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How can I extract two fields from a given file "named.conf"? I want the fields 'zone' and 'file'.

zone "example.com" IN {
        type master;
        file "db.example.com";
        allow-query { any; };
        allow-update { none; };
        allow-transfer { 10.101.100.2; };
};
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(1) What do you want the output to look like? (2) Your title specifies "regex". Is that required? (3) What have you tried? –  ruakh Feb 21 '12 at 20:43
2  
p3rl.org/BIND::Conf_Parser p3rl.org/BIND::Config::Parser p3rl.org/Net::DNS::ZoneFile::Fast is what I found after searching for named.conf on CPAN. –  daxim Feb 21 '12 at 20:44
    
@Daxim - that should be an answer :) –  DVK Feb 21 '12 at 20:52
    
This is great but i thought if possible i can make it in bash rather then download and install perl module etc.. –  Satish Feb 21 '12 at 20:55
    
Net::DNS::ZoneFile::Fast is not a module that'll work, FYI. It's for parsing zone files not named.conf files. [I know; I'm the current maintainer of it :-) ] –  Wes Hardaker Feb 21 '12 at 21:02

2 Answers 2

up vote 3 down vote accepted

This might work for you:

sed '/^\s*\(zone\|file\) "\([^"]*\)".*/,//!d;//!d;s//\2/' named.conf
example.com
db.example.com
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Could you please explain how this regex working? what is s//\2/ means? –  Satish Mar 21 '13 at 14:08

Try this quick & dirty (GNU) AWK program (save it as zone-file.awk):

/^zone/, /^}/ {
    if (NF == 4) {
        zone = $2
        next
    }

    if (NF == 2 && $1 == "file") {
        sub(";$", "", $2)
        print zone, $2
    }
}

It works for me as follows:

$ awk -f zone-file.awk /etc/named.conf
"." "named.ca"
"localhost" "localhost.zone"
[...]
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1  
I would simplify that a bit: awk '$1 == "zone" || $1 == "file" {print $2}' –  glenn jackman Feb 22 '12 at 1:06

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