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I was wondering what the 'this' value (or invocation context) is of the forEach callback function. This code doesn't seem to work:

var jow = [5, 10, 45, 67];

jow.forEach(function(v, i, a){

    this[i] = v + 1;

});

alert(jow);

Thx for explaining it to me.

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3 Answers 3

up vote 7 down vote accepted

MDN states:

array.forEach(callback[, thisArg])

If a thisArg parameter is provided to forEach, it will be used as the this value for each callback invocation as if callback.call(thisArg, element, index, array) was called. If thisArg is undefined or null, the this value within the function depends on whether the function is in strict mode or not (passed value if in strict mode, global object if in non-strict mode).

So in short, if you only provide the callback and you're in non-strict mode (the case you presented), it will be the global object (window).

https://developer.mozilla.org/en-US/docs/Web/JavaScript/Reference/Global_Objects/Array/forEach

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1  
+1 You beat me to it :P –  Exelian Oct 31 '13 at 13:38
    
That's strange. If i create a method on an object, than the 'this' value will be that object. Why is this different? –  kevinius Oct 31 '13 at 13:42
    
this inside the body of forEach will indeed be your particular array, but there is no connection between that and the callback you provide. The callback gets invoked however the implementation of forEach wants, specifically with thisArg, window or element as this. –  Tibos Oct 31 '13 at 13:53
    
Thx, i'm getting there... i used the jow array as the thisArg, but i get bad results: jsfiddle.net/39LSg . Why is that? The value of -this- seems to jump with each iteration between the window object and the jow array –  kevinius Oct 31 '13 at 14:04
    
You're using the value in the array as the index of the element you want to change. First iteration changes jow[1] to 5 (replaces 2 with 5), second changes jow[5] to 5 (adds another 5 at the end), third changes jow[3] to 5 (replaces 4 with 5), every other iteration changes jow[5] to 5. –  Tibos Oct 31 '13 at 14:10

If you dont pass second parameter to forEach, this will point to the global object. To achieve what you were trying to do

var jow = [5, 10, 45, 67];

jow.forEach(function(v, i, a) {
    a[i] = v + 1;
});

console.log(jow);

Output

[ 6, 11, 46, 68 ]
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I finished construction of the forEach method and wanted to share this diagram with everyone, hope it helps someone else trying to understand its inner workings.

The forEach method

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