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I am using ANTLR 3.1.3 to generate the parser. After importing the generated testParser, I found there is several errors like

try { dbg.enterDecision(2, decisionCanBacktrack[2]);

Description Resource Path Location Type The method enterDecision(int) in the type DebugEventListener is not applicable for the arguments (int, boolean) testParser.java /ANTLRTest/src line 280 Java Problem

If I changed to dbg.enterDecision(2), then everything is fine.

The grammar is as follows,

grammar Test;  

options {output=AST;}

expr : mexpr (PLUS^ mexpr)* SEMI! ; 

mexpr : atom (STAR^ atom)* ;  
atom: INT ;  
//class csharpTestLexer extends Lexer;  
WS : (' ' | '\t' | '\n' | '\r') { $channel = HIDDEN; } ;  
LPAREN: '(' ;  
RPAREN: ')' ;  
STAR: '*' ;  
PLUS: '+' ;  
SEMI: ';' ; 

DIGIT : '0'..'9' ;  
INT : (DIGIT)+ ;  

I am using ANTLRWorks 1.4.3 to generate lexer and parser.

JDK 1.6

Any reason to this error?

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I have options { output=AST} defined –  Adam Lee Mar 12 '12 at 13:44
    
I found that when I use Generate/generate Code, then the generated lexer/parser is fine. But if I use debug which also generate the code, the code cannot coompile –  Adam Lee Mar 12 '12 at 14:12
    
Probably under ANTLRWorks, there are some dbg embedded. I do not see this when I use Generate Code. –  Adam Lee Mar 12 '12 at 14:16
    
Just import the code into Eclipse and I get the error. It works fine if running under ANTLRWorks. Thanks a lot for your help anyway. –  Adam Lee Mar 12 '12 at 15:24
    
BTW, I get error for 2 + 2 * 3, do you know why? anything wrong with the above grammar. –  Adam Lee Mar 12 '12 at 15:25
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1 Answer

up vote 2 down vote accepted

It looks like you've generated a lexer and parser with an ANTLR version that is different than the one you added to Eclipse's classpath.

If you generate a lexer and/or parser with ANTLRWorks 1.4.3 (which contains ANTLR 3.4), you should also add ANTLR 3.4 to your project's build path in Eclipse and remove ANTLR 3.1.3 from it.

BTW, I get error for 2 + 2 * 3, do you know why? anything wrong with the above grammar.

That is because single digit numbers are being tokenized as DIGIT tokens. Either make DIGIT a fragment:

fragment DIGIT : '0'..'9' ;  
INT : (DIGIT)+ ;  

or remove it:

INT : '0'..'9'+ ;  

See: What does "fragment" means in ANTLR?

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I am still not sure why: when not using fragment, 2+2*3 is wrong, but 22 + 22 * 33 is correct, can you clarify? –  Adam Lee Mar 14 '12 at 14:14
    
@AdamLee, if DIGIT isn't a fragment, then the input 2+2*3 causes the lexer to produce the tokens: DIGIT STAR DIGIT STAR DIGIT. Your parser cannot match these tokens, it can only make something of the tokens INT STAR INT STAR INT. If you make DIGIT a fragment, then the lexer will never create DIGIT tokens: fragment rules are only used by other lexer rules (INT in your case) and never become tokens of their own. –  Bart Kiers Mar 14 '12 at 19:50
    
@AdamLee, the fact that "22" is tokenized as an INT, and "2" as a DIGIT is because whenever two or more rules match the same input (both DIGIT and INT match "2"), the one defined first "wins" (DIGIT in your case). Note that from "22" an INT is created because it's more than a single digit! –  Bart Kiers Mar 14 '12 at 19:53
    
Thanks for your detailed explanation. It is very helpful. –  Adam Lee Mar 14 '12 at 23:26
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