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I'm writing a program that takes an integer named decimalInput (currently a literal for testing purposes) and converts it to a String called binaryOutput, which is the decimal number in binary form. I'm using this guide (the first one) to explain how the conversion from decimal to binary is done. Here's my code so far:

public class ToBin {
public static void main(String[] args) {
    int decimalInput = 19070;
    String binaryOutput = "";
    while (decimalInput > 0) {
        if (decimalInput % 2 == 0) {
            binaryOutput = "0" + binaryOutput;
            decimalInput = decimalInput / 2;
        }
        else {
            binaryOutput = "1" + binaryOutput;
            decimalInput = decimalInput / 2;
        }
    }
    System.out.println(binaryOutput);
    }
}

For the current literal I have (19070), my program returns the string "100101001111110". However, this is incorrect. My program SHOULD return "10010100111". So, for some reason my program has added an extra string of "1110" to the end. At first I thought, okay, maybe I goofed on the math somewhere. So I tried checking the math, it looked okay. Then I tried changing the literal decimalInput to a smaller number, specifically 156, which returns the string "10011100", which is the proper output.

I tried changing decimalInput to type long to see if that would help, but it didn't.

All I know is that for some reason, larger numbers are making my program flip out. And I don't know why.

I would greatly appreciate any help, as this is really frustrating me. This is also for a class, so as much as I would like to use toBinaryString(), I'm unable to do so.

Thanks!

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closed as too localized by George Stocker Sep 21 '12 at 15:42

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Have you tried using the bit shift operator instead of dividing by two decimalInput = decimalInput >> 1 –  M_rk Sep 21 '12 at 7:03
    
Since 2^11 = 2048 and 19070 > 4096 = 2^12, the binary representation of 19070 must contain at least 12 digits, which means that what you claim your program SHOULD do is wrong. –  JohnB Sep 21 '12 at 7:09

2 Answers 2

I would use toBinaryString to check your result all the same

int decimalInput = 19070;
System.out.println(Integer.toBinaryString(decimalInput));

prints

100101001111110

as does your program so its correct!

Note: your program won't display negative numbers at all.

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Awesome, thanks for the help! I just tried that, and it looks like you're right. Our instructor gave us a few examples for the different bases we were supposed to be able to convert between, and for the decimal function, apparently he gave us the wrong output we were supposed to be checking for. Using online base converters confirms this. Thank you for your help! –  Kyle Evans Sep 21 '12 at 7:06
    
Can you think of how to fix you program so it handles negative numbers? –  Peter Lawrey Sep 21 '12 at 7:12
    
@M_rk If you use signed shift, how do you know when to stop? ;) –  Peter Lawrey Sep 21 '12 at 8:18
    
Oops, forgot about that. I'll update my answer. Thank you. –  M_rk Sep 21 '12 at 8:20

The answer the second question

"Can you think of how to fix you program so it handles negative numbers?"

As I suggested in my other comment I would use the bit shift operator.

The if statement would become this:

if (decimalInput & 0x01 == 0) { // If the least significant bit is set

And the 'division' would become this:

decimalInput = decimalInput >>> 1; // Shifting all bits one to the right

This may help you with understanding what's going on:

http://docs.oracle.com/javase/tutorial/java/nutsandbolts/op3.html

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+1 Not sure its the OP's question, but a good answer. –  Peter Lawrey Sep 21 '12 at 8:24
    
Damn, I'm being stupid here.. :P –  M_rk Sep 21 '12 at 8:39
    
In that case you are in good company. LOL. –  Peter Lawrey Sep 21 '12 at 8:41

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