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've created a linear gradient with following CSS code for a linear gradient:

background-color: #2c2c2c;
background-image: -moz-linear-gradient(top, #444444, #222222);
background-image: -ms-linear-gradient(top, #444444, #222222);
background-image: -webkit-gradient(linear, 0 0, 0 0, from(#444444), to(#222222));
background-image: -webkit-linear-gradient(top, #444444, #222222);
background-image: -o-linear-gradient(top, #444444, #222222);
background-image: linear-gradient(top, #444444, #222222);
background-repeat: repeat-x;
filter: progid:dximagetransform.microsoft.gradient(startColorstr='#444444', endColorstr='#222222', GradientType=0);

enter image description here

I'm wondering how can I get this same gradient, from #444444 to #222222, to go up until the white arrow, stop, and then proceed to the bottom edge starting from #222222 and back to #444444 in the same manner above.

Thank you.

share|improve this question

3 Answers 3

up vote 2 down vote accepted
background: #000000; /* Old browsers */
background: -moz-linear-gradient(top, #000000 0%, #ff3033 50%, #000000 100%); /* FF3.6+ */
background: -webkit-gradient(linear, left top, left bottom, color-stop(0%,#000000), color-stop(50%,#ff3033), color-stop(100%,#000000)); /* Chrome,Safari4+ */
background: -webkit-linear-gradient(top, #000000 0%,#ff3033 50%,#000000 100%); /* Chrome10+,Safari5.1+ */
background: -o-linear-gradient(top, #000000 0%,#ff3033 50%,#000000 100%); /* Opera 11.10+ */
background: -ms-linear-gradient(top, #000000 0%,#ff3033 50%,#000000 100%); /* IE10+ */
background: linear-gradient(to bottom, #000000 0%,#ff3033 50%,#000000 100%); /* W3C */
filter: progid:DXImageTransform.Microsoft.gradient( startColorstr='#000000', endColorstr='#000000',GradientType=0 ); /* IE6-9 */
share|improve this answer
    
Thank you very much Edward! –  Elias7 Aug 9 '12 at 17:40
    
@GirlCanCode2 You're always welcome! –  Edward Ruchevits Aug 9 '12 at 17:41

You should be able to do something like this:

background: #444444; /* Old browsers */
background: -moz-linear-gradient(top,  #444444 0%, #222222 50%, #444444 100%); /* FF3.6+ */
background: -webkit-gradient(linear, left top, left bottom, color-stop(0%,#444444), color- stop(50%,#222222), color-stop(100%,#444444)); /* Chrome,Safari4+ */
background: -webkit-linear-gradient(top,  #444444 0%,#222222 50%,#444444 100%); /* Chrome10+,Safari5.1+ */
background: -o-linear-gradient(top,  #444444 0%,#222222 50%,#444444 100%); /* Opera 11.10+ */
background: -ms-linear-gradient(top,  #444444 0%,#222222 50%,#444444 100%); /* IE10+ */
background: linear-gradient(to bottom,  #444444 0%,#222222 50%,#444444 100%); /* W3C */
filter: progid:DXImageTransform.Microsoft.gradient( startColorstr='#444444', endColorstr='#444444',GradientType=0 ); /* IE6-9 */

A great learning tool can be found here.

share|improve this answer
    
Thank you very much Luke! –  Elias7 Aug 9 '12 at 17:40

You need to specify where the color stops see the 50% part.

background: #444444; /* Old browsers */
background: -moz-linear-gradient(top, #444444 0%, #222222 50%, #444444 100%); /* FF3.6+ */
background: -webkit-gradient(linear, left top, left bottom, color-stop(0%,#444444), color-stop(50%,#222222), color-stop(100%,#444444)); /* Chrome,Safari4+ */
background: -webkit-linear-gradient(top, #444444 0%,#222222 50%,#444444 100%); /* Chrome10+,Safari5.1+ */
background: -o-linear-gradient(top, #444444 0%,#222222 50%,#444444 100%); /* Opera 11.10+ */
background: -ms-linear-gradient(top, #444444 0%,#222222 50%,#444444 100%); /* IE10+ */
background: linear-gradient(to bottom, #444444 0%,#222222 50%,#444444 100%); /* W3C */
filter: progid:DXImageTransform.Microsoft.gradient( startColorstr='#444444', endColorstr='#444444',GradientType=0 ); /* IE6-9 */

Check out Ultimate CSS Gradient Generator for more info.

share|improve this answer
    
Thank you very much PHJ! –  Elias7 Aug 9 '12 at 17:40

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.