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Is there a way to specify that a Bison rule should NOT match if the lookahead token is a given value?

I currently have the following Bison grammar (simplified):

var_decl:
        type ident
        {
            $$ = new NVariableDeclaration(*$1, *$2);
        } |
        type ident ASSIGN_EQUAL expr
        {
            $$ = new NVariableDeclaration(*$1, *$2, $4);
        } |
        type CURVED_OPEN STAR ident CURVED_CLOSE CURVED_OPEN func_decl_args CURVED_CLOSE
        {
            $$ = new NVariableDeclaration(*(new NFunctionPointerType(*$1, *$7)) /* TODO: free this memory */, *$4);
        } |
        type CURVED_OPEN STAR ident CURVED_CLOSE CURVED_OPEN func_decl_args CURVED_CLOSE ASSIGN_EQUAL expr
        {
            $$ = new NVariableDeclaration(*(new NFunctionPointerType(*$1, *$7)) /* TODO: free this memory */, *$4, $10);
        } ;

...

deref:
        STAR ident
        {
            $$ = new NDereferenceOperator(*$<ident>2);
        } |

...

type:
        ident
        {
            $$ = new NType($<type>1->name, 0, false);
            delete $1;
        } |
        ... ;

...

expr:
        deref
        {
            $$ = $1;
        } |
        ...
        ident
        {
            $<ident>$ = $1;
        } |
        ...
        ident CURVED_OPEN call_args CURVED_CLOSE
        {
            $$ = new NMethodCall(*$1, *$3);
            delete $3;
        } |
        ...
        CURVED_OPEN expr CURVED_CLOSE
        {
            $$ = $2;
        } ;

...

call_args:
        /* empty */
        {
            $$ = new ExpressionList();
        } |
        expr
        {
            $$ = new ExpressionList();
            $$->push_back($1);
        } |
        call_args COMMA expr
        {
            $1->push_back($3);
        } ;

The problem is that when parsing:

void (*ident)(char* some_arg);

It's seeing void (*ident) and deducing that it must be a function call instead of a function declaration. Is there a way I can tell Bison that it should favour looking ahead to match var_decl instead of reducing *ident and void into derefs and exprs?

share|improve this question
    
You are not telling the whole story. In your grammar an expression cannot start with a type. How come it has started as an expression? –  n.m. Apr 12 '12 at 21:35
    
I've added the grammar for 'type'; as you can see, any identifier can be a type. The reason I'm not posting the whole grammar is because it's 520 lines long and might scare people off :P –  Hach-Que Apr 12 '12 at 21:48
1  
You may need to look up 'Most Vexing Parse' for C++. There is a rule there that if something can be a declaration, that's what it is. –  Jonathan Leffler Apr 12 '12 at 22:00
    
@Jonathan Leffler: no, this is the much simpler case. The most vexing parse can only happen when an expression can start with a type name, as is the case with C++. It does not exist in C, or in this grammar. –  n.m. Apr 12 '12 at 22:20

1 Answer 1

up vote 3 down vote accepted

any identifier can be a type

That's exactly the problem. LALR(1) grammars for C-like languages (or languages with C-like syntax for types) need to differentiate types and other identifiers at the token level. That is, you need IDENT and TYPEIDENT be two different tokens. (You will have to feed data about identifiers from the compiler back to the tokenizer). It's the most standard way to disambiguate the otherwise ambiguous grammar.

Update See, for instance, this ANSI C grammar for Yacc.

share|improve this answer
    
Thanks! In hindsight that actually makes quiet a bit of sense that it has to be done this way :) –  Hach-Que Apr 12 '12 at 22:35

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