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I was hoping that defining variables in an if statement would work in Sass but unfortunately I get errors saying that the variable isn't defined. Here is what I tried:

@for !i from 1 through 9
    !foo = #000
    @if !i == 1
        !bg_color = #009832
    @if !i == 2
        !bg_color = #195889
    ...

    #bar#{!i} 
        color: #{!foo}
        background-color: #{!bg_color}

With this code, I would get the following error:

Undefined variable: "!bg_color".

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up vote 10 down vote accepted

Sass variables are only visible to the level of indentation at which they are declared and those nested underneath it. So you only need to declare !bg_color outside of your for loop:

!bg_color = #FFF
@for !i from 1 through 9
    !foo = #000
    @if !i == 1
        !bg_color = #009832
    @if !i == 2
        !bg_color = #195889

    #bar#{!i} 
        color: #{!foo}
        background-color: #{!bg_color}

And you'll get the following css:

#bar1 {
  color: black;
  background-color: #009832; }

#bar2 {
  color: black;
  background-color: #195889; }

#bar3 {
  color: black;
  background-color: #195889; }

#bar4 {
  color: black;
  background-color: #195889; }

#bar5 {
  color: black;
  background-color: #195889; }

#bar6 {
  color: black;
  background-color: #195889; }

#bar7 {
  color: black;
  background-color: #195889; }

#bar8 {
  color: black;
  background-color: #195889; }

#bar9 {
  color: black;
  background-color: #195889; }
share|improve this answer
    
I was sure I tried that. Thanks. – DEfusion Oct 4 '09 at 17:25

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