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In this Java program the user is supposed to guess a number from 1 to 100, and then if you press S it shows you a summary of the tries. The problem is that I am taking the input string and converting it to a number so I can compare it to the range, but then I also need to be able to use that string as a menu input. UPDATE How can i make the program go back to the menu option after the user guesses correctly. So after the user wins, i would like for the problem to display the summary report which can be otherwise accessed by using S

Here is my code

public class GuessingGame {
  public static void main(String[] args) {


    // Display list of commands
                System.out.println("*************************");
                System.out.println("The Guessing Game-inator");
                System.out.println("*************************");  
                System.out.println("Your opponent has guessed a number!");
                System.out.println("Enter a NUMBER at the prompt to guess.");
                System.out.println("Enter [S] at the prompt to display the summary report.");
                System.out.println("Enter [Q] at the prompt to Quit.");
                System.out.print("> ");


    // Read and execute commands
    while (true) {

      // Prompt user to enter a command
      SimpleIO.prompt("Enter command (NUMBER, S, or Q): ");
      String command = SimpleIO.readLine().trim();

      // Determine whether command is "E", "S", "Q", or
      // illegal; execute command if legal.
      int tries = 0;
      int round = 0;
      int randomInt = 0;
      int number = Integer.parseInt(command);
      if (number >= 0 && number <= 100) {
        if(randomInt == number){

                System.out.println("Congratulations! You have guessed correctly." +
                                " Summary below");
                round++;
        }
        else if(randomInt < number)
        {
                System.out.println("your guess is TOO HIGH. Guess again or enter Q to Quit");
                tries++;
        }      
        else if(randomInt > number){
                System.out.println("your guess is TOO LOW. Guess again or enter Q to Quit");
                tries++;
        }

      } else if (command.equalsIgnoreCase("s")) {
         // System.out.println("Round        Guesses");
         // System.out.println("-------------------------");
        //  System.out.println(round + "" + tries);



      } else if (command.equalsIgnoreCase("q")) {
        // Command is "q". Terminate program.
        return;

      } else {
        // Command is illegal. Display error message.
        System.out.println("Command was not recognized; " +
                           "please enter only E, S, or q.");
      }

      System.out.println();
    }
  }
}
share|improve this question
1  
post your code here. –  Simulant Mar 23 '13 at 20:45
1  
What you said isn't a problem, it's a plan. Why aren't you able to both use it as an input in your menu and convert it to an integer to compare the range? –  Michael M. Mar 23 '13 at 20:47
    
The OP wants to know how to check if command is a number or not. typing S or Q will throw an NumberFormatException with the current code –  Alex Gittemeier Mar 23 '13 at 20:47

4 Answers 4

up vote 0 down vote accepted

You should check for the S/Q value first, then parse the string to an integer. If you catch NumberFormatException (thrown by Integer.parseInt()), you can determine if the input is a valid value. I would do something like that:

if ("s".equalsIgnoreCase(command)) {
    // Print summary
} else if ("q".equalsIgnoreCase(command)) {
    // Command is "q". Terminate program.
    return;
} else {
    try {
        Integer number = Integer.parseInt(command);
        if(number < 0 || number > 100){
            System.out.println("Please provide a value between 0 and 100");
        } else if(randomInt == number){
            System.out.println("Congratulations! You have guessed correctly." +
                        " Summary below");
            round++;
        } else if(randomInt < number) {
            System.out.println("your guess is TOO HIGH. Guess again or enter Q to Quit");
                 tries++;
        } else if(randomInt > number) {
            System.out.println("your guess is TOO LOW. Guess again or enter Q to Quit");
            tries++;
        }
    } catch (NumberFormatException nfe) {
        // Command is illegal. Display error message.
        System.out.println("Command was not recognized; " +
                       "please enter only a number, S, or q.");
    }
}

With this algorithm (I'm sure it can be optimized), you treat following cases:

  • User enters s/S
  • User enters q/Q
  • User enters a non valid value (not a number)
  • User enters a non valid number (less than 0 or greater than 100)
  • User enters a valid number
share|improve this answer
    
This worked. thanks a lot –  Curious Learner Mar 23 '13 at 22:42

To check if a string is an integer, just attempt to parse it as an integer and if an exception is thrown, then it is not an Integer.

See:

http://bytes.com/topic/java/answers/541928-check-if-input-integer

String input = ....
try {
    int x = Integer.parseInt(input);
    System.out.println(x);
}
catch(NumberFormatException nFE) {
    System.out.println("Not an Integer");
}
share|improve this answer

Integer.parseInt(command) will give you NumberFormatException if the String is not valid. It is possible in your code if the user enters 'S' or 'E' which cannot be parsed to int value.

I have modified your code. Check this code :

 while (true) {

          // Prompt user to enter a command
          SimpleIO.prompt("Enter command (NUMBER, S, or Q): ");
          String command = SimpleIO.readLine().trim();

          // Determine whether command is "E", "S", "Q", or
          // illegal; execute command if legal.
          int tries = 0;
          int round = 0;
          int randomInt = 0;
          if(!command.equals("S") && !command.equals("E")) {
            // Only then parse the command to string  

          int number = Integer.parseInt(command);
          if (number >= 0 && number <= 100) {
            if(randomInt == number){
share|improve this answer
    
I'd still wrap the Integer.parseInt in a try-catch block to prevent possible stupidity on the users part ;) –  MadProgrammer Mar 23 '13 at 20:53
    
Yes it is always recommended to take preventive actions as user may go crazy and enter anything even if int value is expected. :-) –  Ankur Shanbhag Mar 23 '13 at 20:55
    
i tried to modify the code as you suggested but im still getting the same numberformat exception –  Curious Learner Mar 23 '13 at 22:09

You're trying to convert the incoming String to an int before you check if its an escape sequence (S or Q).

Try rearranging your if statement to check for S and Q first then try converting the value to an int.

I'd also recommend you wrap the Integer.parseInt call (it's subsequent, reliant code) in a try-catch block, so you can provided an error statement to the user if they type in anything that isn't an int

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