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I need to create an array of object literals like this:

var myColumnDefs = [
    {key:"label", sortable:true, resizeable:true},
    {key:"notes", sortable:true,resizeable:true},......

In a loop like this:

for ( var i=0 ; i < oFullResponse.results.length; i++) {
    console.log(oFullResponse.results[i].label);
}

The value of 'key' should be results[i].label in each element of the array.

share|improve this question
up vote 218 down vote accepted
var arr = [];
var len = oFullResponse.results.length;
for (var i = 0; i < len; i++) {
    arr.push({
        key: oFullResponse.results[i].label,
        sortable: true,
        resizeable: true
    });
}
share|improve this answer
14  
you can skip the var obj = { bit, just push the literal itself. – Peter Bailey Aug 17 '09 at 20:11
3  
calculating length only once is probably a good idea, I choose to add a var obj to make the code clearer, of course you can skip it, you can write the whole script in one line if you wish :) – RaYell Aug 17 '09 at 20:16
3  
@kangax, Length isn't "calculated", it's an O(1) operation. – Triptych Aug 17 '09 at 20:18
7  
@Triptych - Yes, but it's a property lookup that you execute with each iteration, which isn't free and can be avoided. Micro-optimization? Possibly. Also, it is a "live" value - if you modify the array in the loop, the length will change on successive iterations which could lead to infinity. Give this a watch youtube.com/watch?v=mHtdZgou0qU – Peter Bailey Aug 17 '09 at 20:32
2  
Yeah, but you're not modifying the array each iteration. If you were, it would be ridiculous to compare against length anyway in most cases. – Triptych Aug 22 '09 at 16:11

RaYell's answer is good - it answers your question.

It seems to me though that you should really be creating an object keyed by labels with sub-objects as values:

var columns = {};
for (var i = 0; i < oFullResponse.results.length; i++) {
    var key = oFullResponse.results[i].label;
    columns[key] = {
        sortable: true,
        resizeable: true
    };
}

// Now you can access column info like this. 
columns['notes'].resizeable;

The above approach should be much faster and idiomatic than searching the entire object array for a key for each access.

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1  
Wow, thank you! – Arlen Beiler Mar 7 '13 at 23:12
    
+1 since the key solution, makes more sense and help me with my needs:) – winner_joiner Apr 6 '13 at 12:18
    
it looks like you are missing a semi-colon after you set the var key? – superUntitled Nov 24 '13 at 1:32
    
nice answer, been looking for how to access the information for a while, thank you – thatOneGuy Jul 17 '15 at 15:26
    
what if key need to be more than once ! ['notes'] can occur more than once then what can we do? – Milson Nov 5 '15 at 17:01

This will work:

 var myColumnDefs = new Object();
 for (var i = 0; i < oFullResponse.results.length; i++) {
     myColumnDefs[i] = ({key:oFullResponse.results[i].label, sortable:true, resizeable:true});
  }
share|improve this answer

I'd create the array and then append the object literals to it.

var myColumnDefs = [];

for ( var i=0 ; i < oFullResponse.results.length; i++) {

    console.log(oFullResponse.results[i].label);
    myColumnDefs[myColumnDefs.length] = {key:oFullResponse.results[i].label, sortable:true, resizeable:true};
}
share|improve this answer
var myColumnDefs = new Array();

for (var i = 0; i < oFullResponse.results.length; i++) {
    myColumnDefs.push({key:oFullResponse.results[i].label, sortable:true, resizeable:true});
}
share|improve this answer
6  
It's better to init an array using [] instead of new Array(). – RaYell Aug 17 '09 at 20:17
    
Interesting discussion [] vs. new Array() stackoverflow.com/questions/7375120/… – Adrian P. Feb 27 at 21:12

In the same idea of Nick Riggs but I create a constructor, and a push a new object in the array by using it. It avoid the repetition of the keys of the class:

var arr = [];
var columnDefs = function(key, sortable, resizeable){
    this.key = key; 
    this.sortable = sortable; 
    this.resizeable = resizeable;
    };

for (var i = 0; i < len; i++) {
    arr.push((new columnDefs(oFullResponse.results[i].label,true,true)));
}
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