题意:给定N(1<= N <=64)个盘子和M(4<= M <= 65)根柱子,问把N个盘子从1号柱子移动到M号柱子所需要的最少步数,并且输出移动过程。
分析:设f[i][j]表示将i个盘通过j个柱子从第一根柱子移动到最后一根柱子所需要的最少次数,f[i][j]的得到的最优移动方案是先将最小的path[i][j]个盘移动到某一根柱子上,然后通过一个dfs输出移动次序。
#include <cstdlib> #include <cstring> #include <cstdio> #include <stack> #include <algorithm> using namespace std; typedef unsigned long long LL; const int N = 70; LL f[70][70]; // f[i][j]表示将i个盘通过j个柱子从第一根柱子移动到最后一根柱子所需要的最少次数 int path[70][70]; // 表示f[i][j]的得到的最优移动方案是先将最小的path[i][j]个盘移动到某一根柱子上 int n, m; stack<int>stk[70]; char ocp[70]; void pre() { memset(f, 0x3f, sizeof (f)); for (int i = 3; i <= 65; ++i) { f[0][i] = 0; f[1][i] = 1; } for (int i = 1; i <= 64; ++i) { // 初始化三根柱子的情况 f[i][3] = f[i-1][3] * 2 + 1; path[i][3] = i-1; } for (int i = 2; i <= 64; ++i) { for (int j = 4; j <= 65; ++j) { for (int k = 1; k < i; ++k) { if (f[i][j] > f[i-k][j-1] + 2*f[k][j]) { f[i][j] = f[i-k][j-1] + 2*f[k][j]; path[i][j] = k; } } } } } /* move 2 from 1 to 2 move 1 from 3 to 2 atop 2 */ void display(int an, int am, int sta, int end) { if (an == 1) { if (stk[end].size()) { printf("move %d from %d to %d atop %d ", stk[sta].top(), sta, end, stk[end].top()); } else { printf("move %d from %d to %d ", stk[sta].top(), sta, end); } stk[end].push(stk[sta].top()); stk[sta].pop(); return; } int peg = 0; for (int i = 1; i <= m; ++i) { if (i != sta && i != end && !ocp[i]) { peg = i; break; } } display(path[an][am], am, sta, peg); ocp[peg] = 1; display(an-path[an][am], am-1, sta, end); ocp[peg] = 0; display(path[an][am], am, peg, end); } void solve() { for (int i = 1; i <= m; ++i) while (!stk[i].empty()) stk[i].pop(); for (int i = n; i >= 1; --i) stk[1].push(i); memset(ocp, 0, sizeof (ocp)); printf("%llu ", f[n][m]); display(n, m, 1, m); } int main() { pre(); int T; scanf("%d", &T); while (T--) { scanf("%d %d", &n, &m); solve(); } return 0; }