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I want to include String as part of my constructor:

> data Car = Wheel | Trunk | String deriving (Show)

> test::Car->Car->Car
> test Wheel Wheel = "Wheel"
> test _ _ = ""

it says: Couldn't match Car with [Char]

if I change the constructor to

> data Car = Wheel | Trunk | [Char] deriving (Show)

it says: error in constructor in data/newtype declaration: [Char]

So how do I create a data type where one of the constructors is also a string?

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What you have done in the first is create a value constructor called String. That is String :: Car. If you wanted to actually include a String type value, you would specify a value constructor like CarStr String or String String but the latter case is slightly confusing. –  Sarah Sep 22 '12 at 12:24
    
@Sarah, I just want to be able to return a value of type string, and sometimes Wheel or Trunk, from methods returning type Car. Do I have to use type parameters here? –  user997112 Sep 22 '12 at 12:28
    
Why would you want to do that? You clearly specified that test should yield a Car value. If you have a value constructor in the Car type that is CarStr String, you just return CarStr "Wheel" or whatever you want. You can then pattern match out that String for whatever purpose. –  Sarah Sep 22 '12 at 12:32

2 Answers 2

up vote 7 down vote accepted

Haskell does not provide unnamed unions as you have used in your Car data type. Each element in the definition of a data type must have a constructor. For example, you could define the following data type.

data Car = Wheel | Trunk | Constr String

In this definition Constr denotes a constructor and String is the type of its argument. For example, you can construct a value of type Car by using Constr "Wheel". If you omit the String in the example above, it is a constructor called Constr without an argument. Similarly, in your example, String is a constructor, even if there exists a type with the same name.

With the definition of Car above, you can define test as follows.

test :: Car -> Car -> Car
test Wheel Wheel = Constr "Wheel"
test _     _     = Constr ""

By adding the constructor String on the right hand side of the definitions, the string is lifted into the Car data type. However, as mentioned in the comments, a definition like this seems a little odd as test always yields a value of type String. Therefore, another possible definition would be the following.

test :: Car -> Car -> String
test Wheel Wheel = "Wheel"
test _     _     = ""
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That might have indeed been foolish, I have edited that part. –  Jan Christiansen Sep 22 '12 at 13:24

data Car = Wheel | Trunk | String deriving (Show)

here you are declaring Car with constructors Wheel, Trunk and String. Your String differs from the standard String type, therefore they're not the same. So you can't simply match that with a String such as "". If you want to give it a string value, make the constructor accepts a string, e.g.:

data Car = Wheel | Trunk | CarName String deriving (Show)

and you can then use it like:

test::Car->Car->Car
test Wheel Wheel = CarName "Wheel"
test _ _ = CarName ""

the result of this function must be matched against the constructors, e.g.:

let x = test Wheel Wheel 
in case x of
     Wheel -> ... -- do something if it's wheel
     Trunk -> ... -- do something if it's trunk
     CarName x -> ... -- do something if it's carname, you can use the returned x
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