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I have a paatern like this.

func(a, "a");
func(b, "b");
func(abc, "abc");
...

I wish to replace them with

func(a);
func(b);
func(abc);
...

In vim, how can i do it?

share|improve this question
    
This is so basic (and variations of this have been asked here a quadrillion times) that you should have figured that out, e.g. by following one of the endless vi / Vim tutorials, or :h :substitute. –  Ingo Karkat Apr 30 at 7:18
    
@IngoKarkat I tried to figure it out and tried to change the regex expressions to comply with my need. But i am completely new to regex and was not able to do it succesfully. I still didnot understand the solution i accepted. I will take a look at them and understand. Apologies for asking a basic Q. –  mk.. Apr 30 at 7:21
    
Next time, please post your attempts; this allows to address your misunderstandings. Here's a set of nice screencasts around Vim's regular expressions: vimcasts.org/categories/regular-expressions –  Ingo Karkat Apr 30 at 7:28

3 Answers 3

up vote 1 down vote accepted

This should do it.

:%s/func(\([^,]*\),\s*"\1"/func(\1/g
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Hi, This is working well. But doesnt work if the func() is having three arguments. –  mk.. Apr 30 at 4:40
    
@Manty Can you add some examples to your post? –  R Sahu Apr 30 at 4:44
2  
When you post your question please post all use cases. Don't expect us to guess what kind of data you have. Complete question will result in complete answers. –  jaypal singh Apr 30 at 4:46
    
@JS웃 I agree. My mistake. Aplogies. –  mk.. Apr 30 at 4:46
    
@RSahu The problem is when string is having , not actually with 3 arguments. EX : fun(a, "abc,"); There are very few places like this in my code. So i can manually edit them. No issues. Thank you. I will accept the answer in a while. –  mk.. Apr 30 at 4:48

This might work but can't say for sure until we can see more of the input:

%s/\v(.*), .*(\);)/\1\2/

Try this subsitution:

:%s/, ".\{-}"//

Explanation:

% - Run on whole file

, " - Matches the comma to first quote literally

.\{-}" - Match zero or more characters, as few as possible till "

// - Replace the matched pattern with nothing.

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Working wel. Thank you. Please give me a while before i accept the answer. Also appreciate if you can explain in short. :) –  mk.. Apr 30 at 3:38
    
@Manty: You're welcome –  Amit Apr 30 at 3:40
    
Added some explanation, hope that helps. –  Amit Apr 30 at 3:47
    
This is not acceptable because, i have other lines in my huge source file where , " patterns are present. it replaces everywhere –  mk.. Apr 30 at 4:35
    
@Manty - It would be better if you show more of your file. –  Amit Apr 30 at 4:43

If you're wanting a mass edit of the lines, it can be done using regex. Follow these steps:

  1. Place cursor at top line.
  2. Shift-V to start a line visual selection.
  3. Move cursor to bottom line to select all lines you want to modify.
  4. Type ":" and you'll see ":'<,'>" appear at the bottom.
  5. Type "s/, ".*");/);/" and hit enter. The lines will change.

On #5, it's a regex search and replace. "s" denotes the operation, then the match pattern, then what to replace it with. All delimited by a / key in between them and one at the end.

If you want more info, you can find some here: http://vimregex.com/

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I have other lines in my huge source file where , " patterns are present. it is replacing everywhere –  mk.. Apr 30 at 4:42

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