Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.
var obj = { 'a' : 'apple', 'b' : 'banana', 'c' : 'carrot' }

If I do a

for(key in obj) {
  console.log( key + ' has a value ' + obj[key] );
}

It will look through all the values in obj. If I have a much larger object, how do I know if I am on the last iteration of that for loop?

I realize that key value pairs aren't really organized in order, but I need to accomplish something in the very last iteration of this loop and don't know how.

share|improve this question
    
possible duplicate of How to get object length in jQuery –  Roko C. Buljan Jan 12 at 15:55
add comment

4 Answers

up vote 7 down vote accepted

don't use for (key in obj), it will iterate over all enumerable properties including prototype properties, and can lead to amazingly horrible things. Modern JS has a special function for getting only the relevant keys out of an object, using Object.keys(...), so if you use var keys = Object.keys(obj) to get the list of keys as an array, you can then iterate over that:

// blind iteration
Object.keys(obj).forEach(function(key) {
  var value = obj[key];
  // do what you need to here
});

// indexed iteration
for(var keys = Object.keys(obj), i = 0, end = keys.length; i < end; i++) {
  var key = keys[i], value = obj[key];
  // do what you need to here, with index i as position information
});

or select its last element immediately

var keys = Object.keys(obj);
var last = keys[keys.length-1];
share|improve this answer
    
Exactly what I was going to suggest. –  T.J. Crowder Jan 12 at 15:55
    
Why should a Object.keys(obj) be better then a for( key in obj) with hasOwnProperty (I know the hasOwnProperty is not in the question) ? Object.keys will create a new object holding the keys. –  t.niese Jan 12 at 15:57
    
@t.niese Obj.keys() = ECMAScript 5.1 –  Roko C. Buljan Jan 12 at 15:58
    
@t.niese you pretty much answered your own question. A single API call that generates the data required is better than a blind iteration that then requires an extra calls for each value found to check whether it's actually the correct value. Object.keys might generate a new array, but the time required to do that is far less than the time required to call that .hasOwnProperty check for each attribute, and you're not going to see a spike in your memory profile from the arrays created by Object.keys under for-webpage conditions (for-custom-engines conditions are a different beast) –  Mike 'Pomax' Kamermans Jan 12 at 16:05
    
@Mike'Pomax'Kamermans ok yes, just did a little test and it performs way better then the last time I tested it. Engines got better in creating the list at once and probably also handles it in a way that they only do a real memory allocation if array is modified, at least V8 seems to do a really great job here. –  t.niese Jan 12 at 16:34
add comment

You could put the logic for the last item outside the loop:

var last_item = null;
for(key in obj) {
  last_item = key;
}
console.log(last_item);
share|improve this answer
add comment

You could loop through all of them and save the last one in a variable.

var lastItem = null;
for(key in obj) {
  console.log( key + ' has a value ' + obj[key] );
  lastItem = key;
}
// now the last iteration's key is in lastItem
console.log('the last key ' + lastItem + ' has a value ' + obj[lastItem]);

Also, because of how JavaScript works the key is also in your loop's key variable, so the extra variable is not even needed.

for(key in obj) {
  console.log( key + ' has a value ' + obj[key] );
}
// now the last iteration's key is in lastItem
console.log('the last key ' + key + ' has a value ' + obj[lastItem]);
share|improve this answer
add comment
for(var x=0 ; x<Object.keys(obj).length ; x++)
{
     if(x==Object.keys(obj).length-1) // code for the last iteration

}

Or could use Object.size(obj)

share|improve this answer
    
does .length work on an object? –  theshadowmonkey Jan 12 at 15:55
    
I don't see why not. Trivial issue, there's always the Object.size(obj) –  D. Rattansingh Jan 12 at 16:04
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.