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I have created a regex to match phone numbers in US format, it reads like

Pattern.compile("\\(?(\\d{3})\\)?-?\\s?(\\d{3})-(\\d{4})"), it does its job, but also matches itself with unwanted strings for e.g it returns 231-823-1255 for 103-3231823-1255288 when it actually shouldn't, where Am I going wrong?

And yes I am writing a Java code...

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Please post regexes not strings, so skip the double backslashes. You’re just confusing yourself. Too complicated. Your pattern is actually \(?(\d{3}\)?-?\s?(\d{3})-(\d{4}), which does not make a lot of sense. Why the literal backslash? That not a legal Java pattern because Java does not support conditional patterns. –  tchrist Mar 18 '12 at 19:08
    
Is this homework? –  tchrist Mar 18 '12 at 19:11
    
I am doing regexes for the first time, the way you comment makes me feel like you invented them, if I am wrong then it is because I am learning it for the first time, and when I learn something then I cannot do wrong forever. BTW every question asked on Stackoverflow is not homework –  Arif Nadeem Mar 18 '12 at 19:18

3 Answers 3

up vote 2 down vote accepted

You can use $ to tie the regex to the end of the string. See http://docs.oracle.com/javase/tutorial/essential/regex/bounds.html.

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$ after (\\d{4}) ??? –  Arif Nadeem Mar 18 '12 at 18:56

Please make a list of what you would like to accept for sure. This would help you get what you really want. You may want to check the phone number start and termination with a whitespace, but its really up to you what to accept and what not.

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And if you don't need to dig-out the phone number from a big String, you can use ^ for start and $ for end-marker. Also, this could be valuable, I guess: link –  user1270627 Mar 18 '12 at 19:03
\\b after the digits did the job... 

i.e. setting a boundary for our string

eg (\\b\\d{4}\\b), thank you Oli Charlesworth...

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That will fail on Unicode, BTW, because Java’s \b is broken prior to Java 7. –  tchrist Mar 18 '12 at 19:10

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