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To give an idea of what I want elaborate with this code is the following:

  1. Enter two numbers: 10 7
  2. Choose Operator: e.g. (+, - , * and /)
  3. What's 10 * 7?
  4. Correct!

    int[] arr = new int[5];
    
    
    System.out.println("enter two numbers: ");
    arr[1] = sc.nextInt();
    arr[2] = sc.nextInt();
    
    
    System.out.println("Choose Operator: ");
    arr[3] = sc.nextInt();
    
    
    int operator = arr[1]+arr[3]+arr[2];
    
    
    System.out.print("what's "+operator);
    int svar = sc.nextInt();
    
    
    if (svar == operator)
        System.out.println("Correct!");
    else
        System.out.println("Wrong - the right answer is "+operator);    
    

Now I'm having a problem with running some aspects within this code. It works fine to compile but each time the program asks for to "choose operator" the compiler responses with the following error:

  • Exception in thread "main"
    • java.util.InputMismatchException at
    • java.util.Scanner.throwFor(Unknown
    • Source) at
    • java.util.Scanner.next(Unknown
    • Source) at
    • java.util.Scanner.nextInt(Unknown
    • Source) at
    • java.util.Scanner.nextInt(Unknown
    • Source)
    • at test1.main(test1.java:13)

I wonder how I'm going to deal with this one. But the goal would be to "save" the desired operator, and then put it together with arr[1] and arr[2] (shown in int operator) to "sort of" create this whole mathematical operation. But the error occurs when I choose one particular operator.

I would appreciate some help with this one. Thank you!

share|improve this question
    
You are trying to read a character with sc.nextInt(). That doesn't sound right. –  sjngm Dec 20 '10 at 14:49
    
What do you think the line System.out.print("what's "+operator) prints? –  SLaks Dec 20 '10 at 14:52
    
number, operator, number. For an example: 10 * 10 –  Racket Dec 20 '10 at 15:13
1  
I think you should go and learn what types are. –  OrangeDog Dec 20 '10 at 15:57
    
+1 to @OrangeDog. –  I82Much Dec 20 '10 at 16:30

4 Answers 4

up vote 0 down vote accepted

Firstly, you are trying to use ints and Strings interchangeably, which is not possible in a strongly-typed language such as Java.

Secondly, for this kind of calculator application you should be using a stack. For easiest implementation, have one stack for numbers and one stack for operators.

share|improve this answer

You're calling nextInt, which tries to read an integer.
Since you aren't entering an integer, you're getting an error.

To implement your idea, you would need an Operator interface with an int execute(int x, iny y) method, and a separate class for each operator.
You would then read a character from sc and find the corresponding Operator implementation for that character. (perhaps using a Map<String, Operator>)

share|improve this answer

Here

System.out.println("Choose Operator: ");
    arr[3] = sc.nextInt();

you are trying to store a '+' operator as an int, maybe you should read a line and then determine what to do with the read in input.

share|improve this answer
    
ok, I tried nextLine but it says that it cannot convert a String to int. So that doesn't work either. –  Racket Dec 20 '10 at 15:14

All you need is two Ints, one Char and one Double, if it's not a must to use arrays so this is the code for you:

int num1, num2;
double result;
char op;

System.out.println("enter two numbers: ");
num1 = sc.nextInt();
num2 = sc.nextInt();

System.out.println("Choose Operator: ");
op = System.in.read();  // Edited

switch ( op )
{
     case '+': res = num1 + num2; break;
     case '-': res = num1 - num2; break;         
     case '/': res = num1 / num2; break;
     case '*': res = num1 * num2; break;
}    

System.out.print("what's " + num1 + op + num2 );

if ( sc.nextInt() == res )
    System.out.println("Correct!");
else
    System.out.println("Wrong - the right answer is " + res );    

Enjoy, Rotem

share|improve this answer
    
Hi! Thanks alot. Although I'm not sure about the statement about "op = sc.nextChar". Eclipse has no idea what it is, and it want's to change it to nextInt(); –  Racket Dec 20 '10 at 15:59
    
Ohh Eclipse is right =) It should be " op = sc.nextLine() " , there is no nextChar method (I just read the Scanner API - download.oracle.com/javase/1.5.0/docs/api/java/util/… ) Now it's all good ! B.T.W it is also possible using System.in.read() to get a single char.. –  Rotem Dec 20 '10 at 22:14

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