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My text file has a few lines like this...

some data here Waiting on job_bba6b2a1589b4535a804e7877dc1fe11 ... (409s) Current status: DONE 
some data there Waiting on job_xyz ... (240s) Current status: DONE 

I need to find the job id. In the example mentioned above...

bba6b2a1589b4535a804e7877dc1fe11
xyz

I can use grep, but how to select only the ID?

cat file.log | grep 'Waiting on job_'

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3 Answers 3

up vote 2 down vote accepted

if this is what you need?

kent$  echo "some data here Waiting on job_bba6b2a1589b4535a804e7877dc1fe11 ... (409s)"|grep -oP "(?<=Waiting on job_)[^ ]*" 
bba6b2a1589b4535a804e7877dc1fe11
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+1 - for versions of grep that support PCRE such as GNU and OS X. –  Dennis Williamson Jun 11 '12 at 16:46
sed 's/.*Waiting on job_\([^ ]*\).*/\1/'

For each line containing Waiting on job_ followed by 0 or more non-space characters, this will substitute the whole line (because starting and ending .* are going to greedily take as many characters as possible) using back-reference \1 to recall everything that was matched between \( and \), i.e. the non space characters [^ ]* you are looking for.

So:

cat file.log | grep 'Waiting on job_' | sed 's/.*Waiting on job_\([^ ]*\).*/\1/'

or simpler:

grep 'Waiting on job_' file.log | sed 's/.*Waiting on job_\([^ ]*\).*/\1/'
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perl -lne 'print $1 if m/(?<=Waiting on job_)([^ ]*)/' inputfile
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