Multiple Participants’ Discrete Activity Recognition in a Well-Controlled Environment Using Universal Software Radio Peripheral Wireless Sensing
Wireless sensing is the utmost cutting-edge way of monitoring different health-related activities and, concurrently, preserving most of the privacy of individuals. To meet future needs, multi-subject activity monitoring is in demand, whether it is for smart care centres or homes. In this paper, a sm...
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| Published in | Sensors (Basel, Switzerland) Vol. 22; no. 3; p. 809 |
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| Main Authors | , , , , , , , , , |
| Format | Journal Article |
| Language | English |
| Published |
Switzerland
MDPI AG
21.01.2022
MDPI |
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| Online Access | Get full text |
| ISSN | 1424-8220 1424-8220 |
| DOI | 10.3390/s22030809 |
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| Abstract | Wireless sensing is the utmost cutting-edge way of monitoring different health-related activities and, concurrently, preserving most of the privacy of individuals. To meet future needs, multi-subject activity monitoring is in demand, whether it is for smart care centres or homes. In this paper, a smart monitoring system for different human activities is proposed based on radio-frequency sensing integrated with ensemble machine learning models. The ensemble technique can recognise a wide range of activity based on alterations in the wireless signal’s Channel State Information (CSI). The proposed system operates at 3.75 GHz, and up to four subjects participated in the experimental study in order to acquire data on sixteen distinct daily living activities: sitting, standing, and walking. The proposed methodology merges subject count and performed activities, resulting in occupancy count and activity performed being recognised at the same time. To capture alterations owing to concurrent multi-subject motions, the CSI amplitudes collected from 51 subcarriers of the wireless signals were processed and merged. To distinguish multi-subject activity, a machine learning model based on an ensemble learning technique was designed and trained using the acquired CSI data. For maximum activity classes, the proposed approach attained a high average accuracy of up to 98%. The presented system has the ability to fulfil prospective health activity monitoring demands and is a viable solution towards well-being tracking. |
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| AbstractList | Wireless sensing is the utmost cutting-edge way of monitoring different health-related activities and, concurrently, preserving most of the privacy of individuals. To meet future needs, multi-subject activity monitoring is in demand, whether it is for smart care centres or homes. In this paper, a smart monitoring system for different human activities is proposed based on radio-frequency sensing integrated with ensemble machine learning models. The ensemble technique can recognise a wide range of activity based on alterations in the wireless signal's Channel State Information (CSI). The proposed system operates at 3.75 GHz, and up to four subjects participated in the experimental study in order to acquire data on sixteen distinct daily living activities: sitting, standing, and walking. The proposed methodology merges subject count and performed activities, resulting in occupancy count and activity performed being recognised at the same time. To capture alterations owing to concurrent multi-subject motions, the CSI amplitudes collected from 51 subcarriers of the wireless signals were processed and merged. To distinguish multi-subject activity, a machine learning model based on an ensemble learning technique was designed and trained using the acquired CSI data. For maximum activity classes, the proposed approach attained a high average accuracy of up to 98%. The presented system has the ability to fulfil prospective health activity monitoring demands and is a viable solution towards well-being tracking. Wireless sensing is the utmost cutting-edge way of monitoring different health-related activities and, concurrently, preserving most of the privacy of individuals. To meet future needs, multi-subject activity monitoring is in demand, whether it is for smart care centres or homes. In this paper, a smart monitoring system for different human activities is proposed based on radio-frequency sensing integrated with ensemble machine learning models. The ensemble technique can recognise a wide range of activity based on alterations in the wireless signal's Channel State Information (CSI). The proposed system operates at 3.75 GHz, and up to four subjects participated in the experimental study in order to acquire data on sixteen distinct daily living activities: sitting, standing, and walking. The proposed methodology merges subject count and performed activities, resulting in occupancy count and activity performed being recognised at the same time. To capture alterations owing to concurrent multi-subject motions, the CSI amplitudes collected from 51 subcarriers of the wireless signals were processed and merged. To distinguish multi-subject activity, a machine learning model based on an ensemble learning technique was designed and trained using the acquired CSI data. For maximum activity classes, the proposed approach attained a high average accuracy of up to 98%. The presented system has the ability to fulfil prospective health activity monitoring demands and is a viable solution towards well-being tracking.Wireless sensing is the utmost cutting-edge way of monitoring different health-related activities and, concurrently, preserving most of the privacy of individuals. To meet future needs, multi-subject activity monitoring is in demand, whether it is for smart care centres or homes. In this paper, a smart monitoring system for different human activities is proposed based on radio-frequency sensing integrated with ensemble machine learning models. The ensemble technique can recognise a wide range of activity based on alterations in the wireless signal's Channel State Information (CSI). The proposed system operates at 3.75 GHz, and up to four subjects participated in the experimental study in order to acquire data on sixteen distinct daily living activities: sitting, standing, and walking. The proposed methodology merges subject count and performed activities, resulting in occupancy count and activity performed being recognised at the same time. To capture alterations owing to concurrent multi-subject motions, the CSI amplitudes collected from 51 subcarriers of the wireless signals were processed and merged. To distinguish multi-subject activity, a machine learning model based on an ensemble learning technique was designed and trained using the acquired CSI data. For maximum activity classes, the proposed approach attained a high average accuracy of up to 98%. The presented system has the ability to fulfil prospective health activity monitoring demands and is a viable solution towards well-being tracking. |
| Audience | Academic |
| Author | Saeed, Umer Aziz Shah, Syed Ramzan, Naeem Althobaiti, Turke Liu, Haipeng Abbasi, Qammer H. Ullah Jan, Sana Yaseen Shah, Syed Ahmad, Jawad Alhumaidi Alotaibi, Abdullah |
| AuthorAffiliation | 4 Faculty of Science, Northern Border University, Arar 91431, Saudi Arabia; turke.althobaiti@nbu.edu.sa 6 School of Computing, Edinburgh Napier University, Edinburgh EH10 5DT, UK; s.jan@napier.ac.uk (S.U.J.); j.ahmad@napier.ac.uk (J.A.) 1 Research Centre for Intelligent Healthcare, Coventry University, Coventry CV1 5FB, UK; syed.shah@coventry.ac.uk (S.A.S.); ad4828@coventry.ac.uk (H.L.) 7 James Watt School of Engineering, University of Glasgow, Glasgow G12 8QQ, UK; qammer.abbasi@glasgow.ac.uk 3 Department of Science and Technology, College of Ranyah, Taif University, P.O. Box 11099, Taif 21944, Saudi Arabia; a.alhumaidi@tu.edu.sa 2 School of Computing, Engineering and Built Environment, Glasgow Caledonian University, Glasgow G4 0BA, UK; syedyaseen.shah@gcu.ac.uk 5 School of Computing, Engineering and Physical Sciences, University of the West of Scotland, Paisely PA1 2BE, UK; naeem.ramzan@uws.ac.uk |
| AuthorAffiliation_xml | – name: 1 Research Centre for Intelligent Healthcare, Coventry University, Coventry CV1 5FB, UK; syed.shah@coventry.ac.uk (S.A.S.); ad4828@coventry.ac.uk (H.L.) – name: 5 School of Computing, Engineering and Physical Sciences, University of the West of Scotland, Paisely PA1 2BE, UK; naeem.ramzan@uws.ac.uk – name: 6 School of Computing, Edinburgh Napier University, Edinburgh EH10 5DT, UK; s.jan@napier.ac.uk (S.U.J.); j.ahmad@napier.ac.uk (J.A.) – name: 4 Faculty of Science, Northern Border University, Arar 91431, Saudi Arabia; turke.althobaiti@nbu.edu.sa – name: 3 Department of Science and Technology, College of Ranyah, Taif University, P.O. Box 11099, Taif 21944, Saudi Arabia; a.alhumaidi@tu.edu.sa – name: 2 School of Computing, Engineering and Built Environment, Glasgow Caledonian University, Glasgow G4 0BA, UK; syedyaseen.shah@gcu.ac.uk – name: 7 James Watt School of Engineering, University of Glasgow, Glasgow G12 8QQ, UK; qammer.abbasi@glasgow.ac.uk |
| Author_xml | – sequence: 1 givenname: Umer orcidid: 0000-0001-7666-838X surname: Saeed fullname: Saeed, Umer – sequence: 2 givenname: Syed orcidid: 0000-0003-2799-1791 surname: Yaseen Shah fullname: Yaseen Shah, Syed – sequence: 3 givenname: Syed orcidid: 0000-0003-2052-1121 surname: Aziz Shah fullname: Aziz Shah, Syed – sequence: 4 givenname: Haipeng orcidid: 0000-0002-4212-2503 surname: Liu fullname: Liu, Haipeng – sequence: 5 givenname: Abdullah orcidid: 0000-0002-6463-7903 surname: Alhumaidi Alotaibi fullname: Alhumaidi Alotaibi, Abdullah – sequence: 6 givenname: Turke orcidid: 0000-0002-6674-7890 surname: Althobaiti fullname: Althobaiti, Turke – sequence: 7 givenname: Naeem orcidid: 0000-0002-5088-1462 surname: Ramzan fullname: Ramzan, Naeem – sequence: 8 givenname: Sana orcidid: 0000-0003-3950-4719 surname: Ullah Jan fullname: Ullah Jan, Sana – sequence: 9 givenname: Jawad orcidid: 0000-0001-6289-8248 surname: Ahmad fullname: Ahmad, Jawad – sequence: 10 givenname: Qammer H. orcidid: 0000-0002-7097-9969 surname: Abbasi fullname: Abbasi, Qammer H. |
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| SubjectTerms | Accuracy Artificial intelligence Bandwidths ensemble learning Environment, Controlled Experiments Human Activities Human body Humans Internet of Things Machine learning multi-subject monitoring Older people Privacy Prospective Studies RF sensing smart healthcare Software software-defined radio USRP Walking Wearable computers Well being |
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| Title | Multiple Participants’ Discrete Activity Recognition in a Well-Controlled Environment Using Universal Software Radio Peripheral Wireless Sensing |
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