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I wanted to print the name from the entire address by shell scripting. So user1@12.12.23.234 should give output "user1" and similarly 11234@12.123.12.23 should give output 11234

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3 Answers 3

Reading from the terminal:

$ IFS=@ read user host && echo "$user"
<user1@12.12.23.234>
user1

Reading from a variable:

$ address='user1@12.12.23.234'
$ cut -d@ -f1 <<< "$address"
user1
$ sed 's/@.*//' <<< "$address"
user1
$ awk -F@ '{print $1}' <<< "$address"
user1
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Your first solution is very interesting! It's a very creative way to process the input quickly while reading from the standard input! +1 –  Janito Vaqueiro Ferreira Filho Oct 10 '12 at 21:31

Using bash in place editing:

EMAIL='user@server.com'
echo "${EMAIL%@*}

This is a Bash built-in, so it might not be very portable (it won't run with sh if it's not linked to /bin/bash for example), but it is probably faster since it doesn't fork a process to handle the editing.

Using sed:

echo "$EMAIL" | sed -e 's/@.*//'

This tells sed to replace the @ character and as many characters that it can find after it up to the end of line with nothing, ie. removing everything after the @.

This option is probably better if you have multiple emails stored in a file, then you can do something like

sed -e 's/@.*//' emails.txt > users.txt

Hope this helps =)

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+1 I missed the best solution. Doh! –  John Kugelman Oct 10 '12 at 21:37

I tend to use expr for this kind of thing:

address='user1@12.12.23.234'
expr "$address" : '\([^@]*\)'

This is a use of expr for its pattern matching and extraction abilities. Translated, the above says: Please print out the longest prefix of $address that doesn't contain an @.

The expr tool is covered by Posix, so this should be pretty portable.

As a note, some historical versions of expr will interpret an argument with a leading - as an option. If you care about guarding against that, you can add an extra letter to the beginning of the string, and just avoid matching it, like so:

expr "x$address" : 'x\([^@]*\)'
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