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I have a string of the form

s = "something prefix1 value1 prefix2 value2 prefix1 value3 prefix2 value4"

I want to extract the values (value1, value2 etc.) using a regular expression. There can be any number of value/prefix pairs. There are only two prefixes. The values may have spaces.

I've tried things like

/((prefix1|prefix2)(.*))+/

This doesn't work as the first .* match matches the rest of the string.

I'm working in ruby.

Thanks in advance.

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4 Answers 4

It sounds to me like you want to use a split function:

tokens = s.split(/\s+/)

This will give you a list of tokens that were separated by white space.

Check out this section in the ruby cookbook.

UPDATED: If you absolutely must match them using a single regex expression, this should work for you:

/((\w+)\s+(.*?))+/
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I've simplified things a little to create a specific question. This is part of a set of regexes in a case statement. There may be a completely different approach to take but for now assume that a regex is required. Also, the values may contain white space. –  mattfitzgerald Oct 6 '12 at 7:36
    
@mattfitzgerald Answer updated with additional regex only solution. –  Benj Oct 6 '12 at 7:42
    
Apologies if my question was not clear. I specifically want to extract the strings that are preceded by "prefix1" or "prefix2" –  mattfitzgerald Oct 7 '12 at 4:13

Try /((prefix1|prefix2)(.*?))+/

The question mark makes it non-greedy.

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String#split can split on a regex:

s = "something prefix1 value1 prefix2 value2 prefix1 value3 prefix2 value4"
p s.split(/ prefix1 | prefix2 /) # ["something", "value1", "value2", "value3", "value4"]
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what's he expected result? if you simply want to extract values without prefixes try this:

str = "something prefix1 value1 prefix2 value2 prefix1 value3 prefix2 value4"

p str.split.reject { |s| s =~ /prefix/ }

#=> ["something", "value1", "value2", "value3", "value4"]
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I've simplified my requirement in order to post a specific question. Another way to put it would be; what sort of regex will match one or more instances of a phrase from which I want to extract a variable? This sort of thing is usually solved by marking a match group as not greedy. This works for expressions like (regex1)(regex2). You just do (regex1?)(regex2). The issue here is there is only one regex, it's just being used many times. i.e (regex)+ –  mattfitzgerald Oct 6 '12 at 9:38

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