Machine Learning for Smart Homes

By P. Rose, James
Machine Learning for Smart Homes

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Details

Authors: P. Rose, James
Format: Paperback
GTIN13: 9787543651302
ISBN10: 7543651300
Page Count: 118
Dimensions: 6.0x0.25x9.0
Publisher: Priya Publishers

Description

Smart home technology (SHT), an Internet of Things (IoT) application, is a growing industry centered on the remote control of devices and networks that offers convenience, cost savings, energy efficiency, and improved quality of life. However, in the face of mounting evidence, several federal agencies and security experts have voiced concerns about the susceptibility of these networked devices to cyber-attacks. They are also susceptible to secure shell (SSH) brute force attacks, often followed by the propagation of malware through botnets. Recently, machine learning (ML) algorithms have been deployed for anomaly detection based on similarities and trends in network traffic. Thus, ML algorithms may be used to develop prediction models for detecting network attacks automatically. This study offers a comprehensive examination of the use of ML techniques to detect these two prevalent SHT network attacks, SSH brute force and botnet attacks.

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