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I am working in a bash shell and I am trying to print only the line of the first occurrence of the string. For example, for the string 'auir', if I have the file myfile.txt and it contains:

123
asdf
4wirajw
forauir somethingelse
starcraft
mylifeforauir
auir
something else
tf.rzauir

I want to output "forauir somethingelse"

So far, I use the command

sed -n '/auir/p' myfile.txt

which gives me all the occurrences of this string. How can I only get the first line that 'auir' occurs on? It'd be great if it was just a single command or pipeline of commands.

Any insight is greatly appreciated.

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starcraft as example. awesome. –  M.P. Apr 25 '13 at 15:11
    
Surely you will be looking for "Aiur"? –  Pankrates Feb 20 at 17:47

5 Answers 5

up vote 4 down vote accepted

This sed command

sed -n '/auir/p' myfile.txt | head -1

solves your problem.

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6  
You might as well use a sed script which quits after printing the first occurrence; like sed '/auir/!d;q' –  tripleee May 20 '12 at 19:08
    
Thanks so much for the quick response! Works! :) –  tf.rz May 20 '12 at 19:13
    
@tripleee Oh that's imaginative, I'm new to shell stuff, gonna try that out. Thanks! –  tf.rz May 20 '12 at 19:14
    
@tripleee's answer is much more clever than mine :( –  beerbajay May 20 '12 at 19:21

Use this:

grep -m1 auir myfile.txt
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Yeup, grep is alright, beerbjay beat you to it by 2 minutes though, gotta give him the points. Always nice to know multiple ways to do the same thing though. thanks for the response! –  tf.rz May 20 '12 at 19:15
1  
The redirection isn't necessary. –  Dennis Williamson May 20 '12 at 20:17

This might work for you:

sed '/auir/!d;q' file

or

sed -n '/auir/{p;q}' file
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Or it can be as simple as this

grep auir myFile.txt|head -1
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sed -n -e '4s/auir/auir/p' file

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