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I'm a beginner in jQuery and here's what I'm trying to do:

  • Find all elements (let's call them boxes to avoid confusion later) with class "chosen" and assign a number to each.
  • In each of those boxes, find all input elements in them.
  • To each input element's name add it's box number. For instance, if in 3rd box there was a text input element called "login", it should be renamed to "login3".

Here's the code I made so far:

boxes = $('.chosen');
for(a = 0; a < boxes.length; a++) {
    inputsinboxes = boxes[a].children('input');
    for(b = 0; b < inputsinboxes.length; b++) {         
        inputsinboxes[b].name = inputsinboxes[b].name + (a+1);
    }
}

I'm stuck though since it keeps telling me boxes[a].children is not a function.

What am I doing wrong?

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3 Answers 3

up vote 3 down vote accepted

When you use array index notation (brackets) to access an element from a jQuery object, you don't get a jQuery object back. You get the underlying DOM node. http://api.jquery.com/get/

Start by using .each() to make this more idiomatic jQuery:

$('.chosen').each(function (i) {
    $(this).children('input').prop('name', function () {
        return this.name + (i+1);
    });
});
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I didn't know you can place a anonymous function as a value with prop()... –  Lix Dec 23 '12 at 19:11
1  
@Lix it's well-documented, and has nothing specifically to do with anonymous functions. A named one would work just as well. api.jquery.com/prop –  Matt Ball Dec 23 '12 at 19:12
    
A case of "read the fine print!" :P –  Lix Dec 23 '12 at 19:13

You're mixing raw javascript intuitions with how jquery operates. Try this on for size

$('.chosen').each(function(index) {
    $('input', this).each(function() {
        $(this).attr('name', $(this).attr('name') + (index + 1));
    });
});
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3  
Why keep your own a index when you get one for free when using .each()? –  Matt Ball Dec 23 '12 at 19:11
1  
@MattBall Thank you! I never looked into each deep enough to care about it's parameters, you've just made my future "each" endeavors that much sweeter :) –  Bryan Moyles Dec 23 '12 at 19:13
    
Thanks! That works perfectly. Just a small correction, a should be incremented after whole box is finished, so: var a = 1;$('.chosen').each(function() { $('input', this).each(function() { $(this).attr('name', $(this).attr('name') + (a)); }); a++; }); –  Wojciech Maj Dec 23 '12 at 19:15
    
Ah, my apologies, using the index counter on the .each loop as @MattBall suggested fixes this issue as well, by using the outside counter :) Glad to see you got it working even with my initial bug :) –  Bryan Moyles Dec 23 '12 at 19:17
    
Another way to fix that would have been to start with a = 0, or use ++a instead of a++. –  Matt Ball Dec 23 '12 at 19:19

boxes[a] is a DOMElement, not a jQuery object; so you can't use the jQuery children() method on it.

Instead you have to wrap it in a jQuery object first:

boxes = $('.chosen');
for(a = 0; a < boxes.length; a++) {
    inputsinboxes = $(boxes[a]).children('input');
    for(b = 0; b < inputsinboxes.length; b++) {         
        inputsinboxes[b].name = inputsinboxes[b].name + (a+1);
    }
}

  1. Also note that you should declare your variables with a var to stop them being made implicit globals;

    var boxes = $('.chosen');
    
  2. Consider using the more common each() function in jQuery rather than a for loop. Coupled with the using prop() as a setter and providing a function, you can shorten your code to just:

    $('.chosen').each(function (i) {
        $(this).children('input').prop('name', function (j, curr) {
            return curr + (i+1);
        });
    });
    
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