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This question already has an answer here:

Not shure if this is a scope issue, well consider the following:

$custom : #f20;

@mixin colorbyclass($class) {
  .#{$class} {
    background: $class;
  }
}

//scss
@include colorbyclass(custom);

//compiles
.custom { color:custom; }

My issue being that i want $class to be a reference to my variable inside the function.
http://jsfiddle.net/yTkqp/

I'm up for grabs for suggestions to alternative solutions.

share|improve this question

marked as duplicate by cimmanon sass Oct 7 '15 at 14:01

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

up vote 1 down vote accepted

Variable variables don't exist in Sass. For the mixin you've presented, you can either pass it a single list containing 2 values or pass 2 values.

Option #1:

$custom : #f20;
@mixin colorbyclass($value) {
  &.#{nth($value, 1)} {
    background: nth($value, 2);
  }
}
.container {
  div {
    width:20px;
    height:20px;
    @include colorbyclass(custom $custom);
  }
}

Option #2:

$custom : #f20;
@mixin colorbyclass($class, $color) {
  &.#{$class} {
    background: $color;
  }
}
.container {
  div {
    width:20px;
    height:20px;
    @include colorbyclass(custom, $custom);
  }
}

Though, they look just as verbose as not using a mixin at all:

.container {
  div {
    width:20px;
    height:20px;
    &.custom {
        background: $custom; // could easily be replaced with a mixin that sets a bg color + other stuff
    }
  }
}
share|improve this answer
    
I went back to the original solution, exactly like your last suggestion. Thanks. – Christian Werther Jan 10 '13 at 9:39

I don't think you can use variable variables in sass. This other question seems to answer your question: using hash with scss

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