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#include <algorithm> |
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#include <cassert> |
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#include <cstring> |
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#include <iostream> |
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#include <vector> |
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#include <utility> |
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using namespace std; |
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const int LIM = 1000001; |
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int N; |
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long long K; |
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int C[LIM]; |
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vector<int> ch[LIM]; |
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pair<long long, int> DP[LIM][3]; |
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pair<long long, int> DP2[3][2], nxt[3][2]; |
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void rec(int i, int p, long long P) { |
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for (auto c : ch[i]) { |
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rec(c, i, P); |
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} |
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memset(DP2, 0, sizeof DP2); |
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DP2[1][1] = make_pair(C[i], 0); |
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memcpy(nxt, DP2, sizeof nxt); |
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for (auto c : ch[i]) { |
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for (int j = 2; j >= 0; j--) { |
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for (int b = 1; b >= 0; b--) { |
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auto d = DP2[j][b]; |
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for (int j2 = 0; j2 <= 2; j2++) { |
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auto d2 = DP[c][j2]; |
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for (int u = 0; u <= j2; u++) { |
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int r = j2 - u; |
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if (r > j) { |
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continue; |
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} |
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int j3 = j + u - r; |
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if (j3 < 0 || j3 > 2) { |
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continue; |
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} |
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int b2 = b | (j2 ? 1 : 0); |
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long long dv = d.first + d2.first + (!b && b2 ? C[i] : 0) - r * P; |
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int dk = d.second + d2.second - r; |
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nxt[j3][b2] = max(nxt[j3][b2], make_pair(dv, dk)); |
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} |
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} |
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} |
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} |
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memcpy(DP2, nxt, sizeof nxt); |
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} |
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for (int j = 0; j <= 2; j++) { |
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for (int j2 = 0; j2 <= j; j2++) { |
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int e = j - j2; |
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for (int b : {0, 1}) { |
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auto d = DP2[j][b]; |
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DP[i][j2] = max(DP[i][j2], make_pair(d.first - e * P, d.second - e)); |
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} |
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} |
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} |
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} |
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pair<long long, int> solve(long long P) { |
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memset(DP, 0, sizeof DP); |
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rec(0, -1, P); |
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auto d = DP[0][0]; |
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return make_pair(d.first + -d.second * P, -d.second - 1); |
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} |
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int solve() { |
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for (int i = 0; i < LIM; i++) { |
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ch[i].clear(); |
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} |
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cin >> N >> K; |
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for (int i = 0; i < N; i++) { |
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cin >> C[i]; |
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} |
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for (int i = 1, j; i <= N - 1; i++) { |
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cin >> j; |
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ch[j - 1].push_back(i); |
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} |
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long long r1 = -1, r2 = (long long)N * 1e9 + 1; |
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while (r2 > r1) { |
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long long m = (r1 + r2 + 1) >> 1; |
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auto ans = solve(m); |
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if (ans.first < K) { |
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r2 = m - 1; |
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} else { |
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r1 = m; |
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} |
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} |
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int ans = -1; |
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if (r1 >= 0) { |
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pair<long long, int> ans1 = solve(r1), ans2 = solve(r1 + 1); |
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assert(ans2.first < K && K <= ans1.first && ans2.second < ans1.second); |
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long long diffV = ans1.first - ans2.first; |
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int diffK = ans1.second - ans2.second; |
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long long need = K - ans2.first; |
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ans = ans2.second + (need * diffK + diffV - 1) / diffV; |
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assert(ans2.second < ans && ans <= ans1.second); |
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} |
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return ans; |
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} |
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int main() { |
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int T; |
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cin >> T; |
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for (int t = 1; t <= T; t++) { |
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cout << "Case #" << t << ": " << solve() << endl; |
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} |
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return 0; |
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} |
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