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So I've just started java with a tiny bit of experience from a few other languages. I tried to make this basic calculator and had a lot of problems but managed to resolve most of them. The last thing that I can't seem to understand is a randomly triggered "This is an invalid input", every time my program runs once. "..." refers to irrelevant code. Everything else seems to work fine. Thanks in advance!

import java.util.Scanner;
public class Calc {
...
        System.out.println("Would you like to use the calculator?(Y/N)");
        while(use){
            String usage=in.nextLine().toLowerCase();
            if(usage.equals("n")){use=false;}
        //input
            //operations
            else if(usage.equals("y")){
                ...(calculator code)
            System.out.println("Continue use? (Y/N)");
            }
            else {System.out.println("That is not a valid input");}
        }
    }
}

After running my code a few times, my output is

Would you like to use the calculator?(Y/N)
Y
Please input an operation: +,-,*,/,%, ^, or root
+
Calculator: Please input your first number.
1
Now enter your second number.
2
Calculating
3.0
Continue use? (Y/N)
That is not a valid input  <-- right there is the confusing part, why is that triggered?
Y
Please input an operation: +,-,*,/,%, ^, or root

Full code is on pastebin, if you somehow need it. http://pastebin.com/Qee2Hxe3

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2  
Instead of System.out.println("That is not a valid input"), do System.out.println("That is not a valid input. usage = '" + usage + "'"); so you can see what the invalid input was. Maybe it was just a newline character, or some other whitespace. –  nos Jun 28 '13 at 13:58
    
this works fine for me –  morgano Jun 28 '13 at 14:06
    
Of all the solution's I actually prefer @kajacx 's comment to one of the answers below: "Alternativly: double num1 = Double.parseDouble(in.nextLine()); Now you use only nextLine() to read input so problem solved. – kajacx" –  iamnotmaynard Jun 28 '13 at 14:41
    
Whether parseDouble(nextLine()) or nextDouble(), I'd recommend catching the exception and retaking input rather than letting the program crap out if user doesn't enter a number –  iamnotmaynard Jun 28 '13 at 14:45
    
Another option would be to call in.skip("\\n") after num2=in.nextDouble(), which will consume the newline. –  iamnotmaynard Jul 6 '13 at 21:05
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3 Answers

up vote 2 down vote accepted

The last input you read in your code when calculating is this:

  num2=in.nextDouble();

This reads the next characters and convert it to a double. However when you input your number, you also hit enter. This means that after the double is read, there is still a newline character left in the input buffer.

As the code goes back to the String usage=in.nextLine().toLowerCase(); , you will now read this newline.

You could just ignore empty input, by e.g. doing

 String usage=in.nextLine().toLowerCase().trim();
 if (usage.isEmpty()) {
      continue;
  }
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I checked the full code, and right before the loop first reiterates, there is a call to in.nextDouble(), this method reads a double but does not consume the line end, which makes the next in.readLine() return \n immidiately and the succeeding test fails.

A simple solution is to manually consume the line-end:

System.out.println(ans);
System.out.println("Continue use? (Y/N)");
in.nextLine();
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What would be a good solution? –  iamnotmaynard Jun 28 '13 at 14:09
    
@iamnotmaynard Edit made :) –  Ahmed KRAIEM Jun 28 '13 at 14:09
2  
Alternativly: double num1 = Double.parseDouble(in.nextLine()); Now you use only nextLine() to read input so problem solved. –  kajacx Jun 28 '13 at 14:13
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I tested your code and found that a solution is to declare your scanner inside your while loop, like so:

while (use) {
            Scanner in = new Scanner(System.in);
            String usage = in.nextLine().toLowerCase();

Here's what the problem is: first, you are entering your while loop, and usage is set equal to in.nextLine(). Since there is no next line, it waits for you to enter one. You enter yes, after which you enter your formula. Then it returns the answer, and goes back to the top of the while loop. Once again, usage is set to equal in.nextLine, but there is already a next line (a blank one) and so usage is set to equal an empty String ("") which is neither "y" or "n". Then it immediately goes to the "else" option at the end and prints the "invalid" message.
Re-assigning your scanner through each iteration of your while loop fixes this problem.

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