POJ2155 树状数组

时间:2023-03-10 01:25:24
POJ2155 树状数组
Matrix
Time Limit: 3000MS   Memory Limit: 65536K
Total Submissions: 26650   Accepted: 9825

Description

Given an N*N matrix A, whose elements are either 0 or 1. A[i, j] means the number in the i-th row and j-th column. Initially we have A[i, j] = 0 (1 <= i, j <= N).

We can change the matrix in the following way. Given a rectangle whose upper-left corner is (x1, y1) and lower-right corner is (x2, y2), we change all the elements in the rectangle by using "not" operation (if it is a '0' then change it into '1' otherwise change it into '0'). To maintain the information of the matrix, you are asked to write a program to receive and execute two kinds of instructions.

1. C x1 y1 x2 y2 (1 <= x1 <= x2 <= n, 1 <= y1 <= y2 <= n) changes the matrix by using the rectangle whose upper-left corner is (x1, y1) and lower-right corner is (x2, y2). 
2. Q x y (1 <= x, y <= n) querys A[x, y]. 

Input

The first line of the input is an integer X (X <= 10) representing the number of test cases. The following X blocks each represents a test case.

The first line of each block contains two numbers N and T (2 <= N <= 1000, 1 <= T <= 50000) representing the size of the matrix and the number of the instructions. The following T lines each represents an instruction having the format "Q x y" or "C x1 y1 x2 y2", which has been described above.

Output

For each querying output one line, which has an integer representing A[x, y].

There is a blank line between every two continuous test cases.

Sample Input

1

2 10

C 2 1 2 2

Q 2 2

C 2 1 2 1

Q 1 1

C 1 1 2 1

C 1 2 1 2

C 1 1 2 2

Q 1 1

C 1 1 2 1

Q 2 1

Sample Output

1

0

0

1

Source

POJ Monthly,Lou Tiancheng
题意:
一个n*n的矩阵初始每个元素值为0,左上角行列号最小,右下角行列号最大,两种操作:c x1 y1 x2 y2,将区间内的每个元素取非运算,Q x y表示询问xy点的值。
代码:
//可以画个图看一下,每次更新(x1,y1),(x2+1,y1),(x1,y2+1),(x2+1,y2+1)这4个点的值

//时所有的点都不会被影响。求每个点的sum(并不真实),奇数是1,偶数是0.

#include<iostream>

#include<cstdio>

#include<cstring>

using namespace std;

const int maxn=;

int A[maxn][maxn];

 int cas,n,m,x1,x2,y1,y2;

int Lowbit(int x){

    return x&(-x);

}

void Add(int x,int y,int val)

{

    for(int i=x;i<=;i+=Lowbit(i)){

        for(int j=y;j<=;j+=Lowbit(j)){

            A[i][j]+=val;

        }

    }

}

int Query(int x,int y)

{

    int s=;

    for(int i=x;i>;i-=Lowbit(i)){

        for(int j=y;j>;j-=Lowbit(j)){

            s+=A[i][j];

        }

    }

    return s;

}

int main()

{

    scanf("%d",&cas);

    while(cas--){

        scanf("%d%d",&n,&m);

        memset(A,,sizeof(A));

        char ch[];

        while(m--){

            scanf("%s",ch);

            if(ch[]=='C'){

                scanf("%d%d%d%d",&x1,&y1,&x2,&y2);

                Add(x1,y1,);

                Add(x1,y2+,);

                Add(x2+,y2+,);

                Add(x2+,y1,);

            }

            else{

                scanf("%d%d",&x1,&y1);

                int ans=Query(x1,y1);

                //cout<<ans<<endl;

                printf("%d\n",ans&);

            }

        }

        printf("\n");

    }

    return ;

}

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