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I am implementing a calculator in Haskell to brush up on the language but I am hitting a snag in my main when I want it to enter an infinite loop until the user inputs 'q'. Heres my main let me know if you see what I'm doing wrong and ill also post my error

error: No instances for (Floating (IO a0), Read (IO a0))
      arising from a use of `compute'
    Possible fix:
      add instance declarations for (Floating (IO a0), Read (IO a0))
    In a stmt of a 'do' block: compute e
    In the expression:
      do { compute e;
           evaluate_input }
    In an equation for `evaluate_expression':
        evaluate_expression e
          = do { compute e;
                 evaluate_input }
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Where's the definition of compute? –  us2012 Feb 26 '13 at 0:02
1  
At some point you are trying to read a value of type IO x, probably in the function you didn't bother to post. The good news is that GHC should tell you exactly which line causes the error :) –  Niklas B. Feb 26 '13 at 0:02
    
@us2012 compute :: (Read a, Num a, Fractional a, Floating a) => String -> a –  CodeNewbie Feb 26 '13 at 0:09
    
I edited the code above and put the compute function at the top –  CodeNewbie Feb 26 '13 at 0:12

1 Answer 1

up vote 2 down vote accepted

In your do-statement

 compute e 
 evaluate_input

both function need to be of the same monadic type, in here IO (declared by evaluate_input :: IO ()). So GHC now can expect that compute is a function that takes the String e and returns an IO a0 (== a). Yet, it could not find any a0 so that IO a0 is an instance of Floating or Read, which a must be.

I'd assume that you want to output the result of the computation (and a is an instance of Show rather than Read), so use

do
 putStrLn . show $ compute e
 evaluate_input
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Thank you sooooo much!!!!! –  CodeNewbie Feb 26 '13 at 0:48

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