+ 2
Case 3 and 4 Halloween Candy - Java
I solved it but case 3 and 4 isn't solved. I thought that one of the cases is that "houses" can't be lower than 3, but I guess not My code: import java.util.Scanner; public class Program { public static void main(String[] args) { Scanner input = new Scanner(System.in); int houses = 0; while (houses < 3){ houses = input.nextInt(); } //your code goes here int bill = 2 *100; int billChance = bill / houses; houses = houses % 2; billChance = billChance + houses ; System.out.println(billChance); } }
3 Antworten
0
Edited:
OK. Why you are changing given code..?
By your logic,
For ex: if Bill =2
House=3
200/3=66
If house =5
200/5=40
If house =4
200/4=50
Finally
Output : 67 41 50
40 has no fraction part but still rounded up to 41..
Am I right?
Edit: use a double type for dollar.
Use a ciel function to round up result..
+ 1
Thanks, and I changed the upper code because it says that the int should be >= to 3 and I thought that that is one of the cases
0
This code works guys:
import java.util.Scanner;
public class Program
{
public static void main(String[] args) {
Scanner input = new Scanner(System.in);
int houses = input.nextInt();
//your code goes here
int chances = 200/houses;
if(200%houses!=0)
System .out .println (chances+1);
else
System .out .println (chances);
}
}