I have a prepared statement in java that i am adding an argument to the front of. Long story short, I have to take a ton of set methods and increment their first argument by 1.
I'd like a quick way to do a search and replace matching all numbers, and then increment them by one.
Figured it out.
%s/\d\+/\=(submatch(0)+1)/g
http://vim.wikia.com/wiki/Using_an_expression_in_substitute_command
\=submatch(0)+1 should do the trick.
May 2, 2012 at 20:16
\= substitutions really kick ass... That's what I love vim for: You get all those general, and simple to use tools, and can freely combine them to great effect. Unix principle at its best :-)
May 15, 2019 at 12:28
%s/int i = \(\d\+\);/\='int i = '.(submatch(1)+1).';'/g
The only regex you need to know is \d.
:g/\d/exe "normal! \<C-A>"
g modifier for :s). Also, you need to escape your +
May 2, 2012 at 20:21
:%s/\d\+/\=(submatch(0)+1)/g. If you only want a single line, remove the % or if you want a specific range of lines, change it to the range you want. For example, for lines 5-10 it would be :5,10s/\d\+/\=(submatch(0)+1)/g.
I mis-interpreted the question as to be asking how to increments a number by one on each line, i.e.
var1
var1
var1
to be
var1
var2
var3
So I thought I'd post an answer for that. The link @user606723 provided shows that you can do that with (say between lines 1 and 3):
:let counter=0|1,3g//let counter=counter+1|s/^/\=counter."\t"
