Resilient Sensor Networks with Spatiotemporal Interpolation of Missing Sensors: An Example of Space Weather Forecasting by Multiple SatellitesReportar como inadecuado




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1

Department of Electrical and Control Engineering, National Institute of Technology, Yonago College, Hikonacho 4448, Yonago 683-0854, Japan

2

Department of Computer Science and Engineering, Toyohashi University of Technology, Hibarigaoka 1-1, Toyohashi 441-8580, Japan





*

Author to whom correspondence should be addressed.



Academic Editor: Leonhard M. Reindl

Abstract This paper attempts to construct a resilient sensor network model with an example of space weather forecasting. The proposed model is based on a dynamic relational network. Space weather forecasting is vital for a satellite operation because an operational team needs to make a decision for providing its satellite service. The proposed model is resilient to failures of sensors or missing data due to the satellite operation. In the proposed model, the missing data of a sensor is interpolated by other sensors associated. This paper demonstrates two examples of space weather forecasting that involves the missing observations in some test cases. In these examples, the sensor network for space weather forecasting continues a diagnosis by replacing faulted sensors with virtual ones. The demonstrations showed that the proposed model is resilient against sensor failures due to suspension of hardware failures or technical reasons. View Full-Text

Keywords: sensor networks; dynamic relational networks; spatiotemporal interpolation; self-recognizing networks; profiling sensor networks; dynamic relational networks; spatiotemporal interpolation; self-recognizing networks; profiling





Autor: Masahiro Tokumitsu 1,* , Keisuke Hasegawa 1 and Yoshiteru Ishida 2

Fuente: http://mdpi.com/



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