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Thanks in advance for the help.

Given a file, example:

potato: 1234
apple: 5678
potato: 5432
grape: 4567
banana: 5432
sushi: 56789

I'd like to grep for all lines that start with "potato:" but only pipe the numbers that follow "Potato". So in the above example, the output would be:

1234
5432

Thanks

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3 Answers 3

up vote 7 down vote accepted
grep 'potato:' file.txt | sed 's/^.*: //'

or

grep 'potato:' file.txt | cut -d\   -f2

or

grep 'potato:' file.txt | awk '{print $2}'

or

grep 'potato:' file.txt | perl -e 'for(<>){s/^.*: //;print}'

or

awk '{if(/potato:/) print $2}' < file.txt

or

perl -e 'for(<>){/potato:/ && s/^.*: // && print}' < file.txt
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Nice use of cut! (We've got the lightweights working, today. I owe you +1 after the 00:00 UTC refresh.) –  thb Apr 27 '12 at 22:38
    
No need for two processes and a pipe. I would go for awk '$1 ~ /potato/ { print $2 }' file.txt. –  musiphil Nov 11 '13 at 20:40

Or use regex assertions: grep -oP '(?<=potato: ).*' file.txt

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1  
+1 nice, didn't know about this! –  rid Apr 27 '12 at 23:06
    
I tried some one-liners from the accepted answer above, but I feel that this answer more accurately solves the question. –  Jake88 Oct 23 at 15:40
sed -n 's/^potato:[[:space:]]*//p' file.txt

One can think of Grep as a restricted Sed, or of Sed as a generalized Grep. In this case, Sed is one good, lightweight tool that does what you want -- though, of course, there exist several other reasonable ways to do it, too.

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+1 nice use of sed! –  rid Apr 27 '12 at 22:23

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