题解

这个我们处理出来每一位能变化到的最大值和最小值，包括自身

然后我们发现

\(f[i] = max(f[i],f[j] + 1) (mx[j] <= a[i] && a[j] <= mi[i])\)

喜闻乐见的三维偏序转移法

还写树套树？？？

直接CDQ分治就好啦

为啥他们的代码就1.xK？？？？？？

我就3.1K

代码

#include <bits/stdc++.h>

#define enter putchar('\n')

#define space putchar(' ')

#define pii pair<int,int>

#define fi first

#define se second

#define MAXN 100005

#define pb push_back

#define mp make_pair

#define eps 1e-8

//#define ivorysi

using namespace std;

typedef long long int64;

typedef double db;

template<class T>

void read(T &res) {

    res = 0;T f = 1;char c = getchar();

    while(c < '0' || c > '9') {

        if(c == '-') f = -1;

        c = getchar();

    }

    while(c >= '0' && c <= '9') {

        res = res * 10 + c - '0';

        c = getchar();

    }

}

template<class T>

void out(T x) {

    if(x < 0) {x = -x;putchar('-');}

    if(x >= 10) out(x / 10);

    putchar('0' + x % 10);

}

vector<int> tr[MAXN * 4];

int mx[MAXN],mi[MAXN],a[MAXN],N,M,f[MAXN],p[MAXN],tmp[MAXN],g[MAXN];

int BIT[MAXN * 2];

int lowbit(int u) {return u & -u;}

void Insert(int u,int v) {

    while(u <= 100000) {

        BIT[u] = max(BIT[u],v);

        u += lowbit(u);

    }

}

int Query(int u) {

    int res = 0;

    while(u > 0) {

        res = max(res,BIT[u]);

        u -= lowbit(u);

    }

    return res;

}

void Clear(int u) {

    while(u <= 100000) {

        BIT[u] = 0;

        u += lowbit(u);

    }

}

bool cmp(int c,int d) {

    return a[c] < a[d];

}

void build(int u,int l,int r) {

    if(l == r) {tr[u].pb(l);return;}

    int mid = (l + r) >> 1;

    build(u << 1,l,mid);build(u << 1 | 1,mid + 1,r);

    int s1 = 0,s2 = 0;

    while(s1 < tr[u << 1].size() || s2 < tr[u << 1 | 1].size()) {

        if(s2 >= tr[u << 1 | 1].size()) tr[u].pb(tr[u << 1][s1++]);

        else if(s1 >= tr[u << 1].size() || a[tr[u << 1 | 1][s2]] < a[tr[u << 1][s1]]) tr[u].pb(tr[u << 1 | 1][s2++]);

        else tr[u].pb(tr[u << 1][s1++]);

    }

}

void Solve(int u,int l,int r) {

    if(l == r) {return ;}

    int mid = (l + r) >> 1;

    Solve(u << 1,l,mid);

    int s1 = l,s2 = 0,t;

    while(s1 <= mid || s2 < tr[u << 1 | 1].size()) {

        if(s2 >= tr[u << 1 | 1].size()) break;

        if(s1 > mid || a[tr[u << 1 | 1][s2]] < mx[p[s1]]) {

            t = tr[u << 1 | 1][s2];++s2;

            f[t] = max(f[t],Query(mi[t]) + 1);

        }

        else {

            Insert(a[p[s1]],f[p[s1]]);

            ++s1;

        }

    }

    for(int i = l ; i <= mid ; ++i) Clear(a[i]);

    Solve(u << 1 | 1,mid + 1,r);

    s1 = l,s2 = mid + 1,t = l;

    while(s1 <= mid || s2 <= r) {

        if(s2 > r) tmp[t++] = p[s1++];

        else if(s1 > mid || mx[p[s1]] > mx[p[s2]]) tmp[t++] = p[s2++];

        else tmp[t++] = p[s1++];

    }

    for(int i = l ; i <= r ; ++i) p[i] = tmp[i];

    return;

}

void Init() {

    read(N);read(M);

    for(int i = 1 ; i <= N ; ++i) {read(a[i]);mi[i] = mx[i] = a[i];p[i] = i;f[i] = 1;}

    int u,v;

    for(int i = 1 ; i <= M ; ++i) {

        read(u);read(v);

        mi[u] = min(mi[u],v);

        mx[u] = max(mx[u],v);

    }

    build(1,1,N);

}

int main() {

#ifdef ivorysi

    freopen("f1.in","r",stdin);

#endif

    Init();

    Solve(1,1,N);

    int ans = 0;

    for(int i = 1 ; i <= N ; ++i) ans = max(ans,f[i]);

    out(ans);enter;

    return 0;

}