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I need to implement the following:

"$prefs" within the string "something something $prefs(something something)" should be returned. $prefs consists of letters form a-zAz and digits from 0-9. The "$" is always there.

Finding the beginning of $prefs is no problem, but finding the end is trickier. As described above, $prefs could also be $prefssdf, followed be pretty much anything, like (, ,, &&, and what not.

Is there a way to do something like this:

while(string.elementAt(i) == [a-zA-Z0-9]){
    result += string.elementAt(i);
}

An example:

I have following string:

Select * from test where $prefs(select * from test2 where $prefs2);

I need to extract all occurrences of expressions with $ prefixed, so in this case it is $prefs and $prefs2. How do I do that most efficiently?

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1  
I'm sorry, but I just don't understand what you're asking. Can you be more specific and give examples? –  templatetypedef Feb 7 '12 at 22:21
    
Shouldn't you extract $prefs and $prefs2 in your example? –  talnicolas Feb 7 '12 at 22:33
    
You're right, fixed it, thanks! –  deimos1988 Feb 7 '12 at 22:41
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5 Answers

up vote 1 down vote accepted
  if(Character.isDigit(a) ||  (a  >=  'a' && a <= 'z' ) || ( a >= 'A' && a <= 'Z' )) {
         // a is [a-zA-Z0-9]
   }
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http://docs.oracle.com/javase/1.5.0/docs/api/java/lang/Character.html#isLetterOrDigit%28char%29

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This isn't a bad thought, but there are many, many things that isLetter considers letters than just a-zA-Z. –  Mark Peters Feb 7 '12 at 22:22
    
This looks very promising, thanks, i'll give it a try! –  deimos1988 Feb 7 '12 at 22:23
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Why don't use a regex?

String str = "something something $prefs(something something)";
Matcher matcher = Pattern.compile("\\$[a-zA-Z0-9]+").matcher(str);
if (matcher.find()) {
    System.out.println(str.substring(matcher.start(),matcher.end()));
} else {
    System.out.println("no match");
}

The regex is taking a $ sign, and all of letters/numbers following it.

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You might want to use \\w (a "word" character) instead of [a-zA-Z0-9], although it does include the underscore character as well (but I think that's a bonus for this use case). –  owlstead Feb 7 '12 at 23:00
    
Oh, and str.substring(matcher.start(),matcher.end() would be the same as matcher.group() of course. –  owlstead Feb 7 '12 at 23:02
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You could take a look at regular expressions (here) and find the parts after a $ that matches the allowed characters.

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This answer assumes that this is homework. Ordinarily I would just recommend using a full regex here.

So you've got the while loop figured out which is good. Start by extracting a method called "isKeywordCharacter":

while ( isKeywordCharacter(string.charAt(i)) ) {
   //...
}

Then the question is what is the best implementation of this method:

public boolean isKeywordCharacter(char character) {
    return //?
}

The most transparent and efficient might be something like this:

return (character >= 'a' && character <= 'z') || ...;

Whereas the most self-documenting might be something like this:

return String.valueOf(character).matches("[a-zA-Z0-9]");
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