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Okay so I can't figure this out. Like a file that I using grep in order to get certain information has it set-up like this.

#aaaa
<numbers 123456>

blah
blah
blah

#bbbb
<numbers 2156488>

blah
blah
blah

#cccc
<numbers 5478624>

blah
blah
blah

What I am doing is I am greping for aaaa or bbbb or cccc and the information that i really need is the numbers. As in when i grep for aaaa the thing i want to obtain is really just the numbers right below it. In this case it would 123456

I know how to grep for aaaa but i don't know how to go to the next line and cut the number.

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6 Answers 6

up vote 4 down vote accepted

You can use the -C option of grep to show one line of context. Then you can tail on the last line (-n 1), cut using spaces and selecting the second field, cut again using > and selecting the first field. Thus:

$ grep aaaa file -C 1 | tail -n 1 | cut -f2 -d' ' | cut -d'>' -f1
123456

will give back the number you're requesting.

The most important part is the -C option of grep

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That is a GNU grep extension. Since this is tagged Linux, it is fair, but it won't work everywhere. –  Jonathan Leffler Jul 20 '12 at 15:15
6  
You can also use the -A 1 option for 1 line after the match instead of before and after. –  Lars Kotthoff Jul 20 '12 at 15:15
    
Yes, but the tail is still needed since the match line will still be shown. Thus, no update on the command lenght. As for the fact that this is a GNU extension, I recognize that I didn't know about it. Since I don't know other greps I'll keep the answer and delete it if the asker tells that this is not what he needs :) –  Mihai Maruseac Jul 20 '12 at 15:20
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Using sed:

sed -n '/aaaa/{
N
s/[^0-9]*\([0-9]*\).*/\1/p
}' input_file
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It looks more like a job for sed to me:

sed -n '/^#[a-z]\{4\}/{ N; s/#.*\n<numbers //; s/>//p; }'

The -n says don't print by default. The /^#[a-z]\{4\}/ looks for lines like #aaaa; the actions inside { ... } apply only to such lines. The N means 'read the next line'; the first s/// removes the material before the number; the second removes the trailing > and prints.

There are other options on how to do the 'delete irrelevant material', such as just one substitute command: s/[^0-9]*\([0-9][0-9]+\).*/\1/; this captures the first string of digits and removes everything else. It will handle more variations in the input than the more constrained regular expressions originally shown.

Output from sample data:

123456
2156488
5478624

This isn't automatically a job for sed; change it so that the interesting information was the third line after the match and it would be getting fiddly in sed (though N;N;N; probably does what's wanted).

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Could this also be accomplished with awk or is sed a quicker/cleaner way? –  FrankComputerAtYmailDotCom Jul 21 '12 at 2:35
    
It can be done with awk using the getline function to read the next line when you find the marker line. –  Jonathan Leffler Jul 21 '12 at 3:07
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@ Lars Kotthoff

Your suggestion to use the -A 1 option worked perfectly!

The answer using your input is this:

grep "aaaa" file -A 1 | grep "<numbers" | cut -d" " -f2 | cut -d">" -f1

I would love to give you the credit for this one!

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Thanks, but it was all there in the other answer already :) –  Lars Kotthoff Jul 20 '12 at 15:27
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If you are not insisting on grep
+0 to get rid of ">"

awk 'f{print $2+0; exit} /^#aaaa/{f=1}' foo.txt

Or

awk 'f{print $2+0; f=0} /^#aaaa/{f=1}' foo.txt
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Try this one:

for i in "aaaa bbbb"
do
sed -n '/'"$i"'/,+1 p' test |tail -n1|cut -d' ' -f2| sed 's/.$//'
done

Its not very efficient but does the job fine.

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