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ID题目提交者结果用时内存语言文件大小提交时间测评时间
#98681#6329. Colorful GraphCSU2023WA 363ms19160kbC++144.7kb2023-04-19 20:24:502023-04-19 20:24:53

Judging History

你现在查看的是最新测评结果

  • [2023-08-10 23:21:45]
  • System Update: QOJ starts to keep a history of the judgings of all the submissions.
  • [2023-04-19 20:24:53]
  • 评测
  • 测评结果:WA
  • 用时:363ms
  • 内存:19160kb
  • [2023-04-19 20:24:50]
  • 提交

answer

#include <bits/stdc++.h>

template <class T>
inline void read(T &res)
{
	char ch; bool flag = false; res = 0;
	while (ch = getchar(), !isdigit(ch) && ch != '-');
	ch == '-' ? flag = true : res = ch ^ 48;
	while (ch = getchar(), isdigit(ch))
		res = res * 10 + ch - 48;
	flag ? res = -res : 0;
}

template <class T>
inline void nonnegative_put(T x)
{
	if (x > 9)
		nonnegative_put(x / 10);
	putchar(x % 10 + 48);
}

template <class T>
inline void put(T x)
{
	if (x < 0)
		x = -x, putchar('-');
	nonnegative_put(x);
}

template <class T>
inline void CkMin(T &x, T y) {x > y ? x = y : 0;}
template <class T>
inline void CkMax(T &x, T y) {x < y ? x = y : 0;}
template <class T>
inline T Min(T x, T y) {return x < y ? x : y;}
template <class T>
inline T Max(T x, T y) {return x > y ? x : y;}
template <class T>
inline T Abs(T x) {return x < 0 ? -x : x;}
template <class T>
inline T Sqr(T x) {return x * x;} 
//call Sqr((ll)x) when the type of returned value is "long long".

using std::map;
using std::set;
using std::pair;
using std::bitset;
using std::string;
using std::vector;
using std::complex;
using std::multiset;
using std::priority_queue;

typedef long long ll;
typedef long double ld;
typedef complex<ld> com;
typedef pair<int, int> pir;
const ld pi = acos(-1.0);
const ld eps = 1e-8;
const int Maxn = 1e9;
const int Minn = -1e9;
const int mod = 998244353; 
const int N = 14e3 + 5;

vector<int> e[N];
vector<pir>re[N];
int sre[N], lre[N], ans[N], ind[N], dfn[N], low[N], stk[N], col[N]; 
bool ins[N];
bitset<N> vis[N];
int T_data, n, m, C, top, tis;

const int M = 7e4 + 5;
int nxt[M], to[M], cap[M], adj[N], que[N], cur[N], lev[N];
int src, des, qr, T = 1;

inline void linkArc(int x, int y, int w)
{
	nxt[++T] = adj[x]; adj[x] = T; to[T] = y; cap[T] = w;
	nxt[++T] = adj[y]; adj[y] = T; to[T] = x; cap[T] = 0;	
}

inline bool Bfs()
{
	for (int x = 1; x <= des; ++x)	
		cur[x] = adj[x], lev[x] = -1;
	// 初始化具体的范围视建图而定,这里点的范围为 [1,n]
	que[qr = 1] = src;
	lev[src] = 0;
	for (int i = 1; i <= qr; ++i)
	{
		int x = que[i], y;
		for (int e = adj[x]; e; e = nxt[e])
			if (cap[e] > 0 && lev[y = to[e]] == -1)
			{
				lev[y] = lev[x] + 1;
				que[++qr] = y;
				if (y == des)
					return true;
			}
	}
	return false;
} 

inline int Dinic(int x, int flow)
{
	if (x == des)
		return flow;
	int y, delta, res = 0;	
	for (int &e = cur[x]; e; e = nxt[e]) 
		if (cap[e] > 0 && lev[y = to[e]] > lev[x])
		{
			delta = Dinic(y, Min(flow - res, cap[e]));
			if (delta)
			{
				cap[e] -= delta;
				cap[e ^ 1] += delta;
				res += delta;
				if (res == flow)
					break ; 
				//此时 break 保证下次 cur[x] 仍有机会增广 
			}
		} 
	if (res != flow)
		lev[x] = -1;
	return res; 
}

inline int maxFlow()
{
	int res = 0;
	while (Bfs())
		res += Dinic(src, Maxn);
	return res;
}

inline void Tarjan(int x)
{
	dfn[x] = low[x] = ++tis;
	stk[++top] = x;
	ins[x] = true; 
	for (int y : e[x])
		if (!dfn[y])
		{
			Tarjan(y);
			CkMin(low[x], low[y]);
		}
		else if (ins[y])
			CkMin(low[x], dfn[y]);
	if (dfn[x] == low[x])
	{
		int y;
		++C;
		do
		{
			y = stk[top--];
			ins[y] = false;
			col[y] = C;
		}while (y != x);
	}
}

int main()
{
	read(n); read(m);
	for (int i = 1, x, y; i <= m; ++i)
	{
		read(x); read(y);
		e[x].emplace_back(y);
	}
	for (int i = 1; i <= n; ++i)
		if (!dfn[i])
			Tarjan(i);
	for (int x = 1; x <= n; ++x)
	{
		for (int y : e[x])
			if (col[x] != col[y])
				vis[col[x]][col[y]] = 1;
		e[x].clear();
	}
	src = (C << 1) | 1, des = src + 1;
	for (int x = 1; x <= C; ++x)
	{
		linkArc(src, x, 1);
		linkArc(x + C, des, 1);
		linkArc(x + C, x, Maxn);
		for (int y = 1; y <= C; ++y)
			if (vis[x][y])
				linkArc(x, y + C, Maxn);
	}
	int _ans = maxFlow();
	for (int x = 1; x <= C; ++x)
		for (int e = adj[x]; e; e = nxt[e])
			if (!(e & 1) && to[e] > C && to[e] < src && to[e] - C != x && cap[e ^ 1] > 0)
			{
				re[x].emplace_back(std::make_pair(to[e] - C, cap[e ^ 1]));
				++lre[x];
				ind[to[e] - C] += cap[e ^ 1]; 
			}
	tis = 0;
	for (int x = 1; x <= C; ++x)
		sre[x] = re[x].size();
	for (int t = 1; t <= C; ++t)
	{
		for (int x = 1; x <= C; ++x)
			while (sre[x] > ind[x])
			{
				++tis;
				int u = x;
				ans[u] = tis;
				while (sre[u])
				{
					pir &v = re[u][lre[u] - 1];
					int vid = v.first;
					if (--v.second == 0)
						re[u].pop_back();
					--sre[u];
					u = vid;
					ans[u] = tis;
					--ind[u];
				}
			}
	}
	for (int x = 1; x <= C; ++x)
		if (!ans[x])
			ans[x] = ++tis;
	for (int i = 1; i <= n; ++i)
		put(ans[col[i]]), putchar(' ');
	putchar('\n');
}

详细

Test #1:

score: 100
Accepted
time: 3ms
memory: 6096kb

input:

5 5
1 4
2 3
1 3
2 5
5 1

output:

1 1 1 2 1 

result:

ok AC

Test #2:

score: 0
Accepted
time: 2ms
memory: 4120kb

input:

5 7
1 2
2 1
4 3
5 1
5 4
4 1
4 5

output:

2 2 1 1 1 

result:

ok AC

Test #3:

score: 0
Accepted
time: 0ms
memory: 6180kb

input:

8 6
6 1
3 4
3 6
2 3
4 1
6 4

output:

1 1 1 1 2 1 3 4 

result:

ok AC

Test #4:

score: -100
Wrong Answer
time: 363ms
memory: 19160kb

input:

7000 6999
4365 4296
2980 3141
6820 4995
4781 24
2416 5844
2940 2675
3293 2163
3853 5356
262 6706
1985 1497
5241 3803
353 1624
5838 4708
5452 3019
2029 6161
3849 4219
1095 1453
4268 4567
1184 1857
2911 3977
1662 2751
6353 6496
2002 6628
1407 4623
425 1331
4445 4277
1259 3165
4994 1044
2756 5788
5496 ...

output:

1 4957 3988 4675 368 2 3 4103 3315 4513 409 1378 4 1594 4556 5 2265 6 3170 1774 3766 2334 1616 4493 4972 7 8 755 4224 9 3499 3580 10 11 4079 4081 2035 12 1640 13 4571 3452 14 2283 15 2436 16 691 17 18 2651 19 3877 1396 4922 1936 901 20 3072 21 3559 1187 267 546 1907 22 1694 1197 4519 23 24 2459 25 2...

result:

wrong answer Integer 4957 violates the range [1, 1750]