码迷,mamicode.com
首页 > 其他好文 > 详细

ZOJ2112--Dynamic Rankings (动态区间第k大)

时间:2014-11-24 22:27:40      阅读:416      评论:0      收藏:0      [点我收藏+]

标签:style   blog   http   io   ar   color   os   sp   for   

Dynamic Rankings

Time Limit: 10 Seconds      Memory Limit: 32768 KB

The Company Dynamic Rankings has developed a new kind of computer that is no longer satisfied with the query like to simply find the k-th smallest number of the given N numbers. They have developed a more powerful system such that for N numbers a[1], a[2], ..., a[N], you can ask it like: what is the k-th smallest number of a[i], a[i+1], ..., a[j]? (For some i<=j, 0<k<=j+1-i that you have given to it). More powerful, you can even change the value of some a[i], and continue to query, all the same.

Your task is to write a program for this computer, which

- Reads N numbers from the input (1 <= N <= 50,000)

- Processes M instructions of the input (1 <= M <= 10,000). These instructions include querying the k-th smallest number of a[i], a[i+1], ..., a[j] and change some a[i] to t.


Input

The first line of the input is a single number X (0 < X <= 4), the number of the test cases of the input. Then X blocks each represent a single test case.

The first line of each block contains two integers N and M, representing N numbers and M instruction. It is followed by N lines. The (i+1)-th line represents the number a[i]. Then M lines that is in the following format

Q i j k or
C i t

It represents to query the k-th number of a[i], a[i+1], ..., a[j] and change some a[i] to t, respectively. It is guaranteed that at any time of the operation. Any number a[i] is a non-negative integer that is less than 1,000,000,000.

There‘re NO breakline between two continuous test cases.


Output

For each querying operation, output one integer to represent the result. (i.e. the k-th smallest number of a[i], a[i+1],..., a[j])

There‘re NO breakline between two continuous test cases.


Sample Input

2
5 3
3 2 1 4 7
Q 1 4 3
C 2 6
Q 2 5 3
5 3
3 2 1 4 7
Q 1 4 3
C 2 6
Q 2 5 3


Sample Output

3
6
3
6

主席树动态第k大基本可以手写,,但是感觉理解还不是很深。另外定义两个数组,一个用来新建一颗主席树,所有修改的结果都在这个上面进行,而另一个是记录中间值,相当于temp的效果,不改变原始数组。。(挖个坑)

附主席树专题链接:http://acm.hust.edu.cn/vjudge/contest/view.action?cid=63941#overview

  1 #include <cstdio>
  2 #include <cstdlib>
  3 #include <cstring>
  4 #include <algorithm>
  5 #include <iostream>
  6 using namespace std;
  7 typedef long long ll;
  8 const int maxn = 5e4+10;
  9 int n,m,tot,idx;
 10 ll a[maxn],vec[maxn*2];
 11 struct
 12 {
 13     int x,y,k,flag,idx;
 14 } Q[maxn];
 15 
 16 //   主席树
 17 int lson[maxn*50],rson[maxn*50],c[maxn*50],root[maxn]; //依次为左儿子 右儿子 线段树  根节点
 18 int build (int l,int r)
 19 {
 20     int root = tot++;
 21     c[root] = 0;
 22     if (l != r)
 23     {
 24         int mid = (l + r) >> 1;
 25         lson[root] = build(l,mid);
 26         rson[root] = build(mid+1,r);
 27     }
 28     return root;
 29 }
 30 int update(int root,int pos,int val)
 31 {
 32     int new_root = tot++;
 33     int tmp = new_root;
 34     int l = 1,r = idx;
 35     c[new_root] = c[root] + val;
 36     while (l < r)
 37     {
 38         int mid = (l + r) >> 1;
 39         if (pos <= mid)
 40         {
 41             rson[new_root] = rson[root];
 42             root = lson[root];
 43             lson[new_root] = tot++;
 44             new_root = lson[new_root];
 45             r = mid;
 46         }
 47         else
 48         {
 49             lson[new_root] = lson[root];
 50             root = rson[root];
 51             rson[new_root] = tot++;
 52             new_root = rson[new_root];
 53             l = mid + 1;
 54         }
 55         c[new_root] = c[root] + val;
 56     }
 57     return tmp;
 58 }
 59 //  树状数组维护
 60 int s[maxn],use[maxn];
 61 inline int lowbit (int x)
 62 {
 63     return x & -x;
 64 }
 65 void add(int k,int pos,int d)
 66 {
 67     while (k <= n)
 68     {
 69         s[k] = update(s[k],pos,d);
 70         k += lowbit(k);
 71     }
 72 }
 73 int sum(int pos)
 74 {
 75     int res = 0;
 76     while (pos)
 77     {
 78         res += c[lson[use[pos]]];
 79         pos -= lowbit(pos);
 80     }
 81     return res;
 82 }
 83 int query(int left,int right,int k)
 84 {
 85     int l_root = root[left-1];
 86     int r_root = root[right];
 87     for (int i = left-1; i > 0; i -= lowbit(i))
 88         use[i] = s[i];
 89     for (int i = right; i > 0; i -= lowbit(i))
 90         use[i] =s[i];
 91     int l = 1,r = idx;
 92     while (l < r)
 93     {
 94         int t = sum(right) - sum(left-1) + c[lson[r_root]] - c[lson[l_root]];
 95         int mid = (l + r) >> 1;
 96         if (t >= k)
 97         {
 98             for (int i = left-1; i > 0; i -= lowbit(i))
 99                 use[i] = lson[use[i]];
100             for (int i = right; i > 0; i -= lowbit(i))
101                 use[i] = lson[use[i]];
102             l_root = lson[l_root];
103             r_root = lson[r_root];
104             r = mid;
105         }
106         else
107         {
108             for (int i = left-1; i > 0; i -= lowbit(i))
109                 use[i] = rson[use[i]];
110             for (int i = right; i > 0; i -= lowbit(i))
111                 use[i] = rson[use[i]];
112             l_root = rson[l_root];
113             r_root = rson[r_root];
114             k -= t;
115             l = mid + 1;
116         }
117     }
118     return l;
119 }
120 
121 void read()
122 {
123     scanf ("%d%d",&n,&m);
124     for (int i = 1; i <= n; i++)
125     {
126         scanf ("%lld",a+i);
127         vec[idx++] = a[i];
128     }
129     for (int i = 0; i < m; i++)
130     {
131         char op[3];
132         scanf ("%s",op);
133         if (op[0] == C)
134         {
135             scanf ("%d%d",&Q[i].x,&Q[i].y);
136             Q[i].flag = 0;
137             vec[idx++] = Q[i].y;
138         }
139         if (op[0] == Q)
140         {
141             scanf ("%d%d%d",&Q[i].x,&Q[i].y,&Q[i].k);
142             Q[i].flag = 1;
143         }
144     }
145 }
146 int main(void)
147 {
148 #ifndef ONLINE_JUDGE
149     freopen("in.txt","r",stdin);
150 #endif
151     int T;
152     scanf ("%d",&T);
153     while (T--)
154     {
155         idx = tot = 0;
156         read();
157         sort(vec,vec+idx);                   //离散化
158         idx = unique(vec,vec+idx) - vec;
159         root[0] = build(1,idx);
160         for (int i = 1; i <= n; i++)
161         {
162             int tmp = lower_bound(vec,vec+idx,a[i]) - vec ;
163             root[i] = update(root[i-1],tmp,1);
164         }
165         for (int i = 0; i <= n; i++)
166             s[i] = root[0];
167         for (int i = 0; i < m; i++)
168         {
169             if (Q[i].flag == 0)
170             {
171                 int tmp1 = lower_bound(vec,vec+idx,a[Q[i].x]) - vec ;
172                 int tmp2 = lower_bound(vec,vec+idx,Q[i].y) - vec ;
173                 add(Q[i].x,tmp1,-1);
174                 add(Q[i].x,tmp2,1);
175                 a[Q[i].x] = Q[i].y;
176             }
177             if (Q[i].flag == 1)
178             {
179                 printf("%lld\n",vec[query(Q[i].x,Q[i].y,Q[i].k)]);
180             }
181         }
182     }
183     return 0;
184 }

 

ZOJ2112--Dynamic Rankings (动态区间第k大)

标签:style   blog   http   io   ar   color   os   sp   for   

原文地址:http://www.cnblogs.com/oneshot/p/4119616.html

(0)
(0)
   
举报
评论 一句话评论(0
登录后才能评论!
© 2014 mamicode.com 版权所有  联系我们:gaon5@hotmail.com
迷上了代码!