Energy-Saving Mechanism in WDM/TDM-PON Based on Upstream Network Traffic

被引:13
作者
Garfias, Paola [1 ]
De Andrade, Marilet [2 ]
Tornatore, Massimo [2 ]
Buttaboni, Anna [2 ]
Sallent, Sebastia [1 ]
Gutierrez, Lluis [1 ]
机构
[1] Univ Politecn Cataluna, Esteve Terradas 7, Barcelona 08860, Spain
[2] Politecn Milan, I-20133 Milan, Italy
关键词
PON; WDM/TDM-PON; energy-saving; channel utilization;
D O I
10.3390/photonics1030235
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
One of the main challenges of Passive Optical Networks (PONs) is the resource (bandwidth and wavelength) management. Since it has been shown that access networks consume a significant part of the overall energy of the telecom networks, the resource management schemes should also consider energy minimization strategies. To sustain the increased bandwidth demand of emerging applications in the access section of the network, it is expected that next generation optical access networks will adopt the wavelength division/time division multiplexing (WDM/TDM) technique to increase PONs capacity. Compared with traditional PONs, the architecture of a WDM/TDM-PON requires more transceivers/receivers, hence they are expected to consume more energy. In this paper, we focus on the energy minimization in WDM/TDM-PONs and we propose an energy-efficient Dynamic Bandwidth and Wavelength Allocation mechanism whose objective is to turn off, whenever possible, the unnecessary upstream traffic receivers at the Optical Line Terminal (OLT). We evaluate our mechanism in different scenarios and show that the proper use of upstream channels leads to relevant energy savings. Our proposed energy-saving mechanism is able to save energy at the OLT while maintaining the introduced penalties in terms of packet delay and cycle time within an acceptable range. We might highlight the benefits of our proposal as a mechanism that maximizes the channel utilization. Detailed implementation of the proposed algorithm is presented, and simulation results
引用
收藏
页码:235 / 250
页数:16
相关论文
共 27 条
[1]  
[Anonymous], 1904, 190412013 IEEE, P1
[2]   Energy Efficiency in TDMA-Based Next-Generation Passive Optical Access Networks [J].
Dhaini, Ahmad R. ;
Ho, Pin-Han ;
Shen, Gangxiang ;
Shihada, Basem .
IEEE-ACM TRANSACTIONS ON NETWORKING, 2014, 22 (03) :850-863
[3]   Toward Green Next-Generation Passive Optical Networks [J].
Dhaini, Ahmad R. ;
Ho, Pin-Han ;
Shen, Gangxiang .
IEEE COMMUNICATIONS MAGAZINE, 2011, 49 (11) :94-101
[4]   Experimental evaluation of a sleep-aware dynamic bandwidth allocation in a multi-ONU 10G-EPON testbed [J].
Dung Pham Van ;
Valcarenghi, Luca ;
Chincoli, Michele ;
Castoldi, Piero .
OPTICAL SWITCHING AND NETWORKING, 2014, 14 :11-24
[5]  
Feng H., 2012, P 17 OPT EL COMM C O
[6]  
Feng H., 2011, P 2011 NAT FIB OPT E
[7]  
Garfias P, 2013, EUR CONF NETW OPTIC, P225, DOI 10.1109/NOC-OCI.2013.6582894
[8]   Fiber-Wireless (FiWi) Access Networks: A Survey [J].
Ghazisaidi, Navid ;
Maier, Martin ;
Assi, Chadi M. .
IEEE COMMUNICATIONS MAGAZINE, 2009, 47 (02) :160-167
[9]   Power Saving Techniques and Mechanisms for Optical Access Networks Systems [J].
Kani, Jun-ichi .
JOURNAL OF LIGHTWAVE TECHNOLOGY, 2013, 31 (04) :563-570
[10]   Enabling Technologies for Future Scalable and Flexible WDM-PON and WDM/TDM-PON Systems [J].
Kani, Jun-ichi .
IEEE JOURNAL OF SELECTED TOPICS IN QUANTUM ELECTRONICS, 2010, 16 (05) :1290-1297