26

I have a Java file. I want to comment any line of code that contains the match:

 myvar

I think sed should help me out here

 sed 's/myVar/not_sure_what_to_put_here/g' MyFile.java

I don't know what to put in:

not_sure_what_to_put_here

as in this case, I don't want to replace myVar but the I want to insert

//

to the beginning of any line myVar occurs on.

Any tips

2
  • 1
    so far both answers below will do the job for you. I would like to remind you that, you have to refine your pattern "myvar" to avoid unexpected replacement to happen. e.g. all lines containing "myVariable or myVarList or myVarMap or Object obj=new Object; //myVar in comment" will be commented out. – Kent Jan 3 '13 at 10:59
  • @Kent good point. It should be as tight as possible. – dublintech Jan 3 '13 at 11:01
46

Capture the whole line that contains myvar:

$ sed 's/\(^.*myvar.*$\)/\/\/\1/' file

$ cat hw.java
class hw {
    public static void main(String[] args) {
        System.out.println("Hello World!"); 
        myvar=1
    }
}

$ sed 's/\(^.*myvar.*$\)/\/\/\1/' hw.java
class hw {
    public static void main(String[] args) {
        System.out.println("Hello World!"); 
//        myvar=1
    }
}

Use the -i option to save the changes in the file sed -i 's/\(^.*myvar.*$\)/\/\/\1/' file.

Explanation:

(      # Start a capture group
^      # Matches the start of the line 
.*     # Matches anything 
myvar  # Matches the literal word 
.*     # Matches anything
$      # Matches the end of the line
)      # End capture group 

So this looks at the whole line and if myvar is found the results in stored in the first capture group, referred to a \1. So we replace the whole line \1 with the whole line preceded by 2 forward slashes //\1 of course the forwardslashes need escaping as not to confused sed so \/\/\1 also note that brackets need escaping unless you use the extended regex option of sed.

3
  • this is looking good. Q1 can you explain the logic of your answer? i.e. what do the /(^.* etc do? – dublintech Jan 3 '13 at 10:58
  • 2
    brilliant! I just wanted to understand and not just get the thing done. Great answer. – dublintech Jan 3 '13 at 11:06
  • In a separate regex, I want to detect the end of line and I am using sed -i "s/cb $i$/cb $i $cb/" */callback_events. But I am getting error of Variable name must contain alphanumeric characters.. Can you help me with that? – Karan Shah Dec 12 '16 at 10:02
3

Try:

sed -n '/myVar/{s|^|//|};p' MyFile.java

which means: when a line contains myVar, replace the beginning of the line with //.

3
  • I am on windwons, the | becomes ¦ and I get: '¦' is not recognized as an internal or external command, – dublintech Jan 3 '13 at 10:55
  • ok, then you'll have to use escaped slashes: sed -n '/myVar/{s/^/\/\//};p' MyFile.java – dogbane Jan 3 '13 at 10:57
  • Or put the script in a file if your (miserable wreck of an excuse for an) OS doesn't offer a way to quote a literal string. Maybe double quotes instead of single would work, though. – tripleee Jan 3 '13 at 11:04
2

I was researching the same topic and found this solution which is simpler in terms of the regex

sed -e '/myvar/ s/^/\/\//' file

This adds // to column 0 of the line with the matching pattern.

However, I was looking for a solution which will allow me to add a character before the first character of the line (not on column 0).

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