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I am trying to compose a function of type (Floating a) => a -> a -> a with a function of type (Floating a) => a -> a to obtain a function of type (Floating a) => a -> a -> a. I have the following code:

test1 :: (Floating a) => a -> a -> a
test1 x y = x

test2 :: (Floating a) => a -> a
test2 x = x

testBoth :: (Floating a) => a -> a -> a
testBoth = test2 . test1
--testBoth x y = test2 (test1 x y)

However, when I compile it in GHCI, I get the following error:

/path/test.hs:8:11:
    Could not deduce (Floating (a -> a)) from the context (Floating a)
      arising from a use of `test2'
                   at /path/test.hs:8:11-15
    Possible fix:
      add (Floating (a -> a)) to the context of
        the type signature for `testBoth'
      or add an instance declaration for (Floating (a -> a))
    In the first argument of `(.)', namely `test2'
    In the expression: test2 . test1
    In the definition of `testBoth': testBoth = test2 . test1
Failed, modules loaded: none.

Note that the commented-out version of testBoth compiles. The strange thing is that if I remove the (Floating a)s from all type signatures or if I change test1 to just take x instead of x and y, testBoth compiles.

I've searched StackOverflow, Haskell wikis, Google, etc. and not found anything about a restriction on function composition relevant to this particular situation. Does anyone know why this is happening?

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2 Answers

up vote 7 down vote accepted
   \x y -> test2 (test1 x y)
== \x y -> test2 ((test1 x) y)
== \x y -> (test2 . (test1 x)) y
== \x -> test2 . (test1 x)
== \x -> (test2 .) (test1 x)
== \x -> ((test2 .) . test1) x
== (test2 .) . test1

These two things are not like each other.

   test2 . test1
== \x -> (test2 . test1) x
== \x -> test2 (test1 x)
== \x y -> (test2 (test1 x)) y
== \x y -> test2 (test1 x) y
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Thank you. Clear and concise. I haven't seen the (test2 .) notation before but it must mean f |-> test2.f. –  gdj Dec 3 '10 at 1:08
    
@gdj: In Haskell, a binary operator can be partially applied to form a section. –  ephemient Dec 3 '10 at 4:07
    
Yes, I'm aware of that; just never seen it used with "." but it makes perfect sense. Thanks! –  gdj Dec 3 '10 at 4:24
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You're problem doesn't have anything to do with Floating, though the typeclass does make your error harder to understand. Take the below code as an example:

test1 :: Int -> Char -> Int
test1 = undefined

test2 :: Int -> Int
test2 x = undefined

testBoth = test2 . test1

What is the type of testBoth? Well, we take the type of (.) :: (b -> c) -> (a -> b) -> a -> c and turn the crank to get:

  1. b ~ Int (the argument of test2 unified with the first argument of (.))
  2. c ~ Int (the result of test2 unified with the result of the first argument of (.))
  3. a ~ Int (test1 argument 1 unified with argument 2 of (.))
  4. b ~ Char -> Int (result of test1 unified with argument 2 of (.))

but wait! that type variable, 'b' (#4, Char -> Int), has to unify with the argument type of test2 (#1, Int). Oh No!

How should you do this? A correct solution is:

testBoth x = test2 . test1 x

There are other ways, but I consider this the most readable.

Edit: So what was the error trying to tell you? It was saying that unifying Floating a => a -> a with Floating b => b requires an instance Floating (a -> a) ... while that's true, you really didn't want GHC to try and treat a function as a floating point number.

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Thanks, this is an intuitive explanation. When I left out the typeclass, that must have meant that testBoth would take x and pass it to test1, then take the resulting function f : y |-> x and pass it to test2, which would then return f. That's clearly not what I wanted. –  gdj Dec 3 '10 at 1:11
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