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I can't for the life of me figure out the proper regex for this.

What I'm looking for is a regex to match a valid numeric representation of Linux file permissions (e.g. 740 for all-read-none, 777 for all-all-all). So far I've tried the following:

strtotest=740
echo "$strtotest" | grep -q "[(0|1|2|3|4|5|7){3}]"
if [ $? -eq 0 ]; then
    echo "found it"
fi

The problem with the above is that the regex matches anything with 1-5 or 7 in it, regardless of any other characters. For example, if strtotest were to be changed to 709, the conditional would be true. I've also tried [0|1|2|3|4|5|7{3}] and [(0|1|2|3|4|5|7{3})] but those don't work as well.

Is the regex I'm using wrong, or am I missing something that has to deal with grep?

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5 Answers 5

up vote 3 down vote accepted

The simplest and most obvious regexp which is going to work for you is:

grep -q '(0|1|2|3|4|5|7)(0|1|2|3|4|5|7)(0|1|2|3|4|5|7)'

Here is an optimized version:

grep -Eq '(0|1|2|3|4|5|7){3}'

since 6 can represent permissions as well, we could optimize it further:

grep -Eq '[0-7]{3}'
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Thank you! This worked perfectly. I wish I could + rep a few people, but I guess I need to be a bit more active on this site in order to do so :P –  Sho Kei Nov 16 '12 at 15:08
    
grep -Eq "[(0|1|2|3|4|5|7)]{3}" (and its longer cousin) that you posted in your answer is actually incorrect. [ ] defines a range, so your regex would match say ||9, 77) among others. –  doubleDown Nov 16 '12 at 16:34
    
Corrected the regular expressions, as this is the accepted answer and the one most likely to be seen. –  OmnipotentEntity Nov 16 '12 at 17:00
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what you want is probably

grep -Eq "[0-7]{3}"

edit: if you're using this for finding files with certain permissions, you should rather have a look at find (-perm) or stat

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Thanks. I'm doing this as a learning exercise. I'm using it in a BASH shell that, when executed and fed a permission, will change permissions for all files and sub directories within it to the given permission. –  Sho Kei Nov 16 '12 at 15:11
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  1. Your regex is very broken: [ ] define a range, and all characters in it are in the set that is allowed.
  2. grep has some extra quoting rules that may require extra \.
  3. grep searches for your regex within each line - if you want to only match at the start of the line you need ^ as the first char in the regex, and if you want to match to the end of the line you need a $ at the end of the regex.
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Oh, fail on my part. I was under the false assumption that the brackets were something grep needed for regexps. –  Sho Kei Nov 16 '12 at 15:13
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Just for reference, you can do it with shell pattern in Bash

if [[ $strtotest == [0-7][0-7][0-7] ]]; then
    echo "Found it"
fi
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+1 for both addressing the problem with the regular expression AND eliminating the explicit comparison of $?. –  chepner Nov 16 '12 at 18:23
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in bash, you could write:

strtotest=740
if [[ "$strtotest" =~ ^[0-7]{3}$ ]] ;then
    echo "Found it"
  fi

or simplier:

[[ "$strtotest" =~ ^[0-7]{3}$ ]] && echo "Found it"

as

  • ^ mean start of string
  • [0-7] for any character between 0 and 7, including them
  • {3} repeat exactly 3 time preceding char
  • $ as end of string

this regex could be used with sed:

sed -ne '/^[0-7]\{3\}$/{s/^.*$/Found it/p}'

or perl

perl -ne 'print "Found it\n" if /^[0-7]{3}$/;'

etc...

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