Hybrid Ambient Backscatter Communication Systems With Harvest-Then-Transmit Protocols

In this paper, we investigate and analyze a hybrid ambient backscatter (AmBack) scheme with harvest-then-transmit protocols. In this scheme, the whole transmission is divided into three phases (time slots): energy harvesting (EH), AmBack, and data transmission (DT). Depending on the type of the refl...

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Main Authors: Dong Li, Wei Peng, Ying-Chang Liang
Format: Article
Language:English
Published: IEEE 2018-01-01
Series:IEEE Access
Subjects:
Online Access:https://ieeexplore.ieee.org/document/8434224/
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spelling doaj-41fe17cc3c694e209d121f7aa29b9d1e2021-03-29T21:13:37ZengIEEEIEEE Access2169-35362018-01-016452884529810.1109/ACCESS.2018.28649678434224Hybrid Ambient Backscatter Communication Systems With Harvest-Then-Transmit ProtocolsDong Li0https://orcid.org/0000-0002-3694-1852Wei Peng1https://orcid.org/0000-0002-9087-9551Ying-Chang Liang2https://orcid.org/0000-0003-2671-5090Faculty of Information Technology, Macau University of Science and Technology, Macau, ChinaSchool of Electronic Information and Communications, Huazhong University of Science and Technology, Wuhan, ChinaCenter for Intelligent Networking and Communications, University of Electronic Science and Technology of China, Chengdu, ChinaIn this paper, we investigate and analyze a hybrid ambient backscatter (AmBack) scheme with harvest-then-transmit protocols. In this scheme, the whole transmission is divided into three phases (time slots): energy harvesting (EH), AmBack, and data transmission (DT). Depending on the type of the reflection coefficient (RC) for AmBack, two hybrid schemes are considered: variable RC (VRC) and fixed RC (FRC). In the VRC scheme, the RC changes with the channel state information, and the harvested energy in the first phase is totally used for DT. On the other hand, in the FRC scheme, the RC is fixed to be one, and the harvested energy in the first phase is in part used to cover the tag circuit operation in the second phase and in part for DT in the third phase. The resulting optimization problem is convex for the VRC scheme, but non-convex for the FRC scheme. However, by utilizing the maximum principle in convex optimization, we are able to derive closed-form expressions for optimal solutions for both schemes. In order to get more insights, we also analyze the upper bound performance of both schemes. Simulation results demonstrate that the AmBack/EH-AmBack scheme can always achieve the optimal performance.https://ieeexplore.ieee.org/document/8434224/Ambient backscatterenergy harvestingharvest-then-transmit
collection DOAJ
language English
format Article
sources DOAJ
author Dong Li
Wei Peng
Ying-Chang Liang
spellingShingle Dong Li
Wei Peng
Ying-Chang Liang
Hybrid Ambient Backscatter Communication Systems With Harvest-Then-Transmit Protocols
IEEE Access
Ambient backscatter
energy harvesting
harvest-then-transmit
author_facet Dong Li
Wei Peng
Ying-Chang Liang
author_sort Dong Li
title Hybrid Ambient Backscatter Communication Systems With Harvest-Then-Transmit Protocols
title_short Hybrid Ambient Backscatter Communication Systems With Harvest-Then-Transmit Protocols
title_full Hybrid Ambient Backscatter Communication Systems With Harvest-Then-Transmit Protocols
title_fullStr Hybrid Ambient Backscatter Communication Systems With Harvest-Then-Transmit Protocols
title_full_unstemmed Hybrid Ambient Backscatter Communication Systems With Harvest-Then-Transmit Protocols
title_sort hybrid ambient backscatter communication systems with harvest-then-transmit protocols
publisher IEEE
series IEEE Access
issn 2169-3536
publishDate 2018-01-01
description In this paper, we investigate and analyze a hybrid ambient backscatter (AmBack) scheme with harvest-then-transmit protocols. In this scheme, the whole transmission is divided into three phases (time slots): energy harvesting (EH), AmBack, and data transmission (DT). Depending on the type of the reflection coefficient (RC) for AmBack, two hybrid schemes are considered: variable RC (VRC) and fixed RC (FRC). In the VRC scheme, the RC changes with the channel state information, and the harvested energy in the first phase is totally used for DT. On the other hand, in the FRC scheme, the RC is fixed to be one, and the harvested energy in the first phase is in part used to cover the tag circuit operation in the second phase and in part for DT in the third phase. The resulting optimization problem is convex for the VRC scheme, but non-convex for the FRC scheme. However, by utilizing the maximum principle in convex optimization, we are able to derive closed-form expressions for optimal solutions for both schemes. In order to get more insights, we also analyze the upper bound performance of both schemes. Simulation results demonstrate that the AmBack/EH-AmBack scheme can always achieve the optimal performance.
topic Ambient backscatter
energy harvesting
harvest-then-transmit
url https://ieeexplore.ieee.org/document/8434224/
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AT weipeng hybridambientbackscattercommunicationsystemswithharvestthentransmitprotocols
AT yingchangliang hybridambientbackscattercommunicationsystemswithharvestthentransmitprotocols
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