Energy Efficiency Maximization for WSNs with Simultaneous Wireless Information and Power Transfer

Recently, the simultaneous wireless information and power transfer (SWIPT) technique has been regarded as a promising approach to enhance performance of wireless sensor networks with limited energy supply. However, from a green communication perspective, energy efficiency optimization for SWIPT syst...

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Main Authors: Hongyan Yu, Yongqiang Zhang, Songtao Guo, Yuanyuan Yang, Luyue Ji
Format: Article
Language:English
Published: MDPI AG 2017-08-01
Series:Sensors
Subjects:
Online Access:https://www.mdpi.com/1424-8220/17/8/1906
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spelling doaj-f1fa6850d43d4e269e3bdd44749a5de52020-11-24T21:24:57ZengMDPI AGSensors1424-82202017-08-01178190610.3390/s17081906s17081906Energy Efficiency Maximization for WSNs with Simultaneous Wireless Information and Power TransferHongyan Yu0Yongqiang Zhang1Songtao Guo2Yuanyuan Yang3Luyue Ji4College of Electronic and Information Engineering, Southwest University, Chongqing 400715, ChinaCollege of Electronic and Information Engineering, Southwest University, Chongqing 400715, ChinaCollege of Electronic and Information Engineering, Southwest University, Chongqing 400715, ChinaCollege of Electronic and Information Engineering, Southwest University, Chongqing 400715, ChinaCollege of Electronic and Information Engineering, Southwest University, Chongqing 400715, ChinaRecently, the simultaneous wireless information and power transfer (SWIPT) technique has been regarded as a promising approach to enhance performance of wireless sensor networks with limited energy supply. However, from a green communication perspective, energy efficiency optimization for SWIPT system design has not been investigated in Wireless Rechargeable Sensor Networks (WRSNs). In this paper, we consider the tradeoffs between energy efficiency and three factors including spectral efficiency, the transmit power and outage target rate for two different modes, i.e., power splitting (PS) and time switching modes (TS), at the receiver. Moreover, we formulate the energy efficiency maximization problem subject to the constraints of minimum Quality of Service (QoS), minimum harvested energy and maximum transmission power as non-convex optimization problem. In particular, we focus on optimizing power control and power allocation policy in PS and TS modes to maximize energy efficiency of data transmission. For PS and TS modes, we propose the corresponding algorithm to characterize a non-convex optimization problem that takes into account the circuit power consumption and the harvested energy. By exploiting nonlinear fractional programming and Lagrangian dual decomposition, we propose suboptimal iterative algorithms to obtain the solutions of non-convex optimization problems. Furthermore, we derive the outage probability and effective throughput from the scenarios that the transmitter does not or partially know the channel state information (CSI) of the receiver. Simulation results illustrate that the proposed optimal iterative algorithm can achieve optimal solutions within a small number of iterations and various tradeoffs between energy efficiency and spectral efficiency, transmit power and outage target rate, respectively.https://www.mdpi.com/1424-8220/17/8/1906SWIPTenergy efficiencyenergy-spectral efficiency tradeoffeffective throughputwireless rechargeable sensor networks
collection DOAJ
language English
format Article
sources DOAJ
author Hongyan Yu
Yongqiang Zhang
Songtao Guo
Yuanyuan Yang
Luyue Ji
spellingShingle Hongyan Yu
Yongqiang Zhang
Songtao Guo
Yuanyuan Yang
Luyue Ji
Energy Efficiency Maximization for WSNs with Simultaneous Wireless Information and Power Transfer
Sensors
SWIPT
energy efficiency
energy-spectral efficiency tradeoff
effective throughput
wireless rechargeable sensor networks
author_facet Hongyan Yu
Yongqiang Zhang
Songtao Guo
Yuanyuan Yang
Luyue Ji
author_sort Hongyan Yu
title Energy Efficiency Maximization for WSNs with Simultaneous Wireless Information and Power Transfer
title_short Energy Efficiency Maximization for WSNs with Simultaneous Wireless Information and Power Transfer
title_full Energy Efficiency Maximization for WSNs with Simultaneous Wireless Information and Power Transfer
title_fullStr Energy Efficiency Maximization for WSNs with Simultaneous Wireless Information and Power Transfer
title_full_unstemmed Energy Efficiency Maximization for WSNs with Simultaneous Wireless Information and Power Transfer
title_sort energy efficiency maximization for wsns with simultaneous wireless information and power transfer
publisher MDPI AG
series Sensors
issn 1424-8220
publishDate 2017-08-01
description Recently, the simultaneous wireless information and power transfer (SWIPT) technique has been regarded as a promising approach to enhance performance of wireless sensor networks with limited energy supply. However, from a green communication perspective, energy efficiency optimization for SWIPT system design has not been investigated in Wireless Rechargeable Sensor Networks (WRSNs). In this paper, we consider the tradeoffs between energy efficiency and three factors including spectral efficiency, the transmit power and outage target rate for two different modes, i.e., power splitting (PS) and time switching modes (TS), at the receiver. Moreover, we formulate the energy efficiency maximization problem subject to the constraints of minimum Quality of Service (QoS), minimum harvested energy and maximum transmission power as non-convex optimization problem. In particular, we focus on optimizing power control and power allocation policy in PS and TS modes to maximize energy efficiency of data transmission. For PS and TS modes, we propose the corresponding algorithm to characterize a non-convex optimization problem that takes into account the circuit power consumption and the harvested energy. By exploiting nonlinear fractional programming and Lagrangian dual decomposition, we propose suboptimal iterative algorithms to obtain the solutions of non-convex optimization problems. Furthermore, we derive the outage probability and effective throughput from the scenarios that the transmitter does not or partially know the channel state information (CSI) of the receiver. Simulation results illustrate that the proposed optimal iterative algorithm can achieve optimal solutions within a small number of iterations and various tradeoffs between energy efficiency and spectral efficiency, transmit power and outage target rate, respectively.
topic SWIPT
energy efficiency
energy-spectral efficiency tradeoff
effective throughput
wireless rechargeable sensor networks
url https://www.mdpi.com/1424-8220/17/8/1906
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