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I'm working on writing a simple Prolog interpreter in Java.

How can I find the last character index of the first element either the head element or the tail element of a string in "List Syntax"?

List Syntax looks like:

(X)
(p a b)
(func (func2 a) (func3 X Y))
(equal eve (mother cain))

The head for each of those strings in order are:
Head: "X", Index: 1
Head: "p", Index: 1
Head: "func", Index: 4
Head: "equal", Index: 5

Basically, I need to match the string that immediately follows the first "(" and ends either with a space or a closing ")", whichever comes first. I need the character index of the last character of the head element.

How can I match and get this index in Java?


Brabster's solution is really close. However, consider the case of:
((b X) Y)

Where the head element is (b x). I attempted to fix it by removing "(" from the scanner delimiters but it still hiccups because of the space between "b" and "x".

Similarly: ((((b W) X) Y) Z)

Where the head is (((b w) x) Y).

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3 Answers 3

up vote 4 down vote accepted

Java's Scanner class (introduced in Java 1.5) might be a good place to start.

Here's an example that I think does what you want (updated to include char counting capability)

public class Test {

    public static void main(String[] args) {

    	String[] data = new String[] {
    			"(X)",
    			"(p a b)",
    			"(func (func2 a) (func3 X Y))",
    			"(equal eve (mother cain))",
    			"((b X) Y)",
    			"((((b W) X) Y) Z)"
    	};


    	for (String line:data) {
    		int headIdx = 0;
    		if (line.charAt(1) == '(') {
    			headIdx = countBrackets(line);
    		} else {
    			String head = "";
    			Scanner s = new Scanner(line);
    			s.useDelimiter("[)|(| ]");
    			head = s.next();
    			headIdx = line.indexOf(head) + head.length() - 1;
    		}
    		System.out.println(headIdx);
    	}

    }

    private static int countBrackets(String line) {
    	int bracketCount = 0;
    	int charCount = 0;
    	for (int i = 1; i < line.length(); i++) {
    		char c = line.charAt(i);
    		if (c == '(') {
    			bracketCount++;
    		} else if (c == ')') {
    			bracketCount--;
    		}
    		if (bracketCount == 0) {
    			return charCount + 1;
    		}
    		charCount++;
    	}
    	throw new IllegalStateException("Brackets not nested properly");
    }
}

Output:

1
1
4
5
5
13

It's not a very elegant solution, but regexes can't count (i.e. brackets). I'd be thinking about using a parser generator if there's any more complexity in there :)

share|improve this answer
    
It might also be worthwhile looking at parser generators like ANTLR or JavaCC if you don't actually want to deal with the parsing yourself. –  Brabster Sep 17 '09 at 19:27
    
@Brabster, how yould you deal with the string: "((b X) Y)" where (b x) was the head of the list? –  Policho Sep 17 '09 at 19:43
    
@Brabster, I tried removing "(" from the list of delimeters but I still run into trouble because of the space inbetween b and x. –  Policho Sep 17 '09 at 19:45
    
Good question. I'll have a think, it's probably beyond the capabilities of the simple regex I have here... hmmm –  Brabster Sep 17 '09 at 19:53
    
I suppose you can keep on nesting, i.e. ((((b W) X) Y) Z)? –  Brabster Sep 17 '09 at 19:55

Is there a reason you can't just brute force it? Something like this?

public int firstIndex( String exp ) {
	int parenCount = 0;
	for (int i = 1; i < exp.length(); i++) {
		if (exp.charAt(i) == '(') {
			parenCount++;
		}
		else if (exp.charAt(i) == ')') {
			parenCount--;
		}
		if (parenCount == 0 && (exp.charAt(i+1) == ' ' || exp.charAt(i) == ')')) {
			return i;
		}
	}
}

I may be missing something here, but I think that would work.

share|improve this answer
    
I missed the extra comment from Brabster where he mentions doing basically exactly this. –  Morinar Sep 17 '09 at 22:17

I suggest you write a proper parser (operator precedence in the case of Prolog) and represent the terms as trees of Java objects for further processing.

share|improve this answer
    
I'm using this as a minimal, minimal example of one feature in prolog (unification), where I don't think a lexer/parser is warranted. –  Policho Sep 17 '09 at 19:27
    
Then I would build the object structures directly and don't bother with strings. –  starblue Sep 17 '09 at 20:15
    
@starblue, that is what I would probably do if I were doing this, build the object structures by hand. –  Simucal Sep 17 '09 at 21:54

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