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Can anyone explain me this regular expression? what does this $% do? I just dont have any idea.

$self = "/usr/bin/XYZ";

$self =~s%/+[^/]*$%%;

print ("$self\n");


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Why don't you put it in a little file and run it? There's nothing like trying things yourself. Not only do you learn more, you can play around with it to find more interesting things about it. – shawnhcorey Apr 27 '11 at 13:14

3 Answers 3

up vote 3 down vote accepted

% is being used as a delimiter to avoid having to escape the / characters
It could be rewritten


so $ is the end of string anchor. The expression is replacing:-

\/+    - one or more forward slashes
[^\/]* - any number of anything that is not a forward slash
$      - at the end of the string

with nothing.
so stripping something like /end of string off

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The % is used instead of the more common // separators because the pathnames generally contain a lot of / and you'd have to escape them otherwise. The $ matches simply the end of the line. The second % is the end of the substitution pattern which in this case is empty.

As for the meaning of the regexp - it means find something starting with a / and ending with the end of line with no / in the between. Basically you'll get the XYZ that way and substitute it with nothing which leaves out /usr/bin.

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+1 beat me by 2 seconds. the two %% just mean that the replacement string is empty. – jcomeau_ictx Apr 27 '11 at 8:17
Silly me, I didn't notice it was substitution. :-) – Bozhidar Batsov Apr 27 '11 at 8:20

The percent sign is being used as the delimiter for s instead of the more common s/pattern/replacement/. So the dollar sign immediately preceding it is the end-of-line anchor.

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