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I have a set of file-paths, and I want to list all file-paths that do not contain x/y/z/. The other constraint is that I cannot use print if !m{x/y/z/} since I don't have write permissions on the script. I can provide the script with regexp patterns to include (as command-line-options), i.e., everything that matches will be printed.

This is my attempt. I am trying to match all lines that do not have x/y/z/ before them.

#!/usr/bin/perl
use warnings;
use strict;

while(<DATA>) {
   print if m{(?<!x/y/z/).*};
}

__DATA__
x/y/z/a/b/x.cc
x/y/z/a/b/x.cc
x/y/z/a/b/x.cc
x/y/a/b/m.cc
x/y/a/b/m.cc

My expectation is it would print only the bottom two strings, but it prints everything. But when I change the pattern to (?<=x/y/z/).*, it is printing only the top 3 strings:

x/y/z/a/b/x.cc
x/y/z/a/b/x.cc
x/y/z/a/b/x.cc

Why so, and what should I do to fix my regexp?

share|improve this question
    
m{(?<!x/y/z/).*} matches x/y/z/a/b/x.cc because m{(?<!x/y/z/).*} matches /y/z/a/b/x.cc –  ikegami Nov 9 '12 at 17:31

1 Answer 1

up vote 4 down vote accepted

What you need is a negative lookahead. So, straight from the monastery comes the answer:

#!/usr/bin/perl
use warnings;
use strict;

while(<DATA>) {
   print if m{^(?!(?s:.*)x/y/z)}; 
}

__DATA__
x/y/z/a/b/x.cc
x/y/z/a/b/x.cc
x/y/z/a/b/x.cc
x/y/a/b/m.cc
x/y/a/b/m.cc
share|improve this answer
2  
literal translation: match a string that does not start with any number of any characters followed by x/y/z –  ysth Nov 9 '12 at 5:53
1  
Thank you. It works perfectly :) –  Unos Nov 9 '12 at 6:11
2  
Did you really mean to filter out x/y/zoo/a.cc? / or (?:/|\z) needs to be added. –  ikegami Nov 9 '12 at 6:31
    
No, I don't want to filter out x/y/zoo. Everything under x/y/z/ should be filtered. Let me edit the question appropriately. –  Unos Nov 9 '12 at 8:07
    
great observation @ikegami, thx for that –  Tudor Constantin Nov 9 '12 at 9:52

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