hduoj Stars 二维树状数组
2011-09-30 18:46 javaspring 阅读(184) 评论(0) 编辑 收藏 举报话说这道题是一道不折不扣的二维树状数组的水题,可是对于我这种菜鸟中的vip来说,却还是纠结了很久很久。。留下做个模板吧。。。。。
题目:
Yifenfei is a romantic guy and he likes to count the stars in the sky.
To make the problem easier,we considerate the sky is a two-dimension plane.Sometimes the star will be bright and sometimes the star will be dim.At first,there is no bright star in the sky,then some information will be given as "B x y" where 'B' represent bright and x represent the X coordinate and y represent the Y coordinate means the star at (x,y) is bright,And the 'D' in "D x y" mean the star at(x,y) is dim.When get a query as "Q X1 X2 Y1 Y2",you should tell Yifenfei how many bright stars there are in the region correspond X1,X2,Y1,Y2.
There is only one case.
To make the problem easier,we considerate the sky is a two-dimension plane.Sometimes the star will be bright and sometimes the star will be dim.At first,there is no bright star in the sky,then some information will be given as "B x y" where 'B' represent bright and x represent the X coordinate and y represent the Y coordinate means the star at (x,y) is bright,And the 'D' in "D x y" mean the star at(x,y) is dim.When get a query as "Q X1 X2 Y1 Y2",you should tell Yifenfei how many bright stars there are in the region correspond X1,X2,Y1,Y2.
There is only one case.
Input
The first line contain a M(M <= 100000), then M line followed.
each line start with a operational character.
if the character is B or D,then two integer X,Y (0 <=X,Y<= 1000)followed.
if the character is Q then four integer X1,X2,Y1,Y2(0 <=X1,X2,Y1,Y2<= 1000) followed.
each line start with a operational character.
if the character is B or D,then two integer X,Y (0 <=X,Y<= 1000)followed.
if the character is Q then four integer X1,X2,Y1,Y2(0 <=X1,X2,Y1,Y2<= 1000) followed.
Output
For each query,output the number of bright stars in one line.
Sample Input
5 B 581 145 B 581 145 Q 0 600 0 200 D 581 145 Q 0 600 0 200
Sample Output
1 0
#include <iostream>
#include <string.h>
#include <string>
#include <cmath>
#include <cstdio>
int aa[1005][1005];
bool visit[1005][1005];
using namespace std;
#define min(a,b)(a)<(b)?(a):(b);
#define max(a,b)(a)>(b)?(a):(b);
int lowbit(int x){
return x&(-x);
}
void update(int x,int y,int num){
int t=y;
while(x<=1003){
y=t;
while(y<=1003){
aa[x][y]+=num;
y+=lowbit(y);
}
x+=lowbit(x);
}
}
int find(int x,int y){
int s=0,t=y;
while(x>0){
y=t;
while(y>0){
s+=aa[x][y];
y-=lowbit(y);
}
x-=lowbit(x);
}
return s;
}
int main(){
memset(aa,0,sizeof(aa));
memset(visit,0,sizeof(visit));
int n;
scanf("%d",&n);
getchar();
char chh;
int x1,y1,x2,y2;
while(n--){
scanf("%c",&chh);
if(chh=='B')
{
scanf("%d%d",&x1,&y1);
if(visit[x1+1][y1+1]==0)
{visit[x1+1][y1+1]=1;update(x1+1,y1+1,1);}
}
if(chh=='Q'){
scanf("%d%d%d%d",&x1,&x2,&y1,&y2);
int maxx,maxy,minx,miny;
maxx=max(x1,x2);
minx=min(x1,x2);
maxy=max(y1,y2);
miny=min(y1,y2);
int a=find(maxx+1,maxy+1);
int b=find(minx,miny);
int c=find(maxx+1,miny);
int d=find(minx,maxy+1);
printf("%d\n",a+b-c-d);
}
if(chh=='D'){
scanf("%d%d",&x1,&y1);
if(visit[x1+1][y1+1]==1)
{visit[x1+1][y1+1]=0;update(x1+1,y1+1,-1);}
}
if(n>=1)
getchar();
}
return 0;
}