Power Allocation Algorithm for an Energy-Harvesting Wireless Transmission System Considering Energy Losses

被引:2
作者
Zhao, Su [1 ,2 ]
Huang, Gang [1 ,2 ]
Zhu, Qi [2 ]
机构
[1] Southeast Univ, Natl Mobile Commun Res Lab, Nanjing 210003, Peoples R China
[2] Nanjing Univ Posts & Telecommun, Jiangsu Key Lab Wireless Commun, Nanjing 210003, Peoples R China
基金
中国国家自然科学基金;
关键词
energy harvesting; circuit consumption; storage losses; power allocation; COMMUNICATION-SYSTEMS; POLICIES;
D O I
10.3390/a12010025
中图分类号
TP18 [人工智能理论];
学科分类号
081104 ; 0812 ; 0835 ; 1405 ;
摘要
For an energy-harvesting wireless transmission system, considering that a transmitter which can harvest energy from nature has two kinds of extra energy consumption, circuit consumption and storage losses, the optimization models are set up in this paper for the purpose of maximizing the average throughput of the system within a certain period of time for both a time-invariant channel and time-varying channel. Convex optimization methods such as the Lagrange multiplier method and the KKT (Karush-Kuhn-Tucker) condition are used to solve the optimization problem; then, an optimal offline power allocation algorithm which has a three-threshold structure is proposed. In the three-threshold algorithm, two thresholds can be achieved by using a linear search method while the third threshold is calculated according to the channel state information and energy losses; then, the offline power allocation is based on the three thresholds and energy arrivals. Furthermore, inspired by the optimal offline algorithm, a low-complexity online algorithm with adaptive thresholds is derived. Finally, the simulation results show that the offline power allocation algorithms proposed in this paper are better than other algorithms, the performance of the online algorithm proposed is close to the offline one, and these algorithms can help improve the average throughput of the system.
引用
收藏
页数:15
相关论文
共 15 条
[1]   A General Framework for the Optimization of Energy Harvesting Communication Systems with Battery Imperfections [J].
Devillers, Bertrand ;
Guenduez, Deniz .
JOURNAL OF COMMUNICATIONS AND NETWORKS, 2012, 14 (02) :130-139
[2]   Green Communications [J].
Guan, Lei ;
Zhu, Anding .
IEEE MICROWAVE MAGAZINE, 2014, 15 (07) :84-99
[3]   Recursive Waterfilling for Wireless Links With Energy Harvesting Transmitters [J].
He, Peter ;
Zhao, Lian ;
Zhou, Sheng ;
Niu, Zhisheng .
IEEE TRANSACTIONS ON VEHICULAR TECHNOLOGY, 2014, 63 (03) :1232-1241
[4]   Optimal Energy Allocation for Wireless Communications With Energy Harvesting Constraints [J].
Ho, Chin Keong ;
Zhang, Rui .
IEEE TRANSACTIONS ON SIGNAL PROCESSING, 2012, 60 (09) :4808-4818
[5]   Power management in energy harvesting sensor networks [J].
Kansal, Aman ;
Hsu, Jason ;
Zahedi, Sadaf ;
Srivastava, Mani B. .
ACM TRANSACTIONS ON EMBEDDED COMPUTING SYSTEMS, 2007, 6 (04) :32
[6]   Power allocation and routing in multibeam satellites with time-varying channels [J].
Neely, MJ ;
Modiano, E ;
Rohrs, CE .
IEEE-ACM TRANSACTIONS ON NETWORKING, 2003, 11 (01) :138-152
[7]   Energy Harvesting Broadband Communication Systems With Processing Energy Cost [J].
Orhan, Oner ;
Guenduez, Deniz ;
Erkip, Elza .
IEEE TRANSACTIONS ON WIRELESS COMMUNICATIONS, 2014, 13 (11) :6095-6107
[8]   Transmission with Energy Harvesting Nodes in Fading Wireless Channels: Optimal Policies [J].
Ozel, Omur ;
Tutuncuoglu, Kaya ;
Yang, Jing ;
Ulukus, Sennur ;
Yener, Aylin .
IEEE JOURNAL ON SELECTED AREAS IN COMMUNICATIONS, 2011, 29 (08) :1732-1743
[9]   Optimal Energy Management Policies for Energy Harvesting Sensor Nodes [J].
Sharma, Vinod ;
Mukherji, Utpal ;
Joseph, Vinay ;
Gupta, Shrey .
IEEE TRANSACTIONS ON WIRELESS COMMUNICATIONS, 2010, 9 (04) :1326-1336
[10]   Optimum Policies for an Energy Harvesting Transmitter Under Energy Storage Losses [J].
Tutuncuoglu, Kaya ;
Yener, Aylin ;
Ulukus, Sennur .
IEEE JOURNAL ON SELECTED AREAS IN COMMUNICATIONS, 2015, 33 (03) :467-481