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I wrote a program with haskell but I got errors from ghci

here is the source codes,I construct it, and if I have

p1 :: Prop
p1 = And (Var 'A') (Not (Var 'A'))

It will show A && ~A so that is the source codes

import Data.List
import Data.Char
data Prop = Const Bool | 
        Var Char | 
        Not Prop | 
        And Prop Prop | 
        Or Prop Prop | 
        Imply Prop Prop
        deriving Eq
instance Show Prop where
  show (Var Char) = show Char
  show (Not Prop) = "(~" ++ show Prop ++ ")"
  show (And Prop Prop) = "(" ++ show Prop ++ "&&" ++ show Prop ++ ")"
  show (Or Prop Prop) = "(" ++ show Prop "||" ++ show Prop ++ ")"
  show (Imply Prop Prop) = "(" ++ show Prop "=>" show Prop ++ ")"

And I got two main errors from ghci...

Not in scope: data constructor `Char'
Not in scope: data constructor `Prop'

I am a beginner with haskell,thankyou very much.

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6  
Please don't use Show for this and write your own Prop -> String function; it will help you down the track! –  ivanm May 7 '12 at 5:32

2 Answers 2

up vote 5 down vote accepted

Value names that start with an uppercase letter are reserved for constructors, like Var, True, False, etc. Variables must start with a lowercase letter.

Additionally, you can't use the same name for two different variables. How would Haskell know which one you meant each time you used them? You can't simply use the definition of a constructor as a pattern in a function; you need to give a separate name to each field.

So, instead of Var Char, write Var name; instead of Imply Prop Prop, write Imply p q (or Imply prop1 prop2), and so on.

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Thankyou, now I know why it was wrong. –  lpy May 7 '12 at 3:22

A slight edit will get it working:

instance Show Prop where
  show (Var c) = [c]
  show (Not p) = "(~" ++ show p ++ ")"
  show (And p1 p2) = "(" ++ show p1 ++ " && " ++ show p2 ++ ")"
  show (Or p1 p2) = "(" ++ show p1 ++ "||" ++ show p2 ++ ")"
  show (Imply p1 p2) = "(" ++ show p1 ++ "=>" ++ show p2 ++ ")"
share|improve this answer
    
Hello, thankyou for your answers, but I found a problem. The p1 above, the real answer is A && ~A, and your answer is ('A'&&~'A') –  lpy May 7 '12 at 3:04
    
Getting rid of the quotes is easy - applying show to a Char produces a quoted character, but since a String is just a list of Chars, you can make the Char show non-quoted by just making it into a one-element list. Dealing with the parens will be more challenging, if you don't want them to always be there. Surely they'll need to be there sometimes. –  gcbenison May 7 '12 at 3:17
    
Thankyou, It works, I appreciate your help and your explanation –  lpy May 7 '12 at 3:21

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