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What is the difference between the dot (.) and the dollar sign ($)?. As I understand it, they are both syntactic sugar for not needing to use parentheses.

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57  
I wouldn't call it "syntactic sugar". They are both ordinary operators defined in Haskell. –  Porges Jun 5 '09 at 4:38
28  
Ordinary functions, even. –  Rayne Jan 7 '10 at 7:32
6  
See also stackoverflow.com/questions/3030675/… –  Don Stewart Apr 18 '11 at 18:20

8 Answers 8

up vote 597 down vote accepted

The $ operator is for avoiding parenthesis. Anything appearing after it will take precedence over anything that comes before.

For example, let's say you've got a line that reads:

putStrLn (show (1 + 1))

If you want to get rid of those parenthesis, any of the following lines would also do the same thing:

putStrLn (show $ 1 + 1)
putStrLn $ show (1 + 1)
putStrLn $ show $ 1 + 1

The primary purpose of the . operator is not to avoid parenthesis, but to chain functions. It lets you tie the output of whatever appears on the right to the input of whatever appears on the left. This usually also results in fewer parenthesis, but works differently.

Going back to the same example:

putStrLn (show (1 + 1))
  1. (1 + 1) doesn't have an input, and therefore cannot be used with the . operator.
  2. show can take an Int and return a String.
  3. putStrLn can take a String and return an IO ().

You can chain show to putStrLn like this:

(putStrLn . show) (1 + 1)

If that's too many parenthesis for your liking, get rid of them with the $ operator:

putStrLn . show $ 1 + 1
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15  
This is the clearest explanation on this page. Thanks. –  mindeavor Nov 10 '09 at 2:16
7  
Actually, since + is a function too, couldn't you make it prefixed then compose it in as well, like ` putStrLn . show . (+) 1 1 ` Not that it's any clearer, but I mean... you could, right? –  CodexArcanum Oct 25 '10 at 19:27
    
@CodexArcanum In this example, something like putStrLn . show . (+1) $ 1 would be equivalent. You are correct in that most (all?) infix operators are functions. –  Michael Steele Nov 8 '10 at 15:28
27  
I wonder why nobody ever mentions uses like map ($3). I mean, I mostly use $ to avoid parentheses as well, but it's not like that's all they're there for. –  Cubic Feb 25 '13 at 15:42
11  
map ($3) is a function of type Num a => [(a->b)] -> [b]. It takes a list of functions taking a number, applies 3 to all of them and collects the results. –  Cubic Feb 28 at 15:06

They have different types and different definitions:

infixr 9 .
(.) :: (b -> c) -> (a -> b) -> (a -> c)
(f . g) x = f (g x)

infixr 0 $
($) :: (a -> b) -> a -> b
f $ x = f x

($) is intended to replace normal function application but at a different precedence to help avoid parentheses. (.) is for composing two functions together to make a new function.

In some cases they are interchangeable, but this is not true in general. The typical example where they are is:

f $ g $ h $ x

==>

f . g . h $ x

In other words in a chain of $s, all but the final one can be replaced by .

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Also note that ($) is the identity function specialised to function types. The identity function looks like this:

id :: a -> a
id x = x

While ($) looks like this:

($) :: (a -> b) -> (a -> b)
($) = id

Note that I've intentionally added extra parentheses in the type signature.

Uses of ($) can usually be eliminated by adding parenthesis (unless the operator is used in a section). E.g.: f $ g x becomes f (g x). Uses of (.) are often slightly harder to replace; they usually need a lambda or the introduction of an explicit function parameter. For example:

f = g . h

becomes

f x = (g . h) x

becomes

f x = g (h x)

Hope this helps!

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($) allows functions to be chained together without adding parentheses to control evaluation order:

Prelude> head (tail "asdf")
's'

Prelude> head $ tail "asdf"
's'

The compose operator (.) creates a new function without specifying the arguments:

Prelude> let second x = head $ tail x
Prelude> second "asdf"
's'

Prelude> let second = head . tail
Prelude> second "asdf"
's'

The example above is arguably illustrative, but doesn't really show the convenience of using composition. Here's another analogy:

Prelude> let third x = head $ tail $ tail x
Prelude> map third ["asdf", "qwer", "1234"]
"de3"

If we only use third once, we can avoid naming it by using a lambda:

Prelude> map (\x -> head $ tail $ tail x) ["asdf", "qwer", "1234"]
"de3"

Finally, composition lets us avoid the lambda:

Prelude> map (head . tail . tail) ["asdf", "qwer", "1234"]
"de3"
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If the stackoverflow had a combination function, I would prefer the answer combining the previous two explanations with the example in this answer. –  Chris.Q Jan 12 at 15:51

The short and sweet version:

  • ($) calls the function which is its left hand argument on the value which is its right hand argument.
  • (.) composes the function which is its left hand argument on the function which is its right hand argument.
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+1. that is really sweeeeeeeeet! –  Nawaz Aug 3 at 16:26

One application that is useful and took me some time to figure out from the very short description at learn you a haskell: Since:

f $ x = f x

and parenthesizing the right hand side of an expression containing an infix operator converts it to a prefix function, one can write ($ 3) (4+) analogous to (++", world") "hello".

Why would anyone do this? For lists of functions, for example. Both:

map (++", world") ["hello","goodbye"]`

and:

map ($ 3) [(4+),(3*)]

are shorter than map (\x -> x ++ ", world") ... or map (\f -> f 3) .... Obviously, the latter variants would be more readable for most people.

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8  
btw, I'd advise against using $3 without the space. If Template Haskell is enabled, this will be parsed as a splice, whereas $ 3 always means what you said. In general there seems to be a trend in Haskell to "stealing" bits of syntax by insisting that certain operators have spaces around them to be treated as such. –  Ganesh Sittampalam Feb 1 '10 at 8:07
    
Took me a while to figure out how the parentheses were working: en.wikibooks.org/wiki/Haskell/… –  Casebash Mar 21 '10 at 11:29

... or you could avoid the '.' and '$' constructions by using pipelining:

third xs = xs |> tail |> tail |> head

That's after you've added in the helper function:

(|>) x y = y x
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this doesn't work. (tail |> tail |> head) [1,2,3] = ((tail |> tail) |> head) [1,2,3] = ((tail tail) |> head) [1,2,3] = head (tail tail) [1,2,3]. It would work with (|>) x y = y . x. For the given definition you probably meant to write third xs = xs |> tail |> tail |> head. You can't really skip the data point with this. I'll fix it for you. :) –  Will Ness Dec 4 '12 at 16:06
    
Well, it works as specified if you write:[1,3,5,9] |> tail |> tail |> head –  user1721780 Dec 5 '12 at 5:51
1  
I can't remember what I wrote now, but thanks for fixing it. The above code shows the way I implement it, as a full l-to-r pipeline. I just find stuff easier to read that way. –  user1721780 Dec 5 '12 at 5:58
    
I use this myself too, sometimes. Funny, I even chose the same operator. Is this how it's defined in F#? ... you can find your original version by clicking on "edited X hours ago" link below the post. :) –  Will Ness Dec 5 '12 at 7:31
    
Yes, |> is the F# pipeline operator. –  user1721780 Dec 5 '12 at 10:03

My rule is simple (i'm beginner too): do not use . if you want to pass the parameter (call the function) and do not use $ if there is no parameter yet (compose a function):

show $ head [1, 2]

but never:

show . head [1, 2]
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