• HOJ——T 2430 Counting the algorithms


    http://acm.hit.edu.cn/hoj/problem/view?id=2430

    Source : mostleg
      Time limit : 1 sec   Memory limit : 64 M

    Submitted : 804, Accepted : 318

    As most of the ACMers, wy's next target is algorithms, too. wy is clever, so he can learn most of the algorithms quickly. After a short time, he has learned a lot. One day, mostleg asked him that how many he had learned. That was really a hard problem, so wy wanted to change to count other things to distract mostleg's attention. The following problem will tell you what wy counted.

    Given 2N integers in a line, in which each integer in the range from 1 to N will appear exactly twice. You job is to choose one integer each time and erase the two of its appearances and get a mark calculated by the differece of there position. For example, if the first 3is in position 86 and the second 3 is in position 88, you can get 2 marks if you choose to erase 3 at this time. You should notice that after one turn of erasing, integers' positions may change, that is, vacant positions (without integer) in front of non-vacant positions is not allowed.

    Input

    There are multiply test cases. Each test case contains two lines.

    The first line: one integer N(1 <= N <= 100000).

    The second line: 2N integers. You can assume that each integer in [1,N] will appear just twice.

    Output

    One line for each test case, the maximum mark you can get.

    Sample Input

    3
    1 2 3 1 2 3
    3
    1 2 3 3 2 1

    Sample Output

    6
    9
    

    Hint

    We can explain the second sample as this. First, erase 1, you get 6-1=5 marks. Then erase 2, you get 4-1=3 marks. You may notice that in the beginning, the two 2s are at positions 2 and 5, but at this time, they are at positions 1 and 4. At last erase 3, you get 2-1=1marks. Therefore, in total you get 5+3+1=9 and that is the best strategy.

    题意:给你长度为2*n的序列,保证1~n中每个数会出现两次,求出相同数坐标差的和的最大值、、每次得到一个坐标差都会讲两个数从序列中删除从而改变编号

    贪心+树状数组

    考虑两种情况 ①当两组1~n不包含时,什么顺序删数都是等价的; ②包含时,从右向左删是最优的,可以保证差最大。 用树状数组维护坐标

     1 #include <algorithm>
     2 #include <cstring>
     3 #include <cstdio>
     4 
     5 using namespace std;
     6 
     7 const int N(200000+5);
     8 int n,ans,x[N<<1],last[N],tr[N];
     9 
    10 #define lowbit(x) (x&((~x)+1))
    11 inline void Update(int i,int x)
    12 {
    13     for(;i<=N;i+=lowbit(i)) tr[i]+=x;
    14 }
    15 inline int Query(int x)
    16 {
    17     int ret=0;
    18     for(;x;x-=lowbit(x)) ret+=tr[x];
    19     return ret;
    20 }
    21 
    22 int main()
    23 {
    24     for(;~scanf("%d",&n);ans=0)
    25     {
    26         memset(tr,0,sizeof(tr));
    27         memset(last,0,sizeof(last));
    28         for(int i=1;i<=(n<<1);i++)
    29         {
    30             scanf("%d",x+i),Update(i,1);
    31             last[x[i]]=i;
    32         }
    33         for(int i=1;i<=(n<<1);i++)
    34         {
    35             ans+=Query(last[x[i]])-Query(i);
    36             Update(last[x[i]],-1);
    37         }
    38         printf("%d
    ",ans);
    39     }
    40     return 0;
    41 }
    ——每当你想要放弃的时候,就想想是为了什么才一路坚持到现在。
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  • 原文地址:https://www.cnblogs.com/Shy-key/p/7395985.html
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