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I'm trying to write a shell script that does a search and replace inside a configuration file upon start-up.

The string we're trying to replace is:

include /etc/nginx/https.include;

and we want to replace it with a commented version:

#include /etc/nginx/https.include;

The file that contains the string that we want to replace is:

/etc/nginx/app-servers.include

I'm not a Linux guru and can't seem to find the command to do this.

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This is really more appropriate to serverfault.com, imho. –  Daniel C. Sobral Aug 13 '09 at 18:55
    
I don't see why it is appropriate for serverfault. It doesn't seem to have anything to do with servers. It belongs on superuser. Voting to close as such. –  rmeador Aug 13 '09 at 19:14
    
/bin/sh or bash or csh or any other shell are Turing complete languages. Why don't you think that "How to achieve X in language Y?" belongs on StackOverflow? –  dmckee Aug 14 '09 at 2:14

4 Answers 4

up vote 7 down vote accepted
perl -p -i -e 's%^(include /etc/nginx/https.include;)$%#$1%' /etc/nginx/ap-servers.include

If the line might not end in the ;, use instead:

perl -p -i -e 's%^(include /etc/nginx/https.include;.*)$%#$1%' /etc/nginx/ap-servers.include

If you want to preserve the original file, add a backup extension after -i:

perl -p -i.bak -e 's%^(include /etc/nginx/https.include;)$%#$1%' /etc/nginx/ap-servers.include

Now, explaining. The -p flag means replace in-place. All lines of the file will be fed to the expression, and the result will be used as replacement. The -i flag indicates the extension of the backup file. By using it without anything, you prevent generation of backups. The -e tells Perl to get the following parameter as an expression to be executed.

Now, the expression is s%something%other%. I use % instead of the more traditional / to avoid having to escape the slashes of the path. I use parenthesis in the expression and $1 in the substituted expression for safety -- if you change one, the other will follow. Thus, %#$1% is actually the second % of s, followed by the desired #, $1 indicating the pattern inside parenthesis, and the last % of s.

HTH. HAND.

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+1 for the solution and for using another better character for this case (%) instead of the more traditional / –  Stefano Borini Aug 13 '09 at 18:54

Check out sed.

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sed -i 's/foo/bar/g' config.txt

This replaces all instances of foo (case insensitive) with bar in the file config.txt

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cd pathname
for y in `ls *`;
do sed "s/ABCD/DCBA/g" $y > temp; mv temp $y;
done

This script shold replace string ABCD to DCBA in all the files in pathname

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