AC了好吧

#include <bits/stdc++.h>
using namespace std;
int n,m1,m2,ans = 150000; 
int i,j;
int s[10001],f[10001];
bool p[30001];
int prime[501][3],size = 0;
int main(void)
{
    memset(p,1,sizeof(p));
    memset(f,0,sizeof(f));
    scanf("%d%d%d",&n,&m1,&m2);
    if (m1 == 1)
    {
        printf("0");
        return 0;
    } // If the number of tubes is 1, the conditions are met directly 若试管数为1，直接符合条件 
    for (i = 1; i <= n; i++)
      	scanf("%d",&s[i]);
    int xx = floor(sqrt(m1));
    for (i = 2; i <= xx; i++)
    {
        // Quality finding factor 找质因数 
      	if (p[i])
      	{
            if (m1 % i == 0)
            {
                prime[++size][1] = i;
                prime[size][2] = 1;
            }
        }
    	int tim = 2;
    	while (tim * i <= m1)
    	{
    		p[tim * i] = 0;
        	tim++;
         }
	}
    for (i = 1; i <= size; i++) // Number of quality finding factors 找质因数个数 
    {
        int num = prime[i][1];
        while (m1 % (num * prime[i][1]) == 0)
        {
            num *= prime[i][1];
            prime[i][2]++;
        }
        prime[i][2] *= m2;
    }
    if (size == 0) // If it is a prime number, the prime factor is itself 若为质数，质因数为本身 
    {
        prime[++size][1] = m1;
        prime[size][2] = m2;
    }
    for (i = 1; i <= n; i++)
    {
        for (j = 1; j <= size; j++)
        {
            if (s[i] % prime[j][1] != 0) // If there is no certain factor, break directly 
            {
                f[i] = 150000; // Maximum: 10000 * log 2 30000
                break;
            }
            int tim = 1;
            long long num = prime[j][1];
            while (s[i] % (num * prime[j][1]) == 0)
            {
                num *= prime[j][1];
                tim++;
            }
            int an = (prime[j][2]-1) / tim + 1; // Equivalent to ceil function
            if (an > f[i]) f[i] = an;
        }
    }   
    for (i = 1; i <= n; i++)
      	if (ans > f[i]) ans=f[i];
    if (ans == 150000) printf("-1"); 
    else printf("%d",ans);
    return 0;
}