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I'm trying to remove an entry in $PATH if that entry contains a given string foo. For example PATH=/home/me/bin:/home/foo/bin:/usr/foo/bin:/bin would become PATH=/home/me/bin:/bin. I currently have

echo $PATH | perl -pe 's/:(.*?)foo(.*?):/:/g'

but this seems to be removing too many entries, even though I'm trying to use non-greedy matching. What am I doing wrong?

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3  
As for the greediness: That regex will still match the first : and then everything up to foo. The non-greediness in this case only means it will not match any foos on the way. You might want to change (.*?) to [^:]* to explicitly not include any colons (not sure what the capturing group was for). –  Biffen Jun 5 at 10:29
1  
...moreover, that regex won't work if the foo entry is the first or last (without a colon before and/or after). Using just [^:]* on either side should solve that. –  Biffen Jun 5 at 10:32

5 Answers 5

up vote 0 down vote accepted

You can also use awk to loop through the paths, printing just the ones that don't contain foo:

awk -F: '{for (i=1; i<=NF; i++) if ($i !~ /foo/) {printf "%s%s", $i, (i==NF? RS : FS)}}'

Explanation

  • -F: sets : as field separator.
  • for (i=1; i<=NF; i++) loop through the fields.
  • if ($i !~ /foo/) if the path does not contain the string foo, then perform next action:
  • printf "%s%s", $i, (i==NF? RS : FS) print the line, ending with new line or : depending on the position it is. If it is the last field, new line; otherwise, :.

Test

$ cat a
/home/me/bin:/home/foo/bin:/usr/foo/bin:/bin
/home/me/bin:/home/fio/bin:/usr/foo/bin:/bin

$ awk -F: '{for (i=1; i<=NF; i++) if ($i !~ /foo/) {printf "%s%s", $i, (i==NF? RS : FS)}}' a
/home/me/bin:/bin
/home/me/bin:/home/fio/bin:/bin
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It would be interesting to know the reason of the downvote. Feel free to explain so I can check some inaccuracies. –  fedorqui Jun 5 at 14:04
1  
For what it's worth, the awk command worked just fine for me, and you provided a detailed explanation for those that are curious. +1 from me. –  hertzsprung Jun 5 at 15:06

I would split the string, select the valid parts and then join the string again:

perl -e 'print join ":", grep !/foo/, split ":", $ENV{PATH}'
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You can use:

perl -pe 's/:(.*?)foo[^:]*(?=:|$)//g' <<< "$PATH"
/home/me/bin:/bin
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This still removes entries erroneously. Also, out of interest, what does the triple left chevron do? –  hertzsprung Jun 5 at 10:18
    
This removes 2 paths containing foo, why is that wrong and what is your expected output? –  anubhava Jun 5 at 10:20
    
My actual path is somewhat longer and, when I tried your regex, it still removed some entries preceding the matching entry. –  hertzsprung Jun 5 at 10:42
    
It worked with the provided data. If it is not working for certain case, please provide the input data with your expected output and I will investigate. –  anubhava Jun 5 at 10:44
    
As an unexperienced regex user who wants to learn: What does the ?=: do? –  Erik Henriksson Jun 5 at 10:46

I started to construct a regex that would deal with all the combinations of colons at either end, but it got complex fast. But since you're using Perl (good choice BTW) how about something like:

perl -e 'print join(":", grep { $_ !~ m/foo/ } split( ":", '"$PATH"' ) );'
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It's good of you to use non-greedy matching .*? in your below regex.

echo $PATH | perl -pe 's/:(.*?)foo(.*?):/:/g'

However, there is a flaw in your regex because you did not limit the allowed characters, and therefore it can capture across your colon boundaries.

That's one reason why split is a nice tool. It not only enforces boundaries but also the accepted characters between them.

It's of course possible to do this using a regex though, like you intended:

echo $PATH | perl -pe 's/[^:=]*foo[^:]*:?//g'

The above will leave a trailing colon if it's the last entry.

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