Revisiting Information Detection and Energy Harvesting: A Power Splitting-Based Approach

Wireless sensors are becoming essential in machine-type communications and Internet of Things. As the key performance metrics, the spectral efficiency as well as the energy efficiency have been considered while determining the effectiveness of sensor networks. In this paper, we present several power...

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Main Authors: Jaehong Kim, Won-Yong Shin, Xin Kang, Han Lim Lee, Jingon Joung
Format: Article
Language:English
Published: MDPI AG 2020-11-01
Series:Entropy
Subjects:
Online Access:https://www.mdpi.com/1099-4300/22/12/1341
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spelling doaj-343c637794564b69ba30d3dded3a266e2020-11-27T08:09:09ZengMDPI AGEntropy1099-43002020-11-01221341134110.3390/e22121341Revisiting Information Detection and Energy Harvesting: A Power Splitting-Based ApproachJaehong Kim0Won-Yong Shin1Xin Kang2Han Lim Lee3Jingon Joung4School of Electrical and Electronics Engineering, Chung-Ang University, Seoul 06974, KoreaDepartment of Computational Science and Engineering, Yonsei University, Seoul 03722, KoreaCenter for Intelligent Networking and Communications (CINC), University of Electronic Science and Technology of China (UESTC), Chengdu 611731, ChinaSchool of Electrical and Electronics Engineering, Chung-Ang University, Seoul 06974, KoreaSchool of Electrical and Electronics Engineering, Chung-Ang University, Seoul 06974, KoreaWireless sensors are becoming essential in machine-type communications and Internet of Things. As the key performance metrics, the spectral efficiency as well as the energy efficiency have been considered while determining the effectiveness of sensor networks. In this paper, we present several power-splitting solutions to maximize the average harvested energy under a rate constraint when both the information and power are transmitted through the same wireless channel to a sensor (i.e., a receiver). More specifically, we first designed the optimal dynamic power-splitting policy, which decides the optimal fractional power of the received signal used for energy harvesting at the receiver. As effective solutions, we proposed two types of single-threshold-based power-splitting policies, namely, Policies I and II, which decide to switch between energy harvesting and information decoding by comparing the received signal power with some given thresholds. Additionally, we performed asymptotic analysis for a large number of packets along with practical statistics-based policies. Consequently, we demonstrated the effectiveness of the proposed power-splitting solutions in terms of the rate–energy trade-off.https://www.mdpi.com/1099-4300/22/12/1341energy efficiencyenergy harvestinginformation decodingpower-splittingoptimal policy
collection DOAJ
language English
format Article
sources DOAJ
author Jaehong Kim
Won-Yong Shin
Xin Kang
Han Lim Lee
Jingon Joung
spellingShingle Jaehong Kim
Won-Yong Shin
Xin Kang
Han Lim Lee
Jingon Joung
Revisiting Information Detection and Energy Harvesting: A Power Splitting-Based Approach
Entropy
energy efficiency
energy harvesting
information decoding
power-splitting
optimal policy
author_facet Jaehong Kim
Won-Yong Shin
Xin Kang
Han Lim Lee
Jingon Joung
author_sort Jaehong Kim
title Revisiting Information Detection and Energy Harvesting: A Power Splitting-Based Approach
title_short Revisiting Information Detection and Energy Harvesting: A Power Splitting-Based Approach
title_full Revisiting Information Detection and Energy Harvesting: A Power Splitting-Based Approach
title_fullStr Revisiting Information Detection and Energy Harvesting: A Power Splitting-Based Approach
title_full_unstemmed Revisiting Information Detection and Energy Harvesting: A Power Splitting-Based Approach
title_sort revisiting information detection and energy harvesting: a power splitting-based approach
publisher MDPI AG
series Entropy
issn 1099-4300
publishDate 2020-11-01
description Wireless sensors are becoming essential in machine-type communications and Internet of Things. As the key performance metrics, the spectral efficiency as well as the energy efficiency have been considered while determining the effectiveness of sensor networks. In this paper, we present several power-splitting solutions to maximize the average harvested energy under a rate constraint when both the information and power are transmitted through the same wireless channel to a sensor (i.e., a receiver). More specifically, we first designed the optimal dynamic power-splitting policy, which decides the optimal fractional power of the received signal used for energy harvesting at the receiver. As effective solutions, we proposed two types of single-threshold-based power-splitting policies, namely, Policies I and II, which decide to switch between energy harvesting and information decoding by comparing the received signal power with some given thresholds. Additionally, we performed asymptotic analysis for a large number of packets along with practical statistics-based policies. Consequently, we demonstrated the effectiveness of the proposed power-splitting solutions in terms of the rate–energy trade-off.
topic energy efficiency
energy harvesting
information decoding
power-splitting
optimal policy
url https://www.mdpi.com/1099-4300/22/12/1341
work_keys_str_mv AT jaehongkim revisitinginformationdetectionandenergyharvestingapowersplittingbasedapproach
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AT hanlimlee revisitinginformationdetectionandenergyharvestingapowersplittingbasedapproach
AT jingonjoung revisitinginformationdetectionandenergyharvestingapowersplittingbasedapproach
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