20

I want to parse all my logs of nginx (you can see here):

ls /var/log/nginx/
access.log    access.log.21.gz  error.log.1      error.log.22.gz
access.log.1      access.log.22.gz  error.log.10.gz  error.log.23.gz
access.log.10.gz  access.log.23.gz  error.log.11.gz  error.log.24.gz
access.log.11.gz  access.log.24.gz  error.log.12.gz  error.log.2.gz
access.log.12.gz  access.log.2.gz   error.log.13.gz  error.log.3.gz
access.log.13.gz  access.log.3.gz   error.log.14.gz  error.log.4.gz
access.log.14.gz  access.log.4.gz   error.log.15.gz  error.log.5.gz
access.log.15.gz  access.log.5.gz   error.log.16.gz  error.log.6.gz
access.log.16.gz  access.log.6.gz   error.log.17.gz  error.log.7.gz
access.log.17.gz  access.log.7.gz   error.log.18.gz  error.log.8.gz
access.log.18.gz  access.log.8.gz   error.log.19.gz  error.log.9.gz
access.log.19.gz  access.log.9.gz   error.log.20.gz
access.log.20.gz  error.log     error.log.21.gz

but I don't know how to do that. First of all, it seems like goaccess can't parse .gz files.

What's the best way of parse all the information contained in these logs?

43
0

Quoting the man page and assuming you have a Combined Log Format:

If we would like to process all access.log.*.gz we can do one of the following:

# zcat -f access.log* | goaccess --log-format=COMBINED

OR

# zcat access.log.*.gz | goaccess --log-format=COMBINED

On Mac OS X, use gunzip -c instead of zcat.

| improve this answer | |
  • 4
    zcat -f access.log* | goaccess is enough – somenxavier Sep 1 '16 at 18:52

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.