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I asked a user if they would like to play a game..

    System.out.println("Would you like to play"); 
     read in yes or no value 
        if yes (display text) 
        else (display other text)

I have used the scanner previously in the program, I just need it to use it again. Do I need to declare another new one with new variables?

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10  
The answer is no. But why not just try and see what happens? –  ControlAltDel Apr 30 '12 at 15:17
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5 Answers

Use this method:

scanner.nextBoolean()

So then it'd be:

System.out.println("Would you like to play?"):
Scanner scanner = new Scanner(System.in);

if(scanner.nextBoolean()==true) {
    System.out.println("This will be fun");
} else {
    System.out.println("Maybe next time");
}

Edit


System.out.println("Would you like to play?"):
Scanner scanner = new Scanner(System.in);

if(scanner.next().equalsIgnoreCase("y")||scanner.next().equalsIgnoreCase("yes")) {
    System.out.println("This will be fun");
} else if(scanner.next().equalsIgnoreCase("n")||scanner.next().equalsIgnoreCase("no")) {
    System.out.println("Maybe next time");
} else { 
System.out.println("Invalid character");
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It doesnt appear to be accepting anything that I input from the command line. thus, not displaying the if else statements. –  Javaer Apr 30 '12 at 15:58
    
Okay, then there are a few things to do. Stay with me, this might get ugly.. I'm revising my answer above. –  Chad M Apr 30 '12 at 16:02
    
Ok so, It works for 'y' only, if i type in 'yes, 'n' or 'no' the program does not end, i have to crash it myself, its peculiar –  Javaer Apr 30 '12 at 16:34
    
@dragon66 how can I over come this problem? –  Javaer Apr 30 '12 at 16:47
1  
@Javaer: save the scanner.next() to a variable. Then test it against the string you are expecting: like "yes","y" etc. –  dragon66 Apr 30 '12 at 16:49
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you could do something like:

    String yesOrNo = System.in.readLine();
    String textToDisplay = (yesOrNo.equals("Yes")) ? "text to display when yesOrNo equals yes" : "text to display when YesOrNo equals no";
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Forgot to use .equals() for comparing strings! Fixed now! –  11684 May 4 '12 at 11:17
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Based on a recommendation of dragon66, I'm implementing a String comparison of predefined inputs compared to user input.

System.out.println("Would you like to play? Or press Q to exit"):
    Scanner scanner = new Scanner(System.in);
    String affirmative = "yes";
    String affirmative2 = "y";
    String negative = "no";
    String negative2 = "n";
    String quit = "q";

if(scanner.next().equalsIgnoreCase(affirmative)||scanner.next().equalsIgnoreCase(affirmative2)) {
    System.out.println("This will be fun");
} else if(scanner.next().equalsIgnoreCase(negative)||scanner.next().equalsIgnoreCase(negative2)) {
    System.out.println("Maybe next time");
} else if(scanner.next().equalsIgnoreCase(quit)){ 
    System.out.println("Good bye");
    System.exit();
} else {
System.out.println("Invalid character");
}
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Unfortunatley Im having similar problems as before. also to compile the code i had to change the system.exit(); to system.exit(1); otherwise i would have errors. –  Javaer Apr 30 '12 at 17:30
    
Wouldn't that over complicate things for this small program? From my understanding, then you would be comparing to String objects, which would then need to implement Comparable. –  Chad M Apr 30 '12 at 17:32
    
@Javaer the system.exit method needs a status. Status 0 means normal termination of the JVM, without errors. Any other status code indicates problems. But you cannot call the method without arguments, so just use System.exit(0);. –  MDeSchaepmeester Apr 30 '12 at 18:52
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To make it simple, here is something for you to play with:

import java.util.Scanner;

public class ScannerExample {

  public static void main(String[] args) {

    System.out.println("Would you like to play: 'y' or 'yes' to accept; 'n' or 'no' to reject; 'q' to quit:");
    Scanner scanner = new Scanner(System.in);    
    String token = "";

    while(scanner.hasNextLine())
    {
       token = scanner.nextLine().trim();

       if(token.equalsIgnoreCase("q")) System.exit(0);

       if(token.equalsIgnoreCase("y")||token.equalsIgnoreCase("yes")) 
       {
           System.out.println("Thanks for your interest!");
           System.exit(0);
       }
       else if (token.equalsIgnoreCase("n")||token.equalsIgnoreCase("no"))
       {
           System.out.println("That's a pity!");
           System.exit(0);
       }
       else
       {
           System.out.println("Oops, not a valid input!");
       }
    }
  }
}
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I just stumbled upon this question and the answer of Chad M is correct, but - like some commenters mentioned above - has some bugs in it. So here is my implementation without the bugs (it was just a question of saving the user input into a string variable):

Scanner scanner = new Scanner(System.in);
String userInput = scanner.next();

if(userInput.equalsIgnoreCase("y") || userInput.equalsIgnoreCase("yes")) {
    // y or yes
} else {
    // other character
}
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