2

I have a pattern like this

absint\(\s?(\$[A-Za-z0-9_]+)\s?\)\s?={2,3}\s?\g<1>|(\$[A-Za-z0-9_]+)\s?==\s?absint\(\s?\g<2>\s?\)

which findes code like $id == absint($id) or $id == absint($id). It works fine with preg_match function, in https://regex101.com but PHPStorm doesn't support this syntax. How can I do exactly the same thing in PHPStorm search ?

  • 1
    If replacing \g<1> with (?1) does not work. BTW, didn't you want to actually use \1 instead of \g<1>? Also, which findes code like $id == absint($id) or $id == absint($id) - what is the difference between the two? – Wiktor Stribiżew Nov 24 '16 at 17:53
  • Wiktor thanks for reply. Hope someone will offer solution – Aram810 Nov 24 '16 at 17:55
  • There is no difference. I want to find both and refactor it which I have done.I just wonder. About \1 i didn't know. Thanks for advise – Aram810 Nov 24 '16 at 17:58
  • Ok, I see you want to match either $id == absint($id) or absint($id2) === $id2. – Wiktor Stribiżew Nov 24 '16 at 17:59
  • @WiktorStribizew exactly – Aram810 Nov 24 '16 at 18:00
1

It appears you cannot use recursion in PHP Storm. You may repeat the pattern though:

absint\(\s?\$\w+\s?\)\s?={2,3}\s?\$\w+|\$\w+\s?={2,3}\s?absint\(\s?\$\w+\s?\)
           ^^^^^                 ^^^^^ ^^^^^                       ^^^^^

See the regex demo (JS flavor chosen that does not support pattern recursion).

The \w matches letters, digits or underscores, and in case of a non-Unicode-aware regex, is equal to [A-Za-z0-9_].

Now, if you mean to only match the same variables on both ends, you may use backreferences (instead of the recursion constructs):

absint\(\s?(\$\w+)\s?\)\s?={2,3}\s?\1|(\$\w+)\s?={2,3}\s?abs‌​int\(\s?\2\s?\)
           xxxxxxx                 xx yyyyyyy                       yy

Backreferences do not repeat (reuse) the group patterns (as is the case with \g<1> or (?1)), but they are placeholders for the text captured with the corresponding groups.

See Using Backreferences To Match The Same Text Again vs. Regular Expression Subroutines.

  • I have already done this task by the way above. I am just wondering is it possible with recursion. Seems it isn't. Thanks a lot for your help – Aram810 Nov 24 '16 at 18:08
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    If you mean to only match the same variables on both ends, you may use absint\(\s?(\$\w+)\s?\)\s?={2,3}\s?\1|(\$\w+)\s?={2,3}\s?absint\(\s?\2\s?\). – Wiktor Stribiżew Nov 24 '16 at 18:20
  • It works !!! but I can't understand the difference between this one and my version. Please explane me – Aram810 Nov 24 '16 at 18:28
  • I updated the answer to explain the difference between the subroutine calls and backreferences, if you need a deeper explanation please let me know what is still unclear. – Wiktor Stribiżew Nov 24 '16 at 18:37
  • Thanks a lot. Now I understand it. – Aram810 Nov 25 '16 at 7:55

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