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I setup a link element and called its click event in jquery but the click event is calling twice, please see below the code of jquery.

$("#link_button")
.button()
.click(function () {
   $("#attachmentForm").slideToggle("fast");
});

Please advise.

Thanks.

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2  
The problem is probably from somewhere else in your script. –  karim79 Jul 18 '11 at 11:04
1  
if you cannot find where you made things to call this twice, make a unbind('clik') before the click(...). –  regilero Jul 18 '11 at 11:08
    
regilero: exactly, the whole code base is very large. where should I put that unbind? –  domlao Jul 18 '11 at 11:11
2  
you can detect what functions are binding to that click event: stackoverflow.com/questions/570960/… –  Anh Pham Jul 18 '11 at 11:36
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7 Answers

up vote 43 down vote accepted

Make sure and check that you have not accidentally included your script twice in your HTML page.

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This was the problem for my case. That my click event was getting bubbeled. Thanks for the pointer. :) +1 –  Tahir Akram Sep 14 '11 at 8:25
    
Thank you - that was it. –  NickWoodhams Oct 17 '12 at 6:24
1  
Omg thank you.. I am such an idiot.. and remove from loop. –  deflime Dec 11 '13 at 23:00
    
thank you show much ..i spend half day for this.. –  Aravin Dec 16 '13 at 9:04
    
Can't believe I didn't think of this earlier. Why was this not the most obvious solution to me? Thank you. –  yerforkferchips Feb 12 at 8:03
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Make un unbind before the click;

$("#link_button").unbind('click');
$("#link_button")
.button()
.click(function () {
   $("#attachmentForm").slideToggle("fast");
});
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thanks but not working.. –  domlao Jul 19 '11 at 0:03
1  
try $("#link_button").unbind(); or make a simple test to check how many times that code is read, if more than once... –  TheSystem Jul 19 '11 at 10:59
2  
that's just fixing the error on the fly each time, not a real solution. it does the trick and has helped me but you should find the real problem and make a permanent fix. –  Juan Oct 4 '11 at 21:50
    
it's really useful in my case, because I need to call several times the methods with my events after some ajax calls it starts to become overclicked(I don't know if this word exist). For my situation it means a solution. –  Ventura Oct 15 '13 at 12:08
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Try this:

$("#btn").unbind("click").click(function(){

//your code

});
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Thanks for this solution, worked a treat. –  user1477388 Nov 27 '13 at 2:55
    
This worked for me also. Thanks! –  John Jan 9 at 16:31
    
Yea, really strange. This worked for me too. I must be loading it twice somehow, just cant see how. –  ppumkin May 14 at 21:33
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I had the same problem, but you can try changing this code

$("#link_button")
.button()
.click(function () {
   $("#attachmentForm").slideToggle("fast");
});

to this:

$("#link_button").button();
$("#link_button").unbind("click").click(function () {
   $("#attachmentForm").slideToggle("fast");
});

For me, this code solved the problem. But take care not to accidentally include your script twice in your HTML page. I think that if you are doing these two things correctly, your code will work correctly. Thanks

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this snippet of code contains nothing bad. It's another part of your script as @karim told

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This is definitely a bug specially while it's FireFox. I searched alot tried all the above answers and finally got it as bug by many experts over SO. So, I finally came up with this idea by declaring variable like

var called = false;
$("#ColorPalete li").click(function() {
    if(called ===false)
    {
             called = true;
             setTimeout(function(){ //<-----This can be an ajax request but keep in mind to set called=false when you get response or when the function has successfully executed.
                 alert('I am called');
                 called = false;
             },3000);

    }
});

In this way it first checks rather the function was previously called or not.

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Had the same problem. This worked for me -

$('selector').once().click(function() {});

Hope this helps someone.

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Throws an error for me... Plus it's a dirty solution - the function is being run more than once, the solution is to place it somewhere else and use console.log() to monitor things. –  tylerl May 8 '13 at 14:52
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