CF-595：部分题目总结

题目传送门

A .Yet Another Dividing into Teams

sol：原先是用比较复杂的方法来解的，后来学弟看了一眼，发现不是1就是2，当出现两个人水平相差为1就分成两组，1组全是奇数，1组全是偶数，必然符合题意。

• 思维
  

  #include "bits/stdc++.h"
  using namespace std;
  #define debug puts("what the fuck");
  typedef long long LL;
  typedef pair<int, int> PII;
  const int MAXN = 110;
  bool vis[MAXN];
  int main() {
      int t, n, m;
      scanf("%d", &t);
      while (t--) {
          scanf("%d", &n);
          bool ok = true;
          memset(vis, false, sizeof(vis));
          for (int i = 1; i <= n; i++) {
              scanf("%d", &m);
              vis[m] = true;
              if (vis[m - 1] || vis[m + 1]) ok = false;
          }
          if (ok) puts("1");
          else puts("2");
      }
      return 0;
  }

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B. Books Exchange

sol：很裸的并查集，i和p[i]属于同一个集合，求每个点所在集合的大小

• 并查集
  

  #include "bits/stdc++.h"
  using namespace std;
  #define debug puts("what the fuck");
  typedef long long LL;
  typedef pair<int, int> PII;
  const int MAXN = 2e5 + 10;
  int pre[MAXN], cnt[MAXN];
  int find(int i) {
      if (pre[i] == i) return i;
      return pre[i] = find(pre[i]);
  }
  int main() {
      int t, n, m;
      scanf("%d", &t);
      while (t--) {
          scanf("%d", &n);
          for (int i = 1; i <= n; i++) {
              cnt[i] = 1;
              pre[i] = i;
          }
          for (int i = 1; i <= n; i++) {
              scanf("%d", &m);
              int u = find(i);
              int v = find(m);
              if (u != v) {
                  pre[u] = v;
                  cnt[v] += cnt[u];
              }
          }
          for (int i = 1; i <= n; i++)
              printf("%d ", cnt[find(i)]);
          puts("");
      }
      return 0;
  }

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C1. Good Numbers (easy version)

sol：由于n比较小，所以我们可以暴力罗列good number，pow(3, 10)已经大于n的最大范围10000，所以罗列到3的10次方够了，再组合一下，排序后用二分去搜就好了。

• 暴力组合
  

  #include "bits/stdc++.h"
  using namespace std;
  #define debug puts("what the fuck");
  typedef long long LL;
  typedef pair<int, int> PII;
  int p[20] = {1};
  vector<int> v;
  void init() {
      for (int i = 1; i <= 10; i++)
          p[i] = 3 * p[i - 1];
      for (int i = 1; i <= (1 << 10); i++) {
          int sum = 0;
          for (int j = 0; j <= 10; j++)
              if (i & (1 << j)) sum += p[j];
          v.push_back(sum);
      }
  }
  int main() {
      int t, n;
      scanf("%d", &t);
      init();
      sort(v.begin(), v.end());
      while (t--) {
          scanf("%d", &n);
          printf("%d\n", *lower_bound(v.begin(), v.end(), n));
      }
      return 0;
  }

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C2. Good Numbers (hard version)

sol：细看这题感觉和进制有关，把n转成3进制后找到第一个大于等于n并且所以三进制位不为2的数；

• 进制
  

  #include "bits/stdc++.h"
  using namespace std;
  #define debug puts("what the fuck");
  typedef long long LL;
  typedef pair<int, int> PII;
  int p[60];
  int main() {
      int t;
      LL n, pos;
      scanf("%d", &t);
      while (t--) {
          scanf("%lld", &n);
          memset(p, 0, sizeof(p));
          pos = 0;
          while (n) {
              p[pos++] = n % 3;
              n /= 3;
          }
          int k = pos - 1;
          while (k > 0 && p[k] != 2) k--; // 从高位往低位搜找到第一个2
          for (int i = k - 1; i >= 0; i--) p[i] = 0; // 第k位加1,那么k之前的位可以全部为0了,一定不会小于n
          while (p[k] == 2) { //进位
              p[k] = 0;
              p[++k] ++;
          }
          pos = max(pos, k + 1LL);
          LL sum = 0, pp = 1;
          for (int i = 0; i < pos; i++) {
              if (p[i] == 1) sum += pp;
              pp *= 3;
          }
          printf("%lld\n", sum);
      }
      return 0;
  }

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D. Too Many Segments 

sol：用差分确定覆盖每个点的线段有多少条，对于点i，如果覆盖的线段数量大于k，删掉覆盖该点的右端点最远的线段，可以用优先队列找这样的线段。就是需要两个排序方式。

• 贪心，差分
  

  #include "bits/stdc++.h"
  using namespace std;
  #define debug puts("what the fuck");
  typedef long long LL;
  typedef pair<int, int> PII;
  const int MAXN = 2e5 + 10;
  struct Seg {
      int l, r;
      int index;
      friend bool operator < (Seg a, Seg b) {return a.r < b.r;}
  } a[MAXN];
  priority_queue<Seg> que;
  bool cmp(Seg a, Seg b) {return a.l < b.l;}
  vector<int> ans;
  int cnt[MAXN], pos, sum;
  int main() {
      int n, m;
      scanf("%d%d", &n, &m);
      for (int i = 1; i <= n; i++) {
          scanf("%d%d", &a[i].l, &a[i].r);
          a[i].index = i;
      }
      sort(a + 1, a + 1 + n, cmp);
      for (int i = 1; i <= n; i++) {
          while (pos < a[i].l) sum += cnt[++pos];
          que.push(a[i]);
          sum ++, cnt[a[i].r + 1] --;
          if (sum > m) {
              sum --;
              Seg s = que.top();
              que.pop();
              cnt[s.r + 1] ++;
              ans.push_back(s.index);
          }
      }
      printf("%d\n", ans.size());
      for (auto index : ans) printf("%d ", index);
      return 0;
  }

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E. By Elevator or Stairs?

sol：dp，dp[0][i]表示从a[i]到1的最少时间，dp[1][i]表示从b[i]到1的最少时间。代码中直接把a、b数组当dp[0]和dp[1]来用了；

• 动态规划
  

  #include "bits/stdc++.h"
  using namespace std;
  #define debug puts("what the fuck");
  typedef long long LL;
  typedef pair<int, int> PII;
  const int MAXN = 2e5 + 10;
  int a[MAXN], b[MAXN];
  int main() {
      int n, c;
      scanf("%d%d", &n, &c);
      a[1] = 0, b[1] = c;
      for (int i = 2; i <= n; i++) scanf("%d", &a[i]);
      for (int i = 2; i <= n; i++) scanf("%d", &b[i]);
      for (int i = 1; i <= n; i++) {
          a[i] += min(a[i - 1], b[i - 1]);
          b[i] += min(a[i - 1] + c, b[i - 1]);
          printf("%d ", min(a[i], b[i]));
      }
      return 0;
  }

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