PAT1117:Eddington Number
1117. Eddington Number(25)
British astronomer Eddington liked to ride a bike. It is said that in order to show off his skill, he has even defined an "Eddington number", E -- that is, the maximum integer E such that it is for E days that one rides more than E miles. Eddington's own E was 87.
Now given everyday's distances that one rides for N days, you are supposed to find the corresponding E (<=N).
Input Specification:
Each input file contains one test case. For each case, the first line gives a positive integer N(<=105), the days of continuous riding. Then N non-negative integers are given in the next line, being the riding distances of everyday.
Output Specification:
For each case, print in a line the Eddington number for these N days.
Sample Input:10 6 7 6 9 3 10 8 2 7 8Sample Output:
6
思路
逻辑题 + 排序
E天骑行距离超过E英里的数为爱丁顿数。先给给N天的骑行距离,求最大的爱丁顿数。
1.降序排序
2.第i天距离大于i,当前最大爱丁顿数就为i
3.迭代找到最大。
代码
#include<iostream> #include<vector> #include<algorithm> using namespace std; vector<int> number; bool cmp(int a,int b) { return a > b; } int main() { int N; while(cin >> N) { number.resize(N); for(int i = 0;i < N;i++) cin >> number[i]; sort(number.begin(),number.end(),cmp); int maxnum = 0,val = 1; while(maxnum <= N && number[val - 1] > val) { maxnum++; val++; } cout << maxnum; } }