I need to replace ;\s*\<do\> with \rdo in Vim. However, I also need to make sure ;\s*\<do\> does not get replaced if there is a Fortran comment symbol ! before it, i.e., in the search patter !.*;\s*\<do\>. For example, ; do in the uncommented line

j=2; do i=1, 10

should be replaced as

j=2
do i=1,10

But ; do in the following commented part should not be replaced,

 k=3 ! j=2; do i=1, 10 

How can I do this in vim ? I tried \(!.*\)\@!;\s*\<do\> and it does not work.

  • 1
    Can you post an example input file and the expected output? – Fredrik Pihl Sep 3 '17 at 21:16
  • I don't think you should ask this question here, superuser may be a better place – Sinapse Sep 3 '17 at 21:19
  • 1
    There is also vi.stackexchange.com but vi(m) questions have always been accepted on SO... – Fredrik Pihl Sep 3 '17 at 21:21
  • The question has been updated with an example. – Kevin Powell Sep 3 '17 at 22:05
up vote 3 down vote accepted

I edited this answer based on your example:

Try using :g!/<pattern1>/s/<pattern2>/<replacement>/g:

:g!/!.*/s/\v;\s*do/\rdo/g

This does the replacement of pattern2 with replacement only on lines that don't contain pattern1.

Original answer:

The following pattern should do what you requested: /[^*]\{0,1\}\zs;\\s\*\\<do\\>. You can use it to replace it with whatever you want, e.g. %s/<pattern>/\rdo/g.

  • note the leading / is the search command, not part of the actual regex. – avivr Sep 3 '17 at 21:32
  • This does not work. Maybe I do not phrase my question properly. By !.*;\s*\<do\>, I mean a search pattern. See the updated question. – Kevin Powell Sep 3 '17 at 21:53
  • sorry, before you added an example it seemed like you were trying to replace literal search patterns. – avivr Sep 3 '17 at 22:17
  • Awesome, it works! Thanks a lot! – Kevin Powell Sep 3 '17 at 22:40
  • 1
    Finally I figured out an alternative way to do the match, \c\(!.*\)\@<!;\s*\<do\> – Kevin Powell Sep 3 '17 at 23:53
:v/!/ s/; /\r/g

:v  .......... global negation (all lines without pattern)
/!/ .......... all lines not containing !
s ............ substitution
; ............ semicolon space
\r ........... Carriage return "Enter"

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