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I am running a jQuery $.postfunction that returns data from a php page. In that page some divs with specific ids get created. What I need to do is delete a div if it's already found on the current web page, but let the others go through. Here's the code:

var phpDivs = [];
$(data).filter("div").each(function(){ phpDivs.push(this.id); });
var pageDivs = [];
$("#items").find("div").each(function() { pageDivs.push(this.id); });

$.each(phpDivs, function(indexphp, phpDiv) {
    $.each(pageDivs, function(indexpage, pageDiv) {
        if (pageDiv == phpDiv) {
            alert("match");
            $(phpDiv, $(data)).delete(); //problem code
        }
    });
});

$(data).appendTo("#items").show("slide", {direction: "right"}, 500);

The commented line above appears to delete all divs, instead of just a specific div. I've also tried:

$('"#'+ phpDiv + '"', $(data)).delete();

with the same result.


Edit

Came across something interesting. If I replace the problem code with this:

data = $(data).html("<p>blah</p>");

Then it will actually change the data object. I cannot use $(data). However, I still can't get this to work the way I want with no idea what the problem is.

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1  
Is the code you posted resides inside success handler of the load() call? What is data? What is #items? –  Ilia G Nov 11 '11 at 4:12
    
#items is a div that holds all the other divs on the page. data is the returned echos from the php file. I didn't explicitly call any load() function, but everything resides in the $(document).ready function. –  Rokit Nov 11 '11 at 4:30
    
What is data? –  arb Nov 11 '11 at 16:56
    
data returns what I'm guessing is a string, but written in html format. For example it's getting the information from a php page in the form: echo "<div id='item4'>the item</div>"; But there are several more elements within the div, not just text. –  Rokit Nov 12 '11 at 1:54

3 Answers 3

try $('"#'+ phpDiv + '"', $(data)).remove();

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this didn't work either. Rather than delete the div, it allowed it onto the page. –  Rokit Nov 11 '11 at 4:22

yep try this

$('"#'+ phpDiv + '"').remove();

That should remove the div you do not want

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Try .remove

share|improve this answer
    
remove gives me the same result. –  Rokit Nov 11 '11 at 4:16
    
In Chrome, if you use console.log($('"#'+ phpDiv + '"', $(data))) Does it output the correct divs? –  Greg Nov 11 '11 at 4:24
    
I'm not familiar with the chrome console, but if I alert(phpDiv); yes it does give the correct div id. –  Rokit Nov 11 '11 at 4:34
    
That's good. Can you do anything else to those divs? Like changing the background color or something trivial? –  Greg Nov 11 '11 at 4:42
    
I can't add CSS to the problem line. But on the next line where I append everything to the page I can. –  Rokit Nov 11 '11 at 4:56

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