defined(X).
195   DT.State = DefinedTracker::DefinedMacro;
196   DT.TheMacro = II;
197   return false;
198 }
199 
200 /// EvaluateValue - Evaluate the token PeekTok (and any others needed) and
201 /// return the computed value in Result.  Return true if there was an error
202 /// parsing.  This function also returns information about the form of the
203 /// expression in DT.  See above for information on what DT means.
204 ///
205 /// If ValueLive is false, then this value is being evaluated in a context where
206 /// the result is not used.  As such, avoid diagnostics that relate to
207 /// evaluation.
208 static bool EvaluateValue(PPValue &Result, Token &PeekTok, DefinedTracker &DT,
209                           bool ValueLive, Preprocessor &PP) {
210   DT.State = DefinedTracker::Unknown;
211 
212   if (PeekTok.is(tok::code_completion)) {
213     if (PP.getCodeCompletionHandler())
214       PP.getCodeCompletionHandler()->CodeCompletePreprocessorExpression();
215     PP.setCodeCompletionReached();
216     PP.LexNonComment(PeekTok);
217   }
218 
219   // If this token's spelling is a pp-identifier, check to see if it is
220   // 'defined' or if it is a macro.  Note that we check here because many
221   // keywords are pp-identifiers, so we can't check the kind.
222   if (IdentifierInfo *II = PeekTok.getIdentifierInfo()) {
223     // Handle "defined X" and "defined(X)".
224     if (II->isStr("defined"))
225       return EvaluateDefined(Result, PeekTok, DT, ValueLive, PP);
226 
227     // If this identifier isn't 'defined' or one of the special
228     // preprocessor keywords and it wasn't macro expanded, it turns
229     // into a simple 0, unless it is the C++ keyword "true", in which case it
230     // turns into "1".
231     if (ValueLive &&
232         II->getTokenID() != tok::kw_true &&
233         II->getTokenID() != tok::kw_false)
234       PP.Diag(PeekTok, diag::warn_pp_undef_identifier) << II;
235     Result.Val = II->getTokenID() == tok::kw_true;
236     Result.Val.setIsUnsigned(false);  // "0" is signed intmax_t 0.
237     Result.setRange(PeekTok.getLocation());
238     PP.LexNonComment(PeekTok);
239     return false;
240   }
241 
242   switch (PeekTok.getKind()) {
243   default:  // Non-value token.
244     PP.Diag(PeekTok, diag::err_pp_expr_bad_token_start_expr);
245     return true;
246   case tok::eod:
247   case tok::r_paren:
248     // If there is no expression, report and exit.
249     PP.Diag(PeekTok, diag::err_pp_expected_value_in_expr);
250     return true;
251   case tok::numeric_constant: {
252     SmallString<64> IntegerBuffer;
253     bool NumberInvalid = false;
254     StringRef Spelling = PP.getSpelling(PeekTok, IntegerBuffer,
255                                               &NumberInvalid);
256     if (NumberInvalid)
257       return true; // a diagnostic was already reported
258 
259     NumericLiteralParser Literal(Spelling, PeekTok.getLocation(), PP);
260     if (Literal.hadError)
261       return true; // a diagnostic was already reported.
262 
263     if (Literal.isFloatingLiteral() || Literal.isImaginary) {
264       PP.Diag(PeekTok, diag::err_pp_illegal_floating_literal);
265       return true;
266     }
267     assert(Literal.isIntegerLiteral() && "Unknown ppnumber");
268 
269     // Complain about, and drop, any ud-suffix.
270     if (Literal.hasUDSuffix())
271       PP.Diag(PeekTok, diag::err_pp_invalid_udl) << /*integer*/1;
272 
273     // 'long long' is a C99 or C++11 feature.
274     if (!PP.getLangOpts().C99 && Literal.isLongLong) {
275       if (PP.getLangOpts().CPlusPlus)
276         PP.Diag(PeekTok,
277              PP.getLangOpts().CPlusPlus11 ?
278              diag::warn_cxx98_compat_longlong : diag::ext_cxx11_longlong);
279       else
280         PP.Diag(PeekTok, diag::ext_c99_longlong);
281     }
282 
283     // Parse the integer literal into Result.
284     if (Literal.GetIntegerValue(Result.Val)) {
285       // Overflow parsing integer literal.
286       if (ValueLive)
287         PP.Diag(PeekTok, diag::err_integer_literal_too_large)
288             << /* Unsigned */ 1;
289       Result.Val.setIsUnsigned(true);
290     } else {
291       // Set the signedness of the result to match whether there was a U suffix
292       // or not.
293       Result.Val.setIsUnsigned(Literal.isUnsigned);
294 
295       // Detect overflow based on whether the value is signed.  If signed
296       // and if the value is too large, emit a warning "integer constant is so
297       // large that it is unsigned" e.g. on 12345678901234567890 where intmax_t
298       // is 64-bits.
299       if (!Literal.isUnsigned && Result.Val.isNegative()) {
300         // Octal, hexadecimal, and binary literals are implicitly unsigned if
301         // the value does not fit into a signed integer type.
302         if (ValueLive && Literal.getRadix() == 10)
303           PP.Diag(PeekTok, diag::ext_integer_literal_too_large_for_signed);
304         Result.Val.setIsUnsigned(true);
305       }
306     }
307 
308     // Consume the token.
309     Result.setRange(PeekTok.getLocation());
310     PP.LexNonComment(PeekTok);
311     return false;
312   }
313   case tok::char_constant:          // 'x'
314   case tok::wide_char_constant:     // L'x'
315   case tok::utf8_char_constant:     // u8'x'
316   case tok::utf16_char_constant:    // u'x'
317   case tok::utf32_char_constant: {  // U'x'
318     // Complain about, and drop, any ud-suffix.
319     if (PeekTok.hasUDSuffix())
320       PP.Diag(PeekTok, diag::err_pp_invalid_udl) << /*character*/0;
321 
322     SmallString<32> CharBuffer;
323     bool CharInvalid = false;
324     StringRef ThisTok = PP.getSpelling(PeekTok, CharBuffer, &CharInvalid);
325     if (CharInvalid)
326       return true;
327 
328     CharLiteralParser Literal(ThisTok.begin(), ThisTok.end(),
329                               PeekTok.getLocation(), PP, PeekTok.getKind());
330     if (Literal.hadError())
331       return true;  // A diagnostic was already emitted.
332 
333     // Character literals are always int or wchar_t, expand to intmax_t.
334     const TargetInfo &TI = PP.getTargetInfo();
335     unsigned NumBits;
336     if (Literal.isMultiChar())
337       NumBits = TI.getIntWidth();
338     else if (Literal.isWide())
339       NumBits = TI.getWCharWidth();
340     else if (Literal.isUTF16())
341       NumBits = TI.getChar16Width();
342     else if (Literal.isUTF32())
343       NumBits = TI.getChar32Width();
344     else
345       NumBits = TI.getCharWidth();
346 
347     // Set the width.
348     llvm::APSInt Val(NumBits);
349     // Set the value.
350     Val = Literal.getValue();
351     // Set the signedness. UTF-16 and UTF-32 are always unsigned
352     if (Literal.isWide())
353       Val.setIsUnsigned(!TargetInfo::isTypeSigned(TI.getWCharType()));
354     else if (!Literal.isUTF16() && !Literal.isUTF32())
355       Val.setIsUnsigned(!PP.getLangOpts().CharIsSigned);
356 
357     if (Result.Val.getBitWidth() > Val.getBitWidth()) {
358       Result.Val = Val.extend(Result.Val.getBitWidth());
359     } else {
360       assert(Result.Val.getBitWidth() == Val.getBitWidth() &&
361              "intmax_t smaller than char/wchar_t?");
362       Result.Val = Val;
363     }
364 
365     // Consume the token.
366     Result.setRange(PeekTok.getLocation());
367     PP.LexNonComment(PeekTok);
368     return false;
369   }
370   case tok::l_paren: {
371     SourceLocation Start = PeekTok.getLocation();
372     PP.LexNonComment(PeekTok);  // Eat the (.
373     // Parse the value and if there are any binary operators involved, parse
374     // them.
375     if (EvaluateValue(Result, PeekTok, DT, ValueLive, PP)) return true;
376 
377     // If this is a silly value like (X), which doesn't need parens, check for
378     // !(defined X).
379     if (PeekTok.is(tok::r_paren)) {
380       // Just use DT unmodified as our result.
381     } else {
382       // Otherwise, we have something like (x+y), and we consumed '(x'.
383       if (EvaluateDirectiveSubExpr(Result, 1, PeekTok, ValueLive, PP))
384         return true;
385 
386       if (PeekTok.isNot(tok::r_paren)) {
387         PP.Diag(PeekTok.getLocation(), diag::err_pp_expected_rparen)
388           << Result.getRange();
389         PP.Diag(Start, diag::note_matching) << tok::l_paren;
390         return true;
391       }
392       DT.State = DefinedTracker::Unknown;
393     }
394     Result.setRange(Start, PeekTok.getLocation());
395     PP.LexNonComment(PeekTok);  // Eat the ).
396     return false;
397   }
398   case tok::plus: {
399     SourceLocation Start = PeekTok.getLocation();
400     // Unary plus doesn't modify the value.
401     PP.LexNonComment(PeekTok);
402     if (EvaluateValue(Result, PeekTok, DT, ValueLive, PP)) return true;
403     Result.setBegin(Start);
404     return false;
405   }
406   case tok::minus: {
407     SourceLocation Loc = PeekTok.getLocation();
408     PP.LexNonComment(PeekTok);
409     if (EvaluateValue(Result, PeekTok, DT, ValueLive, PP)) return true;
410     Result.setBegin(Loc);
411 
412     // C99 6.5.3.3p3: The sign of the result matches the sign of the operand.
413     Result.Val = -Result.Val;
414 
415     // -MININT is the only thing that overflows.  Unsigned never overflows.
416     bool Overflow = !Result.isUnsigned() && Result.Val.isMinSignedValue();
417 
418     // If this operator is live and overflowed, report the issue.
419     if (Overflow && ValueLive)
420       PP.Diag(Loc, diag::warn_pp_expr_overflow) << Result.getRange();
421 
422     DT.State = DefinedTracker::Unknown;
423     return false;
424   }
425 
426   case tok::tilde: {
427     SourceLocation Start = PeekTok.getLocation();
428     PP.LexNonComment(PeekTok);
429     if (EvaluateValue(Result, PeekTok, DT, ValueLive, PP)) return true;
430     Result.setBegin(Start);
431 
432     // C99 6.5.3.3p4: The sign of the result matches the sign of the operand.
433     Result.Val = ~Result.Val;
434     DT.State = DefinedTracker::Unknown;
435     return false;
436   }
437 
438   case tok::exclaim: {
439     SourceLocation Start = PeekTok.getLocation();
440     PP.LexNonComment(PeekTok);
441     if (EvaluateValue(Result, PeekTok, DT, ValueLive, PP)) return true;
442     Result.setBegin(Start);
443     Result.Val = !Result.Val;
444     // C99 6.5.3.3p5: The sign of the result is 'int', aka it is signed.
445     Result.Val.setIsUnsigned(false);
446 
447     if (DT.State == DefinedTracker::DefinedMacro)
448       DT.State = DefinedTracker::NotDefinedMacro;
449     else if (DT.State == DefinedTracker::NotDefinedMacro)
450       DT.State = DefinedTracker::DefinedMacro;
451     return false;
452   }
453 
454   // FIXME: Handle #assert
455   }
456 }
457 
458 
459 
460 /// getPrecedence - Return the precedence of the specified binary operator
461 /// token.  This returns:
462 ///   ~0 - Invalid token.
463 ///   14 -> 3 - various operators.
464 ///    0 - 'eod' or ')'
465 static unsigned getPrecedence(tok::TokenKind Kind) {
466   switch (Kind) {
467   default: return ~0U;
468   case tok::percent:
469   case tok::slash:
470   case tok::star:                 return 14;
471   case tok::plus:
472   case tok::minus:                return 13;
473   case tok::lessless:
474   case tok::greatergreater:       return 12;
475   case tok::lessequal:
476   case tok::less:
477   case tok::greaterequal:
478   case tok::greater:              return 11;
479   case tok::exclaimequal:
480   case tok::equalequal:           return 10;
481   case tok::amp:                  return 9;
482   case tok::caret:                return 8;
483   case tok::pipe:                 return 7;
484   case tok::ampamp:               return 6;
485   case tok::pipepipe:             return 5;
486   case tok::question:             return 4;
487   case tok::comma:                return 3;
488   case tok::colon:                return 2;
489   case tok::r_paren:              return 0;// Lowest priority, end of expr.
490   case tok::eod:                  return 0;// Lowest priority, end of directive.
491   }
492 }
493 
494 
495 /// EvaluateDirectiveSubExpr - Evaluate the subexpression whose first token is
496 /// PeekTok, and whose precedence is PeekPrec.  This returns the result in LHS.
497 ///
498 /// If ValueLive is false, then this value is being evaluated in a context where
499 /// the result is not used.  As such, avoid diagnostics that relate to
500 /// evaluation, such as division by zero warnings.
501 static bool EvaluateDirectiveSubExpr(PPValue &LHS, unsigned MinPrec,
502                                      Token &PeekTok, bool ValueLive,
503                                      Preprocessor &PP) {
504   unsigned PeekPrec = getPrecedence(PeekTok.getKind());
505   // If this token isn't valid, report the error.
506   if (PeekPrec == ~0U) {
507     PP.Diag(PeekTok.getLocation(), diag::err_pp_expr_bad_token_binop)
508       << LHS.getRange();
509     return true;
510   }
511 
512   while (1) {
513     // If this token has a lower precedence than we are allowed to parse, return
514     // it so that higher levels of the recursion can parse it.
515     if (PeekPrec < MinPrec)
516       return false;
517 
518     tok::TokenKind Operator = PeekTok.getKind();
519 
520     // If this is a short-circuiting operator, see if the RHS of the operator is
521     // dead.  Note that this cannot just clobber ValueLive.  Consider
522     // "0 && 1 ? 4 : 1 / 0", which is parsed as "(0 && 1) ? 4 : (1 / 0)".  In
523     // this example, the RHS of the && being dead does not make the rest of the
524     // expr dead.
525     bool RHSIsLive;
526     if (Operator == tok::ampamp && LHS.Val == 0)
527       RHSIsLive = false;   // RHS of "0 && x" is dead.
528     else if (Operator == tok::pipepipe && LHS.Val != 0)
529       RHSIsLive = false;   // RHS of "1 || x" is dead.
530     else if (Operator == tok::question && LHS.Val == 0)
531       RHSIsLive = false;   // RHS (x) of "0 ? x : y" is dead.
532     else
533       RHSIsLive = ValueLive;
534 
535     // Consume the operator, remembering the operator's location for reporting.
536     SourceLocation OpLoc = PeekTok.getLocation();
537     PP.LexNonComment(PeekTok);
538 
539     PPValue RHS(LHS.getBitWidth());
540     // Parse the RHS of the operator.
541     DefinedTracker DT;
542     if (EvaluateValue(RHS, PeekTok, DT, RHSIsLive, PP)) return true;
543 
544     // Remember the precedence of this operator and get the precedence of the
545     // operator immediately to the right of the RHS.
546     unsigned ThisPrec = PeekPrec;
547     PeekPrec = getPrecedence(PeekTok.getKind());
548 
549     // If this token isn't valid, report the error.
550     if (PeekPrec == ~0U) {
551       PP.Diag(PeekTok.getLocation(), diag::err_pp_expr_bad_token_binop)
552         << RHS.getRange();
553       return true;
554     }
555 
556     // Decide whether to include the next binop in this subexpression.  For
557     // example, when parsing x+y*z and looking at '*', we want to recursively
558     // handle y*z as a single subexpression.  We do this because the precedence
559     // of * is higher than that of +.  The only strange case we have to handle
560     // here is for the ?: operator, where the precedence is actually lower than
561     // the LHS of the '?'.  The grammar rule is:
562     //
563     // conditional-expression ::=
564     //    logical-OR-expression ? expression : conditional-expression
565     // where 'expression' is actually comma-expression.
566     unsigned RHSPrec;
567     if (Operator == tok::question)
568       // The RHS of "?" should be maximally consumed as an expression.
569       RHSPrec = getPrecedence(tok::comma);
570     else  // All others should munch while higher precedence.
571       RHSPrec = ThisPrec+1;
572 
573     if (PeekPrec >= RHSPrec) {
574       if (EvaluateDirectiveSubExpr(RHS, RHSPrec, PeekTok, RHSIsLive, PP))
575         return true;
576       PeekPrec = getPrecedence(PeekTok.getKind());
577     }
578     assert(PeekPrec <= ThisPrec && "Recursion didn't work!");
579 
580     // Usual arithmetic conversions (C99 6.3.1.8p1): result is unsigned if
581     // either operand is unsigned.
582     llvm::APSInt Res(LHS.getBitWidth());
583     switch (Operator) {
584     case tok::question:       // No UAC for x and y in "x ? y : z".
585     case tok::lessless:       // Shift amount doesn't UAC with shift value.
586     case tok::greatergreater: // Shift amount doesn't UAC with shift value.
587     case tok::comma:          // Comma operands are not subject to UACs.
588     case tok::pipepipe:       // Logical || does not do UACs.
589     case tok::ampamp:         // Logical && does not do UACs.
590       break;                  // No UAC
591     default:
592       Res.setIsUnsigned(LHS.isUnsigned()|RHS.isUnsigned());
593       // If this just promoted something from signed to unsigned, and if the
594       // value was negative, warn about it.
595       if (ValueLive && Res.isUnsigned()) {
596         if (!LHS.isUnsigned() && LHS.Val.isNegative())
597           PP.Diag(OpLoc, diag::warn_pp_convert_to_positive) << 0
598             << LHS.Val.toString(10, true) + " to " +
599                LHS.Val.toString(10, false)
600             << LHS.getRange() << RHS.getRange();
601         if (!RHS.isUnsigned() && RHS.Val.isNegative())
602           PP.Diag(OpLoc, diag::warn_pp_convert_to_positive) << 1
603             << RHS.Val.toString(10, true) + " to " +
604                RHS.Val.toString(10, false)
605             << LHS.getRange() << RHS.getRange();
606       }
607       LHS.Val.setIsUnsigned(Res.isUnsigned());
608       RHS.Val.setIsUnsigned(Res.isUnsigned());
609     }
610 
611     bool Overflow = false;
612     switch (Operator) {
613     default: llvm_unreachable("Unknown operator token!");
614     case tok::percent:
615       if (RHS.Val != 0)
616         Res = LHS.Val % RHS.Val;
617       else if (ValueLive) {
618         PP.Diag(OpLoc, diag::err_pp_remainder_by_zero)
619           << LHS.getRange() << RHS.getRange();
620         return true;
621       }
622       break;
623     case tok::slash:
624       if (RHS.Val != 0) {
625         if (LHS.Val.isSigned())
626           Res = llvm::APSInt(LHS.Val.sdiv_ov(RHS.Val, Overflow), false);
627         else
628           Res = LHS.Val / RHS.Val;
629       } else if (ValueLive) {
630         PP.Diag(OpLoc, diag::err_pp_division_by_zero)
631           << LHS.getRange() << RHS.getRange();
632         return true;
633       }
634       break;
635 
636     case tok::star:
637       if (Res.isSigned())
638         Res = llvm::APSInt(LHS.Val.smul_ov(RHS.Val, Overflow), false);
639       else
640         Res = LHS.Val * RHS.Val;
641       break;
642     case tok::lessless: {
643       // Determine whether overflow is about to happen.
644       if (LHS.isUnsigned())
645         Res = LHS.Val.ushl_ov(RHS.Val, Overflow);
646       else
647         Res = llvm::APSInt(LHS.Val.sshl_ov(RHS.Val, Overflow), false);
648       break;
649     }
650     case tok::greatergreater: {
651       // Determine whether overflow is about to happen.
652       unsigned ShAmt = static_cast<unsigned>(RHS.Val.getLimitedValue());
653       if (ShAmt >= LHS.getBitWidth()) {
654         Overflow = true;
655         ShAmt = LHS.getBitWidth()-1;
656       }
657       Res = LHS.Val >> ShAmt;
658       break;
659     }
660     case tok::plus:
661       if (LHS.isUnsigned())
662         Res = LHS.Val + RHS.Val;
663       else
664         Res = llvm::APSInt(LHS.Val.sadd_ov(RHS.Val, Overflow), false);
665       break;
666     case tok::minus:
667       if (LHS.isUnsigned())
668         Res = LHS.Val - RHS.Val;
669       else
670         Res = llvm::APSInt(LHS.Val.ssub_ov(RHS.Val, Overflow), false);
671       break;
672     case tok::lessequal:
673       Res = LHS.Val <= RHS.Val;
674       Res.setIsUnsigned(false);  // C99 6.5.8p6, result is always int (signed)
675       break;
676     case tok::less:
677       Res = LHS.Val < RHS.Val;
678       Res.setIsUnsigned(false);  // C99 6.5.8p6, result is always int (signed)
679       break;
680     case tok::greaterequal:
681       Res = LHS.Val >= RHS.Val;
682       Res.setIsUnsigned(false);  // C99 6.5.8p6, result is always int (signed)
683       break;
684     case tok::greater:
685       Res = LHS.Val > RHS.Val;
686       Res.setIsUnsigned(false);  // C99 6.5.8p6, result is always int (signed)
687       break;
688     case tok::exclaimequal:
689       Res = LHS.Val != RHS.Val;
690       Res.setIsUnsigned(false);  // C99 6.5.9p3, result is always int (signed)
691       break;
692     case tok::equalequal:
693       Res = LHS.Val == RHS.Val;
694       Res.setIsUnsigned(false);  // C99 6.5.9p3, result is always int (signed)
695       break;
696     case tok::amp:
697       Res = LHS.Val & RHS.Val;
698       break;
699     case tok::caret:
700       Res = LHS.Val ^ RHS.Val;
701       break;
702     case tok::pipe:
703       Res = LHS.Val | RHS.Val;
704       break;
705     case tok::ampamp:
706       Res = (LHS.Val != 0 && RHS.Val != 0);
707       Res.setIsUnsigned(false);  // C99 6.5.13p3, result is always int (signed)
708       break;
709     case tok::pipepipe:
710       Res = (LHS.Val != 0 || RHS.Val != 0);
711       Res.setIsUnsigned(false);  // C99 6.5.14p3, result is always int (signed)
712       break;
713     case tok::comma:
714       // Comma is invalid in pp expressions in c89/c++ mode, but is valid in C99
715       // if not being evaluated.
716       if (!PP.getLangOpts().C99 || ValueLive)
717         PP.Diag(OpLoc, diag::ext_pp_comma_expr)
718           << LHS.getRange() << RHS.getRange();
719       Res = RHS.Val; // LHS = LHS,RHS -> RHS.
720       break;
721     case tok::question: {
722       // Parse the : part of the expression.
723       if (PeekTok.isNot(tok::colon)) {
724         PP.Diag(PeekTok.getLocation(), diag::err_expected)
725             << tok::colon << LHS.getRange() << RHS.getRange();
726         PP.Diag(OpLoc, diag::note_matching) << tok::question;
727         return true;
728       }
729       // Consume the :.
730       PP.LexNonComment(PeekTok);
731 
732       // Evaluate the value after the :.
733       bool AfterColonLive = ValueLive && LHS.Val == 0;
734       PPValue AfterColonVal(LHS.getBitWidth());
735       DefinedTracker DT;
736       if (EvaluateValue(AfterColonVal, PeekTok, DT, AfterColonLive, PP))
737         return true;
738 
739       // Parse anything after the : with the same precedence as ?.  We allow
740       // things of equal precedence because ?: is right associative.
741       if (EvaluateDirectiveSubExpr(AfterColonVal, ThisPrec,
742                                    PeekTok, AfterColonLive, PP))
743         return true;
744 
745       // Now that we have the condition, the LHS and the RHS of the :, evaluate.
746       Res = LHS.Val != 0 ? RHS.Val : AfterColonVal.Val;
747       RHS.setEnd(AfterColonVal.getRange().getEnd());
748 
749       // Usual arithmetic conversions (C99 6.3.1.8p1): result is unsigned if
750       // either operand is unsigned.
751       Res.setIsUnsigned(RHS.isUnsigned() | AfterColonVal.isUnsigned());
752 
753       // Figure out the precedence of the token after the : part.
754       PeekPrec = getPrecedence(PeekTok.getKind());
755       break;
756     }
757     case tok::colon:
758       // Don't allow :'s to float around without being part of ?: exprs.
759       PP.Diag(OpLoc, diag::err_pp_colon_without_question)
760         << LHS.getRange() << RHS.getRange();
761       return true;
762     }
763 
764     // If this operator is live and overflowed, report the issue.
765     if (Overflow && ValueLive)
766       PP.Diag(OpLoc, diag::warn_pp_expr_overflow)
767         << LHS.getRange() << RHS.getRange();
768 
769     // Put the result back into 'LHS' for our next iteration.
770     LHS.Val = Res;
771     LHS.setEnd(RHS.getRange().getEnd());
772   }
773 }
774 
775 /// EvaluateDirectiveExpression - Evaluate an integer constant expression that
776 /// may occur after a #if or #elif directive.  If the expression is equivalent
777 /// to "!defined(X)" return X in IfNDefMacro.
778 bool Preprocessor::EvaluateDirectiveExpression(IdentifierInfo *&IfNDefMacro) {
779   SaveAndRestore<bool> PPDir(ParsingIfOrElifDirective, true);
780   // Save the current state of 'DisableMacroExpansion' and reset it to false. If
781   // 'DisableMacroExpansion' is true, then we must be in a macro argument list
782   // in which case a directive is undefined behavior.  We want macros to be able
783   // to recursively expand in order to get more gcc-list behavior, so we force
784   // DisableMacroExpansion to false and restore it when we're done parsing the
785   // expression.
786   bool DisableMacroExpansionAtStartOfDirective = DisableMacroExpansion;
787   DisableMacroExpansion = false;
788 
789   // Peek ahead one token.
790   Token Tok;
791   LexNonComment(Tok);
792 
793   // C99 6.10.1p3 - All expressions are evaluated as intmax_t or uintmax_t.
794   unsigned BitWidth = getTargetInfo().getIntMaxTWidth();
795 
796   PPValue ResVal(BitWidth);
797   DefinedTracker DT;
798   if (EvaluateValue(ResVal, Tok, DT, true, *this)) {
799     // Parse error, skip the rest of the macro line.
800     if (Tok.isNot(tok::eod))
801       DiscardUntilEndOfDirective();
802 
803     // Restore 'DisableMacroExpansion'.
804     DisableMacroExpansion = DisableMacroExpansionAtStartOfDirective;
805     return false;
806   }
807 
808   // If we are at the end of the expression after just parsing a value, there
809   // must be no (unparenthesized) binary operators involved, so we can exit
810   // directly.
811   if (Tok.is(tok::eod)) {
812     // If the expression we parsed was of the form !defined(macro), return the
813     // macro in IfNDefMacro.
814     if (DT.State == DefinedTracker::NotDefinedMacro)
815       IfNDefMacro = DT.TheMacro;
816 
817     // Restore 'DisableMacroExpansion'.
818     DisableMacroExpansion = DisableMacroExpansionAtStartOfDirective;
819     return ResVal.Val != 0;
820   }
821 
822   // Otherwise, we must have a binary operator (e.g. "#if 1 < 2"), so parse the
823   // operator and the stuff after it.
824   if (EvaluateDirectiveSubExpr(ResVal, getPrecedence(tok::question),
825                                Tok, true, *this)) {
826     // Parse error, skip the rest of the macro line.
827     if (Tok.isNot(tok::eod))
828       DiscardUntilEndOfDirective();
829 
830     // Restore 'DisableMacroExpansion'.
831     DisableMacroExpansion = DisableMacroExpansionAtStartOfDirective;
832     return false;
833   }
834 
835   // If we aren't at the tok::eod token, something bad happened, like an extra
836   // ')' token.
837   if (Tok.isNot(tok::eod)) {
838     Diag(Tok, diag::err_pp_expected_eol);
839     DiscardUntilEndOfDirective();
840   }
841 
842   // Restore 'DisableMacroExpansion'.
843   DisableMacroExpansion = DisableMacroExpansionAtStartOfDirective;
844   return ResVal.Val != 0;
845 }
846