2

I've currently got the following code:

if ($str =~ m{^[A-Z]+-\d+$} || $str =~ m{^\d+$}){
    # do stuff
}

Is it possible to combine the 2 regular expressions into a single expression? And would that improve performance at all?

  • 1
    You may easily combine them using ^(?:[A-Z]+-)?\d+$ – Wiktor Stribiżew Jul 14 '17 at 20:43
  • 1
    yes use: $str =~ m{^(?:[A-Z]+-)?\d+$} – anubhava Jul 14 '17 at 20:43
  • 1
    What you ask, as answered by Wiktor Stribiżew, in the first place improves how the intent is conveyed -- match \d+ optionally preceded by that other. It's just clearer that way, than when written with ||. Which is faster depends on which case happens more often, but I'd say that on average the single regex should be faster since it never starts the engine twice. – zdim Jul 14 '17 at 20:58
  • 1
    As a side note, there is an interesting post where regex optimization in Perl is discussed. If the patterns could not be "joined" with an optional non-capuring group, I think it would be more appropriate to just use the || with two separate regexps as "alternations hinder the optimizer". – Wiktor Stribiżew Jul 14 '17 at 21:14
3

I would use an optional non-capturing group and combine these two into

if ($str =~ m{^(?:[A-Z]+-)?\d+$}) {
    # do stuff
}

Details

  • ^ - start of string
  • (?:[A-Z]+-)? - an optional non-capturing group (? quantifier makes it match 1 or 0 times)
  • \d+ - 1 or more digits
  • $ - end of string.
  • For more complex regexps, consider the /x modifier. – choroba Jul 14 '17 at 20:57

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