给定序列
A
1..
N
A_{1..N}
A 1 . . N
Q
Q
Q
[
L
,
R
]
[L,R]
[ L , R ]
A
l
.
.
r
A_{l..r}
A l . . r
[
A
l
,
A
r
]
(
A
l
≤
A
r
)
[A_l,A_r](A_l≤A_r)
[ A l , A r ] ( A l ≤ A r )
[
A
r
,
A
l
]
(
A
r
≤
A
l
)
[A_r,A_l](A_r≤A_l)
[ A r , A l ] ( A r ≤ A l )
N
,
Q
≤
5
∗
1
0
5
N,Q≤5*10^5
N , Q ≤ 5 ∗ 1 0 5
这道题的题意很容易让人误解,做的时候理解错了两次。。。
注意需要保证连续。
不妨先考虑
A
l
≤
A
r
A_l≤A_r
A l ≤ A r
先设
t
o
i
to_i
t o i
A
i
A_i
A i
A
i
A_i
A i
接下来维护一个单调栈,满足单调不下降,
对于当前的
A
i
A_i
A i
一、
A
i
A_i
A i 此时以
t
o
i
to_i
t o i 右边且在栈中 的元素为左端点的区间最优右端点为
i
i
i
首先要满足在
t
o
i
to_i
t o i
t
o
i
to_i
t o i
其次要满足还在栈中,若不在栈中,则一定是因为它右边出现了比它小的元素才把它弹出的,那么它就不会是最小值了,也不合题意。
用一个下标与该单调栈一一对应的线段树维护这个过程,区间修改一段的右端点为
i
i
i
然后把
A
i
A_i
A i
二、
A
i
A_i
A i 不断弹栈,每弹出一个元素就把它加入用另一个与原序列下标一一对应的线段树,然后把第一棵线段树对应位置清空(不然会WA),
最后还是把
A
i
A_i
A i
考虑答案怎么求?
把询问按右端点排序,当
A
R
A_{R}
A R
[
L
,
R
]
[L,R]
[ L , R ]
注意
L
L
L
时间复杂度
O
(
(
Q
+
N
)
log
2
N
)
O((Q+N)log_2N)
O ( ( Q + N ) log 2 N )
#include <cstdio>
#include <cstring>
#include <algorithm>
using namespace std;
#define N 50010
int n, Q, a[ N] ;
int to[ N] , qu[ N] , ans[ N] ;
int f[ N * 4 ] , g[ N * 4 ] , bz[ N * 4 ] ;
struct node {
int l, r, id;
} q[ N] ;
int cmp ( node x, node y) {
return x. r < y. r;
}
void change ( int v, int l, int r, int x, int y, int c) {
if ( l == x && r == y) {
f[ v] = c - qu[ l] + 1 ;
bz[ v] = c;
}
else {
int mid = ( l + r) / 2 ;
if ( bz[ v] ) {
bz[ v * 2 ] = bz[ v * 2 + 1 ] = bz[ v] ;
f[ v * 2 ] = bz[ v] - qu[ l] + 1 ;
f[ v * 2 + 1 ] = bz[ v] - qu[ mid + 1 ] + 1 ;
bz[ v] = 0 ;
}
if ( y <= mid) change ( v * 2 , l, mid, x, y, c) ;
else if ( x > mid) change ( v * 2 + 1 , mid + 1 , r, x, y, c) ;
else {
change ( v * 2 , l, mid, x, mid, c) ;
change ( v * 2 + 1 , mid + 1 , r, mid + 1 , y, c) ;
}
f[ v] = max ( f[ v * 2 ] , f[ v * 2 + 1 ] ) ;
}
}
int find ( int v, int l, int r, int x, int y) {
if ( l == x && r == y) return f[ v] ;
int mid = ( l + r) / 2 , s;
if ( bz[ v] ) {
bz[ v * 2 ] = bz[ v * 2 + 1 ] = bz[ v] ;
f[ v * 2 ] = bz[ v] - qu[ l] + 1 ;
f[ v * 2 + 1 ] = bz[ v] - qu[ mid + 1 ] + 1 ;
bz[ v] = 0 ;
}
if ( y <= mid) s = find ( v * 2 , l, mid, x, y) ;
else if ( x > mid) s = find ( v * 2 + 1 , mid + 1 , r, x, y) ;
else s = max ( find ( v * 2 , l, mid, x, mid) , find ( v * 2 + 1 , mid + 1 , r, mid + 1 , y) ) ;
f[ v] = max ( f[ v * 2 ] , f[ v * 2 + 1 ] ) ;
return s;
}
void add ( int v, int l, int r, int x, int c) {
if ( l == r) g[ v] = max ( g[ v] , c) ;
else {
int mid = ( l + r) / 2 ;
if ( x <= mid) add ( v * 2 , l, mid, x, c) ;
else add ( v * 2 + 1 , mid + 1 , r, x, c) ;
g[ v] = max ( g[ v * 2 ] , g[ v * 2 + 1 ] ) ;
}
}
int get ( int v, int l, int r, int x, int y) {
if ( l == x && r == y) return g[ v] ;
int mid = ( l + r) / 2 ;
if ( y <= mid) return get ( v * 2 , l, mid, x, y) ;
if ( x > mid) return get ( v * 2 + 1 , mid + 1 , r, x, y) ;
return max ( get ( v * 2 , l, mid, x, mid) , get ( v * 2 + 1 , mid + 1 , r, mid + 1 , y) ) ;
}
void solve ( ) {
sort ( q + 1 , q + Q + 1 , cmp) ;
memset ( to, 0 , sizeof ( to) ) ;
memset ( f, 0 , sizeof ( f) ) ;
memset ( g, 0 , sizeof ( g) ) ;
memset ( bz, 0 , sizeof ( bz) ) ;
memset ( qu, 0 , sizeof ( qu) ) ;
for ( int i = 1 ; i <= n; i++ ) {
while ( qu[ 0 ] && a[ i] >= a[ qu[ qu[ 0 ] ] ] ) qu[ 0 ] -- ;
to[ i] = qu[ qu[ 0 ] ] ;
qu[ ++ qu[ 0 ] ] = i;
}
memset ( qu, 0 , sizeof ( qu) ) ;
int j = 1 ;
for ( int i = 1 ; i <= n; i++ ) {
if ( a[ i] >= a[ qu[ qu[ 0 ] ] ] ) {
int t = 0 , l = 1 , r = qu[ 0 ] ;
while ( l <= r) {
int mid = ( l + r) / 2 ;
if ( qu[ mid] > to[ i] ) t = mid, r = mid - 1 ; else l = mid + 1 ;
}
if ( t && qu[ 0 ] ) change ( 1 , 1 , n, t, qu[ 0 ] , i) ;
qu[ ++ qu[ 0 ] ] = i;
}
else {
while ( qu[ 0 ] && a[ i] < a[ qu[ qu[ 0 ] ] ] ) {
int s = find ( 1 , 1 , n, qu[ 0 ] , qu[ 0 ] ) ;
add ( 1 , 1 , n, qu[ qu[ 0 ] ] , s) ;
change ( 1 , 1 , n, qu[ 0 ] , qu[ 0 ] , 0 ) ;
qu[ 0 ] -- ;
}
qu[ ++ qu[ 0 ] ] = i;
}
while ( j <= Q && q[ j] . r == i) {
ans[ q[ j] . id] = max ( ans[ q[ j] . id] , get ( 1 , 1 , n, q[ j] . l, q[ j] . r) ) ;
int t = 0 , l = 1 , r = qu[ 0 ] ;
while ( l <= r) {
int mid = ( l + r) / 2 ;
if ( qu[ mid] >= q[ j] . l) t = mid, r = mid - 1 ; else l = mid + 1 ;
}
ans[ q[ j] . id] = max ( ans[ q[ j] . id] , find ( 1 , 1 , n, t, qu[ 0 ] ) ) ;
j++ ;
}
}
}
int main ( ) {
int i, j, k;
scanf ( "%d" , & n) ;
for ( i = 1 ; i <= n; i++ ) scanf ( "%d" , & a[ i] ) ;
scanf ( "%d" , & Q) ;
for ( i = 1 ; i <= Q; i++ ) scanf ( "%d%d" , & q[ i] . l, & q[ i] . r) , q[ i] . id = i;
solve ( ) ;
for ( i = 1 ; i <= n / 2 ; i++ ) swap ( a[ i] , a[ n - i + 1 ] ) ;
for ( i = 1 ; i <= Q; i++ ) swap ( q[ i] . l, q[ i] . r) , q[ i] . l = n - q[ i] . l + 1 , q[ i] . r = n - q[ i] . r + 1 ;
solve ( ) ;
for ( i = 1 ; i <= Q; i++ ) printf ( "%d
" , max ( ans[ i] , 1 ) ) ;
return 0 ;
}
