Time Limit: 2000MS | Memory Limit: 65536K | |
Total Submissions: 6193 | Accepted: 2685 |
Description
Every year the cows hold an event featuring a peculiar version of hopscotch that involves carefully jumping from rock to rock in a river. The excitement takes place on a long, straight river with a rock at the start and another rock at the end, L units away from the start (1 ≤ L ≤ 1,000,000,000). Along the river between the starting and ending rocks, N (0 ≤ N ≤ 50,000) more rocks appear, each at an integral distance Di from the start (0 < Di <L).
To play the game, each cow in turn starts at the starting rock and tries to reach the finish at the ending rock, jumping only from rock to rock. Of course, less agile cows never make it to the final rock, ending up instead in the river.
Farmer John is proud of his cows and watches this event each year. But as time goes by, he tires of watching the timid cows of the other farmers limp across the short distances between rocks placed too closely together. He plans to remove several rocks in order to increase the shortest distance a cow will have to jump to reach the end. He knows he cannot remove the starting and ending rocks, but he calculates that he has enough resources to remove up to M rocks (0 ≤ M ≤ N).
FJ wants to know exactly how much he can increase the shortest distance *before* he starts removing the rocks. Help Farmer John determine the greatest possible shortest distance a cow has to jump after removing the optimal set of M rocks.
Input
Lines 2..N+1: Each line contains a single integer indicating how far some rock is away from the starting rock. No two rocks share the same position.
Output
Sample Input
25 5 2 2 14 11 21 17
Sample Output
4
Hint
Source
题解
相同是一个二分答案的题目,题意是讲,一个长度为L的河,有N个垫脚石,如今须要去掉m个垫脚石,使得两块石头之间的距离的最小值最大。把河的两岸也看做垫脚石,可是不能去掉他们。
和前几个题目一样,通过二分答案区间即可了。可是这个题目和前几道不同之处在于这个是改动搜索上界时更新res(前几道题都是改动下界时更新)。最后返回res即可。
写出来的效果就是代码演示样例中的那个样子了。
代码演示样例
/**** *@author Shen *@title poj 3258 */ #include <cstdio> #include <iostream> #include <cmath> #include <algorithm> using namespace std; int n, k; int l, v[50005]; int maxa = 0; bool test(int x) { int sum = 0, st = 0; for (int i = 1; i <= n + 1; i++) { if (v[i] - v[st] <= x) sum++; else st = i; } //printf(" %s with x = %d, result is that sum = %d. ", __func__, x, sum); return sum <= k; } int Bsearch(int l, int r) { int res = r; while (l <= r) { int mid = (r + l) / 2; //printf("l = %d, r = %d, mid = %d, res = %d. ", l, r, mid, res); if (test(mid)) l = mid + 1; else res = min(res, mid), r = mid - 1; } return res; } void solve() { maxa = l; v[0] = 0; for (int i = 1; i <= n; i++) { scanf("%d", &l); v[i] = l; } v[n + 1] = maxa; sort(v, v + n + 2); int ans = Bsearch(0, maxa); printf("%d ", ans); } int main() { while (~scanf("%d%d%d", &l, &n, &k)) solve(); return 0; }