Opportunistic Carrier Sensing for Energy-Efficient Information Retrieval in Sensor Networks
<p>We consider distributed information retrieval for sensor networks with cluster heads or mobile access points. The performance metric used in the design is energy efficiency defined as the ratio of the average number of bits reliably retrieved by the access point to the total amount of energ...
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Online Access: | http://dx.doi.org/10.1155/WCN.2005.231 |
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doaj-17533c9b602d41f1ba970d6a103e34a42020-11-24T22:20:06ZengSpringerOpenEURASIP Journal on Wireless Communications and Networking1687-14721687-14992005-01-0120052231241Opportunistic Carrier Sensing for Energy-Efficient Information Retrieval in Sensor NetworksZhao QingTong Lang<p>We consider distributed information retrieval for sensor networks with cluster heads or mobile access points. The performance metric used in the design is energy efficiency defined as the ratio of the average number of bits reliably retrieved by the access point to the total amount of energy consumed. A distributed opportunistic transmission protocol is proposed using a combination of carrier sensing and backoff strategy that incorporates channel state information (CSI) of individual sensors. By selecting a set of sensors with the best channel states to transmit, the proposed protocol achieves the upper bound on energy efficiency when the signal propagation delay is negligible. For networks with substantial propagation delays, a backoff function optimized for energy efficiency is proposed. The design of this backoff function utilizes properties of extreme statistics and is shown to have mild performance loss in practical scenarios. We also demonstrate that opportunistic strategies that use CSI may not be optimal when channel acquisition at individual sensors consumes substantial energy. We show further that there is an optimal sensor density for which the opportunistic information retrieval is the most energy efficient. This observation leads to the design of the optimal sensor duty cycle.</p> http://dx.doi.org/10.1155/WCN.2005.231sensor networksdistributed information retrievalopportunistic transmissionenergy efficiency |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Zhao Qing Tong Lang |
spellingShingle |
Zhao Qing Tong Lang Opportunistic Carrier Sensing for Energy-Efficient Information Retrieval in Sensor Networks EURASIP Journal on Wireless Communications and Networking sensor networks distributed information retrieval opportunistic transmission energy efficiency |
author_facet |
Zhao Qing Tong Lang |
author_sort |
Zhao Qing |
title |
Opportunistic Carrier Sensing for Energy-Efficient Information Retrieval in Sensor Networks |
title_short |
Opportunistic Carrier Sensing for Energy-Efficient Information Retrieval in Sensor Networks |
title_full |
Opportunistic Carrier Sensing for Energy-Efficient Information Retrieval in Sensor Networks |
title_fullStr |
Opportunistic Carrier Sensing for Energy-Efficient Information Retrieval in Sensor Networks |
title_full_unstemmed |
Opportunistic Carrier Sensing for Energy-Efficient Information Retrieval in Sensor Networks |
title_sort |
opportunistic carrier sensing for energy-efficient information retrieval in sensor networks |
publisher |
SpringerOpen |
series |
EURASIP Journal on Wireless Communications and Networking |
issn |
1687-1472 1687-1499 |
publishDate |
2005-01-01 |
description |
<p>We consider distributed information retrieval for sensor networks with cluster heads or mobile access points. The performance metric used in the design is energy efficiency defined as the ratio of the average number of bits reliably retrieved by the access point to the total amount of energy consumed. A distributed opportunistic transmission protocol is proposed using a combination of carrier sensing and backoff strategy that incorporates channel state information (CSI) of individual sensors. By selecting a set of sensors with the best channel states to transmit, the proposed protocol achieves the upper bound on energy efficiency when the signal propagation delay is negligible. For networks with substantial propagation delays, a backoff function optimized for energy efficiency is proposed. The design of this backoff function utilizes properties of extreme statistics and is shown to have mild performance loss in practical scenarios. We also demonstrate that opportunistic strategies that use CSI may not be optimal when channel acquisition at individual sensors consumes substantial energy. We show further that there is an optimal sensor density for which the opportunistic information retrieval is the most energy efficient. This observation leads to the design of the optimal sensor duty cycle.</p> |
topic |
sensor networks distributed information retrieval opportunistic transmission energy efficiency |
url |
http://dx.doi.org/10.1155/WCN.2005.231 |
work_keys_str_mv |
AT zhaoqing opportunisticcarriersensingforenergyefficientinformationretrievalinsensornetworks AT tonglang opportunisticcarriersensingforenergyefficientinformationretrievalinsensornetworks |
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1725776959583027200 |