ATPC

Author:

Lin Shan1,Miao Fei2,Zhang Jingbin3,Zhou Gang4,Gu Lin5,He Tian6,Stankovic John A.3,Son Sang3,Pappas George J.2

Affiliation:

1. Stony Brook University, Stony Brook, NY

2. University of Pennsylvania, Philadelphia, PA

3. University of Virginia, Charlottesville, VA

4. College of William and Mary, Williamsburg, VA

5. NingBo ShuFang Information Tecknology Co., Ltd., Hong Kong

6. University of Minnesota, Minneapolis, MN

Abstract

Extensive empirical studies presented in this article confirm that the quality of radio communication between low-power sensor devices varies significantly with time and environment. This phenomenon indicates that the previous topology control solutions, which use static transmission power, transmission range, and link quality, might not be effective in the physical world. To address this issue, online transmission power control that adapts to external changes is necessary. This article presents ATPC, a lightweight algorithm for Adaptive Transmission Power Control in wireless sensor networks. In ATPC, each node builds a model for each of its neighbors, describing the correlation between transmission power and link quality. With this model, we employ a feedback-based transmission power control algorithm to dynamically maintain individual link quality over time. The intellectual contribution of this work lies in a novel pairwise transmission power control, which is significantly different from existing node-level or network-level power control methods. Also different from most existing simulation work, the ATPC design is guided by extensive field experiments of link quality dynamics at various locations over a long period of time. The results from the real-world experiments demonstrate that (1) with pairwise adjustment, ATPC achieves more energy savings with a finer tuning capability, and (2) with online control, ATPC is robust even with environmental changes over time.

Funder

National Science Foundation, under NSF

Publisher

Association for Computing Machinery (ACM)

Subject

Computer Networks and Communications

Reference67 articles.

1. A line in the sand: a wireless sensor network for target detection, classification, and tracking

2. P. Asare D. Cong S. G. Vattam B. Kim A. L. King O. Sokolsky I. Lee S. Lin and M. Mullen-Fortino. 2012. The medical device dongle: An open-source standards-based platform for interoperable medical device connectivity. In ACM IHI. 10.1145/2110363.2110438 P. Asare D. Cong S. G. Vattam B. Kim A. L. King O. Sokolsky I. Lee S. Lin and M. Mullen-Fortino. 2012. The medical device dongle: An open-source standards-based platform for interoperable medical device connectivity. In ACM IHI. 10.1145/2110363.2110438

3. On the connectivity of wireless multihop networks with homogeneous and inhomogeneous range assignment

4. D. Blough M. Leoncini G. Resta and P. Santi. 2003. The k-neigh protocol for symmetric topology control in Ad Hoc networks. In ACM MobiHoc. 141--152. 10.1145/778415.778433 D. Blough M. Leoncini G. Resta and P. Santi. 2003. The k-neigh protocol for symmetric topology control in Ad Hoc networks. In ACM MobiHoc. 141--152. 10.1145/778415.778433

5. A. Cerpa J. L. Wong L. Kuang M. Potkonjak and D. Estrin. 2005. Statistical model of lossy links in wireless sensor networks. In ACM/IEEE IPSN. A. Cerpa J. L. Wong L. Kuang M. Potkonjak and D. Estrin. 2005. Statistical model of lossy links in wireless sensor networks. In ACM/IEEE IPSN.

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