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Deep data analysis in gigabit passive optical networks

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
This paper focuses on practical aspects of gigabit passive optical networks (GPON) diagnostics during deployment, for root-cause analysis and for research purposes. While GPON signalling analysis is already quite commonly used for diagnostics, the aim of this work is a holistic approach, including both signalling and user plane (payload) analysis. User plane analysis, especially if targeted at payload Ethernet, IP and transport layers, enables detection of additional group of problems that could limit or even prevent GPON internetworking and thus degrade the user perceived service quality. Integrated signalling and payload analysis is also interesting from the research point of view, leading to the ability to study equipment idiosyncrasies that would be hard to detect otherwise and it is also one of the enablers of equipment security verification. The mentioned theories were tested during a practical diagnostic session on a real GPON network deployment and this paper presents the findings.
Czasopismo
Rocznik
Strony
157--170
Opis fizyczny
Bibliogr. 27 poz., rys., tab.
Twórcy
autor
  • Brno University of Technology, Faculty of Elecrical Engineering and Communication, Department of Telecommunications, Technicka 12, 616 00, Brno, Czech Republic
autor
  • CESNET, z. s. p. o., Zikova 4, 821 08 Prague, Czech Republic
autor
  • Orange Slovakia corp, Metodova 8, 821 08 Bratislava-Ružinov, Slovakia
Bibliografia
  • [1] RUFFINI M., MEHTA D., O’SULLIVAN B., QUESADA L., DOYLE L., PAYNE D.B., Deployment strategies for protected long-reach PON, Journal of Optical Communications and Networking 4(2), 2012, pp. 118–129.
  • [2] FORZATI M., LARSEN C., On the symmetry requirements for tomorrow’s fibre access networks, 11th International Conference on Transparent Optical Networks, June 28–July 2, 2009, Azores, IEEE, pp. 1–4.
  • [3] WEIS E., BREUER D., LANGE C., Technologies for next generation optical access, 14th International Conference on Transparent Optical Networks (ICTON), July 2–5, 2012, Coverty, IEEE, pp. 1–2.
  • [4] EFFENBERGER F.J., PON resilience, Journal of Optical Communications and Networking 7(3), 2015, pp. A547–A552.
  • [5] JUN SHAN WEY, NESSET D., VALVO M., GROBE K., ROBERTS H., YUANQIU LUO, SMITH J., Physical layer aspects of NG-PON2 Standards – Part 1: optical link design, Journal of Optical Communications and Networking 8(1), 2016, pp. 33–42.
  • [6] YUANQIU LUO, ROBERTS H., GROBE K., VALVO M., NESSET D., ASAKA K., ROHDE H., SMITH J., JUN SHAN WEY, EFFENBERGER F., Physical layer aspects of NG-PON2 Standards – Part 2: system design and technology feasibility, Journal of Optical Communications and Networking 8(1), 2016, pp. 43–52.
  • [7] SKALJO E., MUJCIC A., SULJANOVIC N., Usage of optical power meter in passive optical networks, Fiber and Integrated Optics 30(5), 2011, pp. 308–321.
  • [8] ŽGALJ A., SKALJO E., KADUŠIĆ E., Pulse width as an influencing factor in optical time domain reflectometry measurements, 19thTelecommunications Forum (TELFOR) Proceedings of Papers, November 22–24, 2011, Belegrad, IEEE, pp. 832–835.
  • [9] MENDONÇA C., LIMA M., TEIXEIRA A., Security issues due to reflection in PON physical medium, 14th International Conference on Transparent Optical Networks (ICTON), July 2–5, 2012, Coverty, IEEE, pp. 1–4.
  • [10] CZÉKUS J., MEGYESI P., MITCSENKOV A., MAZROA D., Hardware cost and capacity analysis of future TDM- and WDM-PON access networks, 16th International Conference on Transparent Optical Networks (ICTON), July 6–10, 2014, Graz, IEEE, pp. 1–4.
  • [11] HORVATH T., MUNSTER P., JURCIK J., KOCI L., FILKA M., Timing measurement and simulation of the activation process in gigabit passive optical networks, Optica Applicata 45(4), 2015, pp. 459–471.
  • [12] G.984.3: Gigabit-Capable Passive Optical Networks (G-PON): Transmission Convergence Layer Specification, International Telecommunication Union, 2014, pp. 1–170.
  • [13] IEEE Public Organizationally Unique Identifier List, 2015-12, IEEE, 2015.
  • [14] Ethernet Numbers: IANA MAC Address Block, IANA, 2015.
  • [15] REKHTER, Y., MOSKOWITZ B., KARRENBERG D., GROOT G.J., RFC 1918: Address Allocation for Private Internets, February 1996.
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  • [20] MEYER D., RFC 2365: Administratively Scoped IP Multicast, 1998.
  • [21] KATZ D., RFC 2113: IP Router Alert Option, 1997.
  • [22] BRADEN B., ZHANG L., ESTRIN D., HERZOG S., JAMIN S., RFC 3315: Resource ReSerVation Protocol (RSVP), 1997.
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  • [24] PERKINS C., RFC 2003: IP Encapsulation within IP, 1996.
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  • [26] CHESHIRE S., KROCHMAL L., RFC 6886: NAT Port Mapping Protocol (NAT-PMP), 2013.
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Uwagi
Opracowanie ze środków MNiSW w ramach umowy 812/P-DUN/2016 na działalność upowszechniającą naukę (zadania 2017).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-ee95548e-d535-4993-9047-fce1dfbcb6e2
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