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I was stumbling over a behaviour in Vim's substitute-command that I can't really follow:

Given the following line of code that contains the && sequence I wanted to substitute the && with && and a newline:

return a && b

In my first try I simply used s/&& /&&^M/g (^M was inserted via Ctrl-V <Enter>). This results in the following code:

return a && && 
b

How exactly is the substitution performed to insert the second &&<space>? I expected the first (and only match) to be &&<space> and this complete match to be substituted by &&^M?

The question is not about how to perform the correct substitution - I ended up using the \zs token to reset the start of the match and only insert the newline. I just want to understand why exactly the duplication is introduced.

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2 Answers 2

up vote 3 down vote accepted

The problem you're hitting is that the substitute command treats & as a special token in the replacement to mean the matched text. You need to escape it.

:s/&& /\&\&^M/g
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Ah that explains why s/&& /and&M/g DID work. Maybe I should just print out :h regex as a reference. –  BergmannF Jul 18 '12 at 8:26
    
@Gjallar: Under nomagic mode & becomes a normal character. However, I'm not sure how to turn on nomagic mode for the replacement pattern. –  Kevin Ballard Jul 18 '12 at 8:27
3  
Try: :sno/&& /&&\r –  kev Jul 18 '12 at 9:31

This simple command should work, leaving an inelegant trailing space on the first line:

:s/&& /&\r

But I don't like trailing spaces.

This one does what you want without leaving a trailing space:

:s/&&\zs /\r

I use && as a "marker", the actual match, a <space>, is delimited with \zs and is replaced by a carriage return.

See :help \zs.

edit

Ho crap, I completely failed to read the last paragraph of your question.

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