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I was wondering if there is a cleaner (more succinct) way to do what each() is doing in following JavaScript code.

$(".moreinfodialog")
    .before('<a href="#">Click for more info.</a>')
    .each(function() {
        var temp = this;
        $(this).prev("a").click(function() {
            $(temp).dialog("open");
            return false;
        });
    })
    .dialog({ autoOpen: false, modal: true });

Note that the last call re-orders the dom elements, so ".moreinfodialog" classes are not next to the hrefs any more.

BTW: this source uses jquery/jquery-ui dialog to hide any text in a div with the ".moreinfodialog" class, and replace it with the "Click for more info." text. When that text is clicked, a dialog with the text inside the original div is displayed.

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I think you can't really make it shorter, but it would look cleaner if you separated before() from each() and dialog() –  Georg Schölly Jan 16 '09 at 22:38

1 Answer 1

up vote 4 down vote accepted

Edit: This answer was relevant in older versions of jQuery. In newer version $.map works differently.

Check out the $.map() function, used to perform the same operation on every element of an array.

$('.moreinfodialog').map(function(idx, element) {
    $(this).prev("a").click(function() {
            $(element).dialog("open");
            return false;
    });
});
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1  
Hey I learned something! –  Mike Robinson Jan 16 '09 at 22:21
    
What is temp in this case? –  Amir Jan 16 '09 at 22:26
    
Sorry, I pasted that in on accident. The callback function gets passed two parameters, the array key and the array item. So this and element are pointing to the same thing in this case. Hope that helps. –  tj111 Jan 16 '09 at 22:35
    
And I think he means .each() instead of .map() docs.jquery.com/Utilities/jQuery.map –  Georg Schölly Jan 16 '09 at 22:35
    
Map() is a good idea, but if you want to use chaining as I do in my code, you must "return this" from the map function. So in the end, the code is the same length, but a little less efficient since we are now doing map() on the original array. (not that I care) –  Amir Jan 16 '09 at 22:50

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