Fedya studies in a gymnasium. Fedya's maths hometask is to calculate the following expression:

(1ⁿ + 2ⁿ + 3ⁿ + 4ⁿ) mod 5

for given value of n. Fedya managed to complete the task. Can you? Note that given number n can be extremely large (e.g. it can exceed any integer type of your programming language).

The single line contains a single integer n (0 ≤ n ≤ 10¹⁰⁵). The number doesn't contain any leading zeroes.

Print the value of the expression without leading zeros.

Operation x mod y means taking remainder after division x by y.

Note to the first sample:

#include <cstdio>

#include <cstring>

using namespace std;

char str[+];//注意拿数组进行储存

int main()

{

    scanf("%s",str);

    int len = strlen(str);

    int sum = (str[len-]-'')*+str[len-]-'';

    if(sum%==)puts("");//做题前先打表

    else puts("");

    return ;

}