Can Ensemble Deep Learning Identify People by Their Gait Using Data Collected from Multi-Modal Sensors in Their Insole?

deep learning gait analysis multi-modality user identification wearable sensors

Journal

Sensors (Basel, Switzerland)
ISSN: 1424-8220
Titre abrégé: Sensors (Basel)
Pays: Switzerland
ID NLM: 101204366

Informations de publication

Date de publication:
18 Jul 2020
Historique:
received: 22 06 2020
revised: 14 07 2020
accepted: 16 07 2020
entrez: 26 7 2020
pubmed: 28 7 2020
medline: 25 3 2021
Statut: epublish

Résumé

Gait is a characteristic that has been utilized for identifying individuals. As human gait information is now able to be captured by several types of devices, many studies have proposed biometric identification methods using gait information. As research continues, the performance of this technology in terms of identification accuracy has been improved by gathering information from multi-modal sensors. However, in past studies, gait information was collected using ancillary devices while the identification accuracy was not high enough for biometric identification. In this study, we propose a deep learning-based biometric model to identify people by their gait information collected through a wearable device, namely an insole. The identification accuracy of the proposed model when utilizing multi-modal sensing is over 99%.

Identifiants

pubmed: 32708442
pii: s20144001
doi: 10.3390/s20144001
pmc: PMC7411718
pii:
doi:

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Subventions

Organisme : National Research Foundation of Korea
ID : 2018R1A2B6001400
Organisme : Institute of Information and Communications Technology Planning Evaluation
ID : 2020-0-01463

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Auteurs

Jucheol Moon (J)

Department of Computer Engineering and Computer Science, California State University, Long Beach, CA 90840, USA.

Nelson Hebert Minaya (NH)

Department of Computer Engineering and Computer Science, California State University, Long Beach, CA 90840, USA.

Nhat Anh Le (NA)

Department of Computer Engineering and Computer Science, California State University, Long Beach, CA 90840, USA.

Hee-Chan Park (HC)

Department of Computer Science and Engineering, Dankook University, Yongin-si 16890, Korea.

Sang-Il Choi (SI)

Department of Computer Science and Engineering, Dankook University, Yongin-si 16890, Korea.

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Classifications MeSH