Solved:3
Rank:261
E Explorer (线段树)
题意:n个点 m条边 每条边只有身高l,r内的人可以穿过 问有几种身高可以从1走到n
题解:把l,r离散化后(左闭右开) 线段树叶子节点维护区间 然后从线段树根节点dfs下去
这个区间能不能产生贡献的关键在于1和n的联通 所以用可撤销的按秩并查集动态维护信息
回溯的时候要撤掉并查集 不能对其他子区间产生影响
#include <bits/stdc++.h> using namespace std; const int MAXN = 1e5 + 5; int n, m, cnt, ans; int u[MAXN], v[MAXN], b[MAXN << 1]; int l[MAXN], r[MAXN]; int fa[MAXN], zhi[MAXN]; vector<int> g[MAXN << 3]; int find(int x) { if(fa[x] != x) return find(fa[x]); else return x; } void update(int ql, int qr, int x, int l, int r, int rt) { if(ql <= l && qr >= r) { g[rt].push_back(x); //表示l,r区间能通过x号边 return; } int mid = l + r >> 1; if(ql <= mid) update(ql, qr, x, l, mid, rt << 1); if(qr > mid) update(ql, qr, x, mid + 1, r, rt << 1 | 1); } void dfs(int l, int r, int rt) { vector< pair<int, int> > tmp; for(int i = 0; i < g[rt].size(); i++) { int x = u[g[rt][i]], y = v[g[rt][i]]; int fx = find(x), fy = find(y); if(fx == fy) continue; if(zhi[fx] < zhi[fy]) fa[fx] = fy, tmp.push_back(make_pair(fx, 0)); else if(zhi[fx] > zhi[fy]) fa[fy] = fx, tmp.push_back(make_pair(fy, 0)); else zhi[fx]++, fa[fy] = fx, tmp.push_back(make_pair(fy, 1)); } if(find(1) == find(n)) { ans += b[r + 1] - b[l]; } else if(l < r) { int mid = l + r >> 1; dfs(l, mid, rt << 1); dfs(mid + 1, r, rt << 1 | 1); } for(int i = tmp.size() - 1; i >= 0; i--) { zhi[fa[tmp[i].first]] -= tmp[i].second; fa[tmp[i].first] = tmp[i].first; } } int main() { ans = 0, cnt = 0; scanf("%d%d", &n, &m); for(int i = 1; i <= n; i++) fa[i] = i, zhi[i] = 0; for(int i = 1; i <= m; i++) { scanf("%d%d%d%d", &u[i], &v[i], &l[i], &r[i]); b[++cnt] = l[i]; b[++cnt] = r[i] + 1; } sort(b + 1, b + 1 + cnt); cnt = unique(b + 1, b + 1 + cnt) - (b + 1); for(int i = 1; i <= m; i++) { int t1 = lower_bound(b + 1, b + 1 + cnt, l[i]) - b; int t2 = lower_bound(b + 1, b + 1 + cnt, r[i] + 1) - b; update(t1, t2 - 1, i, 1, cnt, 1); } dfs(1, cnt, 1); printf("%d ", ans); return 0; }