标签:bool put nal 极限 should 程序 mod color div
In combinatorial mathematics, a derangement is a permutation of the elements of a set, such that no element appears in its original position.
There‘s originally an array consisting of n integers from 1 to n in ascending order, you need to find the number of derangement it can generate.
Also, since the answer may be very large, you should return the output mod 109 + 7.
Example 1:
Input: 3 Output: 2 Explanation: The original array is [1,2,3]. The two derangements are [2,3,1] and [3,1,2].
Note:n is in the range of [1, 106].
思路:
第一反应是挨个求全排列,判断是否符合,结果果断超时,当n=12的时候就已经极限了。
bool isOrder(vector<int>& a,int n) { for(int i =0;i<n;i++) { if(a[i]== (i+1))return false; } return true; } int findDerangement2(int n) { if(n==1)return 0; if(n==2)return 1; //if(n==3)return 2; vector<int> ori(n,0); for(int i =0;i<n;i++)ori[i]=i+1; long long ret=0; while(next_permutation(ori.begin(),ori.end())) { if( isOrder(ori,n) ) ret++; } return ret %1000000007; }
结果想,这么做肯定不多,就想到了用动态规划。
仔细观察,
3的结果为: 2 3 1 与 3 1 2,
求4的结果的时候,将数字4分别与 3的结果每一位进行交换肯定满足题意,即将4与2 3 1和3 1 2每一位交换,得到
4 3 1 2
2 4 1 3
2 3 4 1
4 1 2 3
3 4 2 1
3 1 4 2
一共6个即 dp[3]*3.
还有一种情况就是 3个排列比如
1 X X
X 2 X
X X 3
其中X X是2的排列,将数字 1 2 3分别与4交换,肯定也满足题意 即 d[2]*3
综上就得到 dp[4]= dp[3]*3+d[2]*3;
dp[n] = ((i-1)*dp[i-1]+(i-1)*dp[i-2] )%1000000007;
但是程序不能这么写。。因为((i-1)*dp[i-1]+(i-1)*dp[i-2] )亲测溢出。。。。
改写成dp[n]=(i-1)*(dp[i-1]+dp[i-2])%1000000007;
vector<long long> dp(n+1,0); dp[1]=0,dp[2]=1,dp[3]=2; for(int i =4;i<=n;i++) { dp[i] = (i-1)*(dp[i-1]+dp[i-2])%1000000007; } return dp[n];
[leetcode-634-Find the Derangement of An Array]
标签:bool put nal 极限 should 程序 mod color div
原文地址:http://www.cnblogs.com/hellowooorld/p/7105577.html
