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On my page there is ajax action, which loads div, that contain image on left and text on right.

The problem: first of all text loads, and on the left (it aligned left), then image loads, text shifts on right, and that looks really not smooth.

I tried something like :

$('div#to_load').ready(function() {
    $('div#to_load').fadeIn();
});

but that doesn't help.

What can I do?

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You do know you're missing some quotes in your code? –  Patrick Kostjens Jul 20 '13 at 10:48
    
Only the document has a ready method. –  adeneo Jul 20 '13 at 10:48
    
@Patrick, I just write it here, it is not part of my code –  Joe Half Face Jul 20 '13 at 10:51
    
same issue here stackoverflow.com/questions/17384286/… –  matty Jul 20 '13 at 11:05
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6 Answers

If you don't want content to shift, you must declare the size the image will take up so that the required space is already accounted for when the browser does it's render.

Make sure you declare the size of the image, or the size of the container before you load

<div id="to_load">
    <img src="...." height="400" width="400" />
</div>

or

<div id="to_load" style="height:400px;width:400px;overflow:hidden">
    ..dynamic content
</div>

Declaring image size either on the img element or in your stylesheet is a best practice recommendation anyways

Reflows & Repaint


Maybe you'd like something like this

#to_load {
    width: 523px;
    height: 192px;
}
#to_load img {
    display: none;
}

setTimeout(function() {
    $("<img />", { src:"http://ejohn.org/apps/workshop/adv-talk/jquery_logo.png"})
        .on('load', function(){
            $(this).appendTo("#to_load").fadeIn(500);
        });
},1000);

http://jsfiddle.net/AWntU/

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Try this:

$("<img />")
    .attr("src", "your_img_source")
    .css("float","left")
    .hide()
    .appendTo("div#to_load")
    .load(function(){
        $(this).fadeIn();
    });

$("<span></span>")
    .hide()
    .appendTo("div#to_load")
    .load("your_text_source",function(){
        $(this).fadeIn();
    });
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Try to load image and text separately, not at once.

And for the shifting problem put image inside another div and define the size when it loads. Then text can't come to image space since we already giving space for image div.

sample code

$('#ImageID')
 .load(
      function(){
           //Do stuff once the image specified above is loaded
           $('#textId').html('your text');
      }
 );
share|improve this answer
    
How do you load text? –  Connor Jul 20 '13 at 11:00
    
I modified the answer with sample code, check that –  Janith Chinthana Jul 20 '13 at 11:08
    
Would that not be wasting time? –  Connor Jul 20 '13 at 11:08
    
If so you can load text seperatly, but we need to define the size of image div. –  Janith Chinthana Jul 20 '13 at 11:13
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You could smoothly animate it in with jQuery (handy anyway when you are doing your ajax requests with jQuery):

jQuery

$("body").prepend('<img src="http://placehold.it/150x150" alt="img">');
$("img").animate({
    opacity: 1,
    left: 0
}, 700);

CSS

img {
    float: left;
    margin-right: 0.8em ; 
    left: -300px;
    position: relative;
}

Fiddle.

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Update

I think you have to try this trick found here :

$("<img />", { src:"thelinkofyourimage"}).appendTo("div#to_load").fadeOut(0).fadeIn(1000);

Have a look to this fiddle : http://jsfiddle.net/qYHCn/.

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Did you read the documentation you're linking to? It says "Load data from the server ..." ? –  adeneo Jul 20 '13 at 10:50
    
Sorry. I forgot a parameter... –  Lucas Willems Jul 20 '13 at 10:51
    
How would fading in an image solve the issue with the text being shifted once the image loads ? –  adeneo Jul 20 '13 at 10:51
1  
@adeneo I think there are rudeless way to tell people that are doing something wrong. –  steo Jul 20 '13 at 10:54
2  
@adeneo do you have a suggestion regards the handling of the problem? –  Toiletduck Jul 20 '13 at 10:55
show 11 more comments

You could track when all the images have loaded like so

var element = $('div#to_load');
var images = element.find('img');
var count = images.length;

for( var i = 0; i < count; i++) {
   $(images[i]).load(function(){
     count--;
     if( count === 0 ){
        element.fadeIn();
     }
   });
}
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