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I need help understanding what the following code in this documentation means.

LBUFFER=${LBUFFER%%(#m)[_a-zA-Z0-9]#}
LBUFFER+=${abbreviations[$MATCH]:-$MATCH}

I learned that LBUFFER contains the left from the cursor. However, there are 3 things that confuse me.

  1. What is the %% doing? Is it escaping %?
  2. What does (#m)[_a-zA-Z0-9]# do? Is it something like m/[_a-zA-Z0-9]/ in Perl? If so, what is done to the matched string?
  3. What is the :- part doing in the second line?

Thanks.

share|improve this question
up vote 1 down vote accepted
  1. ${a%%b} removes the longest occurrence of b (which can be a regular expression), from a.

  2. [_a-zA-Z0-9]# is a regular expression matching an alphanumeric character (as indicated by the stuff between []) zero or more times (specified by the # glob operator)

  3. (#m) populates the $MATCH variable after evaluating the previous regular expression.

  4. The combination of 1, 2, and 3 means that the stretch of alphanumeric characters at the end of the $LBUFFER is deleted and stored in $MATCH.

  5. ${a:-b} makes a equal to b only if a is not defined.

If you want to learn more, take a look at the expansion chapter of the zsh manual.

share|improve this answer
    
Thank you, that makes a lot of sense. One thing to make sure, the second # is just a character and doesn't have any syntactical meaning, right? – NigoroJr Jan 4 '14 at 0:40
1  
Yeah, that's it. Feel free to mark the answer as accepted by clicking the check mark. – nachocab Jan 4 '14 at 4:16
1  
Never mind, I was wrong. The # is a glob operator that means zero or more times when it appears after a regular expression (it is the equivalent of * in Perl). I've updated my answer. – nachocab Jan 4 '14 at 16:37

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