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I'm very new to jQuery and i'm developing a plugin (for my own use) for setting DOM elements html() with content returned by an ajax call. Example:

<span id="a" class="scalar">?</span>
<span id="b" class="scalar">?</span>
<span id="c" class="scalar">?</span><!-- this will not be updated -->

If stats.php is going to return a JSON object like this: { a : 3, b : 7 } the resulting HTML would be (each object property will match an id among the selection on which the plugin was invoked):

<span id="a" class="scalar">3</span>
<span id="b" class="scalar">7</span>
<span id="c" class="scalar">?</span><!-- this will not be updated -->

This is the plugin invocation and definition. Question is: why find() can't properly select the element to be updated?

<script type="text/javascript">
   $(document).ready(function() {
      $('.scalar').scalar({ url : '../REST/stats.php' });

(function($) {

    $.fn.scalar = function(options) {

        var opt = $.extend({
            url : 'REST/stats.php',
            type : 'POST',
            context: this,
            dataTypeString : 'json'
        }, options);

        $.ajax($.extend(opt, {
            success : function(obj) {
                for(k in obj) {
                    if(!obj.hasOwnProperty(k)) continue;
                    console.log(this.find('#' + k));

        return this.each();

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1 Answer 1

up vote 1 down vote accepted

Because find looks for descendant elements, and the elements you are looking for are not descendants (they are all siblings of each other). Use filter instead:

console.log(this.filter('#' + k));

this will be a jQuery object wrapping a set of DOM elements. Unless one or more of those elements contains a descendant element with the id you are looking for with find, it won't work. You need to look at the elements themselves, which is what filter does.

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