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Compressed Sensing Signal and Data Acquisition in Wireless Sensor Networks and Internet of Things

IEEE Transactions on Industrial Informatics · 2012 · Vol. 9(4) · pp. 2177–2186
Shancang LiLi Da XuXinheng Wang

Abstract

The emerging compressed sensing (CS) theory can significantly reduce the number of sampling points that directly corresponds to the volume of data collected, which means that part of the redundant data is never acquired. It makes it possible to create standalone and net-centric applications with fewer resources required in Internet of Things (IoT). CS-based signal and information acquisition/compression paradigm combines the nonlinear reconstruction algorithm and random sampling on a sparse basis that provides a promising approach to compress signal and data in information systems. This paper investigates how CS can provide new insights into data sampling and acquisition in wireless sensor networks and IoT. First, we briefly introduce the CS theory with respect to the sampling and transmission coordination during the network lifetime through providing a compressed sampling process with low computation costs. Then, a CS-based framework is proposed for IoT, in which the end nodes measure, transmit, and store the sampled data in the framework. Then, an efficient cluster-sparse reconstruction algorithm is proposed for in-network compression aiming at more accurate data reconstruction and lower energy efficiency. Performance is evaluated with respect to network size using datasets acquired by a real-life deployment.

Sparse and Compressive Sensing TechniquesIndoor and Outdoor Localization TechnologiesMicrowave Imaging and Scattering AnalysisWireless sensor networkComputer scienceWirelessCompressed sensingInternet of ThingsData acquisitionSIGNAL (programming language)Computer networkReal-time computingTelecommunications

Funding

  • Engineering and Physical Sciences Research Council
Citations
558
FWCI
32.69
field-weighted impact
References
35
Percentile
100%
vs. same field & year
Citations per year
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