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I'm having issues getting the correct syntax for my java regex below. I would just like to search a String to see if it contains a chunk of text that starts with three single quotes and ends with three single quotes but that can have other text in front and in back of it. Anything UTF-8 character can exist between the three single quotes. Any ideas where I've gone wrong?

          String value="'''<html><head><title>Hello World</title></head><body><div>text</div></body></html>'''";
          Pattern p = Pattern.compile("'''[\\w*]'''");
          Matcher m = p.matcher(value);
          if(m.find()){
              System.out.println("''' found");
          }else{
              System.out.println("''' not found");
          }
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4 Answers 4

up vote 3 down vote accepted

Any ideas where I've gone wrong?

There are 2 things wrong with your regular expression:

  1. You are trying to place the * quantifier within the character class while it should be placed outside.
  2. You are trying to use the word character (\w) predefined character class for matching characters such as <,>,/ while it will only match [a-zA-Z_0-9]. If you want to match any character use the . (any character)

Changing the regular expression to Pattern p = Pattern.compile("'''.*'''"); should make the code provided in your question to work.

Patterns suggested in other answers will also provide a solution.

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Use:

Pattern p = Pattern.compile(".*'{3}.*'{3}$");

.* denotes any character multiple times (optional)

'{3} denotes 3 single quotes

.* denotes any character multiple times (optional)

'{3} denotes 3 single quotes

$ denotes end of String

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The leading ^ is not needed. In the example the string starts with three quotes, but this is not stated in the question: "contains three single quotes and ends with three single quotes" –  rmuller Sep 12 '13 at 8:47
    
@rmuller so technically the first 3 single quotes would be optional, since the string would need to contain three single quotes at the end –  Kevin Bowersox Sep 12 '13 at 8:48
    
@KevinBowersox - the string could have other text before and after the three single quotes. –  c12 Sep 12 '13 at 8:52
    
@c12 Bust must the String contain a total of 6 single quotes, 3 somewhere in the string and three at the end? Or could three single quotes at the end satisfy your criteria? –  Kevin Bowersox Sep 12 '13 at 8:55
    
@KevinBowersox - correct it must contain 3 somewhere and 3 to end it. so this is a better example String test="this is my string of '''<html>.....</html>''' some end text here"; The String could also start with ''' and end with ''' and not have any other text. So I guess a regex that searches for three ' with text in between then three more ' –  c12 Sep 12 '13 at 8:57

Try with this regex :

Pattern p = Pattern.compile("'{3}.*'{3}$");
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I suspect that you want to capture the String data between the single quotes. In that case, you are using the wrong parentheses (you use [] instead of ()). Furthermore, I guess you want to use a \w* to allow all possible content. However, \w stands for "word characters", which ususally only covers [A-Za-z0-9_], meaning that it does not cover your html characters.

To clarify: a shorthand character class such as \w should not appear inside of the [] brackets. \w* is the same as [A-Za-z0-9_]*, which also demonstrates that your asterisk quantifier (*) comes after the character class, not inside of it.

A usable form of your regex would then be Pattern.compile("'''(\\w*)'''");. However, that does not cover html characters such as <.

Try to use Pattern.compile("'''(.*)'''");, as the . stands for "all characters".

By using the parentheses (in this case, these form a capture group), you can access the string matched by this group using m.group(1) after your call to m.find().

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