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How can I create a programmatic horizontal gradient that starts at a prescribed location (in pixles on the x-axis)?

Here's the issue- I've got an image set as background-image - ideally, what I'd like to do is declare a CSS gradient that starts close to the edge of the image (~1800 pixels) and fades gracefully to full black.

So far, the best solution I have is to have two div elements- one with the photo background and the other with a 1px tall gradient image repeated along the y-axis with a background-position that starts at 1780px.

This works, but I really want to get away from the 1px image trick. Any ideas?

<div id="photobg">
 <div id="gradientbg">
 </div>
</div>

#photobg {
 background-image:url('photourl.jpg');
}

#gradientbg {
 background-image:url('1pxgradient.jpg');
 background-repeat: repeat-y;
 background-position: 1780px 0;
 height: 100%;
}

What I'd like to do, in theory, is use color stops at 1780 px for a CSS gradient but as I understand it, CSS only supports % values as color stops.

Reference: CSS 3 Gradient n pixels from bottom - Webkit/Safari

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2 Answers 2

up vote 1 down vote accepted

No, you can use pixels with linear gradient:

background-image: linear-gradient(transparent 1780px, black 100%);

You can also combine this gradient with multiple background images on one div.

You might want to check out this jsbin, I've made for you: http://jsbin.com/sonewa/1/edit

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Oops, I just saw right now, that this question is already more than two years old. 8[ –  Loie Aug 20 '14 at 6:51

This block of css will do what you want

background: -moz-linear-gradient(center top , #00AFF0, #53D4FE); //this is for mozilla
background-image: -webkit-linear-gradient(top, #00AFF0, #53D4FE); //this is for chrome and safari
filter: progid:DXImageTransform.Microsoft.gradient(startColorstr='#00AFF0', endColorstr='#53D4FE', GradientType=0); //this is for IE

while the gradient is from color #00AFF0 to #53D4FE (top to bottom)

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I'm not looking for a gradient example for Webkit- I am looking for a solution to beginning a gradient at a pixel location rather than a % of the background. This is not the answer. –  CaseyHunt Aug 20 '12 at 15:24

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