UVA617 LA5463 POJ1310 HDU1380 ZOJ1270 Nonstop Travel【序列处理】

Nonstop Travel
Time Limit: 1000MS Memory Limit: 10000K
Total Submissions: 577 Accepted: 187

Description

Fast Phil works the late shift and leaves his company’s parking lot at precisely 2:00 AM every morning. His route home is by a straight road which has one or more traffic signals. Phil has always wondered if, given the locations and cycles of each of the traffic signals, are there velocities he can travel home without ever having to speed up or slow down on account of a red light. You are to write a program to satisfy his curiosity.

Your program should find all integer speeds (in miles per hour) which can be used for Phil’s trip home. Each speed is a rate (in miles per hour) he can maintain the moment he leaves the parking lot at 2:00 AM until he arrives home (we assume Phil has a long driveway in which to decelerate) such that he never passes through a red signal. He is allowed to pass throgh a signal at the exact moment it turns from yellow to red, or at the exact moment a red signal turns green. Since Phil is a relatively law-abiding citizen, you need only consider speeds less than or equal to 60 mph. Likewise, Phil isn’t interested in travelling too slowly, so you should not consider speeds lower than 30 mph.

Input

Input will consist of one or more sets of data describing a set of traffic signals, followed by the integer -1. The first integer in each set will contain the value N (specifying the number of traffic signals). N will be no larger than 6. This value will be followed by N sets of numbers, each containing values (in order) for L, G, Y and R. L is a positive real number indicating the location of a traffic signal, in miles, from the parking lot. G, Y and R are the lengths of time (in seconds) of the green, yellow, and red periods of the corresponding traffic signal’s cycle. Phil has learned from an informant in the Highway Department that all N traffic signals start their green period precisely at 2:00 AM.

Output

Output should consist of the input case number (starting with 1) followed by a list of all valid integer speeds Phil may drive to avoid the red signals. Consecutive integer speeds should be specified in interval notation of the form L-H, where L and H are the lowest and highest speeds for the interval. Intervals of the form L-L (that is, an interval of length 1) shold just be written as L. Intervals should be separated by commas. If there are no valid speeds, you program should display the phrase No acceptable speeds. The Expected Output below illustrates this format.

Sample Input

1
5.5 40 8 25

3
10.7 10 2 75
12.5 12 5 57
17.93 15 4 67

-1

Sample Output

Case 1: 30, 32-33, 36-38, 41-45, 48-54, 59-60
Case 2: No acceptable speeds.

Source

North Central North America 1997

问题链接UVA617 LA5463 POJ1310 HDU1380 ZOJ1270 Nonstop Travel
问题简述:(略)
问题分析:序列处理问题,不解释。
程序说明:(略)
参考链接:(略)
题记:(略)

AC的C 语言程序如下:

/* UVA617 LA5463 POJ1310 HDU1380 ZOJ1270 Nonstop Travel */#include <iostream>#include <vector>#include <cstdio>#include <cmath>using namespace std;const double EPS = 1e-9;const int N = 60;int a[N   1];int main(){    int k = 0, n;    while (~scanf("%d", &n) && n != -1) {        for (int i = 30 ; i <= 60; i  ) a[i] = 1;        for (int i = 1; i <= n; i  ) {            double l;            int g, y, r;            scanf("%lf%d%d%d", &l, &g, &y, &r);            for (int i = 30 ; i <= 60; i  )                if (a[i]) {                    double t = l * 3600 / i;                    int sum = g   y   r;                    t -= int(t / sum) * sum;                    if (abs(t - sum) < EPS) t = 0;                    if (t - (g   y) > 0) a[i] = 0;                }        }        vector<pair<int, int> > ans;        for (int i = 30 ; i <= 60; i  ) {            if (a[i]) {                if (ans.empty()) ans.push_back({i, i});                else {                    if (i - ans.back().second == 1)                        ans[ans.size() - 1].second  ;                    else                        ans.push_back({i, i});                }            }        }        if (ans.empty())            printf("Case %d: No acceptable speeds.\n",   k);        else {            printf("Case %d:",   k);            int end = ans.size();            for (int i = 0; i < end; i  ) {                if(ans[i].first == ans[i].second)                    printf(" %d", ans[i].first);                else                    printf(" %d-%d", ans[i].first, ans[i].second);                putchar(i == end - 1 ? '\n' : ',');            }        }    }    return 0;}

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