Time Limit: 5000MS | Memory Limit: 65536K | |
Total Submissions: 6668 | Accepted: 2226 | |
Case Time Limit: 2000MS |
Description
Your friend, Jackson is invited to a TV show called SuperMemo in which the participant is told to play a memorizing game. At first, the host tells the participant a sequence of numbers, {A1, A2, ... An}. Then the host performs a series of operations and queries on the sequence which consists:
- ADD x y D: Add D to each number in sub-sequence {Ax ... Ay}. For example, performing "ADD 2 4 1" on {1, 2, 3, 4, 5} results in {1, 3, 4, 5, 5}
- REVERSE x y: reverse the sub-sequence {Ax ... Ay}. For example, performing "REVERSE 2 4" on {1, 2, 3, 4, 5} results in {1, 4, 3, 2, 5}
- REVOLVE x y T: rotate sub-sequence {Ax ... Ay} T times. For example, performing "REVOLVE 2 4 2" on {1, 2, 3, 4, 5} results in {1, 3, 4, 2, 5}
- INSERT x P: insert P after Ax. For example, performing "INSERT 2 4" on {1, 2, 3, 4, 5} results in {1, 2, 4, 3, 4, 5}
- DELETE x: delete Ax. For example, performing "DELETE 2" on {1, 2, 3, 4, 5} results in {1, 3, 4, 5}
- MIN x y: query the participant what is the minimum number in sub-sequence {Ax ... Ay}. For example, the correct answer to "MIN 2 4" on {1, 2, 3, 4, 5} is 2
To make the show more interesting, the participant is granted a chance to turn to someone else that means when Jackson feels difficult in answering a query he may call you for help. You task is to watch the TV show and write a program giving the correct answer to each query in order to assist Jackson whenever he calls.
Input
The first line contains n (n ≤ 100000).
The following n lines describe the sequence.
Then follows M (M ≤ 100000), the numbers of operations and queries.
The following M lines describe the operations and queries.
Output
For each "MIN" query, output the correct answer.
Sample Input
5 1 2 3 4 5 2 ADD 2 4 1 MIN 4 5
Sample Output
5
Source
POJ Founder Monthly Contest – 2008.04.13, Yao Jinyu先是码了一上午,然后调了一下午+一晚上,总算是过掉了。内牛满面啊。。。
splay也算入门了吧。splay果然强大,各种神操作都不在话下。
题目大意:给一个序列,6种操作:
1、ADD a b c:将区间[a,b]都加c;
2、RESERVE a b:将区间[a,b]翻转;
3、REVOLVE a b c:将区间[a,b]循环右移c位;(题目描述可能不是很清楚,不过yy一下也是可以的,注意c可能为负数,即可能要求左移)
4、DEL a:删除第a个位置的数;
5、INSERT a b:在第a个数后面加上数b;
6、MIN a b:询问区间[a,b]的最小值;
好丰富的操作啊啊啊
题目分析:所有操作逐一分析:
1、很常规的操作,lazy标记即可
2、很常规的操作,lazy标记即可
3、循环右移操作,先将右移长度对区间长度取模,得到实际的右移长度c,将区间分成2部分:[a,a+c - 1],[a + c,b],右移的实际效果其实就是将前面2个区间交换,这实际就是应该简单的剪切,粘贴操作,将前面一个区间先剪切下来,在粘贴到后一个区间的后面即可。
其实还有一个更简单的做法,REVOLVE[a,b] = REVERSE[a,b] + REVERSE[a,a + c - 1] + REVERSE[a + c,b],很神奇。。。
4、删除操作,也不难,就是将要删除的节点splay到树根,再将要删除的节点的下一个节点splay到根的右子树,删除树根,合并左右子树即可。
5、插入操作,将a节点splay到树根,a+1节点splay到根的右子树,再把新建的节点插到右子树的左子树上。
6、查询操作,不解释。
详情请见代码:
#include <iostream>
#include<cstdio>
#include<cstring>
#include<algorithm>
using namespace std;
const int N = 100005;
const int INF = 0x7fffffff;
int m,n;
int next[N + N];
struct node
{
int l,r,f,mn,add,lazy,key,size;
}tree[N + N];
int Min(int a,int b)
{
return a > b?b:a;
}
void show(int rt)
{
if(rt)
{
show(tree[rt].l);
printf("结点%2d:左儿子 %2d 右儿子 %2d 父结点 %2d key = %2d size = %2d ,mn = %2d\n",rt,tree[rt].l,tree[rt].r,tree[rt].f,tree[rt].key,tree[rt].size,tree[rt].mn);
show(tree[rt].r);
}
}
void debug(int rt)
{
printf("root: %d\n",rt);
show(rt);
}
void init()
{
tree[0].size = tree[0].lazy = tree[0].add = 0;
tree[0].key = tree[0].mn = INF;
for(int i = 0;i < N + N;i ++)
next[i] = i + 1;
}
int newnode()
{
int p = next[0];
next[0] = next[p];
tree[p].lazy = tree[p].add = 0;
tree[p].l = tree[p].r = tree[p].f = tree[p].mn = 0;
tree[p].size = 1;
return p;
}
void delnode(int p)
{
next[p] = next[0];
next[0] = p;
}
void pushup(int rt)
{
if(rt)
{
tree[rt].size = tree[tree[rt].l].size + tree[tree[rt].r].size + 1;
tree[rt].mn = Min(tree[rt].key,Min(tree[tree[rt].l].mn,tree[tree[rt].r].mn));
}
}
void pushdown(int rt)
{
if(!rt)
return;
int ls = tree[rt].l;
int rs = tree[rt].r;
if(tree[rt].add)
{
if(ls)
{
tree[ls].add += tree[rt].add;
tree[ls].key += tree[rt].add;
tree[ls].mn += tree[rt].add;
}
if(rs)
{
tree[rs].add += tree[rt].add;
tree[rs].mn += tree[rt].add;
tree[rs].key += tree[rt].add;
}
tree[rt].add = 0;
}
if(tree[rt].lazy)
{
swap(tree[rt].l,tree[rt].r);
if(ls)
tree[ls].lazy ^= 1;
if(rs)
tree[rs].lazy ^= 1;
tree[rt].lazy = 0;
}
}
void zig(int x)
{
int p = tree[x].f;
pushdown(p);
pushdown(x);
tree[p].l = tree[x].r;
if(tree[x].r)
tree[tree[x].r].f = p;
pushup(p);
tree[x].r = p;
tree[x].f = tree[p].f;
pushup(x);
tree[p].f = x;
if(tree[x].f == 0)
return;
if(tree[tree[x].f].l == tree[x].r)
tree[tree[x].f].l = x;
else
tree[tree[x].f].r = x;
}
void zag(int x)
{
int p = tree[x].f;
pushdown(p);
pushdown(x);
tree[p].r = tree[x].l;
if(tree[x].l)
tree[tree[x].l].f = p;
pushup(p);
tree[x].l = p;
tree[x].f = tree[p].f;
pushup(x);
tree[p].f = x;
if(tree[p].f == 0)
return;
if(tree[tree[x].f].l == tree[x].l)
tree[tree[x].f].l = x;
else
tree[tree[x].f].r = x;
}
int splay(int x,int goal)
{
pushdown(x);
int p;//parent
while(tree[x].f != goal)
{
p = tree[x].f;
int g = tree[p].f;//grandparent
if(g == goal)
{
if(tree[p].l == x)
zig(x);
if(tree[p].r == x)
zag(x);
}
else
{
if(tree[g].l == p && tree[p].l == x)//ll
{
zig(p);
zig(x);
}
else if(tree[g].l == p && tree[p].r == x)//lr
{
zag(x);
zig(x);
}
else if(tree[g].r == p && tree[p].r == x)//rr
{
zag(p);
zag(x);
}
else if(tree[g].r == p && tree[p].l == x)//rl
{
zig(x);
zag(x);
}
}
}
pushup(x);
return x;
}
int build(int l,int r,int fa)
{
if(l > r)
return 0;
int mid = (l + r)>>1;
int p = newnode();
tree[p].l = build(l,mid - 1,p);
scanf("%d",&tree[p].key);
tree[p].mn = tree[p].key;
tree[p].f = fa;
tree[p].r = build(mid + 1,r,p);
pushup(p);
return p;
}
void prepare(int &root)
{
root = newnode();//涉及到区间操作,所以左右各加1个点
tree[root].mn = INF;
tree[root].key = INF;
tree[root].r = newnode();
tree[tree[root].r].mn = INF;
tree[tree[root].r].key = INF;
tree[tree[root].r].f = root;
tree[tree[root].r].l = build(1,n,tree[root].r);
pushup(tree[root].r);
pushup(root);
}
int find(int pos,int rt)
{
if(!rt)
return 0;
pushdown(rt);
if(tree[tree[rt].l].size == pos - 1)
return rt;
if(tree[tree[rt].l].size >= pos)
return find(pos,tree[rt].l);
else
return find(pos - tree[tree[rt].l].size - 1,tree[rt].r);
}
int getMax(int rt)
{
pushdown(rt);
while(tree[rt].r)
{
rt = tree[rt].r;
pushdown(rt);
}
return rt;
}
int getMin(int rt)
{
pushdown(rt);
while(tree[rt].l)
{
rt = tree[rt].l;
pushdown(rt);
}
return rt;
}
void Rotate_interval(int a,int b,int &root)
{
int l = find(a,root);
int r = find(b + 2,root);
root = splay(l,0);
tree[root].r = splay(r,root);
pushup(tree[root].r);
pushup(root);
}
void Add(int a,int b,int c,int &root)
{
Rotate_interval(a,b,root);
tree[tree[tree[root].r].l].add += c;
tree[tree[tree[root].r].l].mn += c;
tree[tree[tree[root].r].l].key += c;
}
void Reverse(int a,int b,int &root)
{
Rotate_interval(a,b,root);
tree[tree[tree[root].r].l].lazy ^= 1;
}
void Revolve(int a,int b,int c,int &root)//右移操作
{
Rotate_interval(a,b,root);
int len = b - a + 1;
c = (c % len + len) % len;
if(c == 0)
return;
c = len - c;
// Reverse(a,a + c - 1,root);右移操作其实等价于这3个翻转操作
// Reverse(a + c,b,root);如果看得出来就很简单了
// Reverse(a,b,root);如果看不出来就用下面的笨方法:
int p = find(c + 1,tree[tree[root].r].l);//tree[tree[root].r].l是操作区间的root
tree[tree[root].r].l = splay(p,tree[root].r);//将操作区间中的第c+1个数splay到区间的root
int tmp = tree[tree[tree[root].r].l].l;//那么这个区间的root的左子树就是要移动的区间
tree[tree[tree[root].r].l].l = 0;//那么就是应该剪切粘贴的过程,代码看不清楚,在纸上画画就ok
int nt = getMax(tree[tree[root].r].l);
tree[tree[root].r].l = splay(nt,tree[root].r);
tree[tree[tree[root].r].l].r = tmp;
tree[tmp].f = tree[tree[root].r].l;
pushup(tree[tree[root].r].l);
pushup(tree[root].r);
pushup(root);
}
void Insert(int a,int b,int &root)
{
int p = newnode();
tree[p].mn = b;
tree[p].key = b;
int x = find(a + 1,root);
root = splay(x,0);
x = find(a + 2,root);
tree[root].r = splay(x,root);
tree[p].f = tree[root].r;
tree[tree[root].r].l = p;
root = splay(p,0);
pushup(root);
}
void Del(int a,int &root)
{
int x = find(a + 1,root);
root = splay(x,0);
x = find(a + 2,root);
tree[root].r = splay(x,root);
tree[tree[root].l].f = tree[root].r;
tree[tree[root].r].l = tree[root].l;
x = root;
root = tree[x].r;
delnode(x);
tree[root].f = 0;
pushup(root);
}
void Min_query(int a,int b,int &root)
{
Rotate_interval(a,b,root);
printf("%d\n",tree[tree[tree[root].r].l].mn);
}
int main()
{
int root;
int a,b,c;
char op[20];
while(scanf("%d",&n) != EOF)
{
init();
prepare(root);
scanf("%d",&m);
while(m --)
{
scanf("%s",op);
scanf("%d",&a);
switch(*op)
{
case 'A':
scanf("%d%d",&b,&c);
Add(a,b,c,root);break;
case 'R':
if(op[3] == 'E')
{
scanf("%d",&b);
Reverse(a,b,root);
}
else
{
scanf("%d%d",&b,&c);
Revolve(a,b,c,root);
}
break;
case 'I':
scanf("%d",&b);
Insert(a,b,root);
break;
case 'D':Del(a,root);break;
case 'M':
scanf("%d",&b);
Min_query(a,b,root);
}
}
}
return 0;
}
//4612K 750MS
/*
5
1
2
3
4
5
2
ADD 2 4 1
MIN 4 5
5 1 2 3 4 5
14
MIN 1 1
MIN 2 2
MIN 3 3
MIN 4 4
MIN 5 5
REVOLVE 2 5 2
REVERSE 2 3
REVERSE 4 5
REVERSE 2 5
MIN 1 1
MIN 2 2
MIN 3 3
MIN 4 4
MIN 5 5
8 1 2 3 4 5 6 7 8
30
MIN 2 7
ADD 5 6 -7
MIN 2 7
REVERSE 3 8
MIN 6 8
REVOLVE 1 6 -9
MIN 1 3
DEL 3
MIN 2 4
INSERT 7 5
MIN 5 8
REVOLVE 2 8 11
MIN 6 8
MIN 1 2
ADD 1 2 -5
MIN 1 2
*/
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