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  • HDU 2155 Matrix

    Matrix

    Time Limit: 3000ms
    Memory Limit: 65536KB
    This problem will be judged on PKU. Original ID: 2155
    64-bit integer IO format: %lld      Java class name: Main
     
    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

     
    解题:二维线段树,第一次玩这鬼玩意,调试了N久。。。挫。。。。
     
     1 #include <iostream>
     2 #include <cstdio>
     3 #include <cstring>
     4 #include <cmath>
     5 #include <algorithm>
     6 #include <climits>
     7 #include <vector>
     8 #include <queue>
     9 #include <cstdlib>
    10 #include <string>
    11 #include <set>
    12 #include <stack>
    13 #define LL long long
    14 #define pii pair<int,int>
    15 #define INF 0x3f3f3f3f
    16 using namespace std;
    17 const int maxn = 1001;
    18 struct subtree{
    19     int lt,rt;
    20     bool val;
    21 };
    22 struct node{
    23     int lt,rt;
    24     subtree sb[maxn<<2];
    25 };
    26 node tree[maxn<<2];
    27 int n,m,ans;
    28 void sub(int lt,int rt,int v,subtree *sb){
    29     sb[v].lt = lt;
    30     sb[v].rt = rt;
    31     sb[v].val = false;
    32     if(lt == rt) return;
    33     int mid = (lt + rt)>>1;
    34     sub(lt,mid,v<<1,sb);
    35     sub(mid+1,rt,v<<1|1,sb);
    36 }
    37 void build(int lt,int rt,int v){
    38     tree[v].lt = lt;
    39     tree[v].rt = rt;
    40     sub(1,n,1,tree[v].sb);
    41     if(lt == rt) return;
    42     int mid = (lt + rt)>>1;
    43     build(lt,mid,v<<1);
    44     build(mid+1,rt,v<<1|1);
    45 }
    46 void subupdate(int lt,int rt,int v,subtree *sb){
    47     if(sb[v].lt >= lt && sb[v].rt <= rt){
    48         sb[v].val ^= 1;
    49         return;
    50     }
    51     if(lt <= tree[v<<1].rt) subupdate(lt,rt,v<<1,sb);
    52     if(rt >= tree[v<<1|1].lt) subupdate(lt,rt,v<<1|1,sb);
    53 }
    54 void update(int lt,int rt,int y1,int y2,int v){
    55     if(tree[v].lt >= lt && tree[v].rt <= rt){
    56         subupdate(y1,y2,1,tree[v].sb);
    57         return;
    58     }
    59     if(lt <= tree[v<<1].rt) update(lt,rt,y1,y2,v<<1);
    60     if(rt >= tree[v<<1|1].lt) update(lt,rt,y1,y2,v<<1|1);
    61 
    62 }
    63 void subquery(int y,int v,subtree *sb){
    64     ans ^= sb[v].val;
    65     if(sb[v].lt == sb[v].rt) return;
    66     if(y <= sb[v<<1].rt) subquery(y,v<<1,sb);
    67     else subquery(y,v<<1|1,sb);
    68 }
    69 void query(int x,int y,int v){
    70     subquery(y,1,tree[v].sb);
    71     if(tree[v].lt == tree[v].rt) return;
    72     if(x <= tree[v<<1].rt) query(x,y,v<<1);
    73     else query(x,y,v<<1|1);
    74 }
    75 int main(){
    76     int t,x1,y1,x2,y2;
    77     char s[5];
    78     scanf("%d",&t);
    79     while(t--){
    80         scanf("%d %d",&n,&m);
    81         build(1,n,1);
    82         for(int i = 0; i < m; ++i){
    83             scanf("%s",s);
    84             if(s[0] == 'Q'){
    85                 ans = 0;
    86                 scanf("%d %d",&x1,&y1);
    87                 query(x1,y1,1);
    88                 printf("%d
    ",ans);
    89             }else if(s[0] == 'C'){
    90                 scanf("%d %d %d %d",&x1,&y1,&x2,&y2);
    91                 update(x1,x2,y1,y2,1);
    92             }
    93         }
    94         puts("");
    95     }
    96     return 0;
    97 }
    View Code
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  • 原文地址:https://www.cnblogs.com/crackpotisback/p/4014495.html
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