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I'm really a beginner in Javascript, and trying what i read as much as I can.

But when comes to pop() and push(), I get some strange results that I'm wondering about.

Here's the code :

var arr = [];
arr.push(2,3);
console.log(arr);

console.log(arr.pop());
console.log(arr);

the result is :

[2, undefined × 1]

3

[2]

Shouldn't it be :

[2, 3]

3

[2]

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2 Answers 2

up vote 5 down vote accepted

This is due to console.log's asynchronous evaluation on your browser. By the time the result of the first console.log has been displayed, the item is already gone because of pop().

For accurate results, call toString():

var arr = [];
arr.push(2,3);
console.log(arr.toString()); // 2,3 - as expected.

console.log(arr.pop());
console.log(arr);
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But how comes .toString() made the difference although console.log is still there ? –  Rafael Adel Jul 9 '12 at 20:58
3  
@Rafael: .toString() converts the array to a string synchronously, and passes that string to console.log before pop() is called. The asynchronicity of console.log on certain browsers is a special case compared to the rest of JavaScript. –  Charmander Jul 9 '12 at 21:00

You'd have to note that the console handles objects as "live". Any object (arrays, objects etc.) you already outputted on the console is still subject to operations.

That's why when you expected [2,3] on the first log, the code already popped the 3, thus replaced undefined on 3's spot.

Of course, this event depends on how the browser implement's their console.

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2  
This happens with safari and chrome console but not with firefox's console –  Esailija Jul 9 '12 at 20:53
    
if so the stack should be [2]. –  richard Jul 9 '12 at 21:00

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