제출 #929647

#	제출 시각	아이디	문제	언어	결과	실행 시간	메모리
929647		GrindMachine	팀들 (IOI15_teams)	C++17	100 / 100	1382 ms	254280 KiB

teams

#include <bits/stdc++.h>
#include <ext/pb_ds/assoc_container.hpp>
#include <ext/pb_ds/tree_policy.hpp>

using namespace std;
using namespace __gnu_pbds;

template<typename T> using Tree = tree<T, null_type, less<T>, rb_tree_tag, tree_order_statistics_node_update>;
typedef long long int ll;
typedef long double ld;
typedef pair<int,int> pii;
typedef pair<ll,ll> pll;

#define fastio ios_base::sync_with_stdio(false); cin.tie(NULL)
#define pb push_back
#define endl '\n'
#define sz(a) (int)a.size()
#define setbits(x) __builtin_popcountll(x)
#define ff first
#define ss second
#define conts continue
#define ceil2(x,y) ((x+y-1)/(y))
#define all(a) a.begin(), a.end()
#define rall(a) a.rbegin(), a.rend()
#define yes cout << "Yes" << endl
#define no cout << "No" << endl

#define rep(i,n) for(int i = 0; i < n; ++i)
#define rep1(i,n) for(int i = 1; i <= n; ++i)
#define rev(i,s,e) for(int i = s; i >= e; --i)
#define trav(i,a) for(auto &i : a)

template<typename T>
void amin(T &a, T b) {
    a = min(a,b);
}

template<typename T>
void amax(T &a, T b) {
    a = max(a,b);
}

#ifdef LOCAL
#include "debug.h"
#else
#define debug(x) 42
#endif

/*

refs:
edi

key idea:
check if some assignment is possible => think about hall's theorem

not possible if |segments that cover at least one guy in s|-|s| < 0
now do a dp

dp[i] = min value if the last chosen guy is c[i]

transition from all dp[j]:
dp[i] = min(dp[j]+add), add = #of segments s.t c[j]+1 <= l <= c[i], r >= c[i]
counting the #of such segments can be done with a wavelet tree

works in O(m^2*log(n))

array c can be compressed to have no equal elements
in this case, #of distinct elements is bounded by O(sqrt(n))

so can achieve something like s*sqrt(n)*log(n)

can we optimize the transitions?

for a given (i,j,k) (i < j < k), let's say it's more optimal to pull from i than j
then for indices > k, i is more optimal than j

maintain a set of good guys
for each adj pair, find the first time when the greater guy is removed from the set (can again be done with a wavelet tree)
best j = largest guy in the set
compute dp[i] using this j

*/

const int MOD = 1e9 + 7;
const int N = 5e5 + 5;
const int inf1 = int(1e9) + 5;
const ll inf2 = ll(1e18) + 5;

#include "teams.h"

struct wavelet_tree{
    struct node{
        node *l, *r;
        vector<int> b;
    };
 
    node* root;
    int siz;
 
    wavelet_tree(){
 
    }
 
    node* build(vector<int> &a, vector<int> inds, int l, int r){
        if(l > r) return NULL;
        int mid = (l+r) >> 1;
        vector<int> b(sz(inds)+1);
 
        vector<int> la,ra;
        rep(i,sz(inds)){
            int x = a[inds[i]];
            b[i+1] = b[i]+(x <= mid);
            if(x <= mid){
                la.pb(inds[i]);
            }
            else{
                ra.pb(inds[i]);
            }
        }
 
        node* curr = new node();
        curr->b = b;
 
        if(l != r){         
            curr->l = build(a,la,l,mid);
            curr->r = build(a,ra,mid+1,r);
        }
 
        return curr;
    }
 
    void build(vector<int> &a, int mx_siz){
        siz = mx_siz;
        vector<int> inds;
        rep(i,sz(a)) inds.pb(i);
        root = build(a,inds,0,siz);
    }

    int get_cnt(node* u, int lx, int rx, int l, int r, int vl, int vr){
        if(!u) return 0;
        if(l > r) return 0;
        if(lx > vr or rx < vl) return 0;
        if(lx >= vl and rx <= vr) return r-l+1;

        int mid = (lx+rx) >> 1;

        auto &b = u->b;

        int res = 0;
        res += get_cnt(u->l,lx,mid,b[l-1]+1,b[r],vl,vr);
        res += get_cnt(u->r,mid+1,rx,l-b[l-1],r-b[r],vl,vr);
        
        return res;
    }

    int get_cnt(int l, int r, int vl, int vr){
        return get_cnt(root,0,siz,l+1,r+1,vl,vr);
    }

    int kth(node* u, int lx, int rx, int l, int r, int k){
        if(lx == rx){
            return lx;
        }
 
        int mid = (lx+rx) >> 1;
        auto &b = u->b;
        int cnt = b[r]-b[l-1];
 
        if(k <= cnt){
            return kth(u->l,lx,mid,b[l-1]+1,b[r],k);
        }
        else{
            return kth(u->r,mid+1,rx,l-b[l-1],r-b[r],k-cnt);
        }
    }
 
    int kth(int l, int r, int k){
        return kth(root,0,siz,l+1,r+1,k);
    }

    int kth_largest(int l, int r, int k){
        int len = r-l+1;
        if(k > len) return -1;
        return kth(l,r,len-k+1);
    }
};

int n;
vector<pii> a;
wavelet_tree wt;
vector<int> lb;

void init(int n_, int A[], int B[]) {
    n = n_;
    rep(i,n) a.pb({A[i],B[i]});
    sort(all(a));

    lb = vector<int>(n+5,n);
    rep(i,n) amin(lb[a[i].ff],i);
    rev(i,n,0) amin(lb[i],lb[i+1]);

    vector<int> b;
    rep(i,n) b.pb(a[i].ss);

    wt.build(b,n+1);
}

int can(int m, int K[]) {
    int sum = 0;
    rep(i,m){
        sum += K[i];
        if(sum > n){
            return 0;
        }
    }

    sort(K,K+m);
    vector<pii> c;
    c.pb({K[0],K[0]});
    rep1(i,m-1){
        if(K[i] == K[i-1]){
            c.back().ss += K[i];
        }
        else{
            c.pb({K[i],K[i]});
        }
    }

    c.insert(c.begin(),{0,0});
    m = sz(c);
    vector<int> dp(m,inf1);
    dp[0] = 0;

    auto get = [&](int mnl, int mxl, int mnr){
        return wt.get_cnt(lb[mnl],lb[mxl+1]-1,mnr,n);
    };

    auto first_bad = [&](int i, int j){
        int diff = dp[j]-dp[i];
        int l = lb[c[i].ff+1];
        int r = lb[c[j].ff+1]-1;
        int val = wt.kth_largest(l,r,diff);
        if(val == -1) return -1;
        if(diff < wt.get_cnt(l,r,val,n)) val++;
        int pos = upper_bound(all(c),make_pair(val,-1))-c.begin();
        return pos;

        // int x = i, y = j;
        // int val = dp[y]-dp[x];
        // int lo = 0, hi = m-1;
        // int pos = -1;

        // while(lo <= hi){
        //     int mid = (lo+hi) >> 1;
        //     if(val >= get(c[x].ff+1,c[y].ff,c[mid].ff)){
        //         pos = mid;
        //         hi = mid-1;
        //     }
        //     else{
        //         lo = mid+1;
        //     }
        // }

        // return pos;
    };

    set<int> st;
    st.insert(0);

    vector<int> leave[m+5];

    // auto odp = dp;

    rep1(i,m-1){
        while(!leave[i].empty()){
            int j = leave[i].back();
            leave[i].pop_back();
            if(!st.count(j)) conts;            
            st.erase(j);

            auto it = st.upper_bound(j);
            if(it != st.end() and it != st.begin()){
                int x = *prev(it), y = *it;
                int pos = first_bad(x,y);
                if(pos != -1){
                    amax(pos,i);
                    assert(pos <= m);
                    leave[pos].pb(y);
                }
            }
        }

        {
            int j = *st.rbegin();
            dp[i] = dp[j]+get(c[j].ff+1,c[i].ff,c[i].ff)-c[i].ss;
        }

        st.insert(i);
        auto it = st.find(i);

        {
            int x = *prev(it), y = *it;
            int pos = first_bad(x,y);

            if(pos != -1){
                amax(pos,i+1);
                leave[pos].pb(y);
            }
        }

        // rep(j,i){
        //     amin(odp[i],odp[j]+get(c[j].ff+1,c[i].ff,c[i].ff));
        // }
        // odp[i] -= c[i].ss;
    }

    // debug(dp);
    // debug(odp);
    // assert(dp == odp);

    int mn = *min_element(all(dp));
    return mn >= 0;
}

컴파일 시 표준 에러 (stderr) 메시지

teams.cpp: In lambda function:
teams.cpp:246:56: warning: conversion from '__gnu_cxx::__normal_iterator<std::pair<int, int>*, std::vector<std::pair<int, int> > >::difference_type' {aka 'long int'} to 'int' may change value [-Wconversion]
  246 |         int pos = upper_bound(all(c),make_pair(val,-1))-c.begin();
      |                   ~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~^~~~~~~~~~

• Subtask 1: 21 / 21
• Subtask 2: 13 / 13
• Subtask 3: 43 / 43
• Subtask 4: 23 / 23