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Why this definition fails in GHCi?

let f = (*2)+1

With

No instance for (Num (a0 -> a0))
  arising from a use of `+'
Possible fix: add an instance declaration for (Num (a0 -> a0))
In the expression: (* 2) + 1
In an equation for `f': f = (* 2) + 1

How is it different from the following?

let f x = x*2+1
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4  
(*2) is a function. x*2 is a number. –  n.m. Jun 21 '13 at 21:41

3 Answers 3

up vote 6 down vote accepted

(*2) is a function. So you're trying to add 1 to a function, which does not work (barring a Num instance for functions).

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worth pointing out that were you to define a num instance for functions it would do the right thin –  Philip JF Jun 21 '13 at 23:08
    
@PhilipJF: Even if there were a Num instance for functions, I think it would still be a type error because (+) expects both its arguments to be the same type. –  hugomg Jun 22 '13 at 5:07
1  
@missingo they would be though, right? (*2) :: Num a => a -> a while 1 :: Num a => a -> a after specialization to functions (fromInteger, baby) –  Philip JF Jun 22 '13 at 6:02

(*2) defines a function of type Num a => a -> a, the same as

let multTwo x = x * 2

so you are trying to add 1 to a function.

You can use composition instead:

let f = (+1) . (*2)
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2  
Actually, your multTwo is (2*), not (*2). For multiplication, which is commutative, it is of course not much of a difference. –  chirlu Jun 21 '13 at 21:51
    
@chirlu - Thanks for the correction. –  Lee Jun 21 '13 at 22:28

As per the other answers, you're trying to add 1 to a function.

I can see what you're trying to do, though; something like 'in front' currying:

let f = \x -> x * 2 + 1

which is the same as

let f x = x * 2 + 1

As per Lee's answer, f = (+ 1) . (* 2) applies everything as you'd expect. You can also do something like this to apply everything the other way around:

import Control.Arrow

let f = (* 2) >>> (+ 1)           

-- Prelude Control.Arrow> f 5
-- 11

Which might be more along the lines of what you're thinking in your head.

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