暴力的做法就是枚举每一位选什么,但是过于暴力,我们只需要记忆化搜索一下,表示之后的有没有算过即可
#include<bits/stdc++.h> using namespace std; typedef long long ll; const int N=5e5+10; const int mod=1e9+7; ll f[1010][1010][2]; int n,k; string s; ll dfs(int u,int one,int flag){ if(u==-1){ if(one+flag==k) return 1; return 0; } auto &x=f[u][one][flag]; if(x!=-1) return x; x=0; if(s[u]=='1'&&flag){ x=(x+dfs(u-1,one+1,1)%mod+dfs(u-1,one,1)%mod)%mod; } if(s[u]=='0'&&flag){ x=(x+dfs(u-1,one,flag)%mod+dfs(u-1,one+1,0)%mod)%mod; } if(s[u]=='1'&&!flag){ x=(x+dfs(u-1,one,1)%mod+dfs(u-1,one+1,0)%mod)%mod; } if(s[u]=='0'&&!flag){ x=(x+dfs(u-1,one+1,0)%mod+dfs(u-1,one,0)%mod)%mod; } return x; } int main(){ ios::sync_with_stdio(false); cin>>n>>k; int i; memset(f,-1,sizeof f); cin>>s; cout<<dfs(n-1,0,0)<<endl; }