結果

問題 No.2701 A cans -> B cans
ユーザー karinohito
提出日時 2024-03-29 21:37:05
言語 C++17
(gcc 13.3.0 + boost 1.87.0)
結果
AC  
実行時間 494 ms / 1,000 ms
コード長 3,234 bytes
コンパイル時間 4,402 ms
コンパイル使用メモリ 255,720 KB
最終ジャッジ日時 2025-02-20 14:51:59
ジャッジサーバーID
(参考情報) 		judge3 / judge3
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ファイルパターン 結果
sample AC * 6
other AC * 73
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ソースコード

diff #
プレゼンテーションモードにする

#include <bits/stdc++.h>
#include<atcoder/all>
using namespace atcoder;
using namespace std;
using ll = long long;
using vll = vector<ll>;
using vvll = vector<vll>;
using vvvll = vector<vvll>;
using vvvvll = vector<vvvll>;
using vb = vector<bool>;
using vvb = vector<vb>;
using vvvb = vector<vvb>;
using vvvvb = vector<vvvb>;
using vvvvvb = vector<vvvvb>;
#define all(A) A.begin(),A.end()
#define rep(i, n) for (ll i = 0; i < (ll) (n); i++)
template<class T>
bool chmax(T& p, T q, bool C = 1) {
    if (C == 0 && p == q) {
        return 1;
    }
    if (p < q) {
        p = q;
        return 1;
    }
    else {
        return 0;
    }
}
template<class T>
bool chmin(T& p, T q, bool C = 1) {
    if (C == 0 && p == q) {
        return 1;
    }
    if (p > q) {
        p = q;
        return 1;
    }
    else {
        return 0;
    }
}
ll modPow(long long a, long long n, long long p) {
    if (n == 0) return 1; // 0
    if (n == 1) return a % p;
    if (n % 2 == 1) return (a * modPow(a, n - 1, p)) % p;
    long long t = modPow(a, n / 2, p);
    return (t * t) % p;
}
ll gcd(ll(a), ll(b)) {
    if (a == 0)return b;
    if (b == 0)return a;
    ll c = a;
    while (a % b != 0) {
        c = a % b;
        a = b;
        b = c;
    }
    return b;
}
ll sqrtz(ll N) {
    ll L = 0;
    ll R = sqrt(N) + 10000;
    while (abs(R - L) > 1) {
        ll mid = (R + L) / 2;
        if (mid * mid <= N)L = mid;
        else R = mid;
    }
    return L;
}
using mint = modint998244353;
using vm = vector<mint>;
using vvm = vector<vm>;
using vvvm = vector<vvm>;
vector<mint> fact, factinv, inv, factK;
const ll mod = 998244353;
void prenCkModp(ll n) {
    //factK.resize(4*n+5);
    fact.resize(n + 5);
    factinv.resize(n + 5);
    inv.resize(n + 5);
    fact[0] = fact[1] = 1;
    factinv[0] = factinv[1] = 1;
    inv[1] = 1;
    for (ll i = 2; i < n + 5; i++) {
        fact[i] = (fact[i - 1] * i);
        inv[i] = (mod - ((inv[mod % i] * (mod / i))));
        factinv[i] = (factinv[i - 1] * inv[i]);
    }
    //factK[0]=1;
    //for(ll i=1;i<4*n+5;i++){
    //    factK[i]=factK[i-1]*mint(K-i+1);
    //    //K*(K-1)*...*(K-i+1);
    //}
}
mint nCk(ll n, ll k) {
    if (n < k || k < 0) return 0;
    return (fact[n] * ((factinv[k] * factinv[n - k])));
}
//mint nCkK(ll n,ll k){
//    if(K<n||K-n<k)return 0;
//    mint res=factK[n+k];
//    res*=factK[n].inv();
//    res*=factinv[k];
//    return res;
//}
bool DEB = 0;
int main() {
    cin.tie(nullptr);
    ios::sync_with_stdio(false);
    ll N, M;
    cin >> N >> M;
    vll A(N), B(N), C(N);
    vll DP(M + 1, 0);
    rep(i, N) {
        cin >> A[i] >> B[i] >> C[i];
    }
    for (ll m = 1; m <= M; m++) {
        chmax(DP[m], DP[m - 1]);
        rep(n, N) {
            if (A[n] > m)continue;
            ll d = (m - A[n]) / (A[n] - B[n]);
            ll R = (d + 1) * C[n] * B[n];
            ll L = m - (d * (A[n] - B[n]) + A[n]);
            // cout << L << endl;
            chmax(DP[m], DP[L] + R);
            rep(k,3){
                R-=C[n]*B[n];
                L+=(A[n]-B[n]);
                if(R<=0||m-L<A[n])break;
                chmax(DP[m],DP[L]+R);
            }
        }
        cout << DP[m] << endl;
    }
}
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