求图的底,就是找出经过缩点后的图中出度为0的点, 每个点中的元素就是图的底。然后
有序输出,不要多输出空格。将tarjan算法敲的比较熟了。
/*Accepted 468K 47MS C++ 1864B 2012-07-30 14:44:59*/ #include<cstdio> #include<cstring> #include<cstdlib> const int MAXN = 5050; const int MAXM = MAXN * MAXN; int first[MAXN], next[MAXM], v[MAXM], cnt, top, col, e, N, M, k; int dfn[MAXN], s[MAXN], low[MAXN], outdgr[MAXN], color[MAXN], ins[MAXN]; void tarjan(int cur) { int i; dfn[cur] = low[cur] = ++ cnt; s[top ++] = cur, ins[cur] = 1; for(i = first[cur]; i != -1; i = next[i]) { if(!dfn[v[i]]) { tarjan(v[i]); if(low[v[i]] < low[cur]) low[cur] = low[v[i]]; } else if(dfn[v[i]] < low[cur] && ins[v[i]]) low[cur] = dfn[v[i]]; } if(low[cur] == dfn[cur]) { ++ col; for(s[top] = -1; s[top] != cur; ) color[s[-- top]] = col, ins[s[top]] = 0; } } void cal() { int i, j; cnt = top = col = 0; memset(dfn, 0, sizeof dfn); memset(ins, 0, sizeof ins); for(i = 1; i <= N; i ++) if(!dfn[i]) tarjan(i); memset(outdgr, 0, sizeof outdgr); for(i = 1; i <= N; i ++) for(j = first[i]; j != -1; j = next[j]) if(color[i] != color[v[j]]) ++ outdgr[color[i]]; k = 0; for(i = 1; i <= N; i ++) { if(outdgr[color[i]] == 0) { if(k ++) printf(" "); printf("%d", i); } } printf("\n"); } void addedge(int x, int y) { v[e] = y; next[e] = first[x], first[x] = e ++; } void ReadGraph() { int x, y; e = 0; memset(first, -1, sizeof first); while(M --) { scanf("%d%d", &x, &y); addedge(x, y); } } int main() { while(scanf("%d", &N) != EOF) { if(N == 0) break; scanf("%d", &M); ReadGraph(); cal(); } return 0; }
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