Sliding Window
| Time Limit: 12000MS | Memory Limit: 65536K | |
| Total Submissions: 63635 | Accepted: 18150 | |
| Case Time Limit: 5000MS | ||
Description
An array of size n ≤ 106 is given to you. There is a sliding window of size k which is moving from the very left of the array to the very right. You can only see the k numbers in the window. Each time the sliding window moves rightwards by one position. Following is an example:
The array is [1 3 -1 -3 5 3 6 7], and k is 3.
The array is [1 3 -1 -3 5 3 6 7], and k is 3.
| Window position | Minimum value | Maximum value |
|---|---|---|
| [1 3 -1] -3 5 3 6 7 | -1 | 3 |
| 1 [3 -1 -3] 5 3 6 7 | -3 | 3 |
| 1 3 [-1 -3 5] 3 6 7 | -3 | 5 |
| 1 3 -1 [-3 5 3] 6 7 | -3 | 5 |
| 1 3 -1 -3 [5 3 6] 7 | 3 | 6 |
| 1 3 -1 -3 5 [3 6 7] | 3 | 7 |
Your task is to determine the maximum and minimum values in the sliding window at each position.
Input
The input consists of two lines. The first line contains two integers n and k which are the lengths of the array and the sliding window. There are n integers in the second line.
Output
There are two lines in the output. The first line gives the minimum values in the window at each position, from left to right, respectively. The second line gives the maximum values.
Sample Input
8 3 1 3 -1 -3 5 3 6 7
Sample Output
-1 -3 -3 -3 3 3 3 3 5 5 6 7
Source
POJ Monthly--2006.04.28, Ikki
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单调队列,顾名思义就是其中的元素单调递增或单调递减的队列。
在本题中,单调队列用来求在一段长度为n的数列中每段长度为k的子数列中的最大值和最小值。
去维护一段长为k的单调队列
对于新加入的数,要令其在队列中满足单调递增或递减;之后再排出在单调队列范围以外的head,此时队首元素即为数列中一段子数列的最大或最小值。具体看代码:
1 #include<stdio.h> 2 #include<string.h> 3 #define maxn 1000010 4 struct node{ 5 int pos,val; 6 }; 7 node maxque[maxn]; 8 node minque[maxn]; 9 int read(); 10 void getmax(); 11 void getmin(); 12 int n,m,a[maxn],ma[maxn],mi[maxn],op; 13 int main(){ 14 n=read();m=read(); 15 for(int i=1;i<=n;i++) a[i]=read(); 16 getmax(); 17 getmin(); 18 for(int i=1;i<=op;i++) printf("%d ",mi[i]); 19 putchar(' '); 20 for(int i=1;i<=op;i++) printf("%d ",ma[i]); 21 return 0; 22 } 23 void getmax(){ 24 int i,head=1,tail=0; 25 op=0; 26 for(i=1;i<m;i++){ 27 while(head<=tail&&maxque[tail].val<a[i]) tail--; 28 maxque[++tail].pos=i;maxque[tail].val=a[i]; 29 } 30 for(;i<=n;i++){ 31 while(head<=tail&&maxque[tail].val<a[i]) tail--; 32 maxque[++tail].pos=i;maxque[tail].val=a[i]; 33 while(maxque[head].pos<i+1-m) head++; 34 ma[++op]=maxque[head].val; 35 } 36 } 37 void getmin(){ 38 int i,head=1,tail=0; 39 op=0; 40 for(i=1;i<m;i++){ 41 while(head<=tail&&minque[tail].val>a[i]) tail--; 42 minque[++tail].pos=i;minque[tail].val=a[i]; 43 } 44 for(;i<=n;i++){ 45 while(head<=tail&&minque[tail].val>a[i]) tail--; 46 minque[++tail].pos=i;minque[tail].val=a[i]; 47 while(minque[head].pos<i+1-m) head++; 48 mi[++op]=minque[head].val; 49 } 50 } 51 int read(){ 52 int ans=0,f=1;char c=getchar(); 53 while('0'>c||c>'9'){if(c=='-')f=-1;c=getchar();} 54 while('0'<=c&&c<='9')ans=ans*10+c-48,c=getchar();return ans*f; 55 }