2018-2019 ACM-ICPC, China Multi-Provincial Collegiate Programming Contest
Obviously, if there are Bi numbers of k that satisfy the conditionk<i&&Ak>Ai, then after a round of bubbling,Biwill minus one, and Ai will also move forward one space i--(although this is useless)
We consider to use sequence B to solve the problem, we first prove that for every valid sequenceB, there is exactly one permutation A corresponding to it
We consider how to infer A from B
It is very obvious that An can be directly infered by Bn, and A n-1 is also easily to know if An is known,and so on. So as long as B is legal, there is an A permutation obtained, certificated
That is to say, for each bubbling, every Bi greater than 0 is decremented by one, and equal to 0, it remains unchanged
So we only need to calculate the legal number of sequence of B
Consider what final states are legal:
All
Bi=0(ieAis ordered)There is a consecutive subsequence of
Bi=1in the permutation, and the rest are 0, such as 0 0 1 1 0 (1 4 2 3 5)There is only one
Bi!=0in the permutation, and the others are 0, such as 0 0 2 0 0 (2 3 1 4 5)
I think it is easy to use Dynamic programming to solve this problem, set 3 states is ok
memset(dp,0,sizeof(dp));
int ans2=0;
cin>>n>>m>>mod;
dp[0][0]=1;
for(int i=1;i<=n;i++){
if(i<=m+1){
(dp[i][0]+=dp[i-1][0]*(i))%=mod;
}
else{
(dp[i][0]+=dp[i-1][0]*(m+1))%=mod;
(dp[i][1]+=dp[i-1][0]+dp[i-1][1])%=mod;
(dp[i][2]+=dp[i-1][1]*(m+1)+dp[i-1][2]*(m+1)+dp[i-1][0]*max(0ll,i-1-(m+1)))%=mod;
}
}
int ans=0;
for(int i=0;i<3;i++)ans+=dp[n][i];
cout<<"Case #"<<ts<<": "<<ans%mod<<"\n";
