DocumentCode
46072
Title
Energy Efficiency in TDMA-Based Next-Generation Passive Optical Access Networks
Author
Dhaini, Ahmad R. ; Pin-Han Ho ; Gangxiang Shen ; Shihada, Basem
Author_Institution
Dept. of Electr. Eng., Stanford Univ., Stanford, CA, USA
Volume
22
Issue
3
fYear
2014
fDate
Jun-14
Firstpage
850
Lastpage
863
Abstract
Next-generation passive optical network (PON) has been considered in the past few years as a cost-effective broadband access technology. With the ever-increasing power saving concern, energy efficiency has been an important issue in its operations. In this paper, we propose a novel sleep-time sizing and scheduling framework for the implementation of green bandwidth allocation (GBA) in TDMA-PONs. The proposed framework leverages the batch-mode transmission feature of GBA to minimize the overhead due to frequent ONU on-off transitions. The optimal sleeping time sequence of each ONU is determined in every cycle without violating the maximum delay requirement. With multiple ONUs possibly accessing the shared media simultaneously, a collision may occur. To address this problem, we propose a new sleep-time sizing mechanism, namely Sort-And-Shift (SAS), in which the ONUs are sorted according to their expected transmission start times, and their sleep times are shifted to resolve any possible collision while ensuring maximum energy saving. Results show the effectiveness of the proposed framework and highlight the merits of our solutions .
Keywords
bandwidth allocation; next generation networks; passive optical networks; time division multiple access; GBA; ONU on-off transitions; PON; SAS; TDMA-based next-generation passive optical access networks; batch-mode transmission feature; cost-effective broadband access technology; energy efficiency; energy saving; green bandwidth allocation; optimal sleeping time sequence; power saving; sleep-time sizing mechanism; sort-and-shift mechanism; Analytical model; dynamic bandwidth allocation; energy efficiency; green communications; passive optical network (PON); quality-of-service (QoS); queuing theory;
fLanguage
English
Journal_Title
Networking, IEEE/ACM Transactions on
Publisher
ieee
ISSN
1063-6692
Type
jour
DOI
10.1109/TNET.2013.2259596
Filename
6512637
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