Codeforces Round #302 (Div. 2)C (完全背包)

Codeforces Round #302 (Div. 2)C (完全背包)

 

C. Writing Code time limit per test 3 seconds memory limit per test 256 megabytes input standard input output standard output

Programmers working on a large project have just received a task to write exactly m lines of code. There are n programmers working on a project, the i-th of them makes exactly ai bugs in every line of code that he writes.

Let's call a sequence of non-negative integers v1,?v2,?...,?vn a plan, if v1?+?v2?+?...?+?vn?=?m. The programmers follow the plan like that: in the beginning the first programmer writes the first v1 lines of the given task, then the second programmer writes v2 more lines of the given task, and so on. In the end, the last programmer writes the remaining lines of the code. Let's call a plan good, if all the written lines of the task contain at most b bugs in total.

Your task is to determine how many distinct good plans are there. As the number of plans can be large, print the remainder of this number modulo given positive integer mod.

Input

The first line contains four integers n, m, b, mod (1?≤?n,?m?≤?500, 0?≤?b?≤?500; 1?≤?mod?≤?109?+?7) — the number of programmers, the number of lines of code in the task, the maximum total number of bugs respectively and the modulo you should use when printing the answer.

The next line contains n space-separated integers a1,?a2,?...,?an (0?≤?ai?≤?500) — the number of bugs per line for each programmer.

Output

Print a single integer — the answer to the problem modulo mod.

Sample test(s) input

3 3 3 100
1 1 1

output

10

input

3 6 5 1000000007
1 2 3

output

0

input

3 5 6 11
1 2 1

output

0

 

把m寫成了n，dp一直調不出來，囧rz,dp[i][j]表示前i天bug為j的方案數，希望今後比賽能細心點。

 

#include 
#define foreach(it,v) for(__typeof((v).begin()) it = (v).begin(); it != (v).end(); ++it)
using namespace std;
typedef long long ll;
const int maxn = 5e2 + 5;
int a[maxn],mod,b,n,m;
ll dp[maxn][maxn];
int main()
{
    while(cin>>n>>m>>b>>mod) {
        memset(dp,0,sizeof dp);
        for(int i = 1; i <= n; i++)cin>>a[i];
        dp[0][0] = 1;
        for(int i = 1; i <= n; i++) {
            for(int k = 1; k <= m; k++) {
                for(int j = a[i]; j <= b; j++)
                    dp[k][j] += dp[k-1][j-a[i]],dp[k][j]%=mod;
            }
        }
        ll res = 0;
        for(int i = 0; i <= b; i++)res += dp[m][i];
        cout<