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I am wondering if there is a specific regular expression I can write to retrieve any information that follows 'Log1:' at the beginning of the line. This is what I have tried so far:

^Log1: ([\w|\s]*)$

but this only works if there are words and spaces, I want it to be able to retrieve anything that follows.. except the new line character or characters that are not really used in writing.

Log1: important stuff here
Log1: it can have (), [ ].

Any help appreciated.

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Note that the "normal" meta characters loose their special powers inside character classes. So [\w|\s] matches a single character, one of: [a-zA-Z0-9_], '|' or \s (white space char) – Bart Kiers May 24 '11 at 19:41

3 Answers 3

up vote 7 down vote accepted
^Log1: (.*)$

The . matches any character.

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any character... except \r and \n. – Bart Kiers May 24 '11 at 19:39
@Bart Kiers: Not necessarily... only in multiline matching mode. I don't know if it's available in Ruby, but even so the question is about matching a single line. – Ryan O'Hara May 24 '11 at 19:44
AFAIK, most regex implementations will not let . match \r and \n unless you specifically tell it to match them through certain options/flags ((?m) for Ruby and (?s) for most other languages). Does Ruby enable (?m) by default? – Bart Kiers May 24 '11 at 19:51
@Bart No, Ruby does not enable multi-line mode by default. Your clarifying comment was correct; @minitech's answer is inexact. – Phrogz May 24 '11 at 22:29

You could try something like this:

s.split(/^Log1: */)[1]

This will return nil if there is no leading Log1 and the rest of the line, otherwise. If the line has terminating characters you don't want:

s.split(/^Log1: */)[1].chomp
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Do you want to read all lines in your log file, or are there some that don't start with Log1:? If the former, I'd just do line[7..-1].

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