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Tytuł artykułu

Design and development of a new architecture of sliceable bandwidth variable transponder

Wybrane pełne teksty z tego czasopisma
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Języki publikacji
EN
Abstrakty
EN
In this paper we propose a new sliceable bandwidth variable transponder (SBVT) architecture with the separate analysis on the transmitter and receiver section. In transmission section we propose a distance module (DM) which is a programmable module. It divides a data stream/main stream (which employs a super-channel) into sub-stream and assigned modulation technique to each sub-stream based on their light path distance detailing the concept of sub-channel. In this paper, we have also proposed an algorithm for the distance module. Next we propose a modulation and transmission module (M&TM), where, planar light wave circuit (PLC) is used for enabling three modulation techniques (PM-16QAM, PM-QPSK and PM-BPSK). Finally, we propose the receiving section, which is designed to support three modulation techniques. It consists of two demodulator circuits, one for PM-16QAM/PM-QPSK and the other for PM-BPSK. In this proposed work, we focus on the multi-mode interference (MMI) devices (MMI coupler and MMI splitter) because of their photonic integration technology which is necessary for the implementation of SBVT. Lastly, we propose an elastic optical node architecture which removes the limitations of previously discussed node architecture for long distance communication.
Twórcy
autor
  • Department of Electronics Engineering, Indian Institute of Technology (Indian School of Mines), Dhanbad 826004, India
autor
  • Department of Electronics Engineering, Indian Institute of Technology (Indian School of Mines), Dhanbad 826004, India
Bibliografia
  • [1] V. Lopez, L. Velasco, Elastic Optical Networks: Architectures, Technologies, and Control, Springer International Publishing, Switzerland, 2016, http://dx.doi.org/10.1007/978-3-319-30174-7.
  • [2] O. Gerstel, M. Jinno, Elastic Optical Networking, Sixth Edition, Optical Fiber Telecommunications, 2013, pp. 653–682 (Chapter 14).
  • [3] O. Gerstel, M. Jinno, A. Lord, S. J. B. Yoo, Elastic optical networking: a new dawn for the optical layer, IEEE Commun. Mag. (2012) 12-17.
  • [4] V. Lopez, B. D. L. Cruz, O. G. D. Dios, O. Gerstel, N. Amaya, G. Zervas, D. Simeonidou, J. P. F. Palacios, Finding the target cost for sliceable bandwidth variable transponders, J. Opt. Commun. Netw. 6 (2014) 476-485.
  • [5] M. Jinno, H. Takara, Y. Sone, K. Yonenaga, A. Hirano, Multiflow optical transponder for efficient multilayer optical networking, IEEE Commun. Mag. (2012) 56-65.
  • [6] N. Sambo, P. Castoldi, A. D’Errico, E. Riccardi, A. Pagano, M. S. Moreolo, J. M. Fabrega, D. Rafique, A. Napoli, S. Frigerio, E. H. Salas, G. Zervas, M. Nolle, J. K. Fischer, A. Lord, J. P. F.-P. Gimenez, Next generation sliceable bandwidth variable transponders, IEEE Commun. Mag. (2015) 163-171.
  • [7] N. Sambo, A. D’Errico, C. Porzi, V. Vercesi, M. Imran, F. Cugini, A. Bogoni, L. Potì, P. Castoldi, Sliceable transponder architecture including multiwavelength source, J. Opt. Commun. Netw. 6 (2014) 590-599.
  • [8] Y. Miyamoto, S. Suzuki, Advanced optical modulation and multiplexing technologies for high-capacity OTN based on 100 Gb/s channel and beyond, IEEE Commun. Mag. (2010) 565-572.
  • [9] E. Riccardi, A. Pagano, M. Bohn, A. Napoli, N. Sambo, P. Castoldi, M. S. Moreolo, J. M. Fabrega, E. H. Salas, G. Zervas, D. Simeonidou, A. D’Errico, T. Rahman, M. Gunkel, Sliceable bandwidth variable transponder: the IDEALIST vision, in: European Conference on Networks and Communications (EuCNC), 2015, pp. 330-334.
  • [10] M. Carroll, V. J. Roese, T. Ohara, The operator’s view of OTN evolution, IEEE Commun. Mag. (2010) 46-52.
  • [11] I. Tomkos, P. S. Khodashenas, J. M. Rivas-Moscoso, D. Klonidis, D. M. Marom, G. Thouénon, A. Ellis, D. Hillerkuss, J. Zhao, D. Siracusa, F. Jiménez, N. Psaila, Flexible optical networking with spectral or spatial super-channels, in: IV International Workshop on trends in Optical Technologies, 2015, pp. 1-7.
  • [12] A. K. Mishra, R. Schmogrow, I. Tomkos, D. Hillerkuss, C. Koos, W. Freude, J. Leuthold, Flexible RF-based comb generator, IEEE Photon. Technol. Lett. 25(2013) 701-704.
  • [13] S. E. Miller, Integrated optics: an introduction, Bell Syst. Tech. J. 48 (1969) 2059-2069.
  • [14] A. Hosseini, D. Kwong, C.-Y. Lin, B. S. Lee, R. T. Chen, Output formulation for symmetrically excited one-to-N multimode interference coupler, IEEE J. Select. Top. Quantum Electron. 16 (2010) 61-69.
  • [15] M. Błahut, A. Opilski, Multimode interference structures - new way of a passive elements technology for photonics, Opto-Electron. Rev. 9 (2001) 293-300.
  • [16] D. Chack, V. Kumar, S. K. Raghuwanshi, Design and performance analysis of InP/InGaAsP-MMI based 1310/1550-nm wavelength division demultiplexer with tapered waveguide geometry, Opto-Electron. Rev. 23 (4) (2015) 271-277.
  • [17] J. M. Ferreira, D. Fonseca, P. P. Monteiro, A. N. Pinto, L. Rapp, Site-dependent pumping effect on two-level EDFAs, J. Lightw. Technol. 33 (2015) 285-292.
  • [18] W.-C. Chiu, C.-Y. Lu, M.-C. M. Lee, Monolithic integration of 2-D multimode interference couplers and silicon photonic wires, IEEE J. Select. Top. Quantum Electron. 17 (2011) 540-545.
  • [19] X. Zhou, L. E. Nelson, P. Magill, Rate-adaptable optics for next generation long-haul transport networks, IEEE Commun. Mag. (2013) 41-49.
  • [20] M. S. Ali, The challenges of data transmission toward Tbps line rate in DWDM system for long haul transmission, Int. J. Fut. Gen. Commun. Netw. 7 (2014) 209-216.
  • [21] M. S. A. Rahman, A. A. A. Rahni, M. S. D. Zan, K. Jumari, S. Shaari, M. F. Ibrahim, OXADMs: the next generation of optical switching devices, in: IEEE WOCN’08, 2008, pp. 1-7.
Uwagi
PL
Opracowanie ze środków MNiSW w ramach umowy 812/P-DUN/2016 na działalność upowszechniającą naukę (zadania 2017)
Typ dokumentu
Bibliografia
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