#line 1 "template/template.hpp" #include #if __has_include() #include #endif using namespace std; using int64 = long long; const int64 infll = (1LL << 62) - 1; const int inf = (1 << 30) - 1; struct IoSetup { IoSetup() { cin.tie(nullptr); ios::sync_with_stdio(false); cout << fixed << setprecision(10); cerr << fixed << setprecision(10); } } iosetup; template ostream& operator<<(ostream& os, const pair& p) { os << p.first << " " << p.second; return os; } template istream& operator>>(istream& is, pair& p) { is >> p.first >> p.second; return is; } template ostream& operator<<(ostream& os, const vector& v) { for (size_t i = 0; i < v.size(); i++) { os << v[i] << (i + 1 != v.size() ? " " : ""); } return os; } template istream& operator>>(istream& is, vector& v) { for (T& in : v) is >> in; return is; } template bool chmax(T1& a, T2 b) { return a < b && (a = b, true); } template bool chmin(T1& a, T2 b) { return a > b && (a = b, true); } template vector make_v(size_t a) { return vector(a); } template auto make_v(size_t a, Ts... ts) { return vector(ts...))>(a, make_v(ts...)); } template enable_if_t == 0> fill_v(T& t, const V& v) { t = v; } template enable_if_t != 0> fill_v(T& t, const V& v) { for (auto& e : t) fill_v(e, v); } template struct FixPoint : F { explicit FixPoint(F&& f) : F(std::forward(f)) {} template decltype(auto) operator()(Args&&... args) const { return F::operator()(*this, std::forward(args)...); } }; template decltype(auto) MFP(F&& f) { return FixPoint{std::forward(f)}; } #line 2 "graph/others/topological-sort.hpp" #include #include #line 2 "graph/graph-template.hpp" #include #include #line 6 "graph/graph-template.hpp" template struct Edge { int from, to; T cost; int idx; Edge() = default; Edge(int from, int to, T cost = 1, int idx = -1) : from(from), to(to), cost(cost), idx(idx) {} operator int() const { return to; } }; template struct Graph { std::vector > > g; int es; Graph() = default; explicit Graph(int n) : g(n), es(0) {} std::size_t size() const { return g.size(); } void add_directed_edge(int from, int to, T cost = 1) { g[from].emplace_back(from, to, cost, es++); } void add_edge(int from, int to, T cost = 1) { g[from].emplace_back(from, to, cost, es); g[to].emplace_back(to, from, cost, es++); } void read(int M, int padding = -1, bool weighted = false, bool directed = false) { for (int i = 0; i < M; i++) { int a, b; std::cin >> a >> b; a += padding; b += padding; T c = T(1); if (weighted) std::cin >> c; if (directed) add_directed_edge(a, b, c); else add_edge(a, b, c); } } inline std::vector >& operator[](const int& k) { return g[k]; } inline const std::vector >& operator[](const int& k) const { return g[k]; } }; template using Edges = std::vector >; #line 7 "graph/others/topological-sort.hpp" /** * @brief Topological Sort(トポロジカルソート) * */ template std::vector topological_sort(const Graph& g) { const int N = (int)g.size(); std::vector deg(N); for (int i = 0; i < N; i++) { for (auto& to : g[i]) ++deg[to]; } std::stack st; for (int i = 0; i < N; i++) { if (deg[i] == 0) st.emplace(i); } std::vector ord; while (!st.empty()) { auto p = st.top(); st.pop(); ord.emplace_back(p); for (auto& to : g[p]) { if (--deg[to] == 0) st.emplace(to); } } return ord; } int main() { int N; cin >> N; vector< int > S(N); cin >> S; Graph g(N); for (int i = 1; i < N; i++) { int a, b; cin >> a >> b; --a, --b; if (S[a] < S[b]) { g.add_directed_edge(a, b); } if (S[b] < S[a]) { g.add_directed_edge(b, a); } } auto d = topological_sort(g); vector dp(N, 0ll); for (auto i : d) { dp[i] += S[i]; for (auto& to : g[i]) chmax(dp[to], dp[i]); } cout << *ranges::max_element(dp) << endl; }