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Can any body give me some regular expression patterns which will extract the version numbers(1.5) from some sample strings like

    "jdk1.5","jdk-v1.5","jdk-V1.5","jdk V1.5","jdkv1.5","jdk version1.5","1.5.6","v1.5","V1.5","version 1.5","Version 1.5","14.5.4","1.5.4","14.5.4""jdj14.5"

I want to store the regex patterns in a string array and will check these patterns with the above strings. If there is a match with any of the stored patterns, then the output should be the version number 1.5. I want to extract the version numbers (1.5) only from the above strings.

valid string formats : "jdk1.5","jdk-v1.5","jdk-V1.5","jdk V1.3","jdkv1.4","jdk version1.5","1.5.6","v1.5","V1.5","version 1.5","Version 1.5","14.5.4","1.5.4","14.5.4""jdj14.5","14.52.3.42"

Invalid String formats : "jdk1..2","jdk.1.2.",".1.2."

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-1 for what amounts to a "Give me teh codez" question. what have you tried? –  zzzzBov Aug 24 '12 at 14:10

7 Answers 7

up vote 0 down vote accepted

Requirements

If you can formulize what you want as:

  1. Anything in format 1.5 or 1.5.6 or 1.5.6.7 or 1.5.6.7.8 etc. is valid version number by default (numbers can be one or more digits like 12.60.70).
  2. A version number 1.5 can be followed by a dot (.) only if it is in the format 1.5.6.
  3. A version number 1.5 never preceded by a dot (.) like .1.5.

Solution

Then, I can suggest you this regex:

(?!\.)(\d+(\.\d+)+)(?![\d\.])

See it in action, includes all positive samples and excludes all negative samples you provided.

How to use

First capture group will be your version number. Sample code:

Pattern pattern    = Pattern.compile("(?!\\.)(\\d+(\\.\\d+)+)(?![\\d\\.])");
Matcher matcher    = pattern.matcher(inputStr);
boolean matchFound = matcher.find();

if (matchFound)
{
    String version = matcher.group(1);
    System.out.println("Version number: " + version);
}
else
{
    System.out.println("No match for the input!");
}

Note: This will work only with Java 7+, because look-aheads doesn't supported by older versions.

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It isn't matching 1.5.6 in the link you've shown –  xeek Aug 24 '12 at 11:12
    
Hi thanks for ur help... But still i want to match also 1.6.2 or any version numbers with periods... for example 1.2.5 or 1.2.5.6 –  Srinivas B Aug 24 '12 at 11:26
    
OK, I changed my answer according to your last comments. See if it works. –  mmdemirbas Aug 24 '12 at 12:31
    
Thanks... But the problem is it was matching the string 1.25.655. (see here there is a dot at the end). It was returning 1.25.65. But it is incorrect version number :( And can u explain me how to do write this in java. I want that matched version number as output. –  Srinivas B Aug 24 '12 at 13:25
    
Thanks for counter-examples, I fixed my answer properly and explained with sample code. Please, give me feedback about the results. –  mmdemirbas Aug 24 '12 at 14:15

Try with:

^(jdk[- ]?)?([vV](ersion)? ?)?\d\.\d(\.\d)?$

You can ommit [vV] with v if you set CASE_INSENSITIVE flag.

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Try this regular expression:

(?<=([\w\s]))(\d)\.(\d)(.\d)?

This will match all your valid formats , and not match any invalid format.

See it working here : http://regexr.com?31ubc

I would be grateful if someone can assist me in making it better, and also on how to make it match 1.5.6

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@hsz yes, I have already mentioned that in answer and asked for suggestions. –  DhruvPathak Aug 24 '12 at 11:01
    
Sorry, didn't noticed :) However you should use ^ and $ to be sure that whole string is tested. If done, your regex does not works :-( –  hsz Aug 24 '12 at 11:04
    
Hi i can have not only three precisions. but more than that like 1.2.3.4 or 14.5.6 is also valid. –  Srinivas B Aug 24 '12 at 11:46

(?<![\d.])(\d+[.])+(\d+)(?![\d.])

Check this...

It will match the string of the form

number.number.number.number

not followed or preceded by a dot

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For Strings like 1.5.6 you can just use: [0-9](.[0-9])+ http://regexr.com?31ubo

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Use the regex:

(^([jJ][dD][kK])([\s]*[vV]*\d+.\d+(.\d+)*))$

This would make your day :)

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If you want to catch more than two numbers like "1.5.6" or "1.5.0" you can use

[0-9](.[0-9])+

Or if you only want the first two digits [0-9].[0-9] , but this will not work on strings like 1.5.0.0, it will catch 1.5 and 0.0.

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But it should take more than two precisions also. –  Srinivas B Aug 24 '12 at 11:48
    
The first regex also works for 1.5.6.6.7 or anything like (one digit Number).(oneDigitNumber)... –  Hugo Aug 24 '12 at 12:39

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