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I need to find if a String starts with "abcd" followed by 1-5 digits, then a comma, then ends with 0-3 digits.

    Pattern pattern = Pattern.compile("abcd[0-9]{1,5},[0-9]{0,3}$");

    String[] data = { "pqrsabcd12345,5", "abcd1234,5", "abcd1234542155,",
            "abcdSD12345,555", "abcd123,555", "abcd12,5555",
            "abcd,5555ffdfd", "abcd2,5555ffdfd", "abcd2,5" };
    for (CharSequence input : data) {
        Matcher matcher = pattern.matcher(input);
        while (matcher.find()) {
            System.out.format("\nI found the text  %s :"
                    + " \"%s\" starting at "
                    + "index %d and ending at index %d.%n", input,
                    matcher.group(), matcher.start(), matcher.end());
        }
    }

The output :

I found the text  pqrsabcd12345,5 : "abcd12345,5" starting at index 4 and ending at index 15.

I found the text  abcd1234,5 : "abcd1234,5" starting at index 0 and ending at index 10.

I found the text  abcd123,555 : "abcd123,555" starting at index 0 and ending at index 11.

I found the text  abcd2,5 : "abcd2,5" starting at index 0 and ending at index 7.

Using this, I could ensure the ends with part. I think I am left with stopping Strings like "pqrsabcd12345,5"

Please let me know if I have missed something.

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What problems are you having with your current regex again? –  Hovercraft Full Of Eels Dec 23 '12 at 16:10
    
Really can't understand your issue. What's the problem you are facing? –  Rohit Jain Dec 23 '12 at 16:11
    
I don't want "pqrsabcd12345,5" in the output as it does not start with "abcd" –  lab bhattacharjee Dec 23 '12 at 16:13
1  
If the string must start with "abcd" then you need to put the ^ symbol at the start of the pattern, so "^abcd[0-9]{1,5},[0-9]{0,3}$" and so on. –  Arkanon Dec 23 '12 at 16:13
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1 Answer

up vote 4 down vote accepted

You just need a little modification to your regex: -

"^abcd[0-9]{1,5},[0-9]{0,3}$"

You forgot to use Caret - ^ to ensure that the pattern is matched at the start of your string.

Alternatively, you can also use Matcher#matches() instead of Matcher#find() method, if you want your pattern to match at the ends. That way you won't need to use anchors.

So, the difference between matches() and find() can be easily shown with your string that is not satisfying your requirement: -

// pattern is the reference you are having
pattern.matcher("pqrsabcd12345,5").find(); // Will return true
pattern.matcher("pqrsabcd12345,5").matches(); // Will return false
share|improve this answer
    
but we can not avoid the last '$' right? –  lab bhattacharjee Dec 23 '12 at 16:25
    
@labbhattacharjee.. With matches() you need none of them. Both the anchors are implicit with it. –  Rohit Jain Dec 23 '12 at 16:26
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