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We're having trouble displaying gradients properly in IE. The following HTML displays the gradient well in Chrome and other browsers, but displays almost plain blue in IE. Would appreciate help!

<HTML>
    <HEAD>
        <STYLE type="text/css">
            body {
                /* Old browsers */
                background: #1e5799;
                /* IE9 SVG, needs conditional override of 'filter' to 'none' */
                background: url(data:image/svg+xml;base64,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);
                /* FF3.6+ */
                background: -moz-linear-gradient(top,  #1e5799 0%, #ffffff 24%, #ffffff 72%, #7db9e8 100%);
                 /* Chrome,Safari4+ */
                background: -webkit-gradient(linear, left top, left bottom, color-stop(0%,#1e5799), color-stop(24%,#ffffff), color-stop(72%,#ffffff), color-stop(100%,#7db9e8));
                /* Chrome10+,Safari5.1+ */
                background: -webkit-linear-gradient(top,  #1e5799 0%,#ffffff 24%,#ffffff 72%,#7db9e8 100%); 
                /* Opera 11.10+ */
                background: -o-linear-gradient(top,  #1e5799 0%,#ffffff 24%,#ffffff 72%,#7db9e8 100%);
                /* IE10+ */
                background: -ms-linear-gradient(top,  #1e5799 0%,#ffffff 24%,#ffffff 72%,#7db9e8 100%);
                /* W3C */
                background: linear-gradient(top,  #1e5799 0%,#ffffff 24%,#ffffff 72%,#7db9e8 100%);
                /* IE6-8 */
                filter: progid:DXImageTransform.Microsoft.gradient( startColorstr='#1e5799', endColorstr='#7db9e8',GradientType=0 );
            }
        </style>
    </HEAD>
<BODY>
    <H1 >Testing Blue Gradient</H1>
</BODY>
</HTML>
share|improve this question

Try this:

body {
  background-color: #1e5799;
  background-image: -webkit-gradient(linear, left top, left bottom, from(#1e5799), to(#7db9e8)); 
  background-image: -webkit-linear-gradient(top, #1e5799, #7db9e8); 
  background-image:    -moz-linear-gradient(top, #1e5799, #7db9e8); 
  background-image:     -ms-linear-gradient(top, #1e5799, #7db9e8); 
  background-image:      -o-linear-gradient(top, #1e5799, #7db9e8); 
  background-image:         linear-gradient(top, #1e5799, #7db9e8);
            filter: progid:DXImageTransform.Microsoft.gradient(startColorStr='#1e5799', EndColorStr='#7db9e8'); 
}

I've tested it in IE 6-9 - works fine.

Used - http://css3please.com/

share|improve this answer
    
Just a note to say the MS syntax is now incorrect. The final version of IE10 uses the latest syntax for CSS gradients, and doesn’t require a prefix. The ms prefixed version should be removed, and the W3C version should be updated to: background: linear-gradient(to bottom, #1e5799, #7db9e8); Notice the “to bottom” rather than top. The directions have flipped in the latest syntax, and require the to keyword preceding it. – David Storey May 9 '13 at 23:44

@zoltan has an excellent answer on how to do css. Another approach instead of using filters would be to use http://css3pie.com/. In addation to gradients, it also adds rounded corners and box shadows. Plus it will let you do all three on the same element.

behavior: url(/PIE.htc);
share|improve this answer

Use this for IE:

filter: progid:DXImageTransform.Microsoft.gradient(startColorstr='#000000', endColorstr='#ffffff'); 
/* for IE */
share|improve this answer

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