I want to write a program that simulates the following: I have 6 dices, and I roll with some dices every time.
When I don't roll with a die, I just assume that I rolled 0 with that.
I want to list all the possible variations I can get this way. A few examples:
1,2,4,6,0,1
3,5,1,0,0,4
6,6,4,2,0,0 etc.
Any ideas on how to do this? (I am using java, but of course I'm only interested in the general concept.)
Thanks in advance.
You can use a recursive method, keeping track of depth: EDIT, maybe this method would be better:
class Main {
public static void roll(String s, int depth) {
if(depth == 0)
System.out.println(s.substring(1));
else
for(int i = 0; i <= 6; i++)
roll(s + "," + i, depth - 1);
}
public static void main(String[] args) {
roll("", 6); //2nd parameter > 0
}
}
Since you specifically asked for "only the general concept", here are two general approaches, either:
0-6 (more efficient)0-66666, and discard any numbers that contain 7, 8, 9; and then print the numbers with some formatted padding, and commas (cleaner code to look at if you don't care about the small efficiency difference)Just for elegance sake, I would write a recursive method that calls loops through 0-7 for a given index then itself to initialize the next index.
It could then initialize an array or abritrary size.
Simple Python implementation.
This is when you just print.
def PrintAllPerms(n, str_):
if (n == 0):
print str_
else:
for i in ["1","2","3","4","5","6"]:
str_ = str_ + i
PrintAllPerms(n-1, str_)
str_ = str_[:-1]
PrintAllPerms(2,"")
This is when you want to return the whole permutation.
def PrintAllPerms(n, arr, str_):
if (n == 0):
arr.append(str_)
return arr
else:
for i in ["1","2","3","4","5","6"]:
str_ = str_ + i
arr = PrintAllPerms(n-1,arr,str_)
str_ = str_[:-1]
return arr
PrintAllPerms(2,[],"")
public class DiceTest {
public static void main(String[] args) {
int[] dice = {0, 1, 2, 3, 4, 5, 6 };
for (int i : dice) {
for (int j : dice) {
System.out.println("Printing dice values : " + i + " " + j);
}
}
}
}
