2013 All Japan Indoor Tennis Championships – Singles

Singles
	2013 All Japan Indoor Tennis Championships
Champion	John Millman
Runner-up	Marco Chiudinelli
Final score	4–6, 6–4, 7–6(7–2)

Tatsuma Ito was the defending champion but decided to participate at the 2013 BNP Paribas Open instead.
In the final, fourth seeded John Millman outlasted second seeded Marco Chiudinelli in 2 hours and 26 minutes to claim the title with a scoreline of 4–6, 6–4, 7–6^(7–2).

Seeds

Yūichi Sugita (Quarterfinals)
Marco Chiudinelli (Final)
Zhang Ze (Withdrew)
John Millman (Champion)
Hiroki Moriya (Semifinals)
Michał Przysiężny (Quarterfinals)
Peter Gojowczyk (Quarterfinals)
Dominik Meffert (Quarterfinals)

Draw

Key

Finals

Semifinals				Final


5	Hiroki Moriya	6⁴	1

4	John Millman	7⁷	6
				4	John Millman	4	6	7⁷

				2	Marco Chiudinelli	6	4	6²
	Matthew Barton	6⁶	4

2	Marco Chiudinelli	7⁸	6

Top Half

First Round					Second Round					Quarterfinals					Semifinals

1	Y Sugita	6	6
	M Reid	4	4		1	Y Sugita	w/o
	G Jones	7⁷	7			G Jones
	B Mitchell	6⁵	5							1	Y Sugita	6⁴	7	3
	M Gong	7⁷	1	3						5	H Moriya	7⁷	5	6
SE	A Sitak	6⁶	6	6	SE	A Sitak
	T-h Yang	2	4		5	H Moriya	w/o
5	H Moriya	6	6												5	H Moriya	6⁴	1
4	J Millman	7⁷	6												4	J Millman	7⁷	6
Q	T Matsui	6⁴	4		4	J Millman	4	6	7⁷
Q	H Kondo	6	6		Q	H Kondo	6	1	6³
Q	Adrian Sikora	2	0							4	J Millman	6	3	6
	S Groth	7⁷	6							7	P Gojowczyk	3	6	3
	S-y Jeong	6⁵	4			S Groth	4	4
WC	T Niki	3	4		7	P Gojowczyk	6	6
7	P Gojowczyk	6	6

Bottom Half

First Round					Second Round					Quarterfinals					Semifinals

8	D Meffert	6	6
WC	K Takeuchi	3	4		8	D Meffert	7⁷	7⁷
Q	M Venus	5	3			A Arnaboldi	6⁴	6⁰
	A Arnaboldi	7	6							8	D Meffert	6	3	4
WC	Masato Shiga	0	3								M Barton	3	6	6
	M Barton	6	6			M Barton	7⁷	6
	Y Uchiyama	6	4	6		Y Uchiyama	6⁰	4
LL	Shuichi Sekiguchi	3	6	0												M Barton	6⁶	4
6	M Przysiężny	7	6												2	M Chiudinelli	7⁸	6
WC	K Uchida	5	3		6	M Przysiężny	6⁴	6	7
	Y Bhambri	6	6			Y Bhambri	7⁷	3	5
	L-c Huang	4	2							6	M Przysiężny	6	6⁹	1
	J Statham	4	6	3						2	M Chiudinelli	3	7¹¹	6
	J Duckworth	6	4	6		J Duckworth	6⁵	7⁹	2
	L Saville	6	4	0	2	M Chiudinelli	7⁷	6⁷	6
2	M Chiudinelli	3	6	6

gollark: https://math.stackexchange.com/questions/216336/property-of-sum-sum-k-1-infty-frac2k14n11-exp2k1-pi

gollark: There does not seem to be any "simple" way.

gollark: I found someone else talking about it so now I have ATTAINED the INFORMATION.

gollark: Implement hypermetatrait subclasses.

gollark: (Macron developers cannot be taken seriously.)

References

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