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      A Smart IoT System for Detecting the Position of a Lying Person Using a Novel Textile Pressure Sensor

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          Abstract

          Bedsores are one of the severe problems which could affect a long-term lying subject in the hospitals or the hospice. To prevent lying bedsores, we present a smart Internet of Things (IoT) system for detecting the position of a lying person using novel textile pressure sensors. To build such a system, it is necessary to use different technologies and techniques. We used sixty-four of our novel textile pressure sensors based on electrically conductive yarn and the Velostat to collect the information about the pressure distribution of the lying person. Using Message Queuing Telemetry Transport (MQTT) protocol and Arduino-based hardware, we send measured data to the server. On the server side, there is a Node-RED application responsible for data collection, evaluation, and provisioning. We are using a neural network to classify the subject lying posture on the separate device because of the computation complexity. We created the challenging dataset from the observation of twenty-one people in four lying positions. We achieved a best classification precision of 92% for fourth class (right side posture type). On the other hand, the best recall (91%) for first class (supine posture type) was obtained. The best F1 score (84%) was achieved for first class (supine posture type). After the classification, we send the information to the staff desktop application. The application reminds employees when it is necessary to change the lying position of individual subjects and thus prevent bedsores.

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              Pre-Trained AlexNet Architecture with Pyramid Pooling and Supervision for High Spatial Resolution Remote Sensing Image Scene Classification

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                Author and article information

                Journal
                Sensors (Basel)
                Sensors (Basel)
                sensors
                Sensors (Basel, Switzerland)
                MDPI
                1424-8220
                31 December 2020
                January 2021
                : 21
                : 1
                : 206
                Affiliations
                Faculty of Electrical Engineering and Information Technology, University of Zilina, 01026 Zilina, Slovakia; robert.hudec@ 123456uniza.sk (R.H.); slavomir.matuska@ 123456uniza.sk (S.M.); miroslav.benco@ 123456uniza.sk (M.B.)
                Author notes
                [* ]Correspondence: patrik.kamencay@ 123456uniza.sk ; Tel.: +421-41-513-2225
                Author information
                https://orcid.org/0000-0003-4875-973X
                Article
                sensors-21-00206
                10.3390/s21010206
                7795588
                33396203
                e93298e2-8bb8-43d5-bc47-b597f6d865fb
                © 2020 by the authors.

                Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license ( http://creativecommons.org/licenses/by/4.0/).

                History
                : 04 December 2020
                : 27 December 2020
                Categories
                Article

                Biomedical engineering
                smart sensor,iot system,velostat,pressure sensor,convolutional neural network,data classification,position detection

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