NOIP2016 天天爱跑步 - 树上差分
题目分析:
一年前还是个傻子的时候居然直接放弃了这题。
首先列出两个方程:如果i节点的观察员能够观察到由s->t的那个人,那么:
\[dep[s] - dep[i] = w[i], dep[t] - dep[i] = len - w[i]
\]
整理得到:$$dep[s] = w[i] + dep[i] (1), dep[t] - len = dep[i] - w[i] (2)$$
也就是说:只要起点满足方程(1)和终点满足方程(2)的都能被i看到,下面考虑下差分:因为树的dfs是连续的,所以以节点i为根节点的子树的答案就是:扫描子树后的 - 扫描子树前的,对于一个人从s->t,在s节点+dep[s],在t节点+dep[t] - len,在lca节点-dep[s], 在fa[lca]节点-(dep[t] - len)(s+, t+, lca-, fa[lca]-,这样才能做到补充不漏,自行脑补),每次处理该点的差分标记更新cnt1和cnt2数组(cnt1表示关于起点的差分值的个数,cnt2表示关于终点的差分值的个数,对应上面的方程),节点i的答案就是:$$(扫描后的cnt1[w[i] + dep[i]] + 扫描后的cnt2[dep[i] - w[i]]) - (扫描前的cnt1[w[i] + dep[i]] + 扫描前的cnt2[dep[i] - w[i]])$$
最后还要注意cnt数组记录的差分值可能出现负数,所以要给作差的差分值+offset,来保证下标是合法的。
code
#include<bits/stdc++.h>
using namespace std;
typedef long long ll;
namespace IO{
inline ll read(){
ll i = 0, f = 1; char ch = getchar();
for(; (ch < '0' || ch > '9') && ch != '-'; ch = getchar());
if(ch == '-') f = -1, ch = getchar();
for(; ch >= '0' && ch <= '9'; ch = getchar()) i = (i << 3) + (i << 1) + (ch - '0');
return i * f;
}
inline void wr(ll x){
if(x < 0) putchar('-'), x = -x;
if(x > 9) wr(x / 10);
putchar(x % 10 + '0');
}
}using namespace IO;
const int N = 3e5 + 5, M = 3e5 + 5;
int n, m, ecnt, adj[N], nxt[M << 1], go[M << 1];
int cnt1[N * 3], cnt2[N * 3], w[N], offset;
int fa[N][25], dep[N], ans[N];
struct node{int type, val, flag;};
vector<node> tag[N];
inline void addEdge(int u, int v){nxt[++ecnt] = adj[u], adj[u] = ecnt, go[ecnt] = v;}
inline void pre(int u, int f){
dep[u] = dep[f] + 1;
fa[u][0] = f;
for(int i = 1; i <= 20; i++) fa[u][i] = fa[fa[u][i - 1]][i - 1];
for(int v, e = adj[u]; e; e = nxt[e]){
if((v = go[e]) == f) continue;
pre(v, u);
}
}
inline int getLca(int u, int v){
if(dep[u] < dep[v]) swap(u, v);
int delta = dep[u] - dep[v];
for(int i = 20; i >= 0; i--) if((1 << i) & delta) u = fa[u][i];
if(u == v) return u;
for(int i = 20; i >= 0; i--) if(fa[u][i] != fa[v][i]) u = fa[u][i], v = fa[v][i];
return fa[u][0];
}
inline void addTag(int u, int v){
int lca = getLca(u, v), len = dep[u] + dep[v] - 2 * dep[lca];
tag[u].push_back((node){1, dep[u], 1}), tag[v].push_back((node){2, dep[v] - len + offset, 1});
tag[lca].push_back((node){1, dep[u], -1}), tag[fa[lca][0]].push_back((node){2, dep[v] - len + offset, -1});
}
inline void dfs(int u, int f){
int cur = cnt1[w[u] + dep[u]] + cnt2[dep[u] - w[u] + offset];
for(int i = 0; i < tag[u].size(); i++){
if(tag[u][i].type == 1) cnt1[tag[u][i].val] += tag[u][i].flag;
else cnt2[tag[u][i].val] += tag[u][i].flag;
}
for(int v, e = adj[u]; e; e = nxt[e]){
if((v = go[e]) == f) continue;
dfs(v, u);
}
ans[u] = -cur + cnt1[w[u] + dep[u]] + cnt2[dep[u] - w[u] + offset];
}
int main(){
freopen("h.in", "r", stdin);
n = read(), m = read(); offset = n * 3;
for(int i = 1; i < n; i++){int x = read(), y = read(); addEdge(x, y), addEdge(y, x);}
pre(1, 0);
for(int i = 1; i <= n; i++) w[i] = read();
for(int i = 1; i <= m; i++){int u = read(), v = read(); addTag(u, v);}
dfs(1, 0);
for(int i = 1; i <= n; i++) wr(ans[i]), putchar(' ');
return 0;
}
