Recognition of Daily Human Activity Using an Artificial Neural Network and Smartwatch

Author:

Kwon Min-Cheol1ORCID,Choi Sunwoong2ORCID

Affiliation:

1. Department of Secured Smart Electric Vehicle, Kookmin University, Seoul 02707, Republic of Korea

2. School of Electrical Engineering, Kookmin University, Seoul 02707, Republic of Korea

Abstract

Human activity recognition using wearable devices has been actively investigated in a wide range of applications. Most of them, however, either focus on simple activities wherein whole body movement is involved or require a variety of sensors to identify daily activities. In this study, we propose a human activity recognition system that collects data from an off-the-shelf smartwatch and uses an artificial neural network for classification. The proposed system is further enhanced using location information. We consider 11 activities, including both simple and daily activities. Experimental results show that various activities can be classified with an accuracy of 95%.

Funder

Ministry of Education

Publisher

Hindawi Limited

Subject

Electrical and Electronic Engineering,Computer Networks and Communications,Information Systems

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