【“浪潮杯”第九届山东省ACM大学生程序设计竞赛重现赛】C 题 ------ Cities

题目描述

原题传送门 - 牛客网

时间限制:C/C++ 1秒,其他语言2秒
空间限制:C/C++ 65536K,其他语言131072K
64bit IO Format: %lld

题目描述:

There are n cities in Byteland, and the i city has a value a . The cost of building a bidirectional road between two cities is the sum of their values. Please calculate the minimum cost of connecting these cities, which means any two cities can reach each other.

输入描述:

The first line is an integer T(T<= 1e5)
representing the number of test cases.

For each test case, the first line is an integer n(n <= 1e5), representing the number of cities, the
second line are n positive integers a (a <= 1e5),
representing their values.

输出描述:

For each test case, output an integer, which is the
minimum cost of connecting these cities.

示例1

输入

2
4
1 2 3 4
1
1

输出

12
0

题目分析

我做这道题目是在比赛后做的,因为比赛的时候时间上安排不过来,所以报名了比赛但是水了 @@

看了下牛客上边的榜单,显然这道题目就是签到题嘛,阿西吧

认真读了下题目,发现题目描述还蛮简单的,我这英语渣都能直接读懂,_

一开始感觉这道题目就是一道图论,求最小生成树。

二话不说就开始打开Code:Blocks,阿西吧

看着软件打开,我心里构思了下这道题目的解法,我的天,这什么玩意儿的最小生成树,根本就没有好吧,

想了下,就一个简单的配对求和,求最值

真正的思路:_

要想花费最小,其实就是每条边都要最小,我们从定义出发,边的大小取决于点的value,那么,value越小就意味着边最小,对于当前点来说,本身value一定,那么找图中value最小的点进行配对,则花费最小。

坑点在于当点只有一个的时候,花费为0(样例已经给出了这种情况,签到嘛)

AC代码

#include 
using namespace std;
int main(){
    int t;
    cin>>t;
    while(t--){
        int n;
        cin>>n;
        long long res = 0;
        int minVal = 99999999;   //此处设置为大于a的上限即可
        for(int i=0;i>temp;
            if(temp < minVal){
                minVal = temp;
            }
            res += temp;
        }
        if(n == 1){
            cout<<0<

注:

如有错误,欢迎dalao指正 _

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