1033 To Fill or Not to Fill (25分)
作者:互联网
1. 题目
2. 思路
- 把终点作为price=0, distance=d的点插入
- 按照distance排序
- 如果distance + c*davg内有station,找最近的比当前价格低的,买能恰好到达的gas,如果价格都高,买其中最低的,买满油
- 如果distance + cdavg内没有station, 输出当前distance + cdavg
3. 注意点
- 要设置当前油量的变量,可能不是0
- 如果distance=0没有station, 输出0
4. tip
巧妙把最后d最为station插入, 减少了很多的讨论,使得代码变得简单,启发是看有些特殊情况能不能化为一般情况
5. 代码
#include<cstdio>
#include<algorithm>
#include<string>
#include<vector>
#include<set>
#include<iostream>
// 21:51 - 23:12
using namespace std;
struct station{
double price;
double distance;
station(double price, double distance){
this->price = price;
this->distance = distance;
}
};
double c, d, davg;
int n;
vector<station> s;
bool cmp(station a, station b){
return a.distance < b.distance;
}
int main(){
scanf("%lf %lf %lf %d", &c, &d, &davg, &n);
for(int i=0;i<n;i++){
double price, distance;
scanf("%lf %lf", &price, &distance);
s.push_back(station(price, distance));
}
s.push_back(station(0, d));
n++;
sort(s.begin(), s.end(), cmp);
if(s[0].distance != 0){
printf("The maximum travel distance = 0.00");
return 0;
}
double sum = 0;
double now_c = 0;
int i = 0;
int pos = 0;
double dis = c*davg; //一次最远距离
while(1){
int index = -1;
double min_price = 0x7fffffff;
for(i=pos+1;i<n && s[i].distance-s[pos].distance<=dis;i++){
if(s[i].price < s[pos].price){
index = i;
break;
}
if(s[i].price < min_price){
min_price = s[i].price;
index = i;
}
}
if(i == n){
printf("%.2f", sum);
break;
}
if(index == -1){
printf("The maximum travel distance = %.2f", s[pos].distance + dis);
return 0;
}
if(s[pos].price < s[index].price){
double need = (s[index].distance - s[pos].distance) / davg;
sum += (c - now_c)*s[pos].price;
now_c = c - need;
}else{
double need = (s[index].distance - s[pos].distance) / davg;
if(need > now_c){
sum += (need - now_c) * s[pos].price;
}
now_c = 0;
}
pos = index;
}
}
标签:distance,25,int,double,price,station,1033,include,Fill 来源: https://www.cnblogs.com/d-i-p/p/12445951.html