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This is similar to Using sed to replace beginning of line when match found but a different question so hence this thread.

I wish to uncommented out commented out code. More specially, all cases where the variable myVar is commented out.

Example:

public class MyClass {
   ...
   ...
   //myVar.setAge(200);
   //myVar.setPlanet("mars");
}

to

public class MyClass {
   ...
   ...
   myVar.setAge(200);
   myVar.setPlanet("mars");
}

The regex:

^\\.*myVar.*$

Gets me everything I need.

The tricky part is getting the correct Sed. I try:

sed 's/(^\\)(.*myVar.*$)/\2/g' Build_DM_Digests_Batch.cls

On the following basis. Create two match groups. The first one is the commented out lines. And the second is the rest of line. Replace the entire line with just the second mateched group.

This gives error:

sed: -e expression #1, char 29: Unmatched ) or \)

Any tips?

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2 Answers 2

up vote 2 down vote accepted

Use sed 's/^\( *\)\/\/\(.*myVar.*$\)/\1\2/' file

$ cat hw.java 
class hw {
    public static void main(String[] args) {
        System.out.println("Hello World!"); 
//        myVar=1
        //myVar.setAge(200);
        //myVar.setPlanet("mars");
    }
}

$ sed 's/^\( *\)\/\/\(.*myVar.*$\)/\1\2/' hw.java
class hw {
    public static void main(String[] args) {
        System.out.println("Hello World!"); 
        myVar=1
        myVar.setAge(200);
        myVar.setPlanet("mars");
    }
}

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

Explanation:

^      # Matches the start of the line
\(     # Start first capture group  
 *     # Matches zero or more spaces
\)     # End first capture group
\/\/   # Matches two forward slashes (escaped)
\(     # Start second capture group 
.*     # Matches anything 
myVar  # Matches the literal word 
.*     # Matches anything
$      # Matches the end of the line
\)     # End second capture group 

Here we capture the whitespace upto the // and then everything after if myVar on the line and replace with \1\2.

Your logic is almost there but a couple of things, firstly escaped all brackets and secondly you want ^( *)\/\/ not ^\\ that is two escaped forwardslashes with the whitespace captured not two backslashes at the start of the line:

If you don't want to escape brackets you need to use the extended regexp flag of sed which is -r for GNU sed on OSX it's -E so check with sed --help.

sed -r 's/^( *)\/\/(.*myVar.*$)/\1\2/' file

Note: when you are matching the whole line (from ^ to $) the g flag is redundant.

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looking excellent. Can you tell me why we have to escape the brackets in sed but not grep? –  dublintech Jan 3 '13 at 11:34
    
// is not at the start of the line in the OP's example, so this will not work. –  dogbane Jan 3 '13 at 11:35
    
@dogbane fixed, @ dublintech see edit for info on brackets. –  iiSeymour Jan 3 '13 at 11:53
    
Use an alternate separator so you don't have to escape the slashes. Basically s%//%% –  tripleee Jan 3 '13 at 12:04

Another way:

sed 's!^\([ \t]*\)//\(.*\<myVar\>\)!\1\2!' input
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