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I am making a program where the user enters their mark, if they enter over 100 then the program stops, however I can't seem to stop the value over 100 also being assigned to the Marks variable...

Scanner scan = new Scanner(System.in);
Int Marks = 0;

while (Marks >= 0 && Marks <= 100) {
        System.out.println("Enter Students Test Marks Here");

        Marks = input.nextInt();
}

// Output Test
System.out.println("The Marks variable value is " +Marks);
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5  
There is not type as Int in Java. –  Rohit Jain Dec 2 '12 at 15:08
1  
you have to specify the error: compilation or runtime, the text of it and so on –  Nikolay Kuznetsov Dec 2 '12 at 15:10
    
With your loop conditions, Marks will only be printed if it is over 100 or under 0, as your loop won't stop otherwise. –  Leiaz Dec 2 '12 at 15:31

3 Answers 3

up vote 0 down vote accepted

You have the condition backwards! while executes while the condition is true, not until the condition is true... So, what you need to do instead is this:

int marks = -1; // Start with an "illegal" marks value

while ((marks<0) || (marks>100)) { // while we have an illegal mark ...
    System.out.println("Enter Students Test Marks Here (0..100)");

    marks = input.nextInt(); // ... ask for a new one
}

After this, your marks variable contains a valid number between 0 and 100.

EDIT:

I just noticed... You didn't ask about prompting the user until he enters a correct value, but running the program until he enters a wrong value and merely preventing the assignment to the Marks variable... If that is indeed what you are after, you can do this:

int marks = 0;

while (true) { // Just keep running
    System.out.println("Enter Students Test Marks Here (<0 or >100 to quit)");
    int newMark = input.nextInt();
    if ((newMark<0) || (newMark>100)) break; // Skip out of while loop
    marks = newMark; // Only happens if newMark is between 0 and 100
}

You can also replace the break part with return to exit not only the while loop, but the function in which it is called, or maybe even System.exit(0), if you want to quit the program immediately.

But the trick would be to use a temporary variable to check the input before assigning it to marks.

(BTW: As a convention, variable names in Java usually start with a lower-case letter...)

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Thanks very much, this answers my question, really appreciate all the help people, thanks! –  SludgeWorks Dec 2 '12 at 19:24

what bout this?

         Marks = input.nextInt();
 while (Marks >= 0 && Marks <= 100) {
    System.out.println("Enter Students Test Marks Here");

    Marks = input.nextInt();
}
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The moment you enter the value greater 100 you are inside:

while (Marks >= 0 && Marks <= 100) {
    System.out.println("Enter Students Test Marks Here");

    Marks = input.nextInt();}

So the Value is assigned to Marks and that is when your while stops, so it will be printed in the last line:

System.out.println("The Marks variable value is " +Marks);

A possible solution could be:

boolean done = true;
int marks;
while(done == true){
    System.out.println("Enter Student Test Marks Here");
    if(input.nextInt() <= 0 || input.nextInt() >= 100){
        done = false;
    }else{
        marks = input.nextInt();
    }
}

System.out.println("The Marks variable value is " + marks);
share|improve this answer
    
Thanks for that explanation, but what I fail to understand is why the while part of the code will not filter out any values over 100 which have been entered? –  SludgeWorks Dec 2 '12 at 15:19
    
Because you enter the while loop BEFORE entering the value. The while loop will then exit BECAUSE a value greater then 100 was assigned to Marks. –  a.w. Dec 2 '12 at 15:31
    
I think with this code, the user will be prompted THREE TIMES for a new value (once for each input.nextInt()), two of which are discarded and only used for the if-check and one is actually assigned to marks, but isn't checked... This code would fail miserably... –  Markus A. Dec 2 '12 at 18:04
    
Sry for that, assigning input.nextInt() to a temporary variable before checking the if-clause would fix it. –  a.w. Dec 2 '12 at 18:29

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