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I want to use a regex to replace some strings in my file. I search for: %s/^ [a-z]*/ / what I want to do is to replace every [a-z]* that have 2 whitespaces with the sane [a-z] prepended with 4 whitespaces. Is there any "inplace" replacement or how would I reach that with vim?

With best regards

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Do you mean replace [][]abcd with [][][][]abcd in which [] stands for space? –  amazingjxq Jun 30 '11 at 10:02

2 Answers 2

up vote 3 down vote accepted

I find it more straightforward to use the \ze object to define the end of the match:

:%s/  \ze[a-z]*/    /g

so the [a-z]* is not included in the replace, but just used to match the relevant spaces.

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This will also affect lines, prepended with 4 whitespaces. –  eugene y Jun 30 '11 at 10:41
    
I like that approach. It'll also be more efficient (I'd be surprised if that would ever lead to noticable speed differences, but hey, I'm a programmer). –  sehe Jun 30 '11 at 20:31
:%s/  \([a-z]*\)/    \1/g

should do the job; beware of running this multiple times, though because the result of the replace will match the input pattern :)

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wait, that's not right. this was downvoted. What did I miss? –  sehe Jun 30 '11 at 20:32
    
I am very sad this was down voted, that \1 is priceless! thanks for the awesome tip :) –  Hassek Jul 6 '12 at 16:27

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