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The following is my code:

#!/bin/ksh -p
echo $NAME likes to drink:
grep $NAME ~/practice/database/likes
echo total number of beers $NAME likes to drink:
grep $NAME ~/practice/database/likes | wc -l

The following is my output:

dave likes to drink:
total number of beers dave likes to drink:

How do I just output "coors" and "bud"?

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What does this have to do with vi? – gpojd Mar 25 '13 at 20:17
because this script is in vi – Jeff Orris Mar 25 '13 at 20:43
It's in ksh from the looks of it. – Randy Howard Mar 25 '13 at 20:50
My fault, it is a kornshell script, I just thought vi script was the proper terminology because is being written in apologies Im very new to just a scholar – Jeff Orris Mar 25 '13 at 21:48

2 Answers 2

You can try something like this:

grep $NAME ~/practice/database/likes | awk -F, '{ print $2 }'


grep $NAME ~/practice/database/likes | cut -d , -f 2

man awk

man cut

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Thank you. the second statement was the original one I was looking for...I would vote you up but dont have 15 reputation yet...Just started UNIX and this account....Im just a scholar – Jeff Orris Mar 25 '13 at 21:50

If you use sed then you only need one program:

sed 's/'$NAME',//'  ~/practice/database/likes

or you could use awk, but don't use grep with it because awk is capable of regular expresions as well:

awk -F, '/'$NAME'/{ print $2 }' ~/practice/database/likes
share|improve this answer
I dont have 15 reputation yet so I cant vote you up. The second statement worked. The first one didn't work. Thanks for your help. – Jeff Orris Mar 25 '13 at 20:54
@JeffOrris: exactly what happened when you tried the first statement? – cdarke Mar 26 '13 at 7:40

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