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I am looking to introduce PHP variables to stylesheets (ie. CSS).

I have worked out that I can print a PHP page as a stylesheet by declaring:

header('Content-Type: text/css');

At the top of the CSS page.

However the variable I am passing is not displaying in the stylesheet.

In this case the PHP variable $css will be '-webkit-', '-moz-', '-ms-', or '-o-'.

And in the stylesheet I want to echo it in front of CSS3.

Originally I was achieving this by having a separate CSS file for each however this would be more efficient and allow me to pass genuine styling from the database, such as background-color and font.

Possible? How?

EXAMPLE PHP File called as a CSS link.

<?php
global $css;
header('Content-Type: text/css');

?>
.wheel {
    position:absolute; top:50%; left:50%; height:32px; width:32px; margin:-16px; <?php echo $css;?>transition:opacity 0.3s;
}
.wheel li {
    width:3px; height:9px; border-radius:2px; background:#555; <?php echo $css;?>animation:loading 1.2s infinite; position:absolute; <?php echo $css;?>transform-origin:2px 16px; left:16px; opacity:0; box-shadow:inset 0 0 2px rgba(255,255,255,0.4);
}

@<?php echo $css;?>keyframes loading { 0% {opacity:0.2;} 50% {opacity:0.9;} 100% {opacity:0.2;} }
share|improve this question
    
I think this needs more information: where are you echoing the variable? – Kian Aug 1 '13 at 15:47
    
Can you show some of the code you're using? – css Aug 1 '13 at 15:47
    
What is your code? – Majid Fouladpour Aug 1 '13 at 15:48
    
Code added ..... – Robin Knight Aug 1 '13 at 15:52
    
What is it you think that "global $css;" is doing? Is this the entire PHP file or is it included in another one? – Wesley Murch Aug 1 '13 at 15:54
up vote 1 down vote accepted

You do this the same way you would with HTML:

<?php 
    header('Content-Type: text/css'); 
    $css = $_GET['css']; // or wherever your're initializing the variable from...
?>
body {
    <?= $css ?>border-radius: 3px
}

But, I don't think this is necessary for your use case. It's actually not uncommon to just statically include all the various -*- options in a css file:

body {
    -moz-border-radius: 3px;
    border-radius: 3px;
}

Just add all effective options, and the browser will determine which are most effective for it. This also means you get to avoid the dull and error prone task of browser sniffing.

share|improve this answer
3  
+1, also there are arguments against dynamic CSS generation: programmers.stackexchange.com/a/118072 – Kian Aug 1 '13 at 15:52
    
@Kian, Fully agree. And, there's really no good argument for it. – PaulProgrammer Aug 1 '13 at 15:53
1  
@Kian There are some good arguments for it. And you can cache the page anyways. – Jeff Noel Aug 1 '13 at 15:54
    
@PaulProgrammer :: What if you allow the user to determine how their web profile appears (ie. the styling.) you we need to store that information in database on a per user basis. Would you not? – Robin Knight Aug 1 '13 at 15:54
    
I would generate separate CSS files (see @Benubird's suggestion below), and determine which CSS file to <link> from the profile. – PaulProgrammer Aug 1 '13 at 15:55

If you just want to be able to use variables in your css (not necessarily php), you could consider using less

share|improve this answer

SASS CSS extension would allow you to use variables without actually needing to use PHP and the downsides that come with it. Mixins would simplify the generation of vendor-specific style rules.

@mixin vendor-prefix($name, $argument) {
  -webkit-#{$name}: #{$argument};
  -ms-#{$name}: #{$argument};
  -moz-#{$name}: #{$argument};
  -o-#{$name}: #{$argument};
  #{$name}: #{$argument};
}
p {
  @include vendor-prefix(hyphens, auto)
}
share|improve this answer

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