29

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.

44

Figured it out.

%s/\d\+/\=(submatch(0)+1)/g

http://vim.wikia.com/wiki/Using_an_expression_in_substitute_command

  • 7
    yup. Shouldn't need the parens around the whole expression, though. \=submatch(0)+1 should do the trick. – Mark Reed May 2 '12 at 20:16
  • Wow, those \= 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 :-) – cmaster May 15 at 12:28
11

The only regex you need to know is \d.

:g/\d/exe "normal! \<C-A>"
  • How do you make this global (like the g modifier for :s). Also, you need to escape your + – user606723 May 2 '12 at 20:21
  • @user606723 :g is by definition global – Ben Hughes May 12 '13 at 23:50
  • This subtly answers the question even better because only the first number on the line is incremented (the first arg as mentioned in the question), whereas the accepted answer will increment all numbers everywhere. – Matthew May 24 '13 at 17:10
0

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"

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