Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Please have a look at my mind-breaker.

I'd stuck in shrinking with regex some long path, like this:

/12345/123456/1234/123/12/1/1234567/13245678/123456789/1234567890

I'd like to transform this path to the following form:

/123/123/123/123/12/1/123/123/123/123

each "directory" in a path abbreviates to only 3 first characters

LONG_PATH="/12345/123456/1234/123/12/1/1234567/13245678/123456789/1234567890"
perl -pe "s#/(.{1,3})[^/]*?(/|$)#/\1\2#g" <<<$LONG_PATH

/123/123456/123/123/12//1234567/132/123456789/123

sed -E "s#/(.{1,3})[^/]*?(/|$)#/\1\2#g" <<<$LONG_PATH

/123/123456/123/123/12//1234567/132/123456789/123

I have tried also:

perl -pe "s,/(.)(.)?(.)?[^/]*+,/\1\2\3,g" <<<$LONG_PATH
/123/123/123/123/12//123/132/123/123

and many another, no "luck" - I still have no idea about.

Please point me a right way to success.

share|improve this question
    
Do you want to shorten both directories and file? If only the former use: sed -r ':a;s|(/[^/]{3})[^/]+/|\1/|g;ta' file –  potong Nov 11 '12 at 21:47

3 Answers 3

up vote 7 down vote accepted

Match up to three non-slash characters and capture them. Then match the rest until the next slash. Replace by the capture:

"s#(/[^/]{3})[^/]*#\1#g"

There is no need for ungreediness or anything here, because the negated character class is mutually exclusive with the / or $.

EDIT: Although you seem to know this I should probably clarify for future visitors that this will work with either perl -pe... or sed -E... as you have used it in your question. The regex could also be used as is with sed -r.... If you leave out the -E or -r option, then (as usual) you will need to escape both the parentheses and curly brackets:

sed "s#\(/[^/]\{3\}\)[^/]*#\1#g" filename

Note also as ikegami points out that in Perl you should rather use $1 in the replacement than \1.

share|improve this answer
    
You've broken my brainteaser. Thank you so much. –  sarvavijJana Nov 11 '12 at 20:13
    
I got this sed: -e expression #1, char 24: invalid reference \1 on 's' command's RHS with GNU sed version 4.2.1 –  shiplu.mokadd.im Nov 11 '12 at 20:18
    
@shiplu.mokadd.im words fine for me with the same version: sed -E "s#(/[^/]{1,3})[^/]*#\1#g" filename –  Martin Büttner Nov 11 '12 at 20:24
    
@downvoter, would you care for a comment? –  Martin Büttner Nov 11 '12 at 20:24
    
By adding -r you can tell sed to use extended regexp and the () should work. (without -r you need to escape the () with \. –  miono Nov 11 '12 at 20:25

You could do it like this:

perl -pe's#[^/]{3}\K[^/]*##g'
/12345/123456/1234/123/12/1/1234567/13245678/123456789/1234567890
/123/123/123/123/12/1/123/132/123/123

Find 3 non-slashes, and keep (\K) them, remove the following characters up until the next slash.

As ikegami pointed out, it is not required to match less than three characters, in which case a lookbehind assertion can be used instead of \K. The benefit is that \K requires perl v5.10, and I believe look-around assertions predate that.

perl -pe 's#(?<=[^/]{3})[^/]*##g'
share|improve this answer
    
Perl regex still have dark corners for me and that's great. Thank for this interesting example. –  sarvavijJana Nov 11 '12 at 20:54
    
@sarvavijJana You're welcome. –  TLP Nov 11 '12 at 21:00
1  
@ikegami Interesting edit.. if this is used, the \K can be exchanged for a lookbehind, with a slight decrease in perl version dependency. –  TLP Nov 11 '12 at 21:03

The best way seems to use the File::Spec module to split and recombine a path. An intermediate call to map will reduce each path segment to its first three characters. This program demonstrates

use strict;
use warnings;

use File::Spec;

my $path = '/12345/123456/1234/123/12/1/1234567/13245678/123456789/1234567890';

my $newpath = File::Spec->catdir(map substr($_, 0, 3), File::Spec->splitdir($path));

print $newpath;

output

/123/123/123/123/12/1/123/132/123/123
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.