114. Telecasting station
time limit per test: 0.25 sec.
memory limit per test: 4096 KB
Every city in Berland is situated on Ox axis. The government of the country decided to build new telecasting station. After many experiments Berland scientists came to a conclusion that in any city citizensdispleasure is equal to product of citizens amount in it by distance between city and TV-station. Find such point on Ox axis for station so that sum of displeasures of all cities is minimal.
Input
Input begins from line with integer positive number N (0<N<15000) – amount of cities in Berland. Following N pairs (X, P) describes cities (0<X, P<50000), where X is a coordinate of city and P is an amount of citizens. All numbers separated by whitespace(s).
Output
Write the best position for TV-station with accuracy 10-5.
Sample Input
4 1 3 2 1 5 2 6 2
Sample Output
3.00000
思路:转化成pi个位置为xi的城市则很好求解,此时在中点
#include <cstdio>
#include <cmath>
#include <algorithm>
using namespace std;
const double inf=1e18;
const double eps=1e-9;
const int maxn=15005;
typedef pair<int ,int >P;
int n;
P x[maxn];
int main(){
scanf("%d",&n);
int sum=0;
for(int i=0;i<n;i++){
scanf("%d%d",&x[i].first,&x[i].second);
sum+=x[i].second;
}
sort(x,x+n);
int tot=0;
int ans=x[n-1].first;
for(int i=0;i<n;i++){
tot+=x[i].second;
if(tot>=(sum+1)/2){ans=x[i].first;break;}
}
printf("%d.00000\n",ans);
return 0;
}