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I have a problem with definition of list. Normaly is list defined as data [a] = [] | a : [a] but if I write something like this on my code concrete I will to define data T a = N | a -> (T a) the interpreter give me an error: Malformed head of type or class declaration

Do you know whats wrong? Thank you very much.

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2 Answers 2

It looks like your problem is that you tried to use -> as an infix constructor like : (In order to build a list using a -> b -> N syntax). This isn't allowed because infix constructors in Haskell must begin with the : character.

(Also, -> is already used for declaring function types, thus your error message, as Jeff's answers explains)

Try this instead:

-- :-> is allowed as a constructor, while -> is not
data T a = N | a :-> (T a)

-- We want the constructor to be right associative.
infixr :->

mylist = 10 :-> 17 :-> N
--If we hadn't made the operator right associative,
-- we would need to use explicit parenthesis here:
myotherlist = 10 :-> (17 :-> N)

-- Example usage (needs error handling):
myhead (a :-> b) = a
mytail (a :-> b) = b
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3  
Emoticons look so much nicer than arrows. –  Landei Apr 8 '11 at 19:05

a -> T a would mean that a is a function that returns something of T a so I think that's the bit that's wrong. Try something like this.

data T a = N | R a (T a)

N is the empty list (equivalent of []) value and R is the value constructor (equivalent to :)

On the right hand side you need some way of carrying the a value around. You can now right lists like.

> N -- The empty List
> R 5 N -- a list with a single element and then the end
> R 7 (R 6 (R 5 N)) -- the list 7, 6, 5
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Thank you, but i read that (->) is among others a data constructor. Really a will to define a function with no fixed count of arguments. For example funtion to sum their arguments: sum 5 = 5 ; sum 5 4 = 9 ... so I have to define a data structure using (->) –  877 Apr 8 '11 at 15:33
3  
(->) is a type constructor, not a data constructor. (->) takes two types (say, a and b) and returns a type representing a function from an object of type a to an object of type b. –  drvitek Apr 8 '11 at 15:43
    
@877: Defining a variadic function is somewhat difficult in Haskell: what would its type be? It's possible (see the Text.Printf module), but it's rarely what you want. The more usual solution is to have your function take a list. And indeed, in the Prelude, there's a function sum which has type Num a => [a] -> a. –  Antal S-Z Apr 8 '11 at 21:00

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