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I want to delete all occurrences of square brackets that conform to this regex: \[.*\].*{, but I only want to delete the brackets, not what follows - i.e., I want to delete the brackets and what's inside them, only when they are followed by an opening curly brace.

How do I do that with Vim's search/replace?

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4 Answers 4

up vote 10 down vote accepted

You can use \zs and \ze to set the beginning and the end of the match.

:%s/\zs\[.*\]\ze.*{//g should work.

You are telling Vim to replace what is between \zs and \ze by an empty string.

(Note that you need the +syntax option compiled in your Vim binary)

For more information, see :help /\zs or :help pattern

Edit : Actually \zs is not necessary in this case but I leave it for educational purpose. :)

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I had no idea this existed! Excellent tip! –  Brian Riehman Apr 28 '11 at 15:33

If you surround the last bit of your regex in parenthesis you can re-use it in your replace:

:%s/\[.*\]\(.*{\)/\1/g

The \1 references the part of the regex in parenthesis.

I like to build my search string before I use it in the search and replace to make sure it is right before I change the document:

/\[.*\]\(.*{\)

This will highlight all the occurrances of what you will replace.
Then run the %s command without a search term to get it to re-use the last search term

:%s//\1/g
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This will run your regex on the current file:

:%s/\[.*\]\(.*{\)/\1/g

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That's exactly my problem, I want to keep the curly brace and only delete the brackets and what's inside them. –  Amir Rachum Apr 28 '11 at 14:47
    
Oh, I wasn't sure if you just needed the syntax for regex in vim. I edited my answer with another possible solution, though there are now several working answers posted. –  Dan Breen Apr 28 '11 at 14:53

How about:

:%s#\[.*\]\ze.*{##g

Note that the \ze item marks the end of the match, so anything that follows is not replaced.

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