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Here is a very reduced test case of what I am trying to accomplish:

This works:

html
  $gradient: red, salmon
  +background(linear-gradient($gradient))

This does not work:

html
  $gradient: top, red, salmon
  +background(linear-gradient($gradient))

And it gives me this error: "At least two color stops are required for a linear-gradient()"

Yet, $gradient: top, red 10%, salmon 10% doesn't work. Nor does $gradient: 35% 10%, red 10%, salmon 10%. I need to be able to pass any valid CSS3 combination of the gradient syntax into the mixin, even multiple gradients.

+background(linear-gradient(35% 10%, red 10%, salmon 10%)) works, so I assume it should with a variable placeholder as well.

How can I get +background to accept any valid CSS I pass it?

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2 Answers 2

up vote 2 down vote accepted

Use Sass Variable Arguments:

html
  $gradient: top, red, salmon
  +background(linear-gradient($gradient...))
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html
  $gradient: linear-gradient(top, red, salmon)
  +background($gradient)

This works for what I'm trying to do, but it's not ideal or very DRY if I needed a mixin to always be a linear gradient.

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This solves my specific issue, but not the problem I was able to boil it down to. I'm not going to mark this answered and I am still looking for more feedback. –  bookcasey Oct 27 '12 at 3:52

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