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I have a following code and I want to understand the scope of the variable inside that adder function. How it could able to retain the x value on call?

function adder(x)
    return function (y) return x + y end
end

a1 = adder(9)

a2 = adder(36)

print(a1(33)) --  42 how this can able to retain the value of x

print(a2(64)) --  100

I am getting 42 ,when I called that adder function second time. how this is possible here?

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1 Answer 1

up vote 3 down vote accepted

This feature is called lexical scoping, or it's a closure. It means that functions can access variables of their enclosing functions.

function adder(x)
    return function (y) return x + y end
end

The anonymous function has full access to local variable x in the enclosing function adder. x is called a non-global variable (or upvalue for historical reasons) inside the anonymous function, because it's neither a global variable nor a local variable to the anonymous function.

For detail, read the chapter More about Functions in Programming in Lua.

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"print(a1(33))" does this called that anonymous function directly?. –  Bee.. Sep 19 '13 at 1:15
    
@user2793492 Yes, the anonymous function (with the value of variable x) is stored in the variable a1 now. –  Yu Hao Sep 19 '13 at 1:20
    
As per my understanding "a1 = adder(9)" -- this time we are passing 9 as a arg to that function adder(x) But on this call print(a1(33)) :: 33 also belongs to x right .. but i was getting X+y . can you explain this please? –  Bee.. Sep 19 '13 at 1:39
    
@user2793492 Not really. In the call to a1(33), 33 is passed as the value of y, as that the argument of a1. –  Yu Hao Sep 19 '13 at 1:46
2  
@Bee.. I'm not following you, why not read the PiL book, it has a simpler example of closure, start form understanding it. –  Yu Hao Sep 19 '13 at 2:16

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