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Can someone tell me how to validate sequence of numbers with one space and at the end there will be a optional special character say '#' and again followed by some 5 digits.

Example:

12345 6587#2584

I have tried with

(0(?:\d{0,11}|(?=\d* \d*$)[\d ]{0,12}))

but I don't know how to add optional '#' in the end followed by digits.

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2 Answers 2

up vote 1 down vote accepted

This should do the trick

/^\d+\s\d+(?:#\d+)?$/

See it on rubular

^      beginning of string
\d+    one or more numbers
\s     any whitespace character
\d+    one or more numbers
(?:    begin non-capturing group
  #    literal '#' character
  \d+  one or more numbers
)      end non-capturing group
$      end of string

EDIT

/^0[\d\s]{,11}(?:#\d{,5}?$/

Matches a string starting with 0, followed by a max of 11 numbers or spaces. Followed by an optional # with a max of 5 numbers after it.

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@macek-Thanks for the above.the above Regex(Mentioned in Question) will accept maximum of 12 numbers with one space(undefined spaces)(Ex:1236 5458). but i just want to add an extra optional character followed by the above one(Ex:1236 5458#1236) so it should validate true for both .How to do that? –  user1863261 Dec 5 '12 at 7:53
    
@macek-Its not exactly 12 char as mentioned above. it can accept maximum of 12 characters apart from the optional character (#) and followed by the 0-5 digits. –  user1863261 Dec 5 '12 at 9:35
    
Per your comment, I made another edit –  maček Dec 5 '12 at 10:38
    
@macek- thanks a lot. all i am trying to do is :Maximum 12 characters,Will allow a space( only one space at a non-defined point), Must start with 0,Followed by an optional extension number of up to five digits in length, not including the # sign –  user1863261 Dec 5 '12 at 11:01
    
@macek-Thanks a lot for all your valuable comment.In the above comment i have mentioned my whole needs,can you please help me out to achieve it? –  user1863261 Dec 5 '12 at 11:21

This question isn't very clear, but macek's suggestion does in fact answer your question about how to add the optional tag of '#' followed by some number of digits at the end, so you should try that. (Specifically, (?:#\d+)?$ is the relevant portion of the regex; (?:#\d{0,5})?$ will ensure that between 0 and 5 digits are present.)

However, your regex for ensuring that there are exactly 1 space and at most 12 digits before the optional '#' is incorrect. The lookahead, as written, is meaningless, because \d{0,11} will match the 0-width string at the beginning of any string (since this is equivalent to 0 digits). What you need is something like /^(?:[\d\s]{1,13}$)\d*\s\d*$/. This will check to make sure that the right number of characters is present and that they are all either digits or spaces, then it will check that there is only one space in the string. There's a bit of redundancy here, but that shouldn't be a problem. Also, note that I'm using \s instead of a space character for clarity, but note that this will match tabs and other whitespace, which may not be what you want. The digit count of {1,13} assumes that it is legal for the string to consist of a single space with no digits at all, but the empty string is illegal; adjust the values in the brackets if this is not the correct assumption.

Finally, to combine the above regex for ensuring the proper space-and-digit count with the regex for the optional tag, you'll need to change the lookahead so that it can match # as well as $: it should be /^(?:[\d\s]{1,13}(#|$))\d*\s\d*(#\d{0,5})?$/.

(Please note that I haven't actually tested the above regex, so I'm not 100% sure that the (#|$) in the middle will work with all implementations. If it doesn't, it can be replaced with a redundant (#\d{0,5})?.)

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