POJ_3695

    一个直观的思路就是对每次Query求一次这些矩形面积的并,具体的思路可以参考我的POJ_1151的题解,那个题也是求矩形面积的并的。但这样耗时会比较长,我暂时还没想到太好的思路。

    http://www.cnblogs.com/staginner/archive/2012/02/20/2359396.html

#include<stdio.h>
#include<string.h>
#include<stdlib.h>
#define MAXD 50
struct rec
{
int x1, y1, x2, y2;
}p[MAXD], res[MAXD];
int N, M, K, X, cnt, tx[MAXD], left[MAXD], right[MAXD];
int cmp1(const void *_p, const void *_q)
{
rec *p = (rec *)_p, *q = (rec *)_q;
return p->y1 - q->y1;
}
int cmp2(const void *_p, const void *_q)
{
int *p = (int *)_p, *q = (int *)_q;
return *p - *q;
}
void init()
{
int i, j, k;
for(i = 1; i <= N; i ++)
scanf("%d%d%d%d", &p[i].x1, &p[i].y1, &p[i].x2, &p[i].y2);
}
void solve()
{
int i, j, k, t, ans, up, down;
for(t = 0; t < M; t ++)
{
ans = X = 0;
scanf("%d", &K);
for(i = j = 0; i < K; i ++)
{
scanf("%d", &k);
res[i] = p[k];
tx[j ++] = p[k].x1;
tx[j ++] = p[k].x2;
}
qsort(res, K, sizeof(res[0]), cmp1);
qsort(tx, j, sizeof(tx[0]), cmp2);
for(i = 1; i < j; i ++)
if(tx[i] != tx[i - 1])
{
left[X] = tx[i - 1], right[X] = tx[i];
++ X;
}
for(i = 0; i < X; i ++)
{
up = down = -1;
for(j = 0; j < K; j ++)
if(left[i] >= res[j].x1 && right[i] <= res[j].x2)
{
if(res[j].y1 > up)
{
ans += (right[i] - left[i]) * (up - down);
down = res[j].y1, up = res[j].y2;
}
else if(res[j].y2 > up)
up = res[j].y2;
}
ans += (right[i] - left[i]) * (up - down);
}
printf("Query %d: %d\n", ++ cnt, ans);
}
}
int main()
{
int t = 0;
for(;;)
{
scanf("%d%d", &N, &M);
if(!N && !M)
break;
init();
printf("Case %d:\n", ++ t);
cnt = 0;
solve();
printf("\n");
}
return 0;
}


posted on 2012-02-21 22:24  Staginner  阅读(488)  评论(0编辑  收藏  举报