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In grep, is there option to show output until line meets some regex? In example

foo.log:

request1: POST /foo
params
some payload

request1: tag
some payload

request2: POST /foo
params
some payload

I would like to grep foo.log to get all information about request1, like this:

request1: POST /foo
params
some payload

request1: tag
some payload

Is this possible (something like -A options) or I just need to use regexps??

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1  
In AIX I have sometimes seen grep -p that prints the whole paragraph of the matching line. – fedorqui Jul 19 '13 at 13:35
up vote 3 down vote accepted

try this line:

awk -v RS="" -v ORS="\n\n" '/request1/' foo.log
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WOW, thanks a lot! I just had a problem with cat foo.log | xargs awk -v RS="" -v ORS="\n\n" '/request1/' do you know why? – Sławosz Jul 19 '13 at 14:07
1  
No need to cat file | xargs awk, just awk file. That is, the command Kent posted is enough, will do all that is required. – fedorqui Jul 19 '13 at 14:15
1  
@fedorqui is right. Slawosz, just cp my line, and replace the filename with your file. – Kent Jul 19 '13 at 14:20
    
@Kent but what about ie. tail -100 etc? – Sławosz Jul 23 '13 at 12:18
    
I don't get what you were asking, @Sławosz. tail -100 for what? – Kent Jul 23 '13 at 12:44

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