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Suppose, I need to match parentheses containing whitespace.

Here is a snippet:

String input = "( ) ( ) ( )";
Pattern pattern = Pattern.compile("\\(\\s\\)");

Scanner scanner = new Scanner(input);
scanner.useDelimiter("\\n");
Matcher matcher = pattern.matcher(input);

System.out.println(scanner.hasNext(pattern)); // false
System.out.println(matcher.find()); // true
System.out.println(matcher.start(0) + " " + matcher.end(0)); // 0 3

Matcher does exactly what I need, but Scanner doesn't.

The question was not asked correctly. My purpose was to grab sequentially all ( ) tokens in string with scanner, because matcher seems to have inconvenient API for such task. I should have read documentation thoroughly.

The method what I need is:

scanner.findInLine(pattern);
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1  
possible duplicate of Java, regular expression catching string with white-space –  guerda Mar 6 '13 at 15:22
    
Minor note: if you want to use new line as delimiter don't use \\n but \n or even better result of System.getProperty("line.separator"). –  Pshemo Mar 6 '13 at 15:30
    
The body doesn't seem to clearly support the title. What is the question exactly? –  Czar Pino Mar 6 '13 at 15:38
    
@czarpino, for some reason I was sure, that this behavior is related to whitespace. That's why it has such title. –  dmiandre Mar 6 '13 at 16:16
    
@Pshemo Thanks for your remark! –  dmiandre Mar 6 '13 at 16:19

3 Answers 3

up vote 1 down vote accepted

Checking the javadoc from Scanner.hasNext(Pattern):

Returns true if the next complete token matches the specified pattern...

So, since your pattern doesn't match the whole token "( ) ( ) ( )" it will return false.

The Scanner however has a function called findInLine that can do what you want:

scanner.findInLine(pattern); // returns "( )" or null if not found

(however, this method can skip characters...)

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"however, this method can skip characters" - what do you mean? –  dmiandre Mar 6 '13 at 16:11
    
If you have a line "hello ( ) world ( ) ( )" the first call with will find the first "( )" effectively skipping "hello" the second call will find the second (skipping "world") and the third call will find the third. The forth call will return null. –  dacwe Mar 6 '13 at 16:42
    
And that's exactly what I need, thank you! –  dmiandre Mar 11 '13 at 15:46

When you use "\\n" as delimiter (and hence override the default value which is a whitespace) the whole input "( ) ( ) ( )" becomes a token.

As the hasNext tries to match the complete token with the pattern it returns false.

From the documentation the method Scanner.hasNext(Pattern pattern)

Returns true if the next complete token matches the specified pattern.

So in your case the method call is actually trying to match "( ) ( ) ( )" with a "( )".

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        String input = "( ) ( ) ( )";
        Pattern pattern = Pattern.compile("\\(\\s\\)");

        Scanner scanner = new Scanner(input);
        scanner.useDelimiter(pattern);  //**CHANGED**
        Matcher matcher = pattern.matcher(input);

        System.out.println(scanner.hasNext()); //**CHANGED**
        System.out.println(matcher.find());
        System.out.println(matcher.start(0) + " " + matcher.end(0)); // 0 3

Update your code as above.

You misunderstood useDelimiter(). You have to set Pattern as delimiter to your Scanner object.

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1  
I need to grab ( ) not to split by it. In your case scanner.next() doesn't return ( ). –  dmiandre Mar 6 '13 at 15:52

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