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edited

Here's the whole program. I wrapped the char in a Character wrapper to use .equals() and fixed the index issue, and replaced the constants with literals. The program compiles and runs fine, tells you if the symbols are matched, but still skips that "else" statement when there is an unmatched symbol:

import java.io.File;
import java.io.FileNotFoundException;
import java.util.Scanner;
import java.util.Stack;


public class Exercise22_11 {

/**
 * 
 */
public static void main(String[] args) {

        /**for command line argument*/

        if(args.length == 0) {
            System.out.println("You didn't enter an argument dummy!");
            System.exit(0);
        }


        String fileString = "";

        /**Open the file and read it*/

        try{    
            File myOutFile = new File(args[0]);
            Scanner input = new Scanner(myOutFile);
            while (input.hasNext()){
        fileString += input.next();
            }

        }//try

        catch (FileNotFoundException e){
      System.out.println("Sorry that file is not found " + e);
        }//catch

        /**Build the list of characters from file*/

        char[] charArray = new char[fileString.length()];

        for (int i = 0; i < fileString.length(); i++) {
            charArray[i] = fileString.charAt(i);
        }//for building charArray

        /**Create a stack to manipulate grouping symbols*/

        Stack<Character> stack = new Stack<Character>();

        /**Pushes grouping symbols into stack and pops them when they correspond*/

        for (int i = 0; i < charArray.length; i++) {
            Character temp = new Character(charArray[i]);

            if (temp.equals('{') || temp.equals('(') || temp.equals('[')) {
                stack.push(temp);
            }   else if (temp.equals('}') || temp.equals(')') || temp.equals(']')) {
                if (temp.equals('}') && stack.peek().equals('{')){
                    stack.pop();
                }   else if (temp.equals(')') && stack.peek().equals('(')) {
                    stack.pop();
                }   else if (temp.equals(']') && stack.peek().equals('[')) {
                    stack.pop();
                }   else {
                    System.out.println("There is a mistake at index: " + i);
                    System.out.println("\nHere's the code (the error is in the middle):\n");
                    for(int j = i - 20; j <= i + 20; j++) {
                        System.out.print(charArray[j]);
                    }
                    System.out.println("\n");
                }
            }

        }//for

        /**Inform user of result*/

        if (stack.isEmpty()) {
            System.out.println("Congratulations!  Your grouping symbols are matched!");
        }
        else {
            System.out.println("I'm sorry.  Please fix your program.");
        }



}//main



}//class

The final "else" statement is skipped at run time when there is an error.

The assignment was to write a program using a list or collection that checks if the grouping symbols in a program are overlapped. The file should be entered as a command line argument.

Here's what I asked the professor (no answer yet):

  1. Why can't I create a scanner to read every character from the .txt(or .java) file? I tried using a delimiter of "" (no space) to avoid the RIDICULOUS String to Char[] to manipulation with the stack().

  2. What's with the friggin' "else" statement?

Thanks!

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migrated from programmers.stackexchange.com May 3 '13 at 7:37

This question came from our site for professional programmers interested in conceptual questions about software development.

12  
The ONE, TWO etc. constants are only confusing things. Statement temp == SIX && stack.peek().equals(FIVE) makes absolutely no sense. temp == ']' && stack.peek().equals('[') would be much easier to read. If you named the constants logically, i.e. OPEN_SQUARE_BRACKET and CLOSE_SQUARE_BRACKET, it would be readable, but not any more than literals and literals are shorter. –  Jan Hudec May 3 '13 at 5:46
1  
Didn't you want to print the index, i.e. i? –  Jan Hudec May 3 '13 at 5:47
1  
Why are you sometimes using == and sometimes Object.equals? –  Jan Hudec May 3 '13 at 5:49
    
@JanHudec: Honestly, I was pressed for time and concentrating very hard on figuring out the solution to the problem. I needed some distance from the literals to work it out (if that makes sense) and typing the apostrophes was getting annoying. This was a short one-off - I would change everything to literals when finished. –  MayNotBe May 3 '13 at 6:19
2  
I have one suggestion. @MayNotBe, can you post complete, runnable, code into ideone (you have to switch language to Java, default is C++) and post the link? Than there will be no confusion over what it actually does and the error will hopefully be obvious. –  Jan Hudec May 3 '13 at 7:37

2 Answers 2

System.out.println("There is a mistake at index: " + charArray[i]); //why doesn't this work!

Because there is no mistake at this index.

share|improve this answer
    
Yeah, except there was ;) –  MayNotBe May 3 '13 at 6:23

If this print statement is for debugging, then it shouldn't be placed inside an else. You want your mistake to go inside one of the else-ifs to be fixed (or popped), and then print where the mistake was found. Get rid of that else statement. Make it

}   else if (temp == SIX && stack.peek().equals(FIVE)) {
                    stack.pop();
                }   
    System.out.println("There is a mistake at index: " + charArray[i]); //it will work now
share|improve this answer
1  
It writes the error message for all elements even there is no mistake. –  blank May 3 '13 at 6:00
    
How would an else be executed if an else-if (on the same level) is already executed? –  Gannicus May 3 '13 at 6:07
1  
System.out.println("There is a mistake at index: " + charArray[i]); is not in an else statement in your answer. It will be executed after statements. –  blank May 3 '13 at 6:08
1  
I agree with @blank. You took the "else" away so now it prints every time temp == TWO, FOUR or SIX, regardless. Well ... at least it would print. Still can't figure out why it's not. –  MayNotBe May 3 '13 at 6:27

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