Cube
Time Limit: 2000/1000 MS (Java/Others) Memory Limit: 131072/65536 K (Java/Others)
Total Submission(s): 1166 Accepted Submission(s): 580
Problem Description
Given an N*N*N cube A, whose elements are either 0 or 1. A[i, j, k] means the number in the i-th row , j-th column and k-th layer. Initially we have A[i, j, k] = 0 (1 <= i, j, k <= N).
We define two operations, 1: “Not” operation that we change the A[i, j, k]=!A[i, j, k]. that means we change A[i, j, k] from 0->1,or 1->0. (x1<=i<=x2,y1<=j<=y2,z1<=k<=z2).
0: “Query” operation we want to get the value of A[i, j, k].
We define two operations, 1: “Not” operation that we change the A[i, j, k]=!A[i, j, k]. that means we change A[i, j, k] from 0->1,or 1->0. (x1<=i<=x2,y1<=j<=y2,z1<=k<=z2).
0: “Query” operation we want to get the value of A[i, j, k].
Input
Multi-cases.
First line contains N and M, M lines follow indicating the operation below.
Each operation contains an X, the type of operation. 1: “Not” operation and 0: “Query” operation.
If X is 1, following x1, y1, z1, x2, y2, z2.
If X is 0, following x, y, z.
First line contains N and M, M lines follow indicating the operation below.
Each operation contains an X, the type of operation. 1: “Not” operation and 0: “Query” operation.
If X is 1, following x1, y1, z1, x2, y2, z2.
If X is 0, following x, y, z.
Output
For each query output A[x, y, z] in one line. (1<=n<=100 sum of m <=10000)
Sample Input
2 5
1 1 1 1 1 1 1
0 1 1 1
1 1 1 1 2 2 2
0 1 1 1
0 2 2 2
Sample Output
1
0
1
Author
alpc32
Source
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zhouzeyong
#include<iostream> #include<cstdio> #include<cstring> using namespace std; const int N=110; int n,m,arr[N][N][N]; int lowbit(int x){ return x&(-x); } void update(int i,int j,int k,int val){ while(i<=n){ int tmpj=j; while(tmpj<=n){ int tmpk=k; while(tmpk<=n){ arr[i][tmpj][tmpk]+=val; tmpk+=lowbit(tmpk); } tmpj+=lowbit(tmpj); } i+=lowbit(i); } } int Sum(int i,int j,int k){ int ans=0; while(i>0){ int tmpj=j; while(tmpj>0){ int tmpk=k; while(tmpk>0){ ans+=arr[i][tmpj][tmpk]; tmpk-=lowbit(tmpk); } tmpj-=lowbit(tmpj); } i-=lowbit(i); } return ans; } int main(){ //freopen("input.txt","r",stdin); while(~scanf("%d%d",&n,&m)){ memset(arr,0,sizeof(arr)); int x1,y1,z1,x2,y2,z2; int op; while(m--){ scanf("%d",&op); if(op==1){ scanf("%d%d%d%d%d%d",&x1,&y1,&z1,&x2,&y2,&z2); update(x2+1, y2+1, z2+1, 1); update(x1, y2+1, z2+1, 1); update(x2+1, y1, z2+1, 1); update(x2+1, y2+1, z1, 1); update(x1, y1, z2+1, 1); update(x2+1, y1, z1, 1); update(x1, y2+1, z1, 1); update(x1, y1, z1, 1); }else { scanf("%d%d%d",&x1,&y1,&z1); printf("%d ",Sum(x1,y1,z1)&1); //该点的值就是sum(x,y) } } } return 0; }