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I had a look at twitter bootstrap mixin.less where they generate the grid. There's this line of code:

.offsetX (@index) when (@index > 0) {
  (~".offset@{index}") { .offset(@index); }
  .offsetX(@index - 1);
}
.offsetX (0) {}

Does anyone know what does that .offsetX (0) for?

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1 Answer

up vote 1 down vote accepted

Since .offsetX (@index) is recursive when the index is greater than 0, and iterates by subtraction, this case represents the terminal point of the recursive function.

If you set @index to 12, it will write .offset12, .offset11,..., .offset1 and write nothing for .offset0.

Edit

As the preprocessor attempts to resolve the mixin call for .offsetX (0), the when keyword is going to guard against using the recursive mixin. If another mixin isn't found, an error will result, sort of like calling an undefined function.

Hence, the terminating case of .offset (0) {} is there to cleanly exit the recursion.

If you'd like to play with it, here's a basic demo with which you can try commenting out the line with the terminal case, and then observe the exception on rerunning.

JSFiddle

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but why that line of code needs to be there? I mean it has been specified to only to execute the codes inside when @index is bigger than 0. Isn't that mean that when @index reach zero, it should terminate the recursion by itself? –  Zendy Aug 17 '12 at 3:39
    
@zen - I updated my answer. Hopefully that makes it a bit clearer. –  merv Aug 17 '12 at 5:14
    
I class it as a minor bug.. dotless doesn't do it, but I havent changed less.js because noones complained or raised an issue. –  Luke Page Aug 17 '12 at 6:06
    
@LukePage - For the record, lessc throws "SyntaxError: No matching definition was found for '.offsetX()' in ...". –  merv Aug 17 '12 at 6:27
    
I know.. when it searches for mixin defintions it errors if it finds nothing matching.. dotless errors if it finds nothing matching the arguments, but if something is excluded because of a guard, it does not error.. that is what it might be nice for less.js to do. Then you don't need default fallbacks when using guards. –  Luke Page Aug 17 '12 at 9:02
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