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  • [BZOJ] 1679: [Usaco2005 Jan]Moo Volume 牛的呼声

    1679: [Usaco2005 Jan]Moo Volume 牛的呼声

    Time Limit: 1 Sec  Memory Limit: 64 MB
    Submit: 1101  Solved: 573
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    Description

    Farmer John has received a noise complaint from his neighbor, Farmer Bob, stating that his cows are making too much noise. FJ's N cows (1 <= N <= 10,000) all graze at various locations on a long one-dimensional pasture. The cows are very chatty animals. Every pair of cows simultaneously carries on a conversation (so every cow is simultaneously MOOing at all of the N-1 other cows). When cow i MOOs at cow j, the volume of this MOO must be equal to the distance between i and j, in order for j to be able to hear the MOO at all. Please help FJ compute the total volume of sound being generated by all N*(N-1) simultaneous MOOing sessions.

        约翰的邻居鲍勃控告约翰家的牛们太会叫.
        约翰的N(1≤N≤10000)只牛在一维的草场上的不同地点吃着草.她们都是些爱说闲话的奶牛,每一只同时与其他N-1只牛聊着天.一个对话的进行,需要两只牛都按照和她们间距离等大的音量吼叫,因此草场上存在着N(N-1)/2个声音.  请计算这些音量的和.

    Input

    * Line 1: N * Lines 2..N+1: The location of each cow (in the range 0..1,000,000,000).

        第1行输入N,接下来输入N个整数,表示一只牛所在的位置.

    Output

    * Line 1: A single integer, the total volume of all the MOOs.

        一个整数,表示总音量.

    Sample Input

    5
    1
    5
    3
    2
    4

    INPUT DETAILS:

    There are five cows at locations 1, 5, 3, 2, and 4.

    Sample Output

    40

    OUTPUT DETAILS:

    Cow at 1 contributes 1+2+3+4=10, cow at 5 contributes 4+3+2+1=10, cow at 3
    contributes 2+1+1+2=6, cow at 2 contributes 1+1+2+3=7, and cow at 4
    contributes 3+2+1+1=7. The total volume is (10+10+6+7+7) = 40.

    HINT

     

    Source

    Silver

    Analysis

     水水水题??

    不是很清楚怎么优化,只把空间优化到线性

    反正随便就过了qwq

    递推什么的不会啊qwq

    Code

     1 #include<cstdio>
     2 #include<iostream>
     3 #include<algorithm>
     4 using namespace std;
     5 
     6 long long pos[100000],cnt[100000],tot,n;
     7 
     8 int main(){
     9     scanf("%lld",&n);
    10     for(int i = 1;i <= n;i++) scanf("%lld",&pos[i]);
    11     sort(pos+1,pos+1+n);
    12     
    13     for(int i = 1;i <= n-1;i++){
    14         for(int j = i;j <= n-1;j++){
    15             cnt[j] += n-j;
    16         }tot += cnt[i]*(pos[i+1]-pos[i]);
    17     }
    18     
    19     printf("%lld",tot*2);
    20     
    21     return 0;
    22 }
    n^2
    转载请注明出处 -- 如有意见欢迎评论
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  • 原文地址:https://www.cnblogs.com/Chorolop/p/7500433.html
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