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I always wanted to know, how you can substitute within given parameters.

If you have a line like this:

123,Hello,World,(I am, here), unknown

and you wnat to replace World with Foobar then this is an easy task: :%s/World/Foobar/

Now I wonder how I can get rid of a , which is wihtin the ( ).

Theoretically I just have to find the first occurance of ( then substitute the , with a blank until ).

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Please read the FAQ entry about formatting code blocks in your questions and answers). –  Benoit Mar 7 '12 at 15:36

3 Answers 3

up vote 2 down vote accepted

Try lookahead and lookbehind assertions:

%s/([^)]*\zs,\ze.*)//

(\zs and \ze tell where pattern starts and end)

or

%s/\(([^)]*\)\@<=,\(.*)\)\@=//

The first one is more readable, the second one uses \( ... \) groupings with parentheses inside groups which makes it look like obfuscated, and \@<= which apart from being a nice ASCII-art duck is the lookbehind operator, and \@= that is the lookahead operator.

References: :help pattern (more detail at :help /\@=, :help /\ze, etc.)

You use the GUI and want to try those commands? Copy them into the clipboard and run :@+ inside Gvim.

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For your example, this is the same thing as suggested by @ubuntuguy

%s/\(.*\)(\(.*\),\(.*\)/\1(\2\3

This will do the exact replacement you want.

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Unfortunately, this will remove the last , , not the one inside ( ). –  mouviciel Mar 14 '12 at 8:33

You can also select the text you want to change (either with visual or visual-block modes) and enter the : to start the replace command. vi will automatically start the command with :'<,'> which applies the command to the selected area.

Replacing a , can be done with:

:'<,'>s/,/ /g
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