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It is possible to have list of three colors:

$color-list: x y z;

And then apply these three colors by cycling through them and adding them to on an unordered list item.

I want:

<li>row 1</li> (gets color x)
<li>row 2</li> (gets color y)
<li>row 3</li> (gets color z)
<li>row 4</li> (gets color x)

and so on and so forth.

I had tried to use the @each (http://sass-lang.com/docs/yardoc/file.SASS_REFERENCE.html#each-directive) function but then it just stops applying color after the first time through the list. I want the colors to keep cycling until it runs out of list items to apply them to.

is this possible with sass?

share|improve this question
    
Seems like a case for nth-child. Sass doesn't know about your markup. You could iterate through the list items with @each but it would be more flexible to use nth-child. –  steveax Mar 18 '13 at 4:57

1 Answer 1

up vote 9 down vote accepted

If its possible with pure CSS, its possible with Sass. This will work with any number of colors:

http://codepen.io/cimmanon/pen/yoCDG

$colors: red, orange, yellow, green, blue, purple;

@for $i from 1 through length($colors) {
    li:nth-child(#{length($colors)}n+#{$i}) {
        background: nth($colors, $i)
    }
}

Output:

li:nth-child(6n+1) {
  background: red;
}

li:nth-child(6n+2) {
  background: orange;
}

li:nth-child(6n+3) {
  background: yellow;
}

li:nth-child(6n+4) {
  background: green;
}

li:nth-child(6n+5) {
  background: blue;
}

li:nth-child(6n+6) {
  background: purple;
}
share|improve this answer
    
I understand that method...but what I want is for it to continually loop through the colors. So on your example the 7th li would start back at red and it would do this until all of the li elements are styled. –  JoshuaRule Mar 18 '13 at 14:16
1  
And it does? Doesn't the demo show that? That's what 6n+1 does: (6 * n) + 1 = 1, 7, 13, 19, 25, etc. –  cimmanon Mar 18 '13 at 14:24
    
I redact my earlier comment. This works great! I understand how you have it working now. –  JoshuaRule Mar 18 '13 at 16:02

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