标签:pac int bit 有意思 cto 最短路 amp 指令 eof
题意:
给出一张地图和机器人还有出口的位置,地图上面有障碍。然后给出UDLR上下左右四种指令,遇到障碍物或者越界的指令会忽略,剩下的继续执行。
只要到达出口就算找到出口,然后给你一串指令,让你修改指令达到出口,删除或插入任意一个指令花费为1,问让机器人能够找到出口所花费最少。
思路:
感觉很有意思的一道最短路,思路是把每个点分成变成指令长度个点+1,然后就相当于有n^3个点。然后指令是顺序执行的,所以当前点的状态最多到达
周围可到达点的同一状态。所以我们就可以建边,如果我们走到隔壁点的当前状态就相当于插入了一个指令,就当前点到隔壁点建条花费为1的边。还可以建立
当前点到当前点的下个状态的边,花费为1,相当于删除当前指令。
这道题WA了很久= =然后找到数据对拍,最后发现是因为少建了一种边,就是指令执行完了,然后走向下一个点指令执行完了的边没有建立。
代码:
/** @xigua */ #include <cstdio> #include <cmath> #include <iostream> #include <algorithm> #include <vector> #include <stack> #include <cstring> #include <queue> #include <set> #include <string> #include <map> #include <climits> #include <bitset> #define PI acos(-1) using namespace std; typedef long long ll; typedef double db; const int maxn = 2e5 + 5; const int mod = 1e9 + 7; const int INF = 1e8 + 5; const ll inf = 1e15 + 5; const db eps = 1e-6; char mapp[55][55], op[55]; int dx[] = {1, -1, 0, 0}, dy[] = {0, 0, 1, -1}; int n, m; int cnt, head[maxn], dis[maxn]; struct Edge { int v, w, next; bool operator < (const Edge &rhs) const { return w > rhs.w; } } e[maxn*5]; void add(int u, int v, int co) { e[cnt].v = v; e[cnt].w = co; e[cnt].next = head[u]; head[u] = cnt++; } void init() { cnt = 0; memset(head, -1, sizeof(head)); } void dij(int s, int len) { priority_queue<Edge> pq; for (int i = 1; i <= len; i++) dis[i] = INF; bool vis[maxn] = {0}; dis[s] = 0; pq.push((Edge){s, 0}); while (!pq.empty()) { Edge tmp = pq.top(); pq.pop(); if (vis[tmp.v]) continue; vis[tmp.v] = 1; for (int i = head[tmp.v]; ~i; i = e[i].next) { Edge u = e[i]; if (dis[u.v] > dis[tmp.v] + u.w) { dis[u.v] = dis[tmp.v] + u.w; pq.push((Edge){u.v, dis[u.v]}); } } } } bool safe(int x, int y) { return x >= 1 && x <= n && y >= 1 && y <= m && mapp[x][y] != ‘#‘; } void solve() { while (cin >> n >> m) { init(); for (int i = 1; i <= n; i++) scanf("%s", mapp[i] + 1); scanf("%s", op+1); int len = strlen(op + 1); int st, ed; for (int i = 1; i <= n; i++) { for (int j = 1; j <= m; j++) { if (mapp[i][j] == ‘R‘) st = (i - 1) * m + j; if (mapp[i][j] == ‘E‘) ed = (i - 1) * m + j; if (mapp[i][j] == ‘#‘) continue; for (int k = 1; k <= len; k++) { for (int p = 0; p < 4; p++) { int x = i + dx[p]; int y = j + dy[p]; if (safe(x, y)) { int u = ((i - 1) * m + j) * (len + 1) + k; int v = ((x - 1) * m + y) * (len + 1) + k; add(u, v, 1); } } int x = i, y = j; if (op[k] == ‘R‘) y++; else if (op[k] == ‘L‘) y--; else if (op[k] == ‘U‘) x--; else x++; if (safe(x, y)) { int u = ((i - 1) * m + j) * (len + 1) + k; int v = ((x - 1) * m + y) * (len + 1) + k + 1; add(u, v, 0); } else { int u = ((i - 1) * m + j) * (len + 1) + k; add(u, u + 1, 0); } int u = ((i - 1) * m + j) * (len + 1) + k; add(u, u + 1, 1); } /* 就是这里 没有考虑到建立边 */ for (int p = 0; p < 4; p++) { int x = i + dx[p]; int y = j + dy[p]; if (safe(x, y)) { int u = ((i - 1) * m + j) * (len + 1) + len + 1; int v = ((x - 1) * m + y) * (len + 1) + len + 1; add(u, v, 1); } } } } dij(st * (len + 1) + 1, (n * m + 1) * (len + 1)); int ans = INF; for (int i = 1; i <= len + 1; i++) { int cur = ed * (len + 1) + i; ans = min(ans, dis[cur]); } cout << ans << endl; } } int main() { int t = 1, cas = 1; //freopen("in.txt", "r", stdin); // freopen("out.txt", "w", stdout); //scanf("%d", &t); while (t--) { // printf("Case %d: ", cas++); solve(); } return 0; }
标签:pac int bit 有意思 cto 最短路 amp 指令 eof
原文地址:http://www.cnblogs.com/ost-xg/p/7138011.html