Secured and Privacy-Based IDS for Healthcare Systems on E-Medical Data Using Machine Learning Approach

Author:

Sengan Sudhakar1ORCID,Khalaf Osamah Ibrahim2,Vidya Sagar P. 3,Sharma Dilip Kumar4,Arokia Jesu Prabhu L. 5,Hamad Abdulsattar Abdullah6ORCID

Affiliation:

1. PSN College of Engineering and Technology, India

2. Al-Nahrain University, Iraq

3. Koneru Lakshmaiah Education Foundation, India

4. Jaypee University of Engineering and Technology, India

5. CMR Institute of Technology, India

6. Tikrit University, Iraq

Abstract

Existing methods use static path identifiers, making it easy for attackers to conduct DDoS flooding attacks. Create a system using Dynamic Secure aware Routing by Machine Learning (DAR-ML) to solve healthcare data. A DoS detection system by ML algorithm is proposed in this paper. First, to access the user to see the authorized process. Next, after the user registration, users can compare path information through correlation factors between nodes. Then, choose the device that will automatically activate and decrypt the data key. The DAR-ML is traced back to all healthcare data in the end module. In the next module, the users and admin can describe the results. These are the outcomes of using the network to make it easy. Through a time interval of 21.19% of data traffic, the findings demonstrate an attack detection accuracy of over 98.19%, with high precision and a probability of false alarm.

Publisher

IGI Global

Subject

Health Information Management,Medical Laboratory Technology,Computer Science Applications,Health Informatics,Leadership and Management

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