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 using ANTLRWorks 1.4.2 to create a simple grammar for the purpose of evaluating an user-provided expression as boolean result. This ultimately will be part of a larger grammar, but I have some questions about this current fragment. I want users to be able to use expressions such as:

  1. 2 > 1
  2. 2 > 1 and 3 < 1
  3. (2 > 1 or 1 < 3) and 4 > 1
  4. (2 > 1 or 1 < 3) and (4 > 1 or (2 < 1 and 3 > 1))

The first two expressions are legal in my grammar, but the last two are not, and I am not sure why. Also, ANTLRworks seems to suggest that input such as ((((1 > 2) with mismatched parentheses is legal, and I am not sure why. So, I seem to be missing out on some insight into the right way to handle parenthetical grouping in a grammar.

How can I change my grammar to properly handle parentheses?

My grammar is below:

grammar conditional_test;

boolean
    :   boolean_value_expression
        EOF
    ;

boolean_value_expression
    :   boolean_term (OR boolean_term)*
        EOF
    ;

boolean_term
    :   boolean_factor (AND boolean_factor)*
    ;

boolean_factor
    :   (NOT)?  boolean_test
    ;

boolean_test
    :   predicate
    ;

predicate
    :   expression relational_operator expression
    |   LPAREN boolean_value_expression RPAREN
    ;

relational_operator
    :   EQ
    |   LT
    |   GT
    ;   

expression
    :   NUMBER
    ;


LPAREN      :   '(';
RPAREN      :   ')';
NUMBER      :   '0'..'9'+;

EQ          :   '=';
GT          :   '>';
LT          :   '<';

AND         :   'and';
OR          :   'or' ;
NOT         :   'not';
share|improve this question

1 Answer 1

up vote 4 down vote accepted

Chris Farmer wrote:

The first two expressions are legal in my grammar, but the last two are not, and I am not sure why. ...

You should remove the EOF token from:

boolean_value_expression
    :   boolean_term (OR boolean_term)*
        EOF
    ;

You normally only use the EOF after the entry point of your grammar (boolean in your case). Be careful boolean is a reserved word in Java and can therefor not be used as a parser rule!

So the first two rules should look like:

bool
    :   boolean_value_expression
        EOF
    ;

boolean_value_expression
    :   boolean_term (OR boolean_term)*
    ;

And you may also want to ignore literal spaces by adding the following lexer rule:

SPACE : ' ' {$channel=HIDDEN;};

(you can include tabs an line breaks, of course)

Now all of your example input matches properly (tested with ANTLRWorks 1.4.2 as well).

Chris Farmer wrote:

Also, ANTLRworks seems to suggest that input such as ((((1 > 2) with mismatched parentheses is legal, ...

No, ANTLRWorks does produce errors, perhaps not very noticeable ones. The parse tree ANTLRWorks produces has a NoViableAltException as a leaf, and there are some errors on the "Console" tab.

share|improve this answer
    
Thanks! I am not sure how that extra EOF got in there, but it was definitely confusing some things. Thanks for taking a look at this. Your suggestions work nicely. –  Chris Farmer May 5 '11 at 1:53
    
@Chris, you're welcome. –  Bart Kiers May 5 '11 at 6:17
    
@Chris, note that your grammar does not allow parenthesis around numbers like: 1 < (2). You may have done this intentionally, but maybe not, in which case you should move LPAREN boolean_value_expression RPAREN to the expression rule and change predicate into: predicate : expression (relational_operator expression)? ; –  Bart Kiers May 5 '11 at 7:23

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.