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This prints 1:

def sum(i)
  i=i+[2]
end

$x=[1]
sum($x)
print $x

This prints 12:

def sum(i)
  i.push(2)
end

$x=[1]
sum($x)
print $x

The latter is modifying the global variable $x. Why is it modified in the second example and not in the first one? Will this will happen with any method (not only push) of the class Array?

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Good Puzzle question.. +1 :-) –  Arup Rakshit Mar 4 '14 at 8:58

3 Answers 3

up vote 4 down vote accepted

Variable scope is irrelevant here.

In the first code, you are only assigning to a variable i using the assignment operator =, whereas in the second code, you are modifying $x (also referred to as i) using a destructive method push. Assignment never modifies any object. It just provides a name to refer to an object. Methods are either destructive or non-destructive. Destructive methods like Array#push, String#concat modify the receiver object. Non-destructive methods like Array#+, String#+ do not modify the receiver object, but create a new object and return that, or return an already existing object.

Answer to your comment

Whether or not you can modify the receiver depends on the class of the receiver object. For arrays, hashes, and strings, etc., which are said to be mutable, it is possible to modify the receiver. For numerals, etc, which are said to be immutable, it is impossible to do that.

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thank you, is there any way I can modify a global variable using a function like the one in my question? for example: having two global variable "$x" and "$y", and i want to create a function with one argument, when I call the function with $x will modify $x and when I call it with $y will modify $y, is this posible? without having to create a new destructive method in the class of $x and $y –  jorar91 Mar 4 '14 at 8:46
    
@user3288400 Yes. It is possible. How do you want to modify? –  sawa Mar 4 '14 at 8:47
    
just as an example, a function f(arg), when is call f($x), will modify $x=$x+1, and with f($y) modify $y+=1, In this case the variables are integers –  jorar91 Mar 4 '14 at 8:51
2  
immediate = immutable? –  Stefan Mar 4 '14 at 9:09
1  
Yes............. –  sawa Mar 4 '14 at 9:33

In the first snippet, you assign new local variable to hold result of $x + [2] operation which is returned, but it doesn't change $x (because + method doesn't modify receiver object). In your second snipped, you use Array#push method, which modifies an object (in this case, object assigned to $x global var and passed as i into your sum method) on which it's called.

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thank you, is there any way I can modify a global variable using a function like the one in my question? for example: having two global variable $x and $y, and i want to create a function with one argument, when I call the function with $x will modify $x and when I call it with $y will modify $y, is this posible? –  jorar91 Mar 4 '14 at 8:43
1  
@user3288400 you already did it - in your second piece of code. –  Marek Lipka Mar 4 '14 at 8:45
    
just make sure you are not re-assigning the variable. that's all. –  Karoly Horvath Mar 4 '14 at 8:48
1  
@user3288400 look at sawa's answer. –  Marek Lipka Mar 4 '14 at 9:08
1  
please stop abusing comments and skipping the reading of comments. if you're still confused, post a question –  Karoly Horvath Mar 4 '14 at 9:08

i.push(2) appends 2 to the array pointed by i. Since this is the same array pointed by $x, $x gets 2 appended to it as well.

i=i+[2] creates a new array and set i to it - and now this is a different array than the one pointed by $x.

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