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Collaborative channel estimation in backscatering tag-To-Tag network

  • Stony Brook University

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

12 Scopus citations

Abstract

Backscattering Tag-To-Tag Networking (BTTN) represents a rapidly emerging paradigm enabling passive, radio-less tags to communicate directly with each other by relecting (backscattering) an RF signal supplied by an external un-coordinated exciter. Recent advancements have taken the capability of BTTN beyond basic communication, empowering the networks with the ability to collaboratively sense and recognize human activities in the deployment space. The key to this ability is a novel passive channel estimation, allowing individual tags to measure tag-To-Tag wireless channel parameters without involvement of any active radio. Previously reported techniques for this sufer from a limitation in that, they are unable to isolate the tag-To-Tag channel of interest from the wider-range exciter-To-Tag channels. As a result, the channel estimates and the analytics based thereof are susceptible to dynamic variations and clutter in the overall deployment environment, outside the range of the tag-To-Tag link. In this paper, we overcome these limitations using a novel collaborative technique thus greatly enhancing the utility of passive channel estimation in BTTN. We elucidate our proposed technique using analytical modeling and validate with in-lab experiments using tag hardware built from discrete components.

Original languageEnglish
Title of host publicationDFHS 2019 - Proceedings of the 1st ACM Workshop on Device-Free Human Sensing
PublisherAssociation for Computing Machinery, Inc
Pages35-38
Number of pages4
ISBN (Electronic)9781450370073
DOIs
StatePublished - Nov 10 2019
Event1st ACM Workshop on Device-Free Human Sensing, DFHS 2019, co-located with ACM Buildsys 2019 - New York, United States
Duration: Nov 10 2019 → …

Publication series

NameDFHS 2019 - Proceedings of the 1st ACM Workshop on Device-Free Human Sensing

Conference

Conference1st ACM Workshop on Device-Free Human Sensing, DFHS 2019, co-located with ACM Buildsys 2019
Country/TerritoryUnited States
CityNew York
Period11/10/19 → …

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