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I'm trying to make a custom type an instance of Show.

Here's theType, it's just a basic Set type.

data Set a = Insert a (Set a) | EmptySet

I'd like something like

Insert 1 (Insert 2 (Insert 3 EmptySet))

to display like

{1, 2, 3}

How do I do this? I tried doing it with string concatenation, but it seems like doing string interpolation is considered bad form (Haskell doesn't seem to natively support this?) Also, how do I get the curly braces around the list? So far, all I was able to cook up was this, which basically does nothing...

instance (Show a) => Show (Set a) where
     show EmptySet = ""
     show (Insert a as) = show a ++ show as 

Also, I tried to use Hoogle and Hayoo to find the List implementation so I could see how this was implemented on Lists. I couldn't find it. Does anyone have any pointers on this? I tried searching "show::[a]->String", "Data.Lists", "Lists" etc....

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3  
By the way, this is probably a bad idea. The result of show should be valid Haskell code that produces a value equal to the one passed to show. I suggest defining a fromList function and making show on the set {1, 2, 3} produce e.g. fromList [1, 2, 3]; this is the approach taken by the standard Data.Map and Data.Set libraries. Alternatively, you could define your own function that does this to be called instead of show to view sets in this notation. –  ehird Dec 17 '11 at 0:29

3 Answers 3

up vote 4 down vote accepted

Here's a solution with direct recursion:

instance Show a => Show (Set a) where
  show = ('{' :) . go
    where
      go EmptySet            = "}"
      go (Insert x EmptySet) = show x ++ "}"
      go (Insert x xs)       = show x ++ ", " ++ go xs

If you don't like the inefficient use of (++), you can of course use difference lists:

instance Show a => Show (Set a) where
  show = ('{' :) . ($ []) . go
    where
      go EmptySet            = ('}' :)
      go (Insert x EmptySet) = shows x . ('}' :)
      go (Insert x xs)       = shows x . (", " ++) . go xs

That should do it; so, let's test:

> show (Insert 2 (Insert 3 (Insert 5 EmptySet)))
"{2, 3, 5}"
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1  
If you don't like the inefficient use of (++) you should implement showsPrec instead of show. –  Sjoerd Visscher Dec 17 '11 at 11:51
    
@SjoerdVisscher: I agree, of course, but I wanted to demonstrate the delta with the first implementation. –  dblhelix Dec 17 '11 at 12:41

That type of yours is still homomorphic to a list. Wherever that Show instance is defined; you can still use it:

toList (Insert a b) = a:toList b
toList EmptySet = []

instance Show a => Show (Set a) where
    show = show . toList
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The data type might be recursive, but that's no reason for the function to be recursive.

import Data.List (intercalate)

instance Show a => Show (Set a) where
  show x = "{" ++ intercalate ", " (toList x) ++ "}"

This assumes you have a function toList :: Set a -> [a]. The recursion is hidden in there.

The List implementation is done via the showList function from the Show typeclass (so that Strings, a.k.a. [Char]s, can be displayed differently).

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I'm kind of a noob, but doesn't this break because a list has to contain elements of all the same type? If I feed a list of numbers into this function, won't it barf a type error? –  Josh Infiesto Dec 16 '11 at 23:22
1  
The set as you've defined it also has to contain elements of the same type. In Insert a (Set a), it's all as. So there shouldn't be a problem. –  redxaxder Dec 17 '11 at 0:56

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