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Binary Converter Java
So i have a problem with finishing this project this is how I did my code: import java.util.Scanner; //your code goes here public class Converter { public static toBinary(int num) { String binary="" ; while(num > 0){ binary = (num%2)+binary; num/=2; } return binary; } } public class Program{ public static void main(String[ ] args) { Scanner sc= new Scanner(System.in); int x=scr.nextIn(); System.out.println (Converter.toBinary(x)); } } But I don't get any output with this code! Would appreciate any advice, thank you in advance!
10 Respuestas
0
You have some typos and return type is missing.
Return type is String and the typos i spotted are on reading input so the line should be:
int x = sc.nextInt();
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import java.util.Scanner;
public class Converter {
public static String toBinary(int num) {
String binary="";
while(num > 0) {
binary = (num%2)+binary;
num /= 2;
}
return binary;
}
}
public class Program {
public static void main(String[ ] args) {
Scanner sc = new Scanner(System.in);
int x = sc.nextInt();
System.out.print(Converter.toBinary(x));
}
}
0
import java.util.Scanner;
//your code goes here
class Converter{
static String toBinary(int x){
String bin="";
while(x>0){
bin=(x%2)+bin;
x/=2;
}
return bin;
}
}
public class Program {
public static void main(String[ ] args) {
Scanner sc = new Scanner(System.in);
int x = sc.nextInt();
System.out.print(Converter.toBinary(x));
}
}
0
Hi everybody. Can anyone explain, why the type of returned value in the toBinary method is String? Shouldn't it return integer? Since we are working with integers? Or am I missing something?
0
Ok. I've found kind of answer here:
https://www.sololearn.com/Discuss/2923028/?ref=app
But I still don't really get, why we use String to avoid exceptions with long numbers. String is, well... String. Doesn't have anything to do with numbers. ?
Edit.
Ok. After a long thinking, I think I understand. It's more memory efficient than using a return type long. I suppose.
0
We use string to make the binary digits visible. In memory everything is binary, even the characters in the string are encoded in 8 bits typically. But we want to see the ones and zeros so we put them in a string
0
Enter a #: 5
a b c d e
0
import java.util.Scanner;
//your code goes here
public class Converter{
public static String toBinary(int num)
{
String binary="";
while(num>0){
binary=(num%2)+binary;
num/=2;
}
return binary;
}
}
public class Program {
public static void main(String[ ] args) {
Scanner sc = new Scanner(System.in);
int x = sc.nextInt();
System.out.print(Converter.toBinary(x));
}
}
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Thank you! Now it works!
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Tq