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I am using the following gradient mixin on some of the anchors in my Rails application:

@mixin gradient($color) { 
  $from: lighten($color, 5%);
  $to: darken($color, 5%);
  background-color: $color;
  background-image: -moz-linear-gradient($from, $to);
  background-image: -webkit-gradient(linear, 0% 0%, 0% 100%, from($from), to($to));
  background-image: -webkit-linear-gradient($from, $to);
  background-image: -o-linear-gradient($from, $to);
  &:hover {
    $hover_color: darken($color, 5%);
    $from: lighten($hover_color, 5%);
    $to: darken($hover_color, 5%);
    background-color: $hover_color;
    background-image: -moz-linear-gradient($from, $to);
    background-image: -webkit-gradient(linear, 0% 0%, 0% 100%, from($from), to($to));
    background-image: -webkit-linear-gradient($from, $to);
    background-image: -o-linear-gradient($from, $to);
  }
}

The :hover does not work though. When I hover over an anchor nothing changes. I would expect to see a change in color there.

Can anybody tell me what I am missing here?

Thanks for any help.

share|improve this question
    
Per your edit: You didn't change the values. –  Wesley Murch Oct 14 '13 at 18:44
    
OK now that you've made the correct edits, is there still a problem? I don't see $strength defined. Slow down a bit and look your code over. –  Wesley Murch Oct 14 '13 at 18:52
    
As yes, sorry, I was too fast. I just cleaned up my code a bit. –  Tintin81 Oct 14 '13 at 18:59

2 Answers 2

up vote 3 down vote accepted

The SASS code is fine.

background-image sits "on top" of background-color, so you aren't seeing the change.

Make this tweak, which will declare all background properties:

&:hover {
  background: darken($color, 20%) !important;
}

You can probably remove !important.

If you want to have a different gradient, you have to declare each property again (with different values) in the :hover styles.

share|improve this answer
    
Yes, that does work. But I would like to keep the gradient on the :hover state too. Isn't that possible? –  Tintin81 Oct 14 '13 at 18:38
1  
Sure, but you have to set the correct properties. Add styles for background-image as you have done for the non-hover state. You really should use the standard linear-gradient as the final rule too. In addition, I'm not sure you need all those vendor-specific properties, check which versions of which browsers you actually need to support and see if they need them. –  Wesley Murch Oct 14 '13 at 18:40
1  
Update your post with the new code. Leave the old code so I don't look like a moron. Did you.... change the values? –  Wesley Murch Oct 14 '13 at 18:43
1  
Yeah as I suspected, you didn't change the to/from values, so of course you will not see a different color. (you should set the background-color too for browsers that don't support gradients). For your reference: jsfiddle.net/wgmEh/1 –  Wesley Murch Oct 14 '13 at 18:45
1  
Standard is like background: linear-gradient(topcolor, bottomcolor); developer.mozilla.org/en-US/docs/Web/CSS/linear-gradient, dev.w3.org/csswg/css-images-3/#linear-gradients –  Wesley Murch Oct 14 '13 at 19:00

I would recommend using a transparent gradient, and just changing the background color. Also, you're redefining your $from and $to variables instead of accepting a $color parameter.

@mixin gradient($color) { 
  $from: transparent;
  $to: darken($color, 5%);

  background-color: lighten($color, 5%);
  background-image: -moz-linear-gradient($from, $to);
  background-image: -webkit-gradient(linear, 0% 0%, 0% 100%, from($from), to($to));
  background-image: -webkit-linear-gradient($from, $to);
  background-image: -o-linear-gradient($from, $to);

  &:hover {
    background-color: red;
  }
}
share|improve this answer
    
Thanks, I just fixed that in my initial post. –  Tintin81 Oct 20 '13 at 19:24

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