https://cn.vjudge.net/problem/UVA-815
题意:给你一个矩阵,每个格子的数代表一个海拔并且每个格子的面积100平方米。给你整个区域的降水量(立方米),问降水量(米)。
题解:题目讲了一大堆,唯一关键就是排水系统保证水会从最低的开始淹没。所以直接从小到大不断模拟淹没即可。我用了priorityQ来维护,一个细节是一样海拔的要一起淹没。
坑点:一些无聊的人在vjudge下面xjb讨论,让我wa了好久orz
#include<iostream> #include<cstdio> #include<algorithm> #include<cmath> #include<cstring> #include<queue> #include<map> #include<string> #include<bitset> #include<queue> #define re register #define rep(i,s,t) for(re int i=s;i<=t;++i) #define per(i,s,t) for(re int i=s;i>=t;--i) #define mmm(f,x) memset(f,x,sizeof f) //#define x first //#define xx second using namespace std; typedef long long ll; int n, m; int first = 1; int main() { int kase = 0; while (cin >> n >> m && (n || m)) { //if (first)first = 0; else cout << endl; printf("Region %d\n", ++kase); priority_queue<double> Q; rep(i, 1, n*m) { double x; cin >> x; Q.push(-x); } double btm = -Q.top(); double sum; cin >> sum; double num = 0, vol = 0, ele = 0; while (!Q.empty()) { double now = -Q.top(); int cnt = 0; while (!Q.empty() && now == -Q.top())Q.pop(), cnt++; num += cnt; if (Q.empty()) { ele += sum / 100 / num; break; } double d = -Q.top() - now; if (d * 100 * num < sum)sum -= d * 100 * num, ele += d; else { ele += sum / 100 / num; break; } } printf("Water level is %.2lf meters.\n%.2lf percent of the region is under water.\n\n", btm + ele, num / n / m * 100); } }