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 this css code which is only supported in Firefox.

/* Green header */
.container {
    background: linear-gradient(#5FA309, #3B8018);
    position: relative;
    display: inline-block;
    padding: 0 20px 0 10px;
    width: 270px;
    line-height: 20px;
    font-size: 12px;
    font-family: sans-serif;
    text-shadow: 0 1px 0 #264400;
    font-weight: bold;
    color: #fff;
}

.container:after {
    content: '';
    background: linear-gradient(top left, #5FA309, #3B8018);
    background: -webkit-gradient(linear, left top, left bottom, from(#5FA309), to(#3B8018));
    background: -moz-linear-gradient(top left,  #5FA309,  #3B8018);
    position: absolute;
    top: 3px; right: -7px;
    width: 15px;
    height: 15px;
    transform: rotate(45deg);
}

How I can make this code also supported on IE? I want to use only css without images.

share|improve this question
    
From which IE version? –  nhahtdh Jan 19 '13 at 15:51
    
I want to support it for the latest IE version. –  Peter Penzov Jan 19 '13 at 15:51
    
You sure? IE10 is the latest version, but half of IE user still uses IE8. en.wikipedia.org/wiki/… –  nhahtdh Jan 19 '13 at 15:56
    
This code will be used for internal web site. The old version is not a problem. I prefer to use the latest IE. –  Peter Penzov Jan 19 '13 at 15:58
    
for ie 9 and 10 I believe the webkit is -ms-liniear-gradient(); But for ie 6-8 I think you want a filter:progid:DXImageTransform.Microsoft.Gradient(GradientType=0,StartColor=#FF‌​0000,EndColor=#00FF00); microsoft gradients –  Beneto Jan 19 '13 at 15:59

1 Answer 1

up vote 2 down vote accepted

Note the use of the -ms- vendor prefix and the order in which vendor prefixes are set:

.container{
    background:-webkit-gradient(linear, left top, left bottom, color-stop(0, #5fa309), color-stop(1, #3b8018));
    background:-webkit-linear-gradient(top, #5fa309 0%, #3b8018 100%);
    background:-moz-linear-gradient(top, #5fa309 0%, #3b8018 100%);
    background:-o-linear-gradient(top, #5fa309 0%, #3b8018 100%);
    background:-ms-linear-gradient(top, #5fa309 0%, #3b8018 100%);
    background:linear-gradient(top, #5fa309 0%, #3b8018 100%);
    position:relative;
    display:inline-block;
    padding:0 20px 0 10px;
    width:270px;
    line-height:20px;
    font-size:12px;
    font-family:sans-serif;
    text-shadow:0 1px 0 #264400;
    font-weight:bold;
    color:#fff
}
.container:after{
    content:'';
    background:-webkit-gradient(linear, left top, right bottom, color-stop(0, #5fa309), color-stop(1, #3b8018));
    background:-webkit-linear-gradient(top left, #5fa309 0%, #3b8018 100%);
    background:-moz-linear-gradient(top left, #5fa309 0%, #3b8018 100%);
    background:-o-linear-gradient(top left, #5fa309 0%, #3b8018 100%);
    background:-ms-linear-gradient(top left, #5fa309 0%, #3b8018 100%);
    background:linear-gradient(top left, #5fa309 0%, #3b8018 100%);
    position:absolute;
    top:3px;
    right:-7px;
    width:15px;
    height:15px;
    -webkit-transform:rotate(45deg);
    -moz-transform:rotate(45deg);
    -o-transform:rotate(45deg);
    -ms-transform:rotate(45deg);
    transform:rotate(45deg)
}
share|improve this answer
    
Would you not require the wc3 standard of gradient and linear-gradient declared before the webkits? just something I've heard. –  Beneto Jan 19 '13 at 16:01
1  
No, think of the order of the vendor prefixes as if statements. If the user is on webkit, render the -webkit- prefixed properties, and so on, else, if the user is using a browser that supports the standard, set the properties on the standard prefix. Here's an interesting article explaining it: css-tricks.com/ordering-css3-properties –  Synaptix Jan 19 '13 at 16:06
    
That's what I thought originally! But I'd been told otherwise :S thanks for clearing that up :) lol –  Beneto Jan 19 '13 at 16:12
    
I tested your code on IE 10. It's working very well. Thank you! –  Peter Penzov Jan 19 '13 at 16:30

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.