Transmission Transparency and Potential Convergence of Optical Network Solutions at the Physical Layer for Bit Rates from 2.5 Gbps to 256 Gbps
In this paper, we investigate optical network recommendations GPON and XG-PON with triple-play services in terms of physical reach, number of subscribers, transceiver design, modulation format and implementation cost. Despite of trends to increase the bit rate from 2.5 Gbps to 10 Gbps and beyond, TD...
| Published in: | Advances in Electrical and Electronic Engineering |
|---|---|
| Main Authors: | , |
| Format: | Article |
| Language: | English |
| Published: |
VSB-Technical University of Ostrava
2017-01-01
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| Subjects: | |
| Online Access: | http://advances.utc.sk/index.php/AEEE/article/view/2502 |
| _version_ | 1852640218012712960 |
|---|---|
| author | Rajdi Agalliu Michal Lucki |
| author_facet | Rajdi Agalliu Michal Lucki |
| author_sort | Rajdi Agalliu |
| collection | DOAJ |
| container_title | Advances in Electrical and Electronic Engineering |
| description | In this paper, we investigate optical network recommendations GPON and XG-PON with triple-play services in terms of physical reach, number of subscribers, transceiver design, modulation format and implementation cost. Despite of trends to increase the bit rate from 2.5 Gbps to 10 Gbps and beyond, TDM-PONs cannot cope with bandwidth requirements of future networks. TDM and WDM techniques can be combined, resulting in improved scalability. Longer physical reach can be achieved by deploying active network elements within the transmission path. We investigate these options by considering their potential coexistence at the physical layer. Subsequently, we analyse the upgrade of optical channels to 100 Gbps and 256 Gbps by using advanced modulation formats, which combine polarization division multiplexing with coherent detection and digital signal processing. We show that PDM-QPSK format is suitable for 100 Gbps systems and PDM-16QAM is more beneficial at 256 Gbps. Simulations are performed in the OptSim software environment. |
| format | Article |
| id | doaj-art-aeb05eb63b2e4eefbeb2f2e161677050 |
| institution | Directory of Open Access Journals |
| issn | 1336-1376 1804-3119 |
| language | English |
| publishDate | 2017-01-01 |
| publisher | VSB-Technical University of Ostrava |
| record_format | Article |
| spelling | doaj-art-aeb05eb63b2e4eefbeb2f2e1616770502025-08-19T21:45:11ZengVSB-Technical University of OstravaAdvances in Electrical and Electronic Engineering1336-13761804-31192017-01-0115587788410.15598/aeee.v15i5.2502963Transmission Transparency and Potential Convergence of Optical Network Solutions at the Physical Layer for Bit Rates from 2.5 Gbps to 256 GbpsRajdi Agalliu0Michal Lucki1Department of Telecommunication Engineering, Faculty of Electrical Engineering, Czech Technical University in Prague, Technicka 2, 16627 Prague 6, Czech RepublicDepartment of Telecommunication Engineering, Faculty of Electrical Engineering, Czech Technical University in Prague, Technicka 2, 16627 Prague 6, Czech RepublicIn this paper, we investigate optical network recommendations GPON and XG-PON with triple-play services in terms of physical reach, number of subscribers, transceiver design, modulation format and implementation cost. Despite of trends to increase the bit rate from 2.5 Gbps to 10 Gbps and beyond, TDM-PONs cannot cope with bandwidth requirements of future networks. TDM and WDM techniques can be combined, resulting in improved scalability. Longer physical reach can be achieved by deploying active network elements within the transmission path. We investigate these options by considering their potential coexistence at the physical layer. Subsequently, we analyse the upgrade of optical channels to 100 Gbps and 256 Gbps by using advanced modulation formats, which combine polarization division multiplexing with coherent detection and digital signal processing. We show that PDM-QPSK format is suitable for 100 Gbps systems and PDM-16QAM is more beneficial at 256 Gbps. Simulations are performed in the OptSim software environment.http://advances.utc.sk/index.php/AEEE/article/view/2502optical networksoptical transceiverpolarization division multiplexingtime division multiplexingwavelength division multiplexing. |
| spellingShingle | Rajdi Agalliu Michal Lucki Transmission Transparency and Potential Convergence of Optical Network Solutions at the Physical Layer for Bit Rates from 2.5 Gbps to 256 Gbps optical networks optical transceiver polarization division multiplexing time division multiplexing wavelength division multiplexing. |
| title | Transmission Transparency and Potential Convergence of Optical Network Solutions at the Physical Layer for Bit Rates from 2.5 Gbps to 256 Gbps |
| title_full | Transmission Transparency and Potential Convergence of Optical Network Solutions at the Physical Layer for Bit Rates from 2.5 Gbps to 256 Gbps |
| title_fullStr | Transmission Transparency and Potential Convergence of Optical Network Solutions at the Physical Layer for Bit Rates from 2.5 Gbps to 256 Gbps |
| title_full_unstemmed | Transmission Transparency and Potential Convergence of Optical Network Solutions at the Physical Layer for Bit Rates from 2.5 Gbps to 256 Gbps |
| title_short | Transmission Transparency and Potential Convergence of Optical Network Solutions at the Physical Layer for Bit Rates from 2.5 Gbps to 256 Gbps |
| title_sort | transmission transparency and potential convergence of optical network solutions at the physical layer for bit rates from 2 5 gbps to 256 gbps |
| topic | optical networks optical transceiver polarization division multiplexing time division multiplexing wavelength division multiplexing. |
| url | http://advances.utc.sk/index.php/AEEE/article/view/2502 |
| work_keys_str_mv | AT rajdiagalliu transmissiontransparencyandpotentialconvergenceofopticalnetworksolutionsatthephysicallayerforbitratesfrom25gbpsto256gbps AT michallucki transmissiontransparencyandpotentialconvergenceofopticalnetworksolutionsatthephysicallayerforbitratesfrom25gbpsto256gbps |
