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I want to do this:

%s/shop_(*)/shop_\1 wp_\1/

Why doesn't shop_(*) match anything?

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I'm a little closer: %s/shop_/& wp_\1 –  nnyby Jul 26 '10 at 21:22
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If I didn't understand correctly, try adding examples. –  Stephen Jul 26 '10 at 21:25
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This question would be more useful to future SO users if an example was added of what is being attempted with the regex. –  LondonRob Apr 22 '14 at 17:05

2 Answers 2

There's several issues here.

  1. parens in vim regexen are not for capturing -- you need to use \( \) for captures.

  2. * doesn't mean what you think. It means "0 or more of the previous", so your regex means "a string that contains shop_ followed by 0+ ( and then a literal ).
    You're looking for ., which in regex means "any character". Put together with a star as .* it means "0 or more of any character". You probably want at least one character, so use .\+ (+ means "1 or more of the previous")

Use this: %s/shop_\(.\+\)/shop_\1 wp_\1/.

Optionally end it with g after the final slash to replace for all instances on one line rather than just the first.

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Just a nit: the existing regex didn't search for a literal *), just a literal ). –  Stephen Jul 28 '10 at 0:08
    
@Stephen: Woops, you're right. Mistyped there. –  Daenyth Jul 28 '10 at 0:17

If I understand correctly, you want %s/shop_\(.*\)/shop_\1 wp_\1/

Escape the capturing parenthesis and use .* to match any number of any character.

(Your search is searching for "shop_" followed by any number of opening parentheses followed by a closing parenthesis)

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