To become the king of Codeforces, Kuroni has to solve the following problem.
He is given n numbers a1,a2,…,an. Help Kuroni to calculate ∏1≤i<j≤n|ai−aj|. As result can be very big, output it modulo m.
If you are not familiar with short notation, ∏1≤i<j≤n|ai−aj| is equal to |a1−a2|⋅|a1−a3|⋅ … ⋅|a1−an|⋅|a2−a3|⋅|a2−a4|⋅ … ⋅|a2−an|⋅ … ⋅|an−1−an|. In other words, this is the product of |ai−aj| for all 1≤i<j≤n.
Input The first line contains two integers n, m (2≤n≤2⋅105, 1≤m≤1000) — number of numbers and modulo.
The second line contains n integers a1,a2,…,an (0≤ai≤109).
Output Output the single number — ∏1≤i<j≤n|ai−aj|modm.
Examples inputCopy 2 10 8 5 outputCopy 3 inputCopy 3 12 1 4 5 outputCopy 0 inputCopy 3 7 1 4 9 outputCopy 1 Note In the first sample, |8−5|=3≡3mod10.
In the second sample, |1−4|⋅|1−5|⋅|4−5|=3⋅4⋅1=12≡0mod12.
In the third sample, |1−4|⋅|1−9|⋅|4−9|=3⋅8⋅5=120≡1mod7.
这就是个鸽笼原理,m<=1000
代码语言:javascript复制#include <bits/stdc .h>
using namespace std;
template <typename t>
void read(t &x)
{
char ch = getchar();
x = 0;
t f = 1;
while (ch < '0' || ch > '9')
f = (ch == '-' ? -1 : f), ch = getchar();
while (ch >= '0' && ch <= '9')
x = x * 10 ch - '0', ch = getchar();
x *= f;
}
#define wi(n) printf("%d ", n)
#define wl(n) printf("%lld ", n)
#define rep(m, n, i) for (int i = m; i < n; i)
#define rrep(m, n, i) for (int i = m; i > n; --i)
#define P puts(" ")
typedef long long ll;
#define MOD 1000000007
#define mp(a, b) make_pair(a, b)
#define N 200005
#define fil(a, n) rep(0, n, i) read(a[i])
//---------------https://lunatic.blog.csdn.net/-------------------//
int a;
int b[1005], flag;
vector<pair<int, int>> c;
int main()
{
int n, m;
read(n), read(m);
for (int i = 0; i < n; i )
{
read(a);
int mo = a % m;
b[mo] ;
c.push_back(make_pair(mo, a));
if (b[mo] >= 2)
flag = 1;
// cout << mo << endl;
}
if (flag)
{
puts("0");
return 0;
}
int ans = 1;
for (int i = 0; i < c.size(); i )
{
for (int j = i 1; j < c.size(); j )
{
if (c[i].second > c[j].second)
{
ans *= (c[i].first - c[j].first m);
}
else
{
ans *= (-c[i].first c[j].first m);
}
ans %= m;
}
}
cout << ans << endl;
}