DocumentCode :
32471
Title :
FiWi Access Networks Based on Next-Generation PON and Gigabit-Class WLAN Technologies: A Capacity and Delay Analysis
Author :
Aurzada, Frank ; Levesque, Martin ; Maier, Martin ; Reisslein, Martin
Author_Institution :
FB Math., Tech. Univ. Darmstadt, Darmstadt, Germany
Volume :
22
Issue :
4
fYear :
2014
fDate :
Aug. 2014
Firstpage :
1176
Lastpage :
1189
Abstract :
Current Gigabit-class passive optical networks (PONs) evolve into next-generation PONs, whereby high-speed 10+ Gb/s time division multiplexing (TDM) and long-reach wavelength-broadcasting/routing wavelength division multiplexing (WDM) PONs are promising near-term candidates. On the other hand, next-generation wireless local area networks (WLANs) based on frame aggregation techniques will leverage physical-layer enhancements, giving rise to Gigabit-class very high throughput (VHT) WLANs. In this paper, we develop an analytical framework for evaluating the capacity and delay performance of a wide range of routing algorithms in converged fiber-wireless (FiWi) broadband access networks based on different next-generation PONs and a Gigabit-class multiradio multichannel WLAN-mesh front end. Our framework is very flexible and incorporates arbitrary frame size distributions, traffic matrices, optical/wireless propagation delays, data rates, and fiber faults. We verify the accuracy of our probabilistic analysis by means of simulation for the wireless and wireless-optical-wireless operation modes of various FiWi network architectures under peer-to-peer, upstream, uniform, and nonuniform traffic scenarios. The results indicate that our proposed optimized FiWi routing algorithm (OFRA) outperforms minimum (wireless) hop and delay routing in terms of throughput for balanced and unbalanced traffic loads, at the expense of a slightly increased mean delay at small to medium traffic loads.
Keywords :
delays; next generation networks; optical fibre networks; passive optical networks; telecommunication network routing; telecommunication traffic; time division multiplexing; wireless LAN; FiWi access networks; FiWi network architectures; WDM; WLAN; capacity analysis; capacity performance; data rates; delay analysis; delay performance; delay routing; fiber faults; fiber-wireless broadband access networks; frame aggregation techniques; frame size distributions; gigabit-class WLAN technologies; gigabit-class multiradio multichannel WLAN-mesh front end; gigabit-class passive optical networks; long-reach wavelength-broadcasting; minimum hop routing; next-generation PON; next-generation wireless local area networks; optimized FiWi routing algorithm; peer-to-peer traffic scenarios; physical-layer enhancements; probabilistic analysis; routing wavelength division multiplexing; time division multiplexing; traffic loads; traffic matrices; upstream traffic scenarios; very high throughput WLAN; wireless propagation delays; wireless-optical-wireless operation modes; Next generation networking; Passive optical networks; Routing; Time division multiplexing; Wavelength division multiplexing; Wireless LAN; Wireless communication; Availability; fiber-wireless (FiWi) access networks; frame aggregation; integrated routing algorithms; next-generation passive optical networks (PONs); very high throughput wireless local area network (VHT WLAN);
fLanguage :
English
Journal_Title :
Networking, IEEE/ACM Transactions on
Publisher :
ieee
ISSN :
1063-6692
Type :
jour
DOI :
10.1109/TNET.2013.2270360
Filename :
6557101
Link To Document :
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