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On a Unix server the log file has appended since long and now it size is 42 gb.

I have to check all logs for after the first occurrence of a particular date i.e: Nov 12 , 2018.

I need all logs for the date Nov 12, 2018. What is the best possible way to do it?

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  • Do you want the only the first occurance of the date, all lines with data, or all lines with the date and the lines after this ? – Walter A Nov 16 '18 at 21:54
  • All logs for this date – Ankit Jindal Nov 17 '18 at 1:21
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Assuming you are looking for Nov 12 , 2018 text in the log file you can use sed to print everything after Nov 12 , 2018 is matched:

sed -ne '/Nov 12 , 2018/,$ p' <path to log file>

If the date is always at the beginning of the line you can use grep with regex to filter out specific lines:

grep -e "^Nov 12 , 2018" <path to log file>
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  • i need all logs for the date Nov 12 ,2018 please suggest – Ankit Jindal Nov 16 '18 at 11:23
  • The date might be Nov 12, 2018 depending on where the spaces are – Peter Lawrey Nov 16 '18 at 12:12
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    Start of line is ^, so grep -e "^Nov 12 , 2018" <path to log file> – Walter A Nov 16 '18 at 21:29
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    @WalterA fixed, thank you. – Karol Dowbecki Nov 16 '18 at 21:30
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If you only need the logs for that specific date just do:

grep "Nov 12, 2018" file.log
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  • It works for .out file as well ? – Ankit Jindal Nov 16 '18 at 13:06
  • If it's a text file, yes. – Edson Medina Nov 16 '18 at 13:11
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you can do:

grep -e "$Nov 12 , 2018" yourlogfile.txt > filteredlog.txt

make sure you match the date and year correctly.

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  • You seem to have confused the start of line anchor (^) with the end of line anchor ($). And since you put that in double-quotes, the shell will try to expand the variable Nov, which is probably undefined. That will give you an empty string instead. – Cupcake Protocol Nov 16 '18 at 23:08

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