题目描述:
维护一个W*W的矩阵,初始值均为S.每次操作可以增加某格子的权值,或询问某子矩阵的总权值.修改操作数M<=160000,询问数Q<=10000,W<=2000000.
输入:
第一行两个整数,S,W;其中S为矩阵初始值;W为矩阵大小
接下来每行为一下三种输入之一(不包含引号):
"1 x y a"
"2 x1 y1 x2 y2"
"3"
输入1:你需要把(x,y)(第x行第y列)的格子权值增加a
输入2:你需要求出以左上角为(x1,y1),右下角为(x2,y2)的矩阵内所有格子的权值和,并输出
输入3:表示输入结束
输出:
对于每个输入2,输出一行,即输入2的答案
题解:
本蒟蒻的第一道cdq分治题。。。“cdq分治不就是归并排序吗?”写完这道题以后我对这句话有了更深的理解。
代码:
#include <cstdio>
#include <cstring>
#include <algorithm>
#include <cmath>
#ifdef WIN32
#define LL "%I64d"
#else
#define LL "%lld"
#endif
#ifdef CT
#define debug(...) printf(__VA_ARGS__)
#define setfile()
#else
#define debug(...)
#define filename ""
#define setfile() freopen(filename".in", "r", stdin); freopen(filename".out", "w", stdout);
#endif
#define R register
#define getc() (S == T && (T = (S = B) + fread(B, 1, 1 << 15, stdin), S == T) ? EOF : *S++)
#define dmax(_a, _b) ((_a) > (_b) ? (_a) : (_b))
#define dmin(_a, _b) ((_a) < (_b) ? (_a) : (_b))
#define cmax(_a, _b) (_a < (_b) ? _a = (_b) : 0)
#define cmin(_a, _b) (_a > (_b) ? _a = (_b) : 0)
char B[1 << 15], *S = B, *T = B;
inline int FastIn()
{
R char ch; R int cnt = 0; R bool minus = 0;
while (ch = getc(), (ch < '0' || ch > '9') && ch != '-') ;
ch == '-' ? minus = 1 : cnt = ch - '0';
while (ch = getc(), ch >= '0' && ch <= '9') cnt = cnt * 10 + ch - '0';
return minus ? -cnt : cnt;
}
#define maxn 200010
#define maxm 2000010
struct event
{
int x, y, pos, opet, ans;
inline bool operator < (const event &that) const {return pos < that.pos ;}
}t[maxn], q[maxn];
#define lowbit(_x) ((_x) & -(_x))
int bit[maxm], last[maxm], s, w, cnt, now;
inline void add(R int x, R int val)
{
for (; x <= w; x += lowbit(x))
{
if (last[x] != now)
bit[x] = 0;
bit[x] += val;
last[x] = now;
}
}
inline int query(R int x)
{
R int ans = 0;
for (; x ; x -= lowbit(x))
{
if (last[x] == now)
ans += bit[x];
}
return ans;
}
void cdq(R int left, R int right)
{
if (left == right) return ;
R int mid = left + right >> 1;
cdq(left, mid); cdq(mid + 1, right);
++now;
for (R int i = left, j = mid + 1; j <= right; ++j)
{
for (; i <= mid && q[i].x <= q[j].x; ++i)
if (!q[i].opet)
add(q[i].y, q[i].ans);
if (q[j].opet)
q[j].ans += query(q[j].y);
}
R int i, j, k = 0;
for (i = left, j = mid + 1; i <= mid && j <= right; )
{
if (q[i].x <= q[j].x)
t[k++] = q[i++];
else
t[k++] = q[j++];
}
for (; i <= mid; )
t[k++] = q[i++];
for (; j <= right; )
t[k++] = q[j++];
for (R int i = 0; i < k; ++i)
q[left + i] = t[i];
}
int main()
{
// setfile();
s = FastIn();
w = FastIn();
while (1)
{
R int opt = FastIn();
if (opt == 1)
{
R int x = FastIn(), y = FastIn(), a = FastIn();
q[++cnt] = (event){x, y, cnt, 0, a};
}
if (opt == 2)
{
R int x = FastIn() - 1, y = FastIn() - 1, a = FastIn(), b = FastIn();
q[++cnt] = (event) {x, y, cnt, 1, x * y * s};
q[++cnt] = (event) {a, b, cnt, 2, a * b * s};
q[++cnt] = (event) {x, b, cnt, 2, x * b * s};
q[++cnt] = (event) {a, y, cnt, 2, a * y * s};
}
if (opt == 3) break;
}
cdq(1, cnt);
std::sort(q + 1, q + cnt + 1);
for (R int i = 1; i <= cnt; ++i)
if (q[i].opet == 1)
printf("%d
",q[i].ans + q[i + 1].ans - q[i + 2].ans - q[i + 3].ans ), i += 3;
return 0;
}