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Improved Transient Search Optimization with Machine Learning Based Behavior Recognition on Body Sensor Data

Baraa Wasfi Salim1, Bzar Khidir Hussan2, Zainab Salih Ageed3, Subhi R. M. Zeebaree4,*

1 ITM Department, Technical College of Administration, Duhok Polytechnic University, Duhok, Iraq
2 Information System Engineering Department, Erbil Technical Engineering College, Erbil Polytechnic University, Erbil, Iraq
3 Computer Science Department, College of Science, Nawroz University, Duhok, Iraq
4 Energy Eng. Department, Technical College of Engineering, Duhok Polytechnic University, Duhok, Iraq

* Corresponding Author: Subhi R. M. Zeebaree. Email: email

Computers, Materials & Continua 2023, 75(2), 4593-4609. https://doi.org/10.32604/cmc.2023.037514

Abstract

Recently, human healthcare from body sensor data has gained considerable interest from a wide variety of human-computer communication and pattern analysis research owing to their real-time applications namely smart healthcare systems. Even though there are various forms of utilizing distributed sensors to monitor the behavior of people and vital signs, physical human action recognition (HAR) through body sensors gives useful information about the lifestyle and functionality of an individual. This article concentrates on the design of an Improved Transient Search Optimization with Machine Learning based Behavior Recognition (ITSOML-BR) technique using body sensor data. The presented ITSOML-BR technique collects data from different body sensors namely electrocardiography (ECG), accelerometer, and magnetometer. In addition, the ITSOML-BR technique extract features like variance, mean, skewness, and standard deviation. Moreover, the presented ITSOML-BR technique executes a micro neural network (MNN) which can be employed for long term healthcare monitoring and classification. Furthermore, the parameters related to the MNN model are optimally selected via the ITSO algorithm. The experimental result analysis of the ITSOML-BR technique is tested on the MHEALTH dataset. The comprehensive comparison study reported a higher result for the ITSOML-BR approach over other existing approaches with maximum accuracy of 99.60%.

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APA Style
Salim, B.W., Hussan, B.K., Ageed, Z.S., Zeebaree, S.R.M. (2023). Improved transient search optimization with machine learning based behavior recognition on body sensor data. Computers, Materials & Continua, 75(2), 4593-4609. https://doi.org/10.32604/cmc.2023.037514
Vancouver Style
Salim BW, Hussan BK, Ageed ZS, Zeebaree SRM. Improved transient search optimization with machine learning based behavior recognition on body sensor data. Comput Mater Contin. 2023;75(2):4593-4609 https://doi.org/10.32604/cmc.2023.037514
IEEE Style
B.W. Salim, B.K. Hussan, Z.S. Ageed, and S.R.M. Zeebaree, “Improved Transient Search Optimization with Machine Learning Based Behavior Recognition on Body Sensor Data,” Comput. Mater. Contin., vol. 75, no. 2, pp. 4593-4609, 2023. https://doi.org/10.32604/cmc.2023.037514



cc Copyright © 2023 The Author(s). Published by Tech Science Press.
This work is licensed under a Creative Commons Attribution 4.0 International License , which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
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