题目意思很容易理解,学校有n个社团,每个社团只给编号从a到b 的发传单,而且只给隔了c的人发,问最后谁收到的传单是单数,输出他的编号和收到的传单数量。

昨天做这题的时候看见很多人过了,感觉不会很难,但是打死都想不出来,看了别人的思路,一下子就想通了。这里我简要说一下,用二分,我们可以很容易求出一段区间里的总的传单数,因为保证最多有一个是单数,我们就看单数在哪边。

下面是java代码,刚开始学java,代码不是很简洁。

import java.util.Scanner;

public class Main {
  static long[] a = new long[20005];
  static long[] b = new long[20005];
  static long[] c = new long[20005];
  public static void main(String[] args) {
    Scanner cin = new Scanner(System.in);
    while (cin.hasNext()) {
      int n = cin.nextInt();
      for (int i = 1; i <= n; i++) {
        a[i] = cin.nextLong();
        b[i] = cin.nextLong();
        c[i] = cin.nextLong();
      }
      long r = Integer.MAX_VALUE, l = 0;
      while (l < r) {
        long mid = (l+r)>>1;
        long sum = 0;
        for (int i = 1; i <= n; i++) {
          long minnum;
          if (mid <= b[i])
            minnum = mid;
          else 
            minnum = b[i];
          if (minnum >= a[i]) {
            sum += (minnum - a[i])/c[i] + 1;
          }
        }
        if (sum%2 == 1)
          r = mid;
        else l = mid+1;
      }
      if (l == Integer.MAX_VALUE) {
        System.out.println("DC Qiang is unhappy.");
        continue;
      }
      long ans = 0;
      for (int i = 1; i <= n; i++) {
        if (l >= a[i] && l <= b[i]) {
          if ((l - a[i]) % c[i] == 0)
            ans += 1;
        }
      }
      System.out.println(l + " " + ans);
    }
    cin.close();
  }
}