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I have what I think is a simple ANTLR question. I have two token types: ident and special_ident. I want my special_ident to match a single letter followed by a single digit. I want the generic ident to match a single letter, optionally followed by any number of letters or digits. My (incorrect) grammar is below:

expr 
    : special_ident
    | ident
    ;

special_ident : LETTER DIGIT;
ident         : LETTER (LETTER | DIGIT)*;

LETTER : 'A'..'Z';
DIGIT  : '0'..'9';

When I try to check this grammar, I get this warning:

Decision can match input such as "LETTER DIGIT" using multiple alternatives: 1, 2. As a result, alternative(s) 2 were disabled for that input

I understand that my grammar is ambiguous and that input such as A1 could match either ident or special_ident. I really just want the special_ident to be used in the narrowest of cases.

Here's some sample input and what I'd like it to match:

A      : ident
A1     : special_ident
A1A    : ident
A12    : ident
AA1    : ident

How can I form my grammar such that I correctly identify my two types of identifiers?

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2 Answers 2

up vote 2 down vote accepted

Expanding on Carl's thought, I would guess you have four different cases:

  1. A
  2. AN
  3. AA(A|N)*
  4. AN(A|N)+

Only option 2 should be token special_ident and the other three should be ident. All tokens can be identified by syntax alone. Here is a quick grammar I was able to test in ANTLRWorks and it appeared to work properly for me. I think Carl's might have one bug when trying to check AA , but getting you 99% there is a huge benefit, so this is only a minor modification to his quick thought.

prog 
    :    (expr WS)+ EOF;

expr 
    : special_ident {System.out.println("Found special_ident:" + $special_ident.text + "\n");}
    | ident {System.out.println("Found ident:" + $ident.text + "\n");}
    ;

special_ident : LETTER DIGIT;

ident         : LETTER 
    |LETTER DIGIT (LETTER|DIGIT)+
    |LETTER LETTER (LETTER|DIGIT)*;

LETTER : 'A'..'Z';
DIGIT  : '0'..'9';
WS 
    :   (' '|'\t'|'\n'|'\r')+;
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Thanks... I think this is all making more sense. is the last option in ident redundant? Wouldn't LETTER LETTER make the whole rule be equivalent? Also, would it be equivalent for the entire rule to say LETTER LETTER? | LETTER DIGIT (LETTER|DIGIT)+? –  Chris Farmer Feb 1 '10 at 19:20
    
There are several different ways you can have the rules (I think), I was just making sure the LETTER DIGIT has another letter or digit after to separate it from the special_ident rule. The LETTER LETTER option does not require any more tokens after. That is why one has a plus sign and the other has the asterisk. –  WayneH Feb 1 '10 at 23:26

Seems that you have 3 cases:

  • A
  • AN
  • A(A|N)(A|N)+

You could classify the middle one as special_ident and the other two as ident; seems that should do the trick.

I'm a bit rusty with ANTLR, I hope this hint is enough. I can try to write out the expressions for you but they could be wrong:

long_ident    : LETTER (LETTER | DIGIT) (LETTER | DIGIT)+
special_ident : LETTER DIGIT;
ident         : LETTER | long_ident;
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