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.

My json object looks like:

User { ID: 234, name: 'john', ..);

I want to build a string of all the ID's.

How can I do this? is there a more elegant way than below?

var ids = '';
for(int x = 0; x < json.length; x++)
{
      ids += json[x].Id + ",";
}
// strip trailing id
share|improve this question
    
Check out this question: stackoverflow.com/questions/759385/… –  Gabe May 12 '10 at 15:04
    
What type is your json variable? –  Gumbo May 12 '10 at 15:04
    
Your object is not valid JSON, not even valid JavaScript, and even if it was - it could only contain one single ID in its current form. So what does it really look like? –  Tomalak May 12 '10 at 15:08
add comment

3 Answers

up vote 2 down vote accepted

You can make an array, use .push() to add items and .join() the result after, like this:

var ids = [];
for(int x = 0; x < json.length; x++)
{
      ids.push(json[x].Id);
}
var idString = ids.join(',');
share|improve this answer
add comment

Assuming you an array of several users, which is what your question seems to imply (even though the example you show is neither valid JSON nor does it indicate that there is more than one object of type user)

var jsonResult = [{ID: 1, name: 'John'}, {ID: 2, name: 'Bob'}];

var ids = jsonResult.map( function(user) {return user.ID;} ).join(',');
// ids will be "1,2"
share|improve this answer
add comment

For JavaScript 1.8 (ECMA-262 Edition 5) you might use Array.reduce to do basically the same thing:

[{id:1},{id:2},{id:3}].reduce(function(a,b) { return a+','+b.id }, '').substr(1)

If you prefer accumulating values in an array and concatenating them in the end do this:

[{id:1},{id:2},{id:3}].reduce(function(a,b) { a.push(b.id); return a }, []).join(',')

share|improve this answer
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.