3

If I do

# perl -lne "print \$1 if /'?(\d{5})'?:/" courses.yaml
00000
01005

then I get the result I want, but now I want to do it with grep instead.

Why doesn't the following get me the same output?

# grep -oP "\'?(\d{5})\'?:" courses.yaml 
'00000':
'01005':
  • 1
    because it returns everything that gets matched with the regex. You may want to use \K or some look-ahead/behind. – fedorqui Aug 18 '16 at 12:49
  • 1
    You print Group 1 contents in the first case, and the whole match in the second. Try grep -oP "(\d{5})(?='?:)" courses.yaml – Wiktor Stribiżew Aug 18 '16 at 12:50
  • 1
    This answer provides more detail about the use of lookahead/lookbehind assertions to make -o work the way you want it. – user4815162342 Aug 18 '16 at 12:52
  • Why not just stick with perl? Or better yet, use a YAML parser, and don't regex it in the first place? – Sobrique Aug 18 '16 at 13:18
3

You print Group 1 contents in the first case, and the whole match in the second. When using grep with -oP, you can only print the whole match, thus, use a (?='?:) lookahead that will only return a 5-digit chunk if there is a : after them preceded with an optional single quote:

echo "'00000':  '01005':" | grep -Po "\d{5}(?='?:)"

See demo

I think there is no point in using a lookbehind here since the ' is optional in your pattern.

0

-o is outputs the match ($&), not the first capture ($1).

You can use \K, look-behinds and/or look-aheads to control what's considered matched.

In your case, you can use the following:

grep -oP "'?\K\d{5}(?='?:)" courses.yaml 

But that simplifies to the following:

grep -oP "\d{5}(?='?:)" courses.yaml 

Using a proper YAML parser would make far more sense, and it would still be quite short.

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