1

Basic problem here.. I will start off by asking that you please not respond with any code, as that likely will only confuse me further (programming noob). I am looking for a clear explanation on how to solve this issue that I'm having.

I have a scanner that reads input from the user. The user is prompted to enter an int value between 1 to 150 (whole numbers only). I obtain the value as follows:

    Scanner scan = new Scanner(System.in);
    int input = scan.nextInt();

And continue on with my program, and everything works fine.

Unfortunately, the code isn't exactly bulletproof, since any input that is not an integer can break it (letters, symbols, etc).

How can I make the code more robust, where it would verify that only an int was entered?

These are the results I'm hoping for:

Lets say the input was:

23 -> valid
fx -> display an error message, ask the user for input again (a while loop would do..)
7w -> error, again
3.7 -> error
$$ -> error
etc
12

Scanner.hasNextInt() returns true if the next token is a number, returns false otherwise.

In this example, I call hasNextInt(). If it returns true, I go past the while and set the input; if it returns false, then I discard the input (scanner.next();) and repeat.

Scanner scan = new Scanner(System.in);
while(!scan.hasNextInt()) {
    scan.next();
}
int input = scan.nextInt();
  • 1
    -1 If the user enters a non-integer, your code will hang and never recover: scanner.hasNextInt() does not advance past input, and if the next input is a non-int, scanner.hasNextInt() will always return false, even if the user later enters an integer – Bohemian Oct 29 '12 at 2:53
  • @Bohemian: True, thank you, I've corrected the code to discard non-int inputs. – ignis Oct 29 '12 at 2:55
  • 1
    I think you meant to write scan, not scanner, in the while loop (twice), but otherwise, thank you! – John Smith Oct 29 '12 at 3:38
3

Here's a simple example with prompts and comments.

Scanner scan = new Scanner(System.in);
System.out.print("Enter an integer: "); // Initial prompt for input

// Repeat until next item is an integer
while (!scan.hasNextInt()) 
{        
    scan.next(); // Read and discard offending non-int input
    System.out.print("Please enter an integer: "); // Re-prompt
}

// At this point in the code, the user has entered an integer
int input = scan.nextInt(); // Get the integer

// And now you can use the input variable.
1

Use scan.hasNextInt() to make sure the next input is an int.

  • 2
    If the user enters a non-integer, your code will hang and never recover: scanner.hasNextInt() does not advance past input, and if the next input is a non-int, scanner.hasNextInt() will always return false, even if the user later enters an integer – Bohemian Oct 29 '12 at 2:54
  • @Bohemian I didn't give any suggestions how to use it, you just copied this from ignis... – Mordechai Oct 29 '12 at 2:58
0

Just get "anything" and parse it:

Scanner scan = new Scanner(System.in);

Integer number = null;
while (number == null) {
    try {
        number = Integer.parseInt(scan.next());
    } catch (NumberParseException e) {
        System.out.println("bad input: " + input);
    }
}
0

Without any code and just in English, I'd say there's two things you have to test or look out for. First that the input is an int, second that the int is within the correct range.

In terms of pseudocode, the first thing to do is make sure it's an int. Declaring an int named "input", I would put a try / catch block, where you try to scan in the user input as an int, with parseInt(). If the try part fails, you know it's not an int and can return an error message.

Then, now that you know that "input" is an int, you can test whether it is less than 1 or more than 150, and return an error message if so!

0

I have written an example that ensures that the program will continue only if a number and not an invalid value is entered. Do not worry, I added the desired explanation.

The program asks the user to input a number. A loop ensures that the processing will not go on until a valid number is entered. Before that I have defined a variable "inputAccepted" that has false as default value. If he enters a number, the variable "inputAccepted" is set to true and the program leaves the loop. But if he enters something else than a number, an exception is thrown right in this moment, and the line that sets the variable "inputAccepted" to true will not be executed. Instead a message will be printed out that tells the user that his input is not valid. Since "inputAccepted" could not be set to true, the loop will do the same stuff again until the string can be converted to a number.

You can test the program here.

import java.util.Scanner;

public class Test {
    public static void main(String[] args) {
        Scanner input = new Scanner(System.in);
        boolean inputAccepted = false;
        while (!inputAccepted) {
            try {
                System.out.print("Please enter a number: ");
                Integer.valueOf(input.nextLine());
                inputAccepted = true;
            } catch (NumberFormatException e) {
                System.out.println("Not a valid number.");
            }
        }
        System.out.println("Thank you!");
    }
}
-1

public class Sample {

/**
 * author CLRZ
 */
public static void main(String[] args) {
    int a; // variable
    Scanner in = new Scanner(System.in); // scans your input
    System.out.println("Enter your number's choice:"); 
    int sem1 = in.nextInt(); // reads next integer
    if (sem1 == 1) // conditioned if your choice number is equal to 1
    System.out.println("Hello World1"); // output wil be Hello World
    int b;

    System.out.println("Enter your number's choice:");
    int sem2 = in.nextInt(); 
    if (sem2 == 2)
    System.out.println("Hello World2");
    int c;

    System.out.println("Enter your number's choice:");
    int sem3 = in.nextInt(); 
    if (sem3 == 3)
    System.out.println("Hello World3");
}

}

  • The OP asked for non-code explanations. Besides this code is not handling any exception. – Peopleware May 4 '13 at 9:19

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