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I'm trying to learn ANTLR by writing a grammer (I'm using eclipse with the plugins for ANTLR), and it was going alright until I ran into the error:

NoViableAltException: line 0:-1 no viable alternative at input '<EOF>'

When I try to test my args parser rule;

typedident  :   (INT|CHAR) IDENT;

args    :   (typedident ( COMMA typedident)*)?;

An ident is a letter followed by any character, this works, I've tested it. typedident also works for the test.

I'm using the input of int a12q2efwe, char a12eqdsf (totally random) and the tree appears fine in the interpreter, the only problem is that args has four branches instead of 3, typedident, comma, typedident and then the error in the last one.

Any help would be greatly appreciated.

Thanks.

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If an IDENT must start with a letter, then the input "12eqdsf" is no IDENT. –  Bart Kiers Feb 14 '12 at 19:17
    
Ha, yeah, I noticed that on my actual grammar. Ident was still accepting it. I fixed it and the error is still there, unfortunately. :( –  djcmm476 Feb 14 '12 at 19:56

2 Answers 2

up vote 5 down vote accepted

I'm assuming you're using the built-in interpreter. Don't, it's buggy. Either create a custom test-class yourself, or use ANTLRWorks' debugger (I believe the Eclipse plugin uses the same debugger as ANTLRWorks). Just never use the interpreter.

In ANTLRWorks, the input "int a12q2efwe, char eq45dsf" is being parsed (using the debugger) as follows:

enter image description here

As you can see yourself using this small grammar:

grammar T;

args       : (typedident (COMMA typedident)*)? EOF;
typedident : (INT | CHAR) IDENT;

COMMA : ',';
INT   : 'int';
CHAR  : 'char';
IDENT : ('a'..'z' | 'A'..'Z') ('a'..'z' | 'A'..'Z' | '0'..'9')*;
SPACE : ' ' {skip();};
share|improve this answer

Perhaps this answer will help you:

ANTLR noviablealtexception with JAVA

According to it a EOF token is missing in your grammar. You did show us the complete grammar, didn't you?

share|improve this answer
    
Nope, the problem here is definitely not the absence of an EOF (nor does the Q&A you linked to imply it!). –  Bart Kiers Feb 14 '12 at 20:40
    
In my understanding of the accepted answer the problem were multiple EOF tokens in the wrong places but it should have been one EOF in the entry rule. The questioner's entry rule args does not have an EOF. –  A.H. Feb 14 '12 at 20:43
    
@BartKiers: Ups, I didn't look at the author, I assumed the first comment came from the questioner. I fixed my comment. Besides of this: Your own answer implies to me that there should be an EOF. –  A.H. Feb 14 '12 at 20:53
    
Yes, the answer suggests to put an EOF at the end of the entry of the grammar. But like I said: the absence of EOF will not produce such an error. Did you see the answer you're talking about is mine? :) –  Bart Kiers Feb 14 '12 at 20:54
    
@BartKiers: No, I did not see it. :-))) I think I should shut up right now :-( –  A.H. Feb 14 '12 at 20:59

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