题意简述
已知一个数列,你需要进行下面两种操作:
1.将某区间每一个数加上x
2.求出某区间每一个数的和
题解思路
对于一个长度为n的序列,我们可以讲其中的元素分为( sqrt{n} ) 个连续的子序列,每块的长度自然就为( sqrt{n} )。
我们更新一段区间[l,r],可以先更新l到l所在块的右端点,r到r所在块的右端点到r和中间的整个区间。
代码
#include <cmath>
#include <cstdio>
using namespace std;
typedef long long ll;
struct Point{
ll w, num;
};
struct K{
ll l, r, tot, sum;
ll len()
{
return r - l + 1;
}
};
ll n, m, s, len;
Point p[100001];
K k[501];
void add(ll x, ll y, ll t)
{
if (p[x].num == p[y].num)
{
for (register ll i = x; i <= y; ++i)
p[i].w += t;
k[p[x].num].tot += (y - x + 1) * t;
return;
}
for (register ll i = x; i <= k[p[x].num].r; ++i)
p[i].w += t;
k[p[x].num].tot += (k[p[x].num].r - x + 1) * t;
for (register ll i = k[p[y].num].l; i <= y; ++i)
p[i].w += t;
k[p[y].num].tot += (y - k[p[y].num].l + 1) * t;
for (register ll i = p[x].num + 1; i <= p[y].num - 1; ++i)
{
k[i].tot += t * k[i].len();
k[i].sum += t;
}
}
ll query(ll x, ll y)
{
ll ans = 0;
if (p[x].num == p[y].num)
{
for (register ll i = x; i <= y; ++i)
ans += p[i].w;
return ans;
}
for (register ll i = x; i <= k[p[x].num].r; ++i)
ans += p[i].w + k[p[x].num].sum;
for (register ll i = k[p[y].num].l; i <= y; ++i)
ans += p[i].w + k[p[y].num].sum;
for (register ll i = p[x].num + 1; i <= p[y].num - 1; ++i)
ans += k[i].tot;
return ans;
}
int main()
{
scanf("%lld%lld", &n, &m);
len = sqrt(n);
s = n / len + (bool)(n % len);
for (register ll i = 1; i <= s; ++i)
{
k[i].l = (i - 1) * len + 1;
k[i].r = i * len;
}
k[s].r = n;
for (register ll i = 1; i <= n; ++i)
{
scanf("%lld", &p[i].w);
p[i].num = (i - 1) / len + 1;
k[p[i].num].tot += p[i].w;
}
for (register ll i = 1; i <= m; ++i)
{
ll op, x, y, t;
scanf("%lld", &op);
if (op == 1)
{
scanf("%lld%lld%lld", &x, &y, &t);
add(x, y, t);
}
else
{
scanf("%lld%lld", &x, &y);
printf("%lld
", query(x, y));
}
}
return 0;
}