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Given the following text in Vim:

[2] [3] [4]

I want to perform a search and replace and produce the following:

[1] [2] [3]

I know how to extract out the numbers using back-reference via search and replace:

:%s/\[\(\d\)\]/[\1]/g

But now the question is how do you go about decrementing the value of \1.

Any ideas?

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3 Answers 3

up vote 15 down vote accepted

Try

:%s/\[\(\d\+\)\]/\=join(['[', submatch(1) - 1, ']'], '')/g

EDIT: I added a \+ after \d in case you wanted to match more than single digit numbers.

See :help sub-replace-special

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Awesome! Do you know of any good documentations in using \= in search and replace? –  Highwind May 18 '09 at 5:21
    
Try :help sub-replace-expression –  sykora May 18 '09 at 5:23

When you use \zs and \ze to anchor the number inside the brackets without matching them, the substitution becomes simpler, because you don't need to concatenate in the replacement:

:%s/\[\zs\d\+\ze]/\=submatch(0)-1/g
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Try this:

%s:\d:\r&\r:g

Then

s/\d/\=submatch(0)-1/

And now you need to join the lines.

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