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const function is defined in Prelude as:

const x _ = x

In ghci when i tried

Prelude> const 6 5  -> Gives 6

But when i tried

Prelude> const id 6 5 -> Gives 5

Even on making changes like

Prelude> (const id 6) 5 -> Gives 5

Shouldn't this function give 6 as output as id function has type id :: a -> a and this should bind like

Prelude> (const 6) 5 -> Gives 6

Why is const function behaving in a different way?

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2 Answers 2

up vote 37 down vote accepted

You seem to be thinking that this is equivalent to const (id 6) 5, where id 6 evaluates to 6, but it isn't. Without those parentheses, you're passing the id function as the first argument to const. So look at the definition of const again:

const x _ = x

This means that const id 6 = id. Therefore, const id 6 5 is equivalent to id 5, which is indeed 5.

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7  
Another nice property is that const id = flip const –  danr Jan 30 '12 at 12:09

functions also can be parameters of another functions. id becomes a parameter of const so what the expression (const id 6) 5 really do is:

(const id 6) 5

(const id _) 5 -- grab the first parameter id

id 5

5

for more detail about what operators really do

  1. anything in a pair of brackets would be treat as a whole expression (but it doesn't mean it will be calculated first). for example: (map (1+) ), (\x -> (-) x )

  2. prefix operatiors has more prior than infix operations

  3. the most left hand side prefix operatior in expression would be treat as a function which grabs parameters (including other prefix operatiors) in a expression from left to right until facing infix operators or the end of line. for example, if you type map (+) id 3 const + 2 at ghci, you will get an error that says "The function `map' is applied to four arguments..." because map grabs (+), id, 3 and const as parameters before the infix operator +

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