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heist :: (Num n) => [n] -> [n] -> n -> n
-- heist [] [] _ = 0
heist w v maxw = func w v i j where
    i = length w
    j = maxw  
func :: (Num n) => [n] -> [n] -> n -> n -> n 
func _ _ 0 0 = 0

the above code is giving me:

Heist.hs:15:27:
    Could not deduce (n ~ Int)
    from the context (Num n)
      bound by the type signature for
                 heist :: Num n => [n] -> [n] -> n -> n
      at Heist.hs:(15,1)-(17,16)
      `n' is a rigid type variable bound by
          the type signature for heist :: Num n => [n] -> [n] -> n -> n
          at Heist.hs:15:1
    In the third argument of `func', namely `i'
    In the expression: func w v i j
    In an equation for `heist':
        heist w v maxw
          = func w v i j
          where
              i = length w
              j = maxw

Why is that happening?

I am wrapping my head around Haskell type system inch by inch

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up vote 5 down vote accepted

length returns an Int; use i = Data.List.genericLength w or i = fromIntegral (length w).

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hmm, elaborate please? I thought Int is an instance of Num, why does it still need that kind of "fromIntegral" conversion? – dude Nov 2 '11 at 11:25
5  
The type of heist promises "you give me an arbitrary type n with Num n, I'll give you a function of type [n] -> [n] -> n -> n". So suppose we are given some type n (the "rigid type variable"), about which we know nothing (except that it is an instance of Num). We then call func at n = Int, which again returns an Int. But we were supposed to return a value of the type n we were given. – FunctorSalad Nov 2 '11 at 11:33
1  
In short, your type signature promises that heist will also work for Double (among others). But it doesn't. – Ingo Nov 2 '11 at 22:26

length always returns an Int. By passing i to func you're saying that n should be Int, but heist wants n to be generic, hence the type error.

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