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I want all the images in a div to have a certain margin property, I can't quite seem to get it to work, this is what I've tried,

$("#images > img").each(function(){
    $(img).css({
      margin-top:15px;
      margin-bottom:15px;
});
});

thanks for any help

$("#pt_figures").click(function() {

$('#images').empty();

$('#images').css({
paddingLeft: 150,
paddingRight: 0
});
$('#controls').css({
width:700,
marginLeft:150
});
$('#info').css({
width:660,
marginLeft:150

});

var id = $(this).attr('id');

$("#info_header").load(id +"_header.txt"); $("#content_1").load(id +"_1.txt"); $("#content_2").load(id +"_2.txt"); $("#content_3").load(id +"_3.txt");

$("<img>", { src: "http://www.klossal.com/figures_doc.jpg" }).appendTo("#images"); 
$("<img>", { src: "http://www.klossal.com/figure_front.png" }).appendTo("#images"); 
$("<img>", { src: "http://www.klossal.com/figure_back.jpg" }).appendTo("#images");


$("#images img").addClass("images");

$("#top_section").animate({
    height: 3780
}, 300);
$("#grid").animate({
    marginTop: 3780 + 300,
    paddingBottom: 300
}, 300); 


});
share|improve this question
2  
Why not just do this with CSS? –  Billy Moat Nov 26 '12 at 12:10
    
how would you do it with css? –  loriensleafs Nov 26 '12 at 12:12
    
Please see my answer below. –  Billy Moat Nov 26 '12 at 12:15
    
just realized also, the properties should be listed marginTop:15, marginBottom:15 –  loriensleafs Nov 26 '12 at 12:27
add comment

6 Answers

up vote 2 down vote accepted

Recommended practice is surely to add a class which defines the properties you require rather than write CSS directly in your jQuery code.

Javascript:

$("#images img").addClass("myClass");

CSS:

.myClass {
   margin:15px 0;
}

Alternatively, just define your properties in your CSS and don't use jQuery.

CSS:

#images img {
   margin:15px 0;
}
share|improve this answer
    
can I ask why writing a class is better just out of curiosity? –  loriensleafs Nov 26 '12 at 12:18
    
also the images are being added dynamically and doing it through pure css doesn't seem to get applied for some reason, I'm not sure why? –  loriensleafs Nov 26 '12 at 12:20
    
Much easier to maintain a stylesheet rather than css directly inside your jQuery. I seem to remember reading that it's better for performance/speed too. –  Billy Moat Nov 26 '12 at 12:21
    
Can you recreate the problem on jsfiddle.net or provide a link to your site? –  Billy Moat Nov 26 '12 at 12:23
    
any idea on why doing it with pure css doesn't work with dynamically added content? Would it have to be bound after being added with javascript? –  loriensleafs Nov 26 '12 at 12:24
show 9 more comments

use $(this)

 $("#images > img").each(function(){
        $(this).css({
          margin-top:15px;
          margin-bottom:15px;
    });
    });
share|improve this answer
add comment
$("#images > img").each(function(){
    $(this).css({
      margin-top:15px;
      margin-bottom:15px;
});
});

?

share|improve this answer
add comment

Try this:

$("#images img").each(function(){
    $(this).css({
        margin-top:15px;
        margin-bottom:15px;
    });
});

You are using $(img) but that has no context. Use $(this) instead. Also I removed the > from your selector in case the IMG tags are not a direct descendent of the DIV.

share|improve this answer
    
thanks, it's always great when people give explanations like that. I didn't realize the > had that implication. –  loriensleafs Nov 26 '12 at 12:26
add comment

This may aswell be done in pure css.

#images > img { // ">" means direct child, remove it if necesarry
  margin: 15px 0; // shorthand for top/bottom: 15px and right/left: 0px
}

> means direct child, which means only images that are children of #images will be affected, "grandchildren" and further will not be. If you intend them to be affected, remove the >

share|improve this answer
    
so the images are being added dynamically and doing it through css that way doesn't seem to get applied. –  loriensleafs Nov 26 '12 at 12:17
    
It should be, there must be something wrong elsewhere –  Andy Nov 26 '12 at 12:20
add comment

Change $(img) to $(this) and it should be good to go.

$(this) is the current object in the each loop.

You may be able to apply $("#images > img").css(...) as well, as I don't see directly why you need to loop through them all.

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