题目很好懂, 讲下思路;
把每个命题看成节点, 推导视为有向边, 得到一个有向图G, 那么题意就是如何添加边, 使G强连通(每个点都能互相到达), 把G中的强连通分量找出后, 缩成一个点使G变成一个DAG, 接下来设这个DAG上有a个节点出度使0, b个节点入度为0, max(a, b)
这就没什么好证明的了, 很显然是这样的。。。
code
#include <stack>
#include <cstdio>
#include <cstring>
#include <algorithm>
using namespace std;
#define N 50005
#define next Next
#define begin Begin
#define mem(a) memset(a, 0, sizeof(a))
#define rep(i, j, k) for(int i=j; i<=k; ++i)
#define erep(i, u) for(int i=begin[u]; i; i=next[i])
void read(int &x){
char c=getchar();x=0;while(c<'0' || c>'9')c=getchar();
while(c>='0' && c<='9')x=x*10+c-'0', c=getchar();
}
int begin[N<<1], to[N<<1], next[N<<1], e;
void add(int x, int y){
to[++e]=y;
next[e]=begin[x];
begin[x]=e;
}
int n, m, low[N], pre[N], sccid[N], scc_cnt, clock_;
stack<int>s;
void dfs(int u){
pre[u]=low[u]=++clock_;
s.push(u);
erep(i, u){
int v=to[i];
if(!pre[v])dfs(v),low[u]=min(low[u], low[v]);
else if(!sccid[v])low[u]=min(low[u], pre[v]);
//notice! array low can only reach the point which is in the same SCC;
}
if(pre[u] == low[u]){
scc_cnt++;
while(1){
int x=s.top();s.pop();
sccid[x]=scc_cnt;if(x == u)break;
}
}
}
void solve(){
clock_ = scc_cnt = 0;
mem(pre);mem(sccid);
rep(i, 1, n)
if(!pre[i])
dfs(i);
}
int res1[N], res2[N];//no point can reach it, it can't reach any other point;
int main(){
#ifndef ONLINE_JUDGE
freopen("data.in", "r", stdin);
freopen("result.out", "w", stdout);
#endif
int _;
read(_);
while(_--){
e=0;mem(begin);
read(n);read(m);
rep(i, 1, m){
int u, v;
read(u);read(v);
add(u, v);
}
solve();
rep(i, 1, scc_cnt)res1[i] = res2[i] = 1;
rep(u, 1, n)
erep(i, u){
int v=to[i];
if(sccid[v] != sccid[u])res1[sccid[v]] = res2[sccid[u]] = 0;
}
int a, b;a = b = 0;
rep(i, 1, scc_cnt){
if(res1[i]) a++;
if(res2[i]) b++;
}
printf("%d
", scc_cnt==1? 0: max(a, b));
}
return 0;
}