Multiobjective energy-aware node selection

被引:0
作者
Le, Qiang [1 ]
Kaplan, Lance M. [2 ]
McClellan, James H. [1 ]
机构
[1] Georgia Inst Technol, Sch Elect & Comp Engn, Atlanta, GA 30332 USA
[2] US Army Res Lab, Adelphi, MD 20783 USA
来源
2006 IEEE AEROSPACE CONFERENCE, VOLS 1-9 | 2006年
关键词
D O I
暂无
中图分类号
V [航空、航天];
学科分类号
08 ; 0825 ;
摘要
This work develops a resource management strategy for a wireless sensor network of bearings-only sensors. Specifically, the resource manager determines which nodes actively sense and communicate during each snapshot in order to achieve a tolerable level of geolocalization accuracy while attempting to maximize the effective lifetime of the network. Unlike other methods that use the total energy consumed for the given snapshot as an energy-based metric, a new energy-based (EB) metric can achieve load balancing of the nodes without resorting, to computationally demanding non-myopic optimization. Simulation results show that EB provides longer lifetime than an existing geometry-based (GB) metric. We consider an adaptive transmission range control based upon the remaining battery level and the physical location knowledge of nodes in the network. The activation decision is performed in a decentralized manner over the active set of nodes. Each active node transmits just far enough to reach all the active nodes for information sharing and the potentially active nodes for information handoff. In determining the active set, both global and local approaches are considered. The global approach assumes each node knows the physical location of every other node in the network. On the other hand, the local approach assumes that a node only knows the location of itself, the previous active set, and neighboring nodes.
引用
收藏
页码:2342 / +
页数:4
相关论文
共 50 条
[21]   Energy-Aware Dynamic Server Selection and Task Allocation [J].
Bokar, Ali ;
Bozyigit, Muslim ;
Sener, Cevat .
23RD INTERNATIONAL SYMPOSIUM ON COMPUTER AND INFORMATION SCIENCES, 2008, :207-212
[22]   Energy-aware neural architecture selection and hyperparameter optimization [J].
Frey, Nathan C. ;
Zhao, Dan ;
Axelrod, Simon ;
Jones, Michael ;
Bestor, David ;
Gadepally, Vijay ;
Gomez-Bombarelli, Rafael ;
Samsi, Siddharth .
2022 IEEE 36TH INTERNATIONAL PARALLEL AND DISTRIBUTED PROCESSING SYMPOSIUM WORKSHOPS (IPDPSW 2022), 2022, :732-741
[23]   Energy-aware node and link reconfiguration for virtualized network environments [J].
Ghazisaeedi, Ebrahim ;
Huang, Changcheng .
COMPUTER NETWORKS, 2015, 93 :460-479
[24]   Energy-aware sensor node relocation in mobile sensor networks [J].
El Korbi, Ines ;
Zeadally, Sherali .
AD HOC NETWORKS, 2014, 16 :247-265
[25]   Energy-Aware Query Processing on a Parallel Database Cluster Node [J].
Roukh, Amine ;
Bellatreche, Ladjel ;
Tziritas, Nikos ;
Ordonez, Carlos .
ALGORITHMS AND ARCHITECTURES FOR PARALLEL PROCESSING, ICA3PP 2016, 2016, 10048 :260-269
[26]   Efficient Approaches for Solving a Multiobjective Energy-aware Job Shop Scheduling Problem [J].
Gonzalez, Miguel A. ;
Oddi, Angelo ;
Rasconi, Riccardo .
FUNDAMENTA INFORMATICAE, 2019, 167 (1-2) :93-132
[27]   A MULTITHREADING LOCAL SEARCH FOR MULTIOBJECTIVE ENERGY-AWARE SCHEDULING IN HETEROGENEOUS COMPUTING SYSTEMS [J].
Iturriaga, Santiago ;
Nesmachnow, Sergio ;
Dorronsoro, Bernabe .
PROCEEDINGS 26TH EUROPEAN CONFERENCE ON MODELLING AND SIMULATION ECMS 2012, 2012, :497-+
[28]   Energy-Aware WiFi Network Selection via Forecasting Energy Consumption [J].
Abdrabou, Atef ;
Darwish, Mohamed ;
Dalao, Ahmed ;
AlKaabi, Mohammed ;
Abutagiya, Mahmoud .
INTERNATIONAL JOURNAL OF ELECTRONICS AND TELECOMMUNICATIONS, 2020, 66 (02) :339-345
[29]   Indoor Light Energy Harvesting System for Energy-aware Wireless Sensor Node [J].
Yu, Hua ;
Yue, Qiuqin .
2012 INTERNATIONAL CONFERENCE ON FUTURE ENERGY, ENVIRONMENT, AND MATERIALS, PT B, 2012, 16 :1027-1032
[30]   Energy-aware node selection scheme with friendly jamming technique for enhancing the secrecy of wireless powered sensor networks [J].
Aboulhassan, Mohamed A. ;
Abd El-Malek, Ahmed H. .
AD HOC NETWORKS, 2021, 116