A Survey on Intrusion Detection Systems: Types, Datasets, Machine Learning methods for NIDS and Challenges

Supongmen Walling, Sibesh Lodh · 2022 13th International Conference on Computing Communication and Networking Technologies (ICCCNT) · 2022

The Internet of Things (IoT) has grown tremendously in the last few years that adequate measure concerning security needs to quickly keep up. IoT devices have limited computational capability, low power, and run low quality software making them highly susceptible to various cyber attacks. Security, confidentiality and privacy are considered the main matter of contention in any smart environment based on IoT model. As a result, there is a pressing need for IoT-specific intrusion detection systems (IDS) that can safeguard devices and networks while also reducing security assaults and vulnerabilities. In this paper we have discussed intrusion detection system for IoT encompassing details on detection, placement and deployment strategies, different datasets and various machine learning methods and the challenges posed for network IDS.

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