Datasets:

SSK-DNB
/

CodeContests_OnlyPythonData

	---
	dataset_info:
	features:
	- name: name
	dtype: string
	- name: description
	dtype: string
	- name: solutions
	dtype: string
	splits:
	- name: train
	num_bytes: 22782308
	num_examples: 8139
	download_size: 10785367
	dataset_size: 22782308
	configs:
	- config_name: default
	data_files:
	- split: train
	path: data/train-*
	---

	このデータセットは、deepmind/code_contestsからAtCoderのデータのみを抽出し、Pythonで正解として提出された最初のコードを取得して格納したものです。これにより、教師あり学習に適した形に整えられています。

	This dataset is created by extracting only the data from AtCoder within deepmind/code_contests and retrieving the first Python code submission marked as correct. As a result, it has been formatted to be suitable for supervised learning.

	# Example
	description
	```
	There are n persons who initially don't know each other. On each morning, two of them, who were not friends before, become friends.

	We want to plan a trip for every evening of m days. On each trip, you have to select a group of people that will go on the trip. For every person, one of the following should hold:

	* Either this person does not go on the trip,
	* Or at least k of his friends also go on the trip.



	Note that the friendship is not transitive. That is, if a and b are friends and b and c are friends, it does not necessarily imply that a and c are friends.

	For each day, find the maximum number of people that can go on the trip on that day.

	Input

	The first line contains three integers n, m, and k (2 ≤ n ≤ 2 ⋅ 10^5, 1 ≤ m ≤ 2 ⋅ 10^5, 1 ≤ k < n) — the number of people, the number of days and the number of friends each person on the trip should have in the group.

	The i-th (1 ≤ i ≤ m) of the next m lines contains two integers x and y (1≤ x, y≤ n, x≠ y), meaning that persons x and y become friends on the morning of day i. It is guaranteed that x and y were not friends before.

	Output

	Print exactly m lines, where the i-th of them (1≤ i≤ m) contains the maximum number of people that can go on the trip on the evening of the day i.

	Examples

	Input

	4 4 2
	2 3
	1 2
	1 3
	1 4


	Output

	0
	0
	3
	3


	Input

	5 8 2
	2 1
	4 2
	5 4
	5 2
	4 3
	5 1
	4 1
	3 2


	Output

	0
	0
	0
	3
	3
	4
	4
	5


	Input

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


	Output

	0
	0
	0
	0
	3
	4
	4

	Note

	In the first example,

	* 1,2,3 can go on day 3 and 4.



	In the second example,

	* 2,4,5 can go on day 4 and 5.
	* 1,2,4,5 can go on day 6 and 7.
	* 1,2,3,4,5 can go on day 8.



	In the third example,

	* 1,2,5 can go on day 5.
	* 1,2,3,5 can go on day 6 and 7.
	```
	solutions
	```
	#```python
	from collections import deque

	def solve(adj, m, k, uv):
	n = len(adj)
	nn = [len(a) for a in adj]
	q = deque()
	for i in range(n):
	if nn[i] < k:
	q.append(i)
	while q:
	v = q.popleft()
	for u in adj[v]:
	nn[u] -= 1
	if nn[u] == k-1:
	q.append(u)
	res = [0]*m
	nk = len([1 for i in nn if i >= k])
	res[-1] = nk
	for i in range(m-1, 0, -1):
	u1, v1 = uv[i]

	if nn[u1] < k or nn[v1] < k:
	res[i - 1] = nk
	continue
	if nn[u1] == k:
	q.append(u1)
	nn[u1] -= 1
	if not q and nn[v1] == k:
	q.append(v1)
	nn[v1] -= 1

	if not q:
	nn[u1] -= 1
	nn[v1] -= 1
	adj[u1].remove(v1)
	adj[v1].remove(u1)

	while q:
	v = q.popleft()
	nk -= 1
	for u in adj[v]:
	nn[u] -= 1
	if nn[u] == k - 1:
	q.append(u)
	res[i - 1] = nk
	return res

	n, m, k = map(int, input().split())
	a = [set() for i in range(n)]
	uv = []
	for i in range(m):
	u, v = map(int, input().split())
	a[u - 1].add(v - 1)
	a[v - 1].add(u - 1)
	uv.append((u-1, v-1))

	res = solve(a, m, k, uv)
	print(str(res)[1:-1].replace(' ', '').replace(',', '\n'))
	#```
	```