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I have a div with a bunch of images (20) and i like a little rotation on some let say +-2dg

i have try that with no success... all image are rotated equally

/* By default, we tilt all our images -2 degrees */
#gallery2 img {
    -webkit-transform: rotate(-2deg);
    -moz-transform: rotate(-2deg);
    }

/* Rotate all even images 2 degrees */
#gallery2 img:nth-child(even) {
    -webkit-transform: rotate(2deg);
    -moz-transform: rotate(2deg);
    }

/* Don't rotate every third image, but offset its position */
#gallery2 img:nth-child(3n)  {
    -webkit-transform: none;
    -moz-transform: none;
    }

/* Rotate every fifth image by 5 degrees and offset it */
#gallery2 img:nth-child(5n) {
    -webkit-transform: rotate(5deg);
    -moz-transform: rotate(5deg);
    }

So i like to have to code in jquery that will go through all the image in the div and random rotate it + ou - 2 dg

anybody know hot to do that ?

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Does the CSS not rotate the images correctly? If it does then you don't need to post the styles, but rather the javascript your're having trouble with. –  rfunduk Oct 1 '10 at 19:34
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2 Answers 2

up vote 4 down vote accepted
$("#gallery2 img").each( function() {
  var rNum = (Math.random()*4)-2;  
  $(this).css( {   
    '-webkit-transform': 'rotate('+rNum+'2deg)',
    '-moz-transform': 'rotate('+rNum+'2deg)'  
  } );  
} );
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i have try that.. work well but your code is better and shorter

<script type="text/javascript"> 
    $(document).ready(function(){ 
        $("#gallery2 img").each( function() {
    var posneg = Math.floor( (Math.random() * 2)  );
    if (posneg == 0) {posneg=-1} else {posneg=1};
    var angle = Math.floor( (Math.random() * 5) * posneg );
    $(this).css( 'transform', 'rotate(' + angle + 'deg)' );   
    $(this).css( '-moz-transform', 'rotate(' + angle + 'deg)' );   
    $(this).css( '-webkit-transform', 'rotate(' + angle + 'deg)' );
    $(this).css( '-o-transform', 'rotate(' + angle + 'deg)' );
    alert(angle);

    }); 
    }); 
</script>
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