Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have a problem.

http://img831.imageshack.us/img831/2111/18435469.png

Here you can see that one image does not fit into container. It would be easy to do if the width, height would be fixed but this layout is flexible and the image height+width changes when you resize browser window.

Maybe there is an easy way to do it with Javascript?

CSS:

.photo:nth-child(4n+1) {
background:#ff0000;
max-width:100%;
margin: 0;
clear: both;
}

.photo:nth-child(4n+2) {
background:#EEE;
max-width: 33.33%;
min-height: 300px;
float:left;
margin: 0;
}

.photo:nth-child(4n+3) {
background:#AAA;
max-width: 33.33%;
min-height: 300px;
float:left;
margin: 0;
}

.photo:nth-child(4n+4) {
background:#CCC;
max-width: 33.33%;
min-height: 300px;
float:left;
margin: 0;
}
.photo:nth-child(4n+1) img {
width: 100%;
}

.photo:nth-child(4n+2) img {
max-width: 100%;
max-height: 100%;
}

.photo:nth-child(4n+3) img {
max-width: 100%;
max-height: 100%;
}

.photo:nth-child(4n+4) img {
max-width: 100%;
max-height: 100%;
}

THE PHP code:

 <div class="photo">
<img class="group2" href="uploads/'.$row[2].'" src="uploads/'.$row[2].'"/>
</div>
share|improve this question

2 Answers 2

use following jquery ....

$(document).ready(function(){
var height = $(".photo").height();
var width=$(".photo").width();
$(".group2").attr("height",height );
$(".group2").attr("width",width);
});

This will get the height&width of the and assign to the image. so the image fit with the

Note. Better always use id to get the height and width.

share|improve this answer

This worked for me with css only:

containing div:

.image_holder {
overflow:hide;
}

image:

.image_holder img {
height: 100%;
max-width: 150%;
width: auto;
}
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.