Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I'm trying to built C-- compiler using ANTLR 3.4.

Full set of the grammar listed here,

program         : (vardeclaration | fundeclaration)*                    ;
vardeclaration  : INT ID (OPENSQ NUM CLOSESQ)? SEMICOL  ;

fundeclaration  : typespecifier ID OPENP params CLOSEP compoundstmt     ;
typespecifier   : INT | VOID                                            ;
params          : VOID | paramlist                                      ;
paramlist       : param (COMMA param)*                                  ;
param           :  INT ID (OPENSQ CLOSESQ)?         ;

compoundstmt    : OPENCUR vardeclaration* statement* CLOSECUR           ;
statementlist   : statement*                                            ;

statement       : expressionstmt | compoundstmt | selectionstmt | iterationstmt | returnstmt;
expressionstmt  : (expression)? SEMICOL;
selectionstmt   : IF OPENP expression CLOSEP statement (options {greedy=true;}: ELSE statement)?;
iterationstmt   : WHILE OPENP expression CLOSEP statement;
returnstmt      : RETURN (expression)? SEMICOL;

expression      : (var EQUAL expression) | sampleexpression;
var             : ID ( OPENSQ expression CLOSESQ )? ;

sampleexpression: addexpr ( ( LOREQ | LESS | GRTR | GOREQ | EQUAL | NTEQL) addexpr)?;
addexpr         : mulexpr ( ( PLUS | MINUS ) mulexpr)*;
mulexpr         : factor  ( ( MULTI | DIV  ) factor )*; 

factor          : ( OPENP expression CLOSEP ) | var | call  | NUM;
call            : ID OPENP arglist? CLOSEP;
arglist         : expression ( COMMA expression)*;

Used lexer rules as following,

ELSE    : 'else'    ;
IF      : 'if'      ;
INT     : 'int'     ;
RETURN  : 'return'  ;
VOID    : 'void'    ;
WHILE   : 'while'   ;

PLUS    : '+' ;
MINUS   : '-' ;
MULTI   : '*' ;
DIV     : '/' ;

LESS    : '<'  ;
LOREQ   : '<=' ;
GRTR    : '>'  ;
GOREQ   : '>=' ;

EQUAL   : '==' ;
NTEQL   : '!=' ;
ASSIGN  : '='  ;

SEMICOL : ';' ;
COMMA   : ',' ;

OPENP   : '(' ;
CLOSEP  : ')' ;
OPENSQ  : '[' ;
CLOSESQ : ']' ;
OPENCUR : '{' ;
CLOSECUR: '}' ;

SCOMMENT: '/*' ;
ECOMMENT: '*/' ;


ID  : ('a'..'z' | 'A'..'Z')+/*(' ')*/ ;
NUM : ('0'..'9')+ ;
WS  : (' ' | '\t' | '\n' | '\r')+ {$channel = HIDDEN;};
COMMENT: '/*' .* '*/' {$channel = HIDDEN;};

But I try to save this it give me the error,

error(211): /CMinusMinus/src/CMinusMinus/CMinusMinus.g:33:13: [fatal] rule expression has non-LL(*) decision due to recursive rule invocations reachable from alts 1,2.  Resolve by left-factoring or using syntactic predicates or using backtrack=true option.
 |---> expression       : (var EQUAL expression) | sampleexpression;

1 error

How can I resolve this problem?

share|improve this question
add comment

2 Answers

up vote 1 down vote accepted

As already mentioned: your grammar rule expression is ambiguous: both alternatives in that rule start, or can be, a var.

You need to "help" your parser a bit. If the parse can see a var followed by an EQUAL, it should choose alternative 1, else alternative 2. This can be done by using a syntactic predicate (the (var EQUAL)=> part in the rule below).

expression
 : (var EQUAL)=> var EQUAL expression
 |               sampleexpression
 ;

More about predicates in this Q&A: What is a 'semantic predicate' in ANTLR?

share|improve this answer
add comment

The problem is this:

expression      : (var EQUAL expression) | sampleexpression;

where you either start with var or sampleexpression. But sampleexpression can be reduced to var as well by doing sampleexpression->addExpr->MultExpr->Factor->var

So there is no way to find a k-length predicate for the compiler.

You can as suggested by the error message set backtrack=true to see whether this solves your problem, but it might lead not to the AST - parsetrees you would expect and might also be slow on special input conditions. You could also try to refactor your grammar to avoid such recursions.

share|improve this answer
    
backtrack=true removes given error. But the result seems to be wrong. What does backtrack=true actually means? –  DarRay Mar 3 '12 at 11:24
1  
That's what I meant with result might not be as expected since you have a ambiguous grammar. backtrack tries to match input tokens as far as possible and if it hits a dead end (speak no alternatives) it goes back to the last ambiguous alternative it found and tries again from there until all possible paths are tried. –  stryba Mar 3 '12 at 11:58
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.