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isPalindrome :: [a] -> Bool
isPalindrome xs = case xs of 
                        [] -> True 
                        [x] -> True
                        a -> (last a) == (head a) && (isPalindrome (drop 1 (take (length a - 1) a)))

main = do
    print (show (isPalindrome "blaho"))

results in

No instance for (Eq a)
  arising from a use of `=='
In the first argument of `(&&)', namely `(last a) == (head a)'
In the expression:
  (last a) == (head a)
  && (isPalindrome (drop 1 (take (length a - 1) a)))
In a case alternative:
    a -> (last a) == (head a)
         && (isPalindrome (drop 1 (take (length a - 1) a)))

Why is this error occurring?

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1  
your function assumes as can be compared with ==, you have to put this info in the type signature. –  Karoly Horvath Apr 22 '13 at 19:00
    
Because (==) is a member of the Eq class. So you can use it only on types that are instances of Eq. –  Daniel Fischer Apr 22 '13 at 19:01
    
Real world haskell chap 3? Me too! –  Jason Jan 31 at 3:58
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1 Answer 1

up vote 12 down vote accepted

You're comparing two items of type a using ==. That means a can't just be any type - it has to be an instance of Eq, as the type of == is (==) :: Eq a => a -> a -> Bool.

You can fix this by adding an Eq constraint on a to the type signature of your function:

isPalindrome :: Eq a => [a] -> Bool

By the way, there is a much simpler way to implement this function using reverse.

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5  
According to lambdabot, isPalindrome = reverse >>= (==) :D –  FredOverflow Apr 22 '13 at 20:41
    
@FredOverflow Wow, that's crazy obscure. :) –  augustss Apr 23 '13 at 9:19
    
It uses the monad instance for functions, just like join (+) 2 = 4. But isPalindrome xs = xs == reverse xs is totally reasonable. –  Rein Henrichs Nov 29 '13 at 5:13
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