Codeforces Round #554 (Div. 2)C. Neko does Maths

C. Neko does Maths

time limit per test

1 second

memory limit per test

256 megabytes

input

standard input

output

standard output

Neko loves divisors. During the latest number theory lesson, he got an interesting exercise from his math teacher.

Neko has two integers aa and bb. His goal is to find a non-negative integer kk such that the least common multiple of a+ka+k and b+kb+k is the smallest possible. If there are multiple optimal integers kk, he needs to choose the smallest one.

Given his mathematical talent, Neko had no trouble getting Wrong Answer on this problem. Can you help him solve it?

Input

The only line contains two integers aa and bb (1≤a,b≤1091≤a,b≤109).

Output

Print the smallest non-negative integer kk (k≥0k≥0) such that the lowest common multiple of a+ka+k and b+kb+k is the smallest possible.

If there are many possible integers kk giving the same value of the least common multiple, print the smallest one.

Examples

input

Copy

6 10

output

Copy

2

input

Copy

21 31

output

Copy

9

input

Copy

5 10

output

Copy

0

Note

In the first test, one should choose k=2k=2, as the least common multiple of 6+26+2 and 10+210+2 is 2424, which is the smallest least common multiple possible.

 

 

分析：众所周知，gcd(a,b)一定是(a-b)的因子，那么直接枚举a-b的因子就可以了。最后判断一下k=0的情况即可。

#include "bits/stdc++.h"

using namespace std;

int main() {
    long long a, b;
    cin >> a >> b;
    long long c = abs(a - b);
    vector v;
    for (long long i = 1; i * i <= c; ++i) {
        if (c % i == 0) {
            if (i != 1)
                v.push_back(i);
            if (i * i != c)v.push_back(c / i);
        }
    }
    sort(v.begin(), v.end());
    long long mini = 8e18;
    long long ans;
    for (int i = 0; i < v.size(); ++i) {
        long long x = a + v[i] - a % v[i];
        long long y = b + v[i] - b % v[i];
        if (x * y / v[i] < mini) {
            mini = x * y / v[i];
            ans = x - a;
        }
    }
    if (mini >= a * b / __gcd(a, b))ans = 0;
    printf("%lld\n", ans);
}