题意
Sol
这题可以动态dp做。
设(f[i])表示以(i)为结尾的最大子段和,(g[i])表示(1-i)的最大子段和
那么
(f[i] = max(f[i - 1] + a[i], a[i]))
(g[i] = max(g[i - 1], f[i]))
发现只跟前一项有关,而且(g[i]从)f[i]$转移过来的那一项可以直接拆开
那么构造矩阵
[egin{bmatrix}
a_{i} & -infty & dots a_{i} \
a_{i}, & 0 & a_{i}\
-infty, & -infty & 0 \
end{bmatrix}
]
直接转移就行了
复杂度(O(nlogn * 27))
#include<bits/stdc++.h>
using namespace std;
const int MAXN = 1e6 + 10, INF = 1e9;
template<typename A, typename B> inline bool chmax(A &x, B y) {return x < y ? x = y, 1 : 0;}
inline int read() {
char c = getchar(); int x = 0, f = 1;
while(c < '0' || c > '9') {if(c == '-') f = -1; c = getchar();}
while(c >= '0' && c <= '9') x = x * 10 + c - '0', c = getchar();
return x * f;
}
struct Ma {
int m[4][4];
Ma() {
memset(m, -0x3f, sizeof(m));
}
Ma operator * (const Ma &rhs) const {
Ma ans;
for(int i = 1; i <= 3; i++)
for(int j = 1; j <= 3; j++)
for(int k = 1; k <= 3; k++)
chmax(ans.m[i][j], m[i][k] + rhs.m[k][j]);
return ans;
}
void init(int v) {
m[1][1] = v; m[1][2] = -INF; m[1][3] = v;
m[2][1] = v; m[2][2] = 0; m[2][3] = v;
m[3][1] = -INF; m[3][2] = -INF; m[3][3] = 0;
}
}m[MAXN];
int N, M, a[MAXN];
#define ls k << 1
#define rs k << 1 | 1
void update(int k) {
m[k] = m[ls] * m[rs];
}
void Build(int k, int l, int r) {
if(l == r) {m[k].init(a[l]); return ;}
int mid = l + r >> 1;
Build(ls, l, mid); Build(rs, mid + 1, r);
update(k);
}
void Modify(int k, int l, int r, int p, int v) {
if(l == r) {m[k].init(v); return ;}
int mid = l + r >> 1;
if(p <= mid) Modify(ls, l, mid, p, v);
else Modify(rs, mid + 1, r, p, v);
update(k);
}
Ma Query(int k, int l, int r, int ql, int qr) {
if(ql <= l && r <= qr)
return m[k];
int mid = l + r >> 1;
if(ql > mid) return Query(rs, mid + 1, r, ql, qr);
else if(qr <= mid) return Query(ls, l, mid, ql, qr);
else return (Query(ls, l, mid, ql, qr) * Query(rs, mid + 1, r, ql, qr));
}
int main() {
N = read();
for(int i = 1; i <= N; i++) a[i] = read();
Build(1, 1, N);
M = read();
while(M--) {
int opt = read(), x = read(), y = read();
if(opt == 0) Modify(1, 1, N, x, y);
else {
Ma ans = Query(1, 1, N, x, y);
printf("%d
", max(ans.m[2][1], ans.m[2][3]));
}
}
return 0;
}
/*
4
-1 -2 -3 -4
2
1 1 4
1 1 2
*/