标签:coder ready nbsp tab efi ble res single hang
Usually, results of competitions are based on the scores of participants. However, we are planning a change for the next year of IPSC. During the registration each team will be able to enter a single positive integer – their preferred place in the ranklist. We would take all these preferences into account, and at the end of the competition we will simply announce a ranklist that would please all of you.
But waitHow would that ranklist look like if it won’t be possible to satisfy all the requests?
Suppose that we already have a ranklist. For each team, compute the distance between their preferred place and their place in the ranklist. The sum of these distances will be called the badness of this ranklist.
Given team names and their preferred placements find one ranklist with the minimal possible badness.
The first line of the input file contains an integer T,T≤20T,T≤20, specifying the number of test cases. Each test case is preceded by a blank line.
Each test case looks as follows: The first line contains an integer N(N≤100000)N(N≤100000) – the number of teams participating in the competition. Each of the next NN lines contains a team name (a string of letters and numbers of length at most 20) and its preferred place (an integer between 1 and NN, inclusive). No two team names will be equal.
For each of the test cases output a single line with a single integer – the badness of the best ranklist for the given teams.
Sample Input 1 | Sample Output 1 |
---|---|
2 7 noobz 1 llamas 2 Winn3rz 2 5thwheel 1 NotoricCoders 5 StrangeCase 7 WhoKnows 7 3 ThreeHeadedMonkey 1 MoscowSUx13 1 NeedForSuccess 1 |
5 3 |
给出队名,首选位置,然后给他们排一个实际的表,求实际位置和首选位置的差值和最小
#include<bits/stdc++.h> using namespace std; #define LL long long struct Node{ string s; int id; int num; }aa[1000000]; bool cmp(Node a,Node b){ return a.num<b.num; } int main(){ int t; cin>>t; while(t--){ int n; cin>>n; LL sum=0; for(LL i=0;i<n;i++){ cin>>aa[i].s>>aa[i].num; } sort(aa,aa+n,cmp); for(LL i=0;i<n;i++){ aa[i].id=i+1; sum+=abs(aa[i].id-aa[i].num); } cout<<sum<<endl; } return 0; }
标签:coder ready nbsp tab efi ble res single hang
原文地址:http://www.cnblogs.com/zhien-aa/p/6285888.html