[BZOJ1672][Usaco2005 Dec]Cleaning Shifts 清理牛棚
1672: [Usaco2005 Dec]Cleaning Shifts 清理牛棚
Time Limit: 5 Sec Memory Limit: 64 MB Submit: 953 Solved: 407 [Submit][Status][Discuss]Description
Farmer John's cows, pampered since birth, have reached new heights of fastidiousness. They now require their barn to be immaculate. Farmer John, the most obliging of farmers, has no choice but hire some of the cows to clean the barn. Farmer John has N (1 <= N <= 10,000) cows who are willing to do some cleaning. Because dust falls continuously, the cows require that the farm be continuously cleaned during the workday, which runs from second number M to second number E during the day (0 <= M <= E <= 86,399). Note that the total number of seconds during which cleaning is to take place is E-M+1. During any given second M..E, at least one cow must be cleaning. Each cow has submitted a job application indicating her willingness to work during a certain interval T1..T2 (where M <= T1 <= T2 <= E) for a certain salary of S (where 0 <= S <= 500,000). Note that a cow who indicated the interval 10..20 would work for 11 seconds, not 10. Farmer John must either accept or reject each individual application; he may NOT ask a cow to work only a fraction of the time it indicated and receive a corresponding fraction of the salary. Find a schedule in which every second of the workday is covered by at least one cow and which minimizes the total salary that goes to the cows.
Input
* Line 1: Three space-separated integers: N, M, and E. * Lines 2..N+1: Line i+1 describes cow i's schedule with three space-separated integers: T1, T2, and S.
Output
* Line 1: a single integer that is either the minimum total salary to get the barn cleaned or else -1 if it is impossible to clean the barn.
Sample Input
0 2 3 //一号牛,从0号stall打扫到2号,工资为3
3 4 2
0 0 1
INPUT DETAILS:
FJ has three cows, and the barn needs to be cleaned from second 0 to second
4. The first cow is willing to work during seconds 0, 1, and 2 for a total
salary of 3, etc.
Sample Output
$f[i]$表示到$i$时刻的最小代价
对于一只$l-r$费用$c$的牛,可以用$f[i-1]+c$更新$l-r$
一定记得开long long啊啊啊啊
#include <cstdio> #include <cstring> #include <algorithm> using namespace std; char buf[10000000], *ptr = buf - 1; inline int readint(){ int n = 0; char ch = *++ptr; while(ch < '0' || ch > '9') ch = *++ptr; while(ch <= '9' && ch >= '0'){ n = (n << 1) + (n << 3) + ch - '0'; ch = *++ptr; } return n; } typedef long long ll; const int maxn = 10000 + 10; const ll INF = 1ll << 60; #define lson l, mid, rt << 1 #define rson mid + 1, r, rt << 1 | 1 ll Min[400000 + 10], tag[400000 + 10]; inline void PushUp(int rt){ Min[rt] = min(Min[rt << 1], Min[rt << 1 | 1]); } void Build(int l, int r, int rt){ Min[rt] = tag[rt] = INF; if(l == r) return; else{ int mid = l + r >> 1; Build(lson); Build(rson); } } inline void PushDown(int rt){ if(tag[rt] != INF){ tag[rt << 1] = min(tag[rt << 1], tag[rt]); tag[rt << 1 | 1] = min(tag[rt << 1 | 1], tag[rt]); Min[rt << 1] = min(Min[rt << 1], tag[rt]); Min[rt << 1 | 1] = min(Min[rt << 1 | 1], tag[rt]); tag[rt] = INF; } } ll Query(int qw, int l, int r, int rt){ if(l == r) return Min[rt]; else{ PushDown(rt); int mid = l + r >> 1; if(qw <= mid) return Query(qw, lson); else return Query(qw, rson); } } void Update(int ql, int qr, ll qv, int l, int r, int rt){ if(ql <= l && r <= qr){ Min[rt] = min(Min[rt], qv); tag[rt] = min(tag[rt], qv); } else{ PushDown(rt); int mid = l + r >> 1; if(ql <= mid) Update(ql, qr, qv, lson); if(qr > mid) Update(ql, qr, qv, rson); PushUp(rt); } } struct Node{ int st, et, s; Node(){} bool operator < (const Node &x) const { return st < x.st; } }a[maxn]; int main(){ fread(buf, sizeof(char), sizeof(buf), stdin); int N, M, E; N = readint(); M = readint(); E = readint(); for(int i = 1; i <= N; i++){ a[i].st = readint(); a[i].et = readint(); a[i].s = readint(); } Build(M, E, 1); sort(a + 1, a + N + 1); ll t; for(int i = 1; i <= N; i++){ if(a[i].et < M) continue; if(a[i].st <= M) t = 0; else t = Query(a[i].st - 1, M, E, 1); if(t == INF){ puts("-1"); return 0; } else Update(a[i].st, a[i].et, t + a[i].s, M, E, 1); } ll ans = Query(E, M, E, 1); if(ans == INF) puts("-1"); else printf("%lld\n", ans); return 0; }