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I am trying to implement a simple min function that accepts two parameters & returns True if the first must appear before the second in sorted order, False otherwise:

min :: a -> a -> Bool
min a b = if a < b then True else False

I get:

No instance for (Ord a)
arising from a use of `<'
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11  
if foo then True else False can always be rewritten as simply foo –  Sarah Apr 11 '12 at 14:34
    
Thanks for that! –  user1022241 Apr 11 '12 at 14:36
2  
And next time, if you're in doubt, you can simply leave out the type annotation in the top and ask the compiler in many cases. Thus, :t min gives me the correct type with the Ord constraint, when I query ghci about it. –  Sarah Apr 11 '12 at 14:39
    
@Sarah: Sometimes I think it would be a good idea that GHC, on encountering a type error in a declaration with an explicit type signature, tries again without the sig and then provides a message like "Change the declared type of min to Ord a => a -> a -> Bool to make it work". –  yatima2975 Apr 12 '12 at 9:37

3 Answers 3

up vote 6 down vote accepted

You need a type constraint for < to work:

min :: Ord a => a -> a -> Bool
--     ^^^^^
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It would be helpful to tell them why - what a type constraint is. –  amindfv Apr 11 '12 at 17:27
    
@amindfv: dave4420 already did that and I upvoted his answer. –  larsmans Apr 11 '12 at 17:59

If you look at the documentation, you will see that the type for (<) is given as

(<) :: a -> a -> Bool

This is misleading!

The type declaration appears in a typeclass definition:

class Eq a => Ord a where ...

So the full type is

(<) :: Ord a => a -> a -> Bool

Incidentally, if you ask ghci what (<)'s type is, it will get it right.

Prelude> :t (<)
(<) :: (Ord a) => a -> a -> Bool

Also note there is already a function called min, in the same typeclass.

min :: Ord a => a -> a -> a

So you can't call your function min unless you hide the original min. (I'm not going to show you how. Use a different name for your function instead.)


Finally, you now have

min :: Ord a => a -> a -> Bool
min a b = if a < b then True else False

As Sarah notes, if blah then True else False is the same as blah, so you can simplify to the clearer

min :: Ord a => a -> a -> Bool
min a b = a < b

Now operators in Haskell are just functions with funny names --- this is the same as

min :: Ord a => a -> a -> Bool
min a b = (<) a b

We can simplify this further:

min :: Ord a => a -> a -> Bool
min = (<)

So your min is just a different name for (<). Why not simply use the original < instead of your min?

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@gonzoc0ding: Dave is totally right (+1 by the way) –  Riccardo Apr 11 '12 at 15:02
2  
+1 nice step-by-step explanation from min a b = if a < b then True else False to <. –  nimi Apr 11 '12 at 18:36

There are already two answers to this, but I think there's an important point missing:

The reason that you need (Ord a) => in your type signature is that you need to constrain the types that are allowed "into" your function.

When I define a function function :: a -> a, I am saying that my function will take data of any type, and return a value of the same type.

A good example of this is head :: [a] -> a -- given a list of any type, head will return the list's first argument. This is because head doesn't really "touch" the data itself, so it doesn't matter at all what it is.

However, your situation isn't like that: imagine we have a data type Countries:

data Countries = USA | Nigeria | China | Canada -- yes, I know there are a few missing

It makes no sense to say min USA Canada or USA < Canada.

Therefore you have to restrict your functions to types which can be compared this way: types which have instances of the Ord (meaning ordered) typeclass. The way you restrict them is by writing (Ord a) => before your type signature.

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