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If you have a range of lines (not the entire file) that start with some variable number of spaces followed by some alphabetic characters:

   aaaa
   bbbb
   cccc
   DDDD

which you'd like to convert to this:

   # aaaa
   # bbbb
   # cccc
   # DDDD

how would you do that in Vi?

I was thinking something along the lines of:

s/[a-z,A-Z]/# (something)/

but I'm not sure how to express (something) as whatever was found that matched.

Thanks.

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:g/^ *[a-zA-Z]/s/^/# /
  • g for lines matching
  • /^ *[a-zA-Z]/ spaces+alpha
  • s/^/# / replace start of the line with #

To directly answer your question, (something) should be &. Obviously your expression would match the first alpha character wherever it appears, in the line, and insert the # there.

share|improve this answer
    
Interesting! It's almost like you've merged two regex expressions into one. But what if you want to do it over a range of lines m,n instead of globally? I tried it substituting m,n for g and it comments out more than the given range. – Robert May 9 '14 at 23:41
    
@Robert Don't remove the g. :3,7g/^ *[a-zA-Z]/s/^/# /. – that other guy May 10 '14 at 21:27

to fix your sed command (you can replace \w to [a-zA-Z] for your environment)

sed 's/\(^ \w*\)/#\1/' file

Explanation

  • \1 represents the previous match in ( ), if there are several pair of ( ), use the sequence number \2, \3

If you need do it in vi/vim, run this:

:%s/\(^ \w*\)/#\1/g
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I've re-worded the question to make it clear that these strings don't start at the beginning of the line. Also that I'm operating on a range of lines, not the entire file. Thanks for your response but I'll figure it out. – Robert May 10 '14 at 20:32

To add one more option into the mix: :%s/^\s\+/&# /

The /^\s\+ matches one or more spaces at the beginning of the line, the & is replaced with the string that was matched, and then the # is added on to the replacement.

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