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I am trying to convert a LALR grammar to LL using ANTLR and I am running into a few problems. So far, I think converting the expressions into a Top-Down approach is straight forward to me. The problem is when I include Range (1..10) and (1.0..10.0) with floats.

I have tried to use the answer found here and somehow it is not even running correctly with my code, let alone solving a range of float, i.e. (float..float). Float literal and range parameter in ANTLR

Attached is a sample of my grammar that just focuses on this issue.

grammar Test;

options {
  language = Java;
  output = AST;
}

parse: 'in' rangeExpression ';'
     ;

rangeExpression : expression ('..' expression)?
                ;

expression : addingExpression (('=='|'!='|'<='|'<'|'>='|'>') addingExpression)*
           ;

addingExpression : multiplyingExpression (('+'|'-') multiplyingExpression)*
                 ;

multiplyingExpression : unaryExpression 
                        (('*'|'/'|'div') unaryExpression)*
                      ;

unaryExpression: ('+'|'-')* primitiveElement;   

primitiveElement : literalExpression
                 | id ('.' id)?
                 | '(' expression ')'
                 ;  

literalExpression : NUMBER
                  | BOOLEAN_LITERAL
                  | 'infinity'
                  ;              

id : IDENTIFIER
   ;

// L E X I C A L   R U L E S    
Range
 : '..'
 ;

NUMBER 
    : (DIGITS Range) => DIGITS          {$type=DIGITS;} 
    | (FloatLiteral) => FloatLiteral    {$type=FloatLiteral;}
    | DIGITS                            {$type=DIGITS;}
    ;   


// fragments
fragment FloatLiteral : Float;
fragment Float
 : DIGITS ( options {greedy = true; } : '.' DIGIT* EXPONENT?)
 | '.' DIGITS EXPONENT?
 | DIGITS EXPONENT
 ;

BOOLEAN_LITERAL : 'false' 
                | 'true'
                ;

IDENTIFIER : LETTER (LETTER | DIGIT)*;

WS  :   ( ' '
        | '\t'
        | '\r'
        | '\n'
        ) {$channel=HIDDEN;}
    ;
fragment LETTER : ('a'..'z' | 'A'..'Z' | '_') ;
fragment DIGITS: DIGIT+;
fragment DIGIT : '0'..'9';
fragment EXPONENT : ('e'|'E') ('+'|'-')? ('0'..'9')+ ;

Any reason why it is not even taking:

in 10;

or

in 10.0;

Thanks in advance!

share|improve this question
up vote 2 down vote accepted

The following things are not correct:

  • you're never matching a FloatLiteral in your literalExpression rule
  • in every alternative of NUMBER you're changing the type of the token, therefor a NUMBER token will never be created

Something like this should work for both 11..22 and 1.1..2.2:

...

literalExpression : INT
                  | BOOLEAN_LITERAL
                  | FLOAT
                  | 'infinity'
                  ;              

id : IDENTIFIER
   ;

// L E X I C A L   R U L E S    
Range
 : '..'
 ;

INT 
    : (DIGITS Range)=> DIGITS
    | DIGITS (('.' DIGITS EXPONENT? | EXPONENT) {$type=FLOAT;})?
    ; 

BOOLEAN_LITERAL : 'false' 
                | 'true'
                ;

IDENTIFIER : LETTER (LETTER | DIGIT)*;

WS  :   ( ' '
        | '\t'
        | '\r'
        | '\n'
        ) {$channel=HIDDEN;}
    ;
fragment LETTER : ('a'..'z' | 'A'..'Z' | '_') ;
fragment DIGITS: DIGIT+;
fragment DIGIT : '0'..'9';
fragment EXPONENT : ('e'|'E') ('+'|'-')? ('0'..'9')+ ;
fragment FLOAT : ;
share|improve this answer
    
Thanks for the quick fix! But I believe if I am not mistaken that this doesn't solve (in 10..10;), i.e. a range of digits – Andy M Feb 21 '13 at 18:09
    
@AndyM, ah, yes, you're right. Check my edited version. – Bart Kiers Feb 21 '13 at 18:19
    
I am not sure why I get this once I put in an EXPONENT: required (...)+ loop did not match anything at character 'e' ... Thanks for your help! – Andy M Feb 21 '13 at 18:37
    
@AndyM, not sure what you mean by "put in an EXPONENT". Do you mean you "feed" the parser an EXPONENT? That won't work since it is a fragment rule. If not, can you provide the input that is failing? – Bart Kiers Feb 21 '13 at 18:55
    
@AndyM, note that I chnaged the INT rule slightly, perhaps that is what you meant... – Bart Kiers Feb 21 '13 at 18:56

To your question about handling (1.0 .. 10.0):

Notice that parser rule primitiveElement defines an alternative as '(' expression ')', but rule expression can never reach rule rangeExpression.

Consider redefining expression and rangeExpression like so:

expression : rangeExpression
           ;

rangeExpression : compExpression ('..' compExpression)?
                ;

compExpression : addingExpression (('=='|'!='|'<='|'<'|'>='|'>') addingExpression)*
               ;

This ensures that the expression rule sits above all forms of expressions and will work as expected in parentheses.

share|improve this answer
    
The way I have it now actually captures (10.0) but will never capture (10.0..20.0). Once I switched to your code, ANTLR v3 complained that rule '(' expression ') will never be reached. – Andy M Feb 21 '13 at 18:24
    
@AndyM (10.0) is captured by the original grammar because the parentheses don't contain a range -- and a range is the only expression it won't accept in parentheses. I get no warnings from ANTLR v3.5 with the change shown in my answer. Make sure primitiveElement still has alternative '(' expression ')'. Is that the only warning you're getting? – user1201210 Feb 21 '13 at 18:42
    
Once I made @Bart changes, it worked! Thanks for noticing this error – Andy M Feb 21 '13 at 19:04

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