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Ok, so I have the following HTML:

<div class="element">
    <img src="..."> //Each of width 100px
    <img src="...">
    <img src="...">
    ... //Continues depending on user - retrieved using PHP
</div>

My CSS has the following:

.element{
max-width: 400px;
}

But my issue is that when there is only one img shown, the width of the div is still 400px? What I'm trying to do is keep it the width of the interior elements, e.g. When there is one image, the div will be 100px wide; when there are 2 it will be 200px wide and then when it gets to 4 it goes down to the next row and continues like this at a width of 400px with the height now changing to compensate for more images.

Anyone have any ideas how to do this? I've tried using a combination of min-width/max-width, but I just can't seem to get it working correctly.

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1 Answer 1

.element{
max-width: 400px;
display:inline-block;
}
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This would work, assuming, of course, there is not an inline element immediately following the div that would then move up next to it in a possibly undesirable way. The OP has not given enough context to know what the structure is after the div. –  ScottS Jun 22 '13 at 22:32
    
@ScottS My issue is that currently that div is set to display:none, and is shown using a jQuery tools overlay. It has a z-index of 1 and relative position. –  Simo389 Jun 22 '13 at 22:34
    
@php_nub_qq Adding display:inline-block; didn't change anything. Might the reason above be the cause? /\ –  Simo389 Jun 22 '13 at 22:36
    
@Simo389 Block elements will always expand to full width, you need to find another workaround –  php_nub_qq Jun 22 '13 at 22:37
    
@Simo389: Both z-index and relative position would not affect an inline-block display (see fiddle), but if it is being displayed by JQuery, chances are that is setting a style attribute of display: block on it, which would override any css you have set for inline-block. One option is to put an !important declaration on that display setting (though I detest such a maneuver). It would be better for you to isolate what jQuery is doing and resolve it there. –  ScottS Jun 23 '13 at 1:38

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