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I have some text in this format (Oracle column definitions in case you're wondering)...

column1 DATE,
column2 VARCHAR2(6),
column3 VARCHAR2(15)

I've been trying to figure out how to replace everything passed the space in each line with "VARCHAR2(255)," but haven't been successful yet.

I know I can search and find the space via /\s, but I can't figure out how to get the rest of the string in the line. When I use /\s*, that highlights all the text. I attempted to use /\s.+ but I get "Pattern not found".

How can I get all text passed the space in each line and replace it globally with another String?

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4 Answers 4

up vote 2 down vote accepted

Easiest way:

:%s/ .*/ VARCHAR(255)

VIM uses a slightly weird regex syntax so if you wanted to do \s+ you'd have to use \s\+

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How about

:%s/\s\S\+$/ VARCHAR(255)/
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Why didn't you use qq0f C VARCHAR(255)q, then :%norm!@q? Aren't substitution one-liners tedious to think? ;-) –  ib. Mar 29 '12 at 3:24
    
Thanks for pointing this out, of course it is a viable solution which you should have added as an answer. I will upvote on it if you post it as one, which is more than I got for my valid solution ^^ –  hochl Mar 29 '12 at 8:19
    
It happens sometimes. I think, this commands deserves at least one up vote. +1 –  ib. Mar 29 '12 at 9:17

One way:

:%s/\(\s\+\).*$/\1VARCHAR(255)/

For every line %, find first space \(\s\+\), save it in group 1 (\1), match rest of line with .*$, and replace it with literal string.

EDIT to say that you must escape + in regexp in magic mode. You can use the very magic mode with \v at the beginning of the regexp. See :he magic for details.

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In addition to using substitution commands, consider solving the issue by repeating a sequence of Normal mode commands:

:%norm!f C VARCHAR(255)
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+1 as promised and since it is a valid solution. –  hochl Mar 29 '12 at 10:46

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