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How to validate an expression for a single dot character? For example if I have an expression "trjb....fsf..ib.bi." then it should return only dots at index 15 and 18. If I use Pattern p=Pattern.compile("(\\.)+"); I get

4 ....
11 ..
15 .
18 .
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4 Answers

up vote 2 down vote accepted

This seems to do the trick:

String input = "trjb....fsf..ib.bi.";
Pattern pattern = Pattern.compile("[^\\.]\\.([^\\.]|$)");
Matcher matcher = pattern.matcher(" " + input);
while (matcher.find()) {
    System.out.println(matcher.start());
}

The extra space in front of the input does two things:

  1. Allows for a . to be detected as the first character of the input string
  2. Offsets the matcher.start() by one to account for the character in front of the matched .

Result is:

15
18
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Thanks WhiteFang.It worked –  raj May 11 '11 at 9:55
    
No problem. Consider accepting the answer since it worked :) –  WhiteFang34 May 11 '11 at 10:02
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add a blank at the beginning and at the end of the string and then use the pattern

"[^\\.]\\.[^\\.]"
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And add a space at the end too... :) –  El Ronnoco May 11 '11 at 9:49
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you need to use negative lookarounds .

Something like Pattern.compile("(?<!\\.)\\.(?!\\.)");

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Amal,Could u pl explain the pattern.I don get the use of <! –  raj May 11 '11 at 10:24
    
the expression matches for a '.' character not preceded by a '.' and not followed by a '.'. Refer http://www.regular-expressions.info/lookaround.html –  amal May 11 '11 at 11:09
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Try

Pattern.compile("(?<=[^\\.])\\.(?=[^\\.])")

or even better...

Pattern.compile("(?<![\\.])\\.(?![\\.])")

This uses negative lookaround.

(?<![\\.]) => not preceeded by a .

\\. => a .

(?![\\.]) => not followed by a .

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