I have a text file looking like this:

ErrorLog "|/usr/local/apache2/bin/rotatelogs /var/log/apache/error_log.%Y-%m 200M"

ErrorLog "/var/log/apache2/error_log"

I need filter only the path with the word error_log. I need the output as:

/var/log/apache2/error_log.%Y-%m

Or

/var/log/apache2/error_log
up vote 0 down vote accepted

grep will do

$ grep -o '\S*error_log\S*' file

/var/log/apache/error_log.%Y-%m
"/var/log/apache2/error_log"

if you want to pull them up to the same line and get rid of the quotes pipe to

... | tr -d '"' | xargs

With grep:

grep -o '[^[:space:]]*\<error_log\>[^[:space:]]*' file
  • [^[:space:]]* - match non-whitespace character(s)
  • \< and \> - are word boundaries

Example output:

/var/log/apache/error_log.%Y-%m
"/var/log/apache2/error_log"
  • Your example output for the second line has quotes and the example in the OP doesn't have the quotes. Not sure if it matters to the OP but though I'd mention it. – user3439894 Dec 6 '17 at 16:29
  • @user3439894, comment added under the question – RomanPerekhrest Dec 6 '17 at 16:54

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