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I'm trying to use grep to go through some logs and only select the most recent entries. The logs have years of heavy traffic on them so it's silly to do

    tac error.log | grep 2012
    tac error.log | grep "Jan.2012" 

etc.

and wait for 10 minutes while it goes through several million lines which I already know are not going to match. I know there is the -m option to stop at the first match but I don't know of a way to make it stop at first non-match. I could do something like grep -B MAX_INT -m 1 2011 but that's hardly an optimal solution.

Can grep handle this or would awk make more sense?

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If you're willing to be a little ad-hoc about it, you could try `tail -n N' to extract the N most recent lines before piping it through grep to eliminate any not from this year. –  russw_uk Jan 20 '12 at 11:29
1  
I'd use awk or (actually) perl - why not? –  reinierpost Jan 20 '12 at 11:29
3  
Why are you allowing your log files to grow so big? Sounds like you need to find out about log rotation. –  tripleee Jan 20 '12 at 11:50
    
Your first sentence doesn't match the rest of the post: If you really wanted just "the most recent entries," you wouldn't need to stop searching. And there really isn't any way to get grep or any other program to reliably skip the correct amount of lines without reading them or knowing how many bytes you need to skip. –  l0b0 Jan 20 '12 at 12:10
    
@l0b0 the point is that the first K lines all match a known pattern (a timestamp) and the remaining N-K do not. Obviously I have to parse the first K lines, it's the remaining N-K that I want to avoid dealing with. –  mmdanziger Jan 20 '12 at 12:29

4 Answers 4

up vote 2 down vote accepted

How about using awk like this:

tac error.log | awk '{if(/2012/)print;else exit}'

This should exit as soon as a line not matching 2012 is found.

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The question is: can it be done with grep. –  reinierpost Jan 20 '12 at 11:43

Here is a solution in python:

# foo.py
import sys, re
for line in sys.stdin:
    if re.match(r'2012', line):
        print line,
        continue
    break

you@host> tac foo.txt | python foo.py

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Useless Use of Cat. Just use python foo.py foo.txt. –  tripleee Jan 20 '12 at 13:08
2  
I think he meant tac foo.txt | python foo.py –  mmdanziger Jan 20 '12 at 13:33
    
I updated the snippet. Yes, I meant "tac". –  guettli Jan 20 '12 at 13:42
    
@triplee this (python foo.py foo.txt) does not work, since the snippets reads from stdin. –  guettli Jan 20 '12 at 13:43
    
Then the proper way to avoid a Useless Cat is python foo.py <foo.txt ... But as noted the script requires a tac so it's not pertinent here. –  tripleee Jan 20 '12 at 15:18

I don't think grep supports this.

But here is my "why did we have awk again" answer:

tail -n `tac biglogfile | grep -vnm1 2012 | sed 's/:.*//' | xargs expr -1 +` biglogfile

Note that this isn't going to be exact if your log is being written to.

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Could you explain the sed and xargs part? I understand the rest of it. Also, I don't think that the wording of the question implies that any solution must include grep, just that that's where I'm starting from. –  mmdanziger Jan 20 '12 at 13:55
    
Just try it out piecewise to see what the parts are for ... but OK: grep -n prints the line number with the matching lines, sed leaves just the line number, xargs expr decreases it by 1. –  reinierpost Feb 12 '12 at 13:13

The excellent one-line scripts for sed page to the rescue:

# print section of file between two regular expressions (inclusive)
sed -n '/Iowa/,/Montana/p'             # case sensitive

In other words, you should be able to do the following:

sed -n '/Jan 01 2012/,/Feb 01 2012/p' error.log | grep whatevs
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Great link, but won't that still go through the whole file? –  mmdanziger Jan 20 '12 at 12:33
    
Yes, but depending on how long and how precise you can make the regex, it can be very fast. –  l0b0 Jan 20 '12 at 12:43
    
It's hardly going to be faster than the same search with grep. –  tripleee Jan 20 '12 at 13:08
    
@tripleee: It's obviously only going to be faster if there is data after the first Feb 01 2012 line, but that's the assumption based on the original question. –  l0b0 Jan 20 '12 at 15:21

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