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I have come across a problem that I cannot see to solve. I have extracted a line from a web page into a variable. lets say for argument sake this is:

rhyme = "three blind mice Version 6.0"

and I want to be able to first of all locate the version number within this string (6.0) and secondly extract this number into another seperate variable - (I want to specifically extract no more than "6.0")

I hope I have clarified this enough, if not please ask me anything you need to know and I will get back to you asap.

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1  
How do you want to locate the version number? Is it always the only number? Is it always after the word "Version"? Is it always at the end? What are the possible formats of the version number--is there always a decimal point? How many digits or groups of digits can there be? –  Mark Thomas Sep 20 '10 at 10:55

3 Answers 3

up vote 4 down vote accepted

First you need to decide what the pattern for a version number should be. One possibility would be \d+(\.\d+)*$ (a number followed by zero or more (dot followed by a number) at the end of the string).

Then you can use String#[] to get the substring that matches the pattern:

rhyme[ /\d+(\.\d+)*$/ ] #=> "6.0"
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Your regex misses the 6. It should be /(\d+\.\d+)/. –  Gerhard Sep 20 '10 at 10:44
    
@Gerhard: Nope. My regex works as is. If you run my code in irb, you'll see that it does indeed return "6.0" like I said. Also unlike your proposed regex, mine would also match "6" or "6.0.0". –  sepp2k Sep 20 '10 at 10:48
    
@Gerhard: To make it work with scan, you need to make the group non-capturing (and remove the anchor of course). Like this: "1.0 2.0.0 3".scan(/\d+(?:\.\d+)*/) #=> ["1.0", "2.0.0", "3"] –  sepp2k Sep 20 '10 at 10:52
    
@Gerhard: That being said, I anchored the regex specifically because I assumed that the OP would not want stray numbers appearing in the name to affect the result, so I wouldn't recommend using scan. I.e. I think for "Sepp2k's base 2 to base 16 converter Version 42" it should just return 42 and ignore the 2 and the 16. –  sepp2k Sep 20 '10 at 10:56
    
@sepp2K: I checked it in irb and rubular and it works. But what is the purpose of the brackets. Would /\d+\.\d+/ not be sufficient? –  Gerhard Sep 20 '10 at 11:16

You need to use regular expressions. I would use rhyme.scan(/(\d+\.\d+)/) since it can return an array if multiple matches occur. It can also take a block so that you can add range checks or other checks to ensure the right one is captured.

version = "0.0"
rhyme = "three blind mice Version 6.0"
rhyme.scan(/(\d+\.\d+)/){|x| version = x[0] if x[0].to_f < 99}
p version

If the input can be trusted to yield only one match or if you always are going to use the first match you can just use the solution in this answer.

Edit: So after our discussion just go with that answer.

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if rhyme =~ /(\d\.\d)/
    version = $1
end

The regexp matches a digit, followed by a period, followed by another digit. The parenthesis captures its contents. Since it is the first pair of parenthesis, it is mapped to $1.

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looks like Perl. –  Mark Thomas Sep 20 '10 at 10:58

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