35

My server is having unusually high CPU usage, and I can see Apache is using way too much memory. I have a feeling, I'm being DOS'd by a single IP - maybe you can help me find him?

I've used the following line, to find the 10 most "active" IPs:

cat access.log | awk '{print $1}' |sort  |uniq -c |sort -n |tail

The top 5 IPs have about 200 times as many requests to the server, as the "average" user. However, I can't find out if these 5 are just very frequent visitors, or they are attacking the servers.

Is there are way, to specify the above search to a time interval, eg. the last two hours OR between 10-12 today?

Cheers!

UPDATED 23 OCT 2011 - The commands I needed:

Get entries within last X hours [Here two hours]

awk -vDate=`date -d'now-2 hours' +[%d/%b/%Y:%H:%M:%S` ' { if ($4 > Date) print Date FS $4}' access.log

Get most active IPs within the last X hours [Here two hours]

awk -vDate=`date -d'now-2 hours' +[%d/%b/%Y:%H:%M:%S` ' { if ($4 > Date) print $1}' access.log | sort  |uniq -c |sort -n | tail

Get entries within relative timespan

awk -vDate=`date -d'now-4 hours' +[%d/%b/%Y:%H:%M:%S` -vDate2=`date -d'now-2 hours' +[%d/%b/%Y:%H:%M:%S` ' { if ($4 > Date && $4 < Date2) print Date FS Date2 FS $4}' access.log

Get entries within absolute timespan

awk -vDate=`date -d '13:20' +[%d/%b/%Y:%H:%M:%S` -vDate2=`date -d'13:30' +[%d/%b/%Y:%H:%M:%S` ' { if ($4 > Date && $4 < Date2) print $0}' access.log 

Get most active IPs within absolute timespan

awk -vDate=`date -d '13:20' +[%d/%b/%Y:%H:%M:%S` -vDate2=`date -d'13:30' +[%d/%b/%Y:%H:%M:%S` ' { if ($4 > Date && $4 < Date2) print $1}' access.log | sort  |uniq -c |sort -n | tail
  • 1
    I'm lazy; I'd copy the log into Excel and create a pivot table... – Ben Oct 9 '11 at 20:09
  • 1
    @Ben "Now you have two problems." – tripleee Jan 24 '17 at 17:19
38

yes, there are multiple ways to do this. Here is how I would go about this. For starters, no need to pipe the output of cat, just open the log file with awk.

awk -vDate=`date -d'now-2 hours' +[%d/%b/%Y:%H:%M:%S` '$4 > Date {print Date, $0}' access_log

assuming your log looks like mine (they're configurable) than the date is stored in field 4. and is bracketed. What I am doing above is finding everything within the last 2 hours. Note the -d'now-2 hours' or translated literally now minus 2 hours which for me looks something like this: [10/Oct/2011:08:55:23

So what I am doing is storing the formatted value of two hours ago and comparing against field four. The conditional expression should be straight forward.I am then printing the Date, followed by the Output Field Separator (OFS -- or space in this case) followed by the whole line $0. You could use your previous expression and just print $1 (the ip addresses)

awk -vDate=`date -d'now-2 hours' +[%d/%b/%Y:%H:%M:%S` '$4 > Date {print $1}' | sort  |uniq -c |sort -n | tail

If you wanted to use a range specify two date variables and construct your expression appropriately.

so if you wanted do find something between 2-4hrs ago your expression might looks something like this

awk -vDate=`date -d'now-4 hours' +[%d/%b/%Y:%H:%M:%S` -vDate2=`date -d'now-2 hours' +[%d/%b/%Y:%H:%M:%S` '$4 > Date && $4 < Date2 {print Date, Date2, $4} access_log'

Here is a question I answered regarding dates in bash you might find helpful. Print date for the monday of the current week (in bash)

  • 1
    Thanks man! Great examples with good explanations. I've elaborated your code for my specific needs, and added it to the original question for future reference for myself and others in need. – sqren Oct 23 '11 at 19:54
  • i'm glad it could be of help. – matchew Oct 24 '11 at 16:36
  • One last thing. How do I search through multiple log files? I am trying with find and xargs but still no luck: find -name 'access.log' | awk -vDate=date -d '13:20' +[%d/%b/%Y:%H:%M:%S -vDate2=date -d'13:40' +[%d/%b/%Y:%H:%M:%S ' { if ($4 > Date && $4 < Date2) print $1}' xargs | sort |uniq -c |sort -n | tail – sqren Oct 25 '11 at 12:55
  • 1
    Is awk somehow smart enough to guess that you're comparing dates ? Because I'd say it's just comparing strings, and since dates don't sort the same as strings (in the default nginx format you're using)... well I did some quick tests and I get less results for past month than past day, so it does seem kind of broken – Antoine Jan 30 '18 at 16:23
  • 3
    @matchew Sorry to resurect this, but I'm pretty sure my point does not depend on the version of awk, and indeed nginx in 2018 seems to be using the same date format as apache in 2011. The question is how to deal with the fact that [01/Feb/20XX < [02/Feb/20XX < [31/Jan/20XX ? – Antoine Feb 8 '18 at 18:57
2

As this is a common task

And because this is not exactly same than extract last 10 minutes from logfile where it's about a bunch of time upto the end of logfile.

And because I've needed them, I (quickly) wrote this:

#!/usr/bin/perl -ws
# This script parse logfiles for a specific period of time

sub usage {
    printf "Usage: %s -s=<start time> [-e=<end time>] <logfile>\n";
    die $_[0] if $_[0];
    exit 0;
}

use Date::Parse;

usage "No start time submited" unless $s;
my $startim=str2time($s) or die;

my $endtim=str2time($e) if $e;
$endtim=time() unless $e;

usage "Logfile not submited" unless $ARGV[0];
open my $in, "<" . $ARGV[0] or usage "Can't open '$ARGV[0]' for reading";
$_=<$in>;
exit unless $_; # empty file
# Determining regular expression, depending on log format
my $logre=qr{^(\S{3}\s+\d{1,2}\s+(\d{2}:){2}\d+)};
$logre=qr{^[^\[]*\[(\d+/\S+/(\d+:){3}\d+\s\+\d+)\]} unless /$logre/;

while (<$in>) {
    /$logre/ && do {
        my $ltim=str2time($1);
        print if $endtim >= $ltim && $ltim >= $startim;
    };
};

This could be used like:

./timelapsinlog.pl -s=09:18 -e=09:24 /path/to/logfile

for printing logs between 09h18 and 09h24.

./timelapsinlog.pl -s='2017/01/23 09:18:12' /path/to/logfile

for printing from january 23th, 9h18'12" upto now.

In order to reduce perl code, I've used -s switch to permit auto-assignement of variables from commandline: -s=09:18 will populate a variable $s wich will contain 09:18. Care to not miss the equal sign = and no spaces!

Nota: This hold two diffent kind of regex for two different log standard. If you require different date/time format parsing, either post your own regex or post a sample of formatted date from your logfile

^(\S{3}\s+\d{1,2}\s+(\d{2}:){2}\d+)         # ^Jan  1 01:23:45
^[^\[]*\[(\d+/\S+/(\d+:){3}\d+\s\+\d+)\]    # ^... [01/Jan/2017:01:23:45 +0000]
  • Very nice reply, I added this to a loop, and I can easily investigate what happened on a server. – aseques Feb 10 '17 at 12:18
2

If someone encounters with the awk: invalid -v option, here's a script to get the most active IPs in a predefined time range:

cat <FILE_NAME> | awk '$4 >= "[04/Jul/2017:07:00:00" && $4 < "[04/Jul/2017:08:00:00"' | awk '{print $1}' | sort -n | uniq -c | sort -nr | head -20
  • 1
    The cat is (still) useless. – tripleee Sep 3 '18 at 15:52
  • Again this may fail if the dates are in different months (eg, "May">"Jun"). See my comment above for a way to convert from the string to the number. Briefly, monthnum=match("JanFebMarAprMayJunJulAugSepOctNovDec",monthstr)+2)/3 – Patrick May 24 at 0:20

protected by codeforester Oct 17 '18 at 22:24

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