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Is this possible?

The appropriate bits of what I tried are here:

<a href="#" data-content="<div id='my_popover'></div>"> Click here </a>

$(".button").popover({html: true})

$(".button").click(function(){
    $(this).popover('show');
    $("#my_popover").load('my_stuff')
})

When I click, I see the request get made, but doesn't populate the popover. I don't even see HTML for the popover get added to the DOM, but that could be firebug.

Has anyone tried this?

share|improve this question
    
I haven't worked with bootstrap, but I would imagine that it's possible the element doesn't exist when you're trying to add content to it, but that's a guess. Are you getting any javascript errors? –  Seth Nov 15 '11 at 0:27

15 Answers 15

up vote 59 down vote accepted

Add a data-* attribute of data-poload to the elements you would like to add a pop over to. It's very obvious the content of this attribute:

<a href="#" title="blabla" data-poload="/test.php">blabla</a>

And in JavaScript, preferably in a $(document).ready();

$('*[data-poload]').bind('hover',function() {
    var e=$(this);
    e.unbind('hover');
    $.get(e.data('poload'),function(d) {
        e.popover({content: d}).popover('show');
    });
});

unbind('hover') prevents loading data more than once and popover() binds a new hover event. If you want the data to be refreshed at every hover event, you should remove the unbind.

share|improve this answer
3  
I got some weirdness when I moused over twice before the ajax call completed... My popvers would "stick" open. I solved it by moving the "el.unbind('hover')" to right before the $.get(). –  Luke The Obscure Apr 9 '12 at 21:45
    
This workes, but the popover also stick for me, even though the unbind is before the get –  DoomStone May 13 '13 at 21:43
    
Thank you. The e.unbind('hover'); was the solution to my problem. –  12Bo Feb 4 at 5:14
    
If you're trying to load an external URL, you'll run into cross-domain access restrictions. To get around this, you can set the popover's html property to true, then set the content property to an iframe HTML tag, like content: '<iframe src="http://www.google.com"></iframe>'. You'll also need to override the max-width property of your popover using CSS, and most likely remove the styling of the iframe using CSS as well. –  Gavin Mar 9 at 19:38
    
how do you use the same for jquery latest version by using the .on method/ –  Frz Khan Sep 5 at 10:26

Works ok for me:

$('a.popup-ajax').popover({
    "html": true,
    "content": function(){
        var div_id =  "tmp-id-" + $.now();
        return details_in_popup($(this).attr('href'), div_id);
    }
});

function details_in_popup(link, div_id){
    $.ajax({
        url: link,
        success: function(response){
            $('#'+div_id).html(response);
        }
    });
    return '<div id="'+ div_id +'">Loading...</div>';
}
share|improve this answer
1  
+1 for using the content option of popover –  spume Oct 2 '13 at 12:55
    
+1 too, best answer so far –  Laurent Jan 16 at 6:59
    
+1 best answer. Elegant! –  Icarus Mar 19 at 23:11
    
Genius answer! and thats why edited it to make it more readable –  Sazzad Hossain Khan Jul 15 at 15:42

A variation of the code from Çağatay Gürtürk, you could use the delegate function instead and force hiding the popover on hoverout.

$('body').delegate('.withajaxpopover','hover',function(event){
    if (event.type === 'mouseenter') {
        var el=$(this);
        $.get(el.attr('data-load'),function(d){
            el.unbind('hover').popover({content: d}).popover('show');
        });
    }  else {
        $(this).popover('hide');
    }
});
share|improve this answer

Another solution:

$target.find('.myPopOver').mouseenter(function()
{
    if($(this).data('popover') == null)
    {
        $(this).popover({
            animation: false,
            placement: 'right',
            trigger: 'manual',
            title: 'My Dynamic PopOver',
            html : true,
            template: $('#popoverTemplate').clone().attr('id','').html()
        });
    }
    $(this).popover('show');
    $.ajax({
        type: HTTP_GET,
        url: "/myURL"

        success: function(data)
        {
            //Clean the popover previous content
            $('.popover.in .popover-inner').empty();    

            //Fill in content with new AJAX data
            $('.popover.in .popover-inner').html(data);

        }
    });

});

$target.find('.myPopOver').mouseleave(function()
{
    $(this).popover('hide');
});

The idea here is to trigger manually the display of PopOver with mouseenter & mouseleave events.

On mouseenter, if there is no PopOver created for your item (if($(this).data('popover') == null)), create it. What is interesting is that you can define your own PopOver content by passing it as argument (template) to the popover() function. Do not forget to set the html parameter to true also.

Here I just create a hidden template called popovertemplate and clone it with JQuery. Do not forget to delete the id attribute once you clone it otherwise you'll end up with duplicated ids in the DOM. Also notice that style="display: none" to hide the template in the page.

<div id="popoverTemplateContainer" style="display: none">

    <div id="popoverTemplate">
        <div class="popover" >
            <div class="arrow"></div>
            <div class="popover-inner">
                //Custom data here
            </div>
        </div>
    </div>
</div>

After the creation step (or if it has been already created), you just display the popOver with $(this).popover('show');

Then classical Ajax call. On success you need to clean the old popover content before putting new fresh data from server. How can we get the current popover content ? With the .popover.in selector! The .in class indicates that the popover is currently displayed, that's the trick here!

To finish, on mouseleave event, just hide the popover.

share|improve this answer
    
Same thing for me, the simplest & best one ;-) –  Thomas Decaux May 8 '12 at 19:02
    
the problem with this is on every hover you are requesting data from the server. It should load the data only once. –  Richard Torcato Jun 17 '13 at 14:37
1  
@Richard Torcato In one hand you're right. It should be pretty easy to put the result to a cache though. In another hand, maybe we DO want to hit the server to load fresh data on every hover. So it's up to you to implement caching –  doanduyhai Jun 18 '13 at 19:55

The solution of Çağatay Gürtürk is nice but I experienced the same weirdness described by Luke The Obscure:

When ajax loading lasts too much (or mouse events are too quick) we have a .popover('show') and no .popover('hide') on a given element causing the popover to remain open.

I preferred this massive-pre-load solution, all popover-contents are loaded and events are handled by bootstrap like in normal (static) popovers.

$('.popover-ajax').each(function(index){

    var el=$(this);

    $.get(el.attr('data-load'),function(d){
        el.popover({content: d});       
    });     

});
share|improve this answer

Having read all these solutions, I think the solution becomes much simpler if you use a synchronous ajax call. You can then use something like:

  $('#signin').popover({
    html: true,
    trigger: 'manual',
    content: function() {
      return $.ajax({url: '/path/to/content',
                     dataType: 'html',
                     async: false}).responseText;
    }
  }).click(function(e) {
    $(this).popover('toggle');
  });
share|improve this answer
    
This helped me out tons, as I was having an issue with the popover rendering in a certain position before the ajax returned the contents (causing it to load off the screen). Thanks sir! –  Derek May 1 at 13:22

Here is my solution which works fine with ajax loaded content too.

/*
 * popover handler assigned document (or 'body') 
 * triggered on hover, show content from data-content or 
 * ajax loaded from url by using data-remotecontent attribute
 */
$(document).popover({
    selector: 'a.preview',
    placement: get_popover_placement,
    content: get_popover_content,
    html: true,
    trigger: 'hover'
});

function get_popover_content() {
    if ($(this).attr('data-remotecontent')) {
        // using remote content, url in $(this).attr('data-remotecontent')
        $(this).addClass("loading");
        var content = $.ajax({
            url: $(this).attr('data-remotecontent'),
            type: "GET",
            data: $(this).serialize(),
            dataType: "html",
            async: false,
            success: function() {
                // just get the response
            },
            error: function() {
                // nothing
            }
        }).responseText;
        var container = $(this).attr('data-rel');
        $(this).removeClass("loading");
        if (typeof container !== 'undefined') {
            // show a specific element such as "#mydetails"
            return $(content).find(container);
        }
        // show the whole page
        return content;
    }
    // show standard popover content
    return $(this).attr('data-content');
}

function get_popover_placement(pop, el) {
    if ($(el).attr('data-placement')) {
        return $(el).attr('data-placement');
    }
    // find out the best placement
    // ... cut ...
    return 'left';
}
share|improve this answer
    
Yours is the best!!! –  beck03076 May 2 at 10:09

I tried the solution by Çağatay Gürtürk but got the same weirdness as Luke the Obscure. Then tried the solution by Asa Kusuma. This works, but I believe it does the Ajax read every time the popover is displayed. The call to unbind('hover') has no effect. That's because delegate is monitoring for events in a specific class -- but that class is unchanged.

Here's my solution, closely based on Asa Kusuma's. Changes:

  • Replaced delegate with on to match new JQuery libraries.
  • Remove 'withajaxpopover' class rather than unbinding hover event (which was never bound)
  • Add "trigger: hover" to the popover so that Bootstrap will handle it completely beginning with the second use.
  • My data loading function returns JSon, which makes it easy to specify both the title and the content for the popover.
    /*  Goal: Display a tooltip/popover where the content is fetched from the
              application the first time only.

        How:  Fetch the appropriate content and register the tooltip/popover the first time 
              the mouse enters a DOM element with class "withajaxpopover".  Remove the 
              class from the element so we don't do that the next time the mouse enters.
              However, that doesn't show the tooltip/popover for the first time
              (because the mouse is already entered when the tooltip is registered).
              So we have to show/hide it ourselves.
    */
    $(function() {
      $('body').on('hover', '.withajaxpopover', function(event){
          if (event.type === 'mouseenter') {
              var el=$(this);
              $.get(el.attr('data-load'),function(d){
                  el.removeClass('withajaxpopover')
                  el.popover({trigger: 'hover', 
                              title: d.title, 
                              content: d.content}).popover('show');
              });
          }  else {
              $(this).popover('hide');
          }
      });
    });
share|improve this answer

If the content in the popover isn't likely to change, it would make sense to retrieve it only once. Also, some of the solutions here have the issue that if you move over multiple "previews" fast, you get multiple open popups. This solution addresses both those things.

$('body').on('mouseover', '.preview', function() 
{
    var e = $(this);
    if (e.data('title') == undefined)
    {
        // set the title, so we don't get here again.
        e.data('title', e.text());

        // set a loader image, so the user knows we're doing something
        e.data('content', '<img src="/images/ajax-loader.gif" />');
        e.popover({ html : true, trigger : 'hover'}).popover('show');

        // retrieve the real content for this popover, from location set in data-href
        $.get(e.data('href'), function(response)
        {
            // set the ajax-content as content for the popover
            e.data('content', response.html);

            // replace the popover
            e.popover('destroy').popover({ html : true, trigger : 'hover'});

            // check that we're still hovering over the preview, and if so show the popover
            if (e.is(':hover'))
            {
                e.popover('show');
            }
        });
    }
});
share|improve this answer

I tried some of the suggestions here and I would like to present mine (which is a bit different) - I hope it will help someone. I wanted to show the popup on first click and hide it on second click (of course with updating the data each time). I used an extra variable visable to know whether the popover is visable or not. Here is my code: HTML:

<button type="button" id="votingTableButton" class="btn btn-info btn-xs" data-container="body" data-toggle="popover" data-placement="left" >Last Votes</button>

Javascript:

$('#votingTableButton').data("visible",false);

$('#votingTableButton').click(function() {  
if ($('#votingTableButton').data("visible")) {
    $('#votingTableButton').popover("hide");
    $('#votingTableButton').data("visible",false);          
}
else {
    $.get('votingTable.json', function(data) {
        var content = generateTableContent(data);
        $('#votingTableButton').popover('destroy');
        $('#votingTableButton').popover({title: 'Last Votes', 
                                content: content, 
                                trigger: 'manual',
                                html:true});
        $('#votingTableButton').popover("show");
        $('#votingTableButton').data("visible",true);   
    });
}   
});

Cheers!

share|improve this answer

an answer similar to this has been given in this thread: Setting data-content and displaying popover - it is a way better way of doing what you hope to achieve. Otherwise you will have to use the live: true option in the options of the popover method. Hopefully this helps

share|improve this answer
$("a[rel=popover]").each(function(){
        var thisPopover=$(this);
                var thisPopoverContent ='';
                if('you want a data inside an html div tag') {
                thisPopoverContent = $(thisPopover.attr('data-content-id')).html();
                }elseif('you want ajax content') {
                    $.get(thisPopover.attr('href'),function(e){
                        thisPopoverContent = e;
                    });
            }
        $(this).attr(   'data-original-title',$(this).attr('title') );
        thisPopover.popover({
            content: thisPopoverContent
        })
        .click(function(e) {
            e.preventDefault()
        });

    });

note that I used the same href tag and made it so that it doesn't change pages when clicked, this is a good thing for SEO and also if user doesn't have javascript!

share|improve this answer

I like Çağatay's solution, but I the popups were not hiding on mouseout. I added this extra functionality with this:

// hides the popup
$('*[data-poload]').bind('mouseout',function(){
   var e=$(this);
   e.popover('hide'); 
});
share|improve this answer

I used the original solution but made a couple of changes:

First, I used getJSON() instead of get() because I was loading a json script. Next I added the trigger behaviour of hover to fix the sticky pop over issue.

$('*[data-poload]').on('mouseover',function() {
    var e=$(this);
    $.getJSON(e.data('poload'), function(data){
        var tip;
        $.each(data, function (index, value) {
           tip = this.tip;
           e.popover({content: tip, html: true, container: 'body', trigger: 'hover'}).popover('show');
        });
    });
});
share|improve this answer

I added html: true, so it doesn't show raw html output, in case you want to format your results. You can also add in more controls.

    $('*[data-poload]').bind('click',function() {
        var e=$(this);
        e.unbind('click');
        $.get(e.data('poload'),function(d) {
            e.popover({content: d, html: true}).popover('show', {

            });
        });
    });
share|improve this answer

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