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I want to escape dots from an IP address in Unix shell scripts (bash or ksh) so that I can match the exact address in a grep command.

echo $ip_addr | sed "s/\./\\\./g"

works (outputs 1\.2\.3\.4), but

ip_addr_escaped=`echo $ip_addr | sed "s/\./\\\./g"`
echo $ip_addr_escaped

Doesn't (outputs 1.2.3.4)

How can I correctly escape the address?

Edit: It looks like

ip_addr_escaped=`echo $ip_addr | sed "s/\./\\\\\\\./g"`

works, but that's clearly awful!

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3 Answers 3

up vote 2 down vote accepted

bash parameter expansion supports pattern substitution, which will look (slightly) cleaner and doesn't require a call to sed:

echo ${ip_addr//./\\.}
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Thanks. Doesn't work in ksh, though. –  Tim Bellis Feb 26 '13 at 13:38
    
It does for me. Also, you never mentioned ksh. –  chepner Feb 26 '13 at 13:51
    
Sorry - you're right. I must have tested it wrongly. (I did mention ksh - but not in the question title) –  Tim Bellis Feb 26 '13 at 15:17

Yeah, processing of backslashes is one of the strange quoting-related behaviors of backticks `...`. Rather than fighting with it, it's better to just use $(...), which the same except that its quoting rules are smarter and more intuitive. So:

ip_addr_escaped=$(echo $ip_addr | sed "s/\./\\\./g")
echo $ip_addr_escaped

But if the above is really your exact code — you have a parameter named ip_addr, and you want to replace . with \. — then you can use Bash's built-in ${parameter/pattern/string} notation:

ip_addr_escaped=${ip_addr//./\\.}

Or rather:

grep "${ip_addr//./\\.}" [FILE...]
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You don't need to escape the ".", which doesn't have special meaning in a glob pattern. –  chepner Feb 21 '13 at 14:55
    
@chepner: *tests* You're right! That notation looks so much like Perl or sed to me, that I always forget that it just uses glob notation. My version does work (I tested it before posting), but yeah, I'll remove the extra backslashes. Thanks! –  ruakh Feb 21 '13 at 14:56

Replace the double quotes with single quotes.

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