Smartphone IMU Sensors for Human Identification through Hip Joint Angle Analysis

Author:

Andersson Rabé1ORCID,Bermejo-García Javier2ORCID,Agujetas Rafael2ORCID,Cronhjort Mikael1ORCID,Chilo José1

Affiliation:

1. Department of Electrical Engineering, Mathematics and Science, University of Gävle, 801 76 Gävle, Sweden

2. Departamento de Ingeniería Mecánica, Energética y de los Materiales, Escuela de Ingenierías Industriales, Universidad de Extremadura, 06006 Badajoz, Spain

Abstract

Gait monitoring using hip joint angles offers a promising approach for person identification, leveraging the capabilities of smartphone inertial measurement units (IMUs). This study investigates the use of smartphone IMUs to extract hip joint angles for distinguishing individuals based on their gait patterns. The data were collected from 10 healthy subjects (8 males, 2 females) walking on a treadmill at 4 km/h for 10 min. A sensor fusion technique that combined accelerometer, gyroscope, and magnetometer data was used to derive meaningful hip joint angles. We employed various machine learning algorithms within the WEKA environment to classify subjects based on their hip joint pattern and achieved a classification accuracy of 88.9%. Our findings demonstrate the feasibility of using hip joint angles for person identification, providing a baseline for future research in gait analysis for biometric applications. This work underscores the potential of smartphone-based gait analysis in personal identification systems.

Funder

University of Gävle

Publisher

MDPI AG

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