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 currently writing a parser for a simple programming language. It's getting there however I'm unable to parse a boolean logic statement such as "i == 0 AND j == 0". All I get back is "non exhaustive patterns in case"

When I parse a boolean expression on its own it works fine e.g. "i == 0". Note "i == 0 a" will also return a boolean statement but "i == 0 AND" does not return anything.

Can anyone help please?

Whilst the above works correctly for input such as run parseBoolean "i == 0"

share|improve this question
9  
Please don't link to external code. Please also don't just dump all that code here. Narrow down the problem and then write a specific question along with the relevant code, expected output and actual output. –  Niklas B. May 30 '12 at 13:26
1  
Well... did you examine the associated case statement? –  Daniel Wagner May 30 '12 at 13:41
    
Have you tried adding a default case? –  phg May 30 '12 at 13:46
    
Which line of your program gives you that error message? –  dave4420 May 30 '12 at 14:20
2  
Consider using Text.Parsec.Expr. It's much less error-prone than writing expression parsers from scratch. –  hammar May 30 '12 at 15:06

1 Answer 1

up vote 2 down vote accepted

As @hammar points out, you should use Text.Parsec.Expr for this kind of thing. However, since this is homework, maybe you have to do it the hard way!

The problem is in parseArithmetic, you allow anyChar to be an operator, but then in the case statement, you only allow for +, -, *, /, %, and ^. When parseArithmetic tries to parse i == 0, it uses the first = as the operator, but can't parse an intExp2 from the second =, and fails in the monad, and backtracks, before getting to the case statement. However, when you try to parse i == 0 AND j == 0, it gets the i == part, but then it thinks that there's an arithmetic expression of 0 A ND, where A is an operator, and ND is the name of some variable, so it gets to the case, and boom.

Incidentally, instead of using the parser to match a string, and then using a case statement to match it a second time, you can have your parser return a function instead of a string, and then apply the function directly:

 parseOp :: String -> a -> Parser a
 parseOp op a = string op >> spaces >> return a

 parseLogic :: Parser BoolExp 
 parseLogic = do 
    boolExp1 <- parseBoolExp 
    spaces 
    operator <- choice [ try $ parseOp "AND" And
                       , parseOp "OR" Or
                       , parseOp "XOR" XOr
                       ]
    boolExp2 <- parseBoolExp
    return $ operator boolExp1 boolExp2


parseBoolean :: Parser BoolExp 
parseBoolean = do       
   intExp1 <- parseIntExp 
   spaces 
   operator <- choice [ try $ parseOp "==" Main.EQ
                      , parseOp "=>" GTorEQ
                      , parseOp "<=" LTorEQ 
                      ]
   intExp2 <- parseIntExp
   return $ operator intExp1 intExp2
share|improve this answer
    
Thanks pat. I was thinking about that the error in parseArithmetic. Do you think it should work if I make it like above using choice? Or would there be a better way to do it? Now that I've started doing it this way I will use Text.Parsec.Expr next time. I did it this way as this is how we were shown to do the parsing in classes. –  user1424720 May 30 '12 at 16:59
    
I haven't debugged your whole parser, but only allowing for what you want instead of using anyChar is a good thing. –  pat May 30 '12 at 17:03
    
Also, you may want all of your terminal parsers to end with spaces so that you don't need to sprinkle spaces all over your non-terminals. This is what the lexeme combinator is for. –  pat May 30 '12 at 17:07
    
Thank you. I've changed my code for parse arithmetic using the method you used and everything is working correctly. This is my first big program in Haskell so please excuse any mistakes. Once I've done this I will try using Text.Parsec.Expr –  user1424720 May 30 '12 at 17:23

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.