Active-Margin Transmission Power Control for Wireless Sensor Networks

An effective transmission power control (TPC) method is proposed and demonstrated, in which an appropriate active margin is directly applied rather than a step-by-step margin as in the conventional TPC method. Active-margin transmission power control (AM-TPC) is based on an algorithm that selects an...

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Main Authors: Byung-Hee Son, Kwang-Jin Kim, Ye Li, Young-Wan Choi
Format: Article
Language:English
Published: SAGE Publishing 2014-05-01
Series:International Journal of Distributed Sensor Networks
Online Access:https://doi.org/10.1155/2014/954109
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spelling doaj-4bb615ed5aa344049e18ca87d8f896e22020-11-25T03:10:04ZengSAGE PublishingInternational Journal of Distributed Sensor Networks1550-14772014-05-011010.1155/2014/954109954109Active-Margin Transmission Power Control for Wireless Sensor NetworksByung-Hee SonKwang-Jin KimYe LiYoung-Wan ChoiAn effective transmission power control (TPC) method is proposed and demonstrated, in which an appropriate active margin is directly applied rather than a step-by-step margin as in the conventional TPC method. Active-margin transmission power control (AM-TPC) is based on an algorithm that selects an optimized transmission power by considering the channel conditions in mobile environments. For obtaining the optimal transmission power, effective minimum detectable signal (EMDS) has been introduced which considers the change both in the channel noise and in the path loss (PL) dispersion caused by multipath fading. The transmission power is determined by the EMDS and active margin to improve the efficiency of the communication. The AM-TPC improves the reliability and reduces the power consumption, because it prevents unnecessary retransmission by reducing the number of error packets. By using the AM-TPC in mobile environments, we have experimentally obtained 28.3% reduction in current consumption when compared with using maximum power transmission.https://doi.org/10.1155/2014/954109
collection DOAJ
language English
format Article
sources DOAJ
author Byung-Hee Son
Kwang-Jin Kim
Ye Li
Young-Wan Choi
spellingShingle Byung-Hee Son
Kwang-Jin Kim
Ye Li
Young-Wan Choi
Active-Margin Transmission Power Control for Wireless Sensor Networks
International Journal of Distributed Sensor Networks
author_facet Byung-Hee Son
Kwang-Jin Kim
Ye Li
Young-Wan Choi
author_sort Byung-Hee Son
title Active-Margin Transmission Power Control for Wireless Sensor Networks
title_short Active-Margin Transmission Power Control for Wireless Sensor Networks
title_full Active-Margin Transmission Power Control for Wireless Sensor Networks
title_fullStr Active-Margin Transmission Power Control for Wireless Sensor Networks
title_full_unstemmed Active-Margin Transmission Power Control for Wireless Sensor Networks
title_sort active-margin transmission power control for wireless sensor networks
publisher SAGE Publishing
series International Journal of Distributed Sensor Networks
issn 1550-1477
publishDate 2014-05-01
description An effective transmission power control (TPC) method is proposed and demonstrated, in which an appropriate active margin is directly applied rather than a step-by-step margin as in the conventional TPC method. Active-margin transmission power control (AM-TPC) is based on an algorithm that selects an optimized transmission power by considering the channel conditions in mobile environments. For obtaining the optimal transmission power, effective minimum detectable signal (EMDS) has been introduced which considers the change both in the channel noise and in the path loss (PL) dispersion caused by multipath fading. The transmission power is determined by the EMDS and active margin to improve the efficiency of the communication. The AM-TPC improves the reliability and reduces the power consumption, because it prevents unnecessary retransmission by reducing the number of error packets. By using the AM-TPC in mobile environments, we have experimentally obtained 28.3% reduction in current consumption when compared with using maximum power transmission.
url https://doi.org/10.1155/2014/954109
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