hdu 4614 Vases and Flowers
写了一个星期了,时不时拿出来写一下,一直WA,今天总算是AC了,呜呜呜~~~
一开始想直接裸线段树,发现案例对不上,觉得二分一下右端点找最右边的就可以了
然后就自闭了啊,从线段树改成权值线段树,一直想直接求出端点,然后就自闭了一个星期
今天换了种方法,直接对左端点和右端点做两次二分,然后就A了。(我自闭了。
1、下标从0开始
2、题目要找的是,满足题意的左端点的最大值和右端点的最小值。
3、建议对左右端点二分。
4、一个案例多加一个换行。
Code:
#include <bits/stdc++.h>
#define ll long long
#define lson left,mid,k<<1
#define rson mid+1,right,k<<1|1
#define imid int mid=(left+right)/2;
using namespace std;
const int MAXN = 50005;
struct node
{
int l;
int r;
int mark;
int sum;
}que[MAXN * 4];
int n, m, ql, qr;
int val;
void up(int k)
{
que[k].sum = que[k << 1].sum + que[k << 1 | 1].sum;
}
void down(int k)
{
if (que[k].mark == 1)
{
que[k << 1].mark = que[k].mark;
que[k << 1].sum = que[k << 1].r - que[k << 1].l + 1;
que[k << 1 | 1].mark = que[k].mark;
que[k << 1 | 1].sum = que[k << 1 | 1].r - que[k << 1 | 1].l + 1;
que[k].mark = -1;
}
else if (que[k].mark == 0)
{
que[k << 1].mark = que[k].mark;
que[k << 1].sum = 0;
que[k << 1 | 1].mark = que[k].mark;
que[k << 1 | 1].sum = 0;
que[k].mark = -1;
}
}
void build(int left = 1, int right = n, int k = 1)
{
que[k].l = left;
que[k].r = right;
que[k].mark = -1;
que[k].sum = 0;
if (left == right)
return;
imid;
build(lson);
build(rson);
}
void update(int left = 1, int right = n, int k = 1)
{
if (qr < left || right < ql)
return;
if (ql <= left && right <= qr)
{
que[k].mark = val;
que[k].sum = (que[k].r - que[k].l + 1) * val;
return;
}
down(k);
imid;
update(lson);
update(rson);
up(k);
}
int query(int left = 1, int right = n, int k = 1)
{
if (qr < left || right < ql)
return 0;
if (ql <= left && right <= qr)
return que[k].sum;
down(k);
imid;
return query(lson) + query(rson);
}
int op, a, b;
bool judge(int k)
{
qr = k;
int ans = query();
if (ans + b <= k - ql + 1)
return true;
return false;
}
int main()
{
int T, cas = 1;
scanf("%d", &T);
while (T--)
{
scanf("%d%d", &n, &m);
build();
while (m--)
{
scanf("%d%d%d", &op, &a, &b);
if (op == 2)
{
a++;
b++;
ql = a;
qr = b;
int ans = query();
val = 0;
update();
printf("%d\n", ans);
}
else
{
a++;
ql = a;
qr = n;
//后面能不能放
int ans = query();
if (ans == n - a + 1)
{
printf("Can not put any one.\n");
continue;
}
b = min(b, n - a + 1 - ans);
//二分左端点
ql = a;
int l = a, r = n;
while (l + 1 < r)
{
qr = (l + r) / 2;
if (query() == qr - ql + 1)
l = qr;
else
r = qr;
}
qr = l;
if (query() == qr - ql + 1)
qr = r;
//二分右端点
ql = qr;
l = ql, r = n;
while (l + 1 < r)
{
qr = (l + r) / 2;
if (qr - ql + 1 - query() < b)
l = qr;
else
r = qr;
}
qr = l;
if (qr - ql + 1 - query() < b)
qr = r;
printf("%d %d\n", ql - 1, qr - 1);
val = 1;
update();
}
}
//不要忘了换行
printf("\n");
}
}