Human Signature Identification Using IoT Technology and Gait Recognition

Author:

Hnatiuc Mihaela,Geman OanaORCID,Avram Andrei George,Gupta DeepakORCID,Shankar K.ORCID

Abstract

This study aimed to develop an autonomous design system for recognizing the subject by gait posture. Gait posture is a type of non-verbal communication characteristic of each person, and can be considered a signature used in identification. This system can be used for diagnosis. The system helps aging or disabled subjects to identify incorrect posture to recover the gait. Gait posture gives information for subject identification using leg movements and step distance as characteristic parameters. In the current study, the inertial measurement units (IMUs) located in a mobile phone were used to provide information about the movement of the upper and lower leg parts. A resistive flex sensor (RFS) was used to obtain information about the foot contact with the ground. The data were collected from a target group comprising subjects of different age, height, and mass. A comparative study was undertaken to identify the subject after the gait posture. Statistical analysis and a machine learning algorithm were used for data processing. The errors obtained after training data are presented at the end of the paper and the obtained results are encouraging. This article proposes a method of acquiring data available to anyone by using indispensable devices purchased by all users such as mobile phones.

Publisher

MDPI AG

Subject

Electrical and Electronic Engineering,Computer Networks and Communications,Hardware and Architecture,Signal Processing,Control and Systems Engineering

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1. A Comparative Analysis of Machine Learning Algorithms for Online Signature Recognition;VFAST Transactions on Software Engineering;2024-06-30

2. Subject Identification Using Behavioral Cues and Machine Learning;ICC 2024 - IEEE International Conference on Communications;2024-06-09

3. A Survey: Internet of Things (IoTs) Technologies, Embedded Systems and Sensors;Internet of Things;2024

4. Recognition Method with Deep Contrastive Learning and Improved Transformer for 3D Human Motion Pose;International Journal of Computational Intelligence Systems;2023-10-31

5. Human gait recognition: A systematic review;Multimedia Tools and Applications;2023-03-17

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