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I've been doing my annual attempt to learn Haskell this weekend, and as ever when I actually try to write a recursive function (rather than just type one in from a tutorial), I get a type error.

I'd very much appreciate any help understanding (1) what the error means (I don't understand the "fix"); and (2) why an error is being thrown at all - I'm fairly certain I'm not making any mistakes regarding the types being passed.

My code:

tell :: (Show a) => [a] -> String  
tell'in :: (Show a, Num n) => [a] -> n -> String -> (n, String)
tell [] = "The list is empty"  
tell (x:[]) = "The list has one element: " ++ show x  
tell (x:xs) = "The list has " ++ n ++ " elements: " ++ s where (n, s) = (tell'in (xs) (1) (show x))  


tell'in (x:[]) n s = ((n + 1), (s ++ " and " ++ (show x)))
tell'in (x:xs) n s = tell'in xs (n+1)  (s ++ " and " ++ show x)

And the error I get when I try to load this into GHCI:

[1 of 1] Compiling Main             ( example.hs, interpreted )

example.hs:13:88:
    Could not deduce (Num [Char]) arising from the literal `1'
    from the context (Show a)
      bound by the type signature for tell :: Show a => [a] -> String
      at example.hs:(11,1)-(13,99)
    Possible fix:
      add (Num [Char]) to the context of
        the type signature for tell :: Show a => [a] -> String
      or add an instance declaration for (Num [Char])
    In the second argument of `tell'in', namely `(1)'
    In the expression: (tell'in (xs) (1) (show x))
    In a pattern binding: (n, s) = (tell'in (xs) (1) (show x))
Failed, modules loaded: none.
Prelude>
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1  
+1 for the annual attempt. –  FUZxxl Jun 6 '11 at 8:54

3 Answers 3

up vote 3 down vote accepted

tell'in is returning a Num n => n, which you are then (++)ing with a String (aka [Char]) in the last equation for tell. You probably want to use show n instead of n there.

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Great, thank you. That absolutely worked. –  Marcin Jun 6 '11 at 6:34

The type of tell'in says that the first coordinate of its return value will be the same type as its second argument. In tell, you are calling tell'in with a number as its second argument (1), and then using the first coordinate of its return value (n) as a string by appending it to other strings. So whatever this type is, it must simultaneously be a string and a number. The error is telling you that there is no way for a string ([Char]) to be considered a kind of number, which arises when it tries to interpret the meaning of the numeric literal 1. You probably meant

"The list has " ++ show n ++ " elements: " ++ ...
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Thanks - fixed it! –  Marcin Jun 6 '11 at 6:34

There is a general scheme to understand the compile error, iff it is some type mismatch: You need to supply more specific type annotations to narrow the error down!

tell'in and tell already have types:

tell :: (Show a) => [a] -> String  
tell'in :: (Show a, Num n) => [a] -> n -> String -> (n, String)

So, you change this:

tell (x:xs) = "The list has " ++ n ++ " elements: " ++ s
    where (n, s) = tell'in (xs) (1) (show x)) 

To this:

--   vvvvvvvvvvvvvvvvvvvvvvv                      vvvvvvvv
tell ((x:xs)::(Show a=>[a])) = "The list has " ++ (n::Int) ++ " elements: " ++ s
    where (n::Int, s::String) = tell'in (xs) (1::Int) (show x)) 
--        ^^^^^^^^^^^^^^^^^^^^               ^^^^^^^^

Now, either you already see the error, or you try to compile again and have a more specific error message.


Anyway, it is a good idea to use ::Int instead of ::Num n=>n, because the latter will generalize to ::Integer, whenever the exact type is not specified. The Int is not larger than one machine word (32/64bit) and therefore it is faster than the arbitrary-sized Integer.

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Thanks, I'll try that in future. –  Marcin Jun 7 '11 at 7:12

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