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I am trying to implement a service using JSX-RS and I have a situation here where in multiple types of requests with varying version numbers should be catered to by a single method.

@Path("/url1/url2{version: [[/v][0-9][.][0-9]]*}")

this should cater to -

/url1/url2
/url1/url2/v1
/url1/url2/v1.2

where versions would be 0, 1 and 1.2 respectively.

I have the correct regular expression but the code doesn't seem to accept it ((/v[0-9])(.[0-9])?)? I am confused here.

I need to restrict it to only one digit after v and after the decimal point(.) and I need only one occurance of /v*. For example -

/ur1/url2/v1v1 not allowed

Also I would like to know perfomrance wise, if I have a url with decimal points, is it going to cost me more time to parse it. Do I have to url encode it ? any other suggestions would is appreciated.

The alternative approach is for every version, I have a seperate method with @path param. which is finally the best solution ?

Any suggestion or ideas are greatly welcome !!!

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I have tried this too - /url1/url2{version: [/v{0,1}\\d{0,1}.{0,1}\\d{0,1}]* it works but I can't restrict the v to 1 and the numbers to a count of 1 again.... and if I remove the * it will not work without the version param.. the version param is optional here... – user884949 Jan 11 '13 at 22:43

Ok, this is the way I do it:

First, the v is optional, since you must accept the pattern like /url1/url2. So, I would start with:

(/v)?

The ? means zero or one time.

Now, if you put a /v then you must have a version digit after it (i.e. /v1), but that is only if you put the /v first, right?

Somewhat like: (/v\d)?

There is no need to specify a quantifier for the digit \d because by default is one. And the whole group can appear zero or one time thanks to the ? quantifier.

Now, if you put a version digit, then you can optionally put a second version digit separated by a dot (i.e. /v1.1). But this is only valid if you use a version number first, and this group is optional. And if it appears it should only appear once, so we can use the quantifier ? again for this group.

So, somewhat like this:

(/v\d(\.\d)?)?

Notice that I used a \. to signify that we expect a "dot" here. This is so, because . is a predefined regex character class that represents any character, so you must escape it to signify that you expect a ".".

So, this works for me for all the test scenarios you provided.

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Thanks Edwin.. I had tried a similar one with but somehow my javax.ws.rs.Path doesn't seem to accept that... it gives the compilation error - Invalid escape sequence (valid ones are \b \t \n \f \r \" \' \\ ) – user884949 Jan 14 '13 at 1:44
1  
That is correct, because Java interprets the \ as an escape character. You must use \\ instead (i.e. \\d instead of just \d). – Edwin Dalorzo Jan 15 '13 at 15:03

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