76

I am using this regex:

((?:[a-z][a-z]+))_(\d+)_((?:[a-z][a-z]+)\d+)_(\d{13})

to match strings like this:

SH_6208069141055_BC000388_20110412101855

separating into 4 groups:

SH
6208069141055
BC000388
20110412101855

Question: How do I make the first group optional, so that the resulting group is a empty string?
I want to get 4 groups in every case, when possible.

Input string for this case: (no underline after the first group)

6208069141055_BC000388_20110412101855
0
132

Making a non-capturing, zero to more matching group, you must append ?.

(?: ..... )?
^          ^____ optional
|____ group
3
  • 24
    This answer is more useful simply because it helps more efficiently to those people who came here googling Regex optional group, which is the topic of the question. Noone wants demos from external sites, everyone just wants straightforward answer. SO is more about helping as much people as possible and not about complaining that suddenly you've got a danger to your sole perfect answer. Jul 24 '20 at 14:28
  • 1
    what is the difference between option group and (...)* Nov 9 '21 at 21:50
  • @GoldenLion ? matches "zero or one times" and * matches "zero or many times"
    – Daniel W.
    Nov 10 '21 at 9:26
76

You can easily simplify your regex to be this:

(?:([a-z]{2,})_)?(\d+)_([a-z]{2,}\d+)_(\d+)$
^              ^^
|--------------||
| first group  ||- quantifier for 0 or 1 time (essentially making it optional) 

I'm not sure whether the input string without the first group will have the underscore or not, but you can use the above regex if it's the whole string.

regex101 demo

As you can see, the matched group 1 in the second match is empty and starts at matched group 2.

3
  • Thank you! I had such a tough time coming up with what to search for, to find this question!
    – Reza S
    Apr 8 '19 at 22:07
  • Which of the characters is marking the group optional?
    – Daniel W.
    Dec 18 '19 at 11:34
  • 1
    The ? after the first group? That's the 17th character from the left.
    – Jerry
    Dec 18 '19 at 16:30

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