Anomaly Detection in IoMT Environment Based on Machine Learning: An Overview

سال انتشار: 1403
نوع سند: مقاله ژورنالی
زبان: انگلیسی
مشاهده: 256

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شناسه ملی سند علمی:

JR_CKE-7-2_006

تاریخ نمایه سازی: 21 آذر 1403

چکیده مقاله:

In today's era, the Internet of Things has become one of the important pillars in organizations, hospitals, and research circles and is recognized as an integral part of the Internet. One of the important areas that require online monitoring is medical imaging equipment, whose functional information is transmitted through the Internet of Things. Server security and intrusion prevention, along with anomaly detection, are critical requirements for these networks. The purpose of anomaly detection is to develop methods that can detect attackers' attacks and prevent them from happening again. Algorithms and methods based on statistics play an important role in predicting and diagnosing anomalies. In this article, the isolation forest algorithm was used for training on ۸۰% of the dataset related to the data of the Internet of Medical Things network, and then this model was tested and evaluated on the remaining ۲۰%. The results show ۹۰.۵۴% accuracy in detecting anomalies in the received data, which confirms the effective performance of this method in this field.

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نویسندگان

Peyman Vafadoost Sabzevar

Biomedical Engineering Department, Electrical and Computer Faculty, Hakim Sabzevari University, Sabzevar, Iran.

Hamidreza Rokhsati

Department of Computer, Control and Management Engineering, Sapienza University, Rome, Italy.

Alireza Chamansara

Department of Biomedical Engineering, Materials and Energy Research Center, Tehran, Iran.

Ahmad Hajipour

Department of Biomedical Engineering, Hakim Sabzevari University, Sabzevar, Iran.

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