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Poster: Channel Prediction Based on BP Neural Network for Backscatter Communication Networks

Published: 15 March 2019 Publication History

Abstract

Due to the large amount of sensor data in the backscatter network, parallel transmission and rate adaptation are constrained by channel quality. In this paper, we propose a channel prediction scheme for backscatter networks. The scheme consists of two parts: a monitoring module and a prediction module. The monitoring module, which uses the data of the acceleration sensor to monitor the movement of the node itself, and uses the link burstiness metric to monitor the burstiness caused by the environmental change, thereby determining that new data of channel quality is needed, and the prediction module predicts the channel quality of the next stage by using the BP neural network algorithm. The experimental results show that the channel prediction accuracy is high and the relatively stable read rate can be maintained.

References

[1]
Pengyu Zhang, Jeremy Gummeson, and Deepak Ganesan. Blink:a high throughput link layer for backscatter communication. pages 99–112, 2012.
[2]
Wei Gong, Haoxiang Liu, Kebin Liu, Qiang Ma, and Yunhao Liu. Exploiting channel diversity for rate adaptation in backscatter communication networks. In INFOCOM 2016 the IEEE International Conference on Computer Communications, IEEE, pages 1–9, 2016.
[3]
Wei Gong, Si Chen, and Jiangchuan Liu. Towards higher throughput rate adaptation for backscatter networks. In IEEE International Conference on Network Protocols, pages 1–10, 2017.
[4]
Yossi Rubner, Carlo Tomasi, and Leonidas J. Guibas. A metric for distributions with applications to image databases. In International Conference on Computer Vision, page 59, 1998.

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EWSN '19: Proceedings of the 2019 International Conference on Embedded Wireless Systems and Networks
February 2019
436 pages
ISBN:9780994988638

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  • EWSN: International Conference on Embedded Wireless Systems and Networks

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Junction Publishing

United States

Publication History

Published: 15 March 2019

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Overall Acceptance Rate 81 of 195 submissions, 42%

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