IOT NETWORK INTRUSION DETECTION SYSTEM USING MACHINE LEARNING TECHNIQUES

Meliboev, Azizjon

Қўқон университети хабарномаси · 2024-yil

Annotatsiya

The proliferation of Internet of Things (IoT) devices has transformed various industries by providing smart and automated solutions. However, the extensive connectivity and diverse nature of IoT devices have also introduced significant security challenges, particularly in terms of network intrusion. This paper explores the development and implementation of an Intrusion Detection System (IDS) for IoT networks using Machine learning techniques. The proposed IDS aims to detect and mitigate various cyber threats by analyzing network traffic and identifying anomalous patterns indicative of intrusions. This research contributes to the field of IoT security by providing a robust and scalable intrusion detection solution that leverages the power of machine learning.

Maqola ma’lumotlari
MualliflarMeliboev, Azizjon
JurnalҚўқон университети хабарномаси
Nashr sanasi2024-06-30
Jild11
Betlar112-115
TilIngliz

Kalit so‘zlar

IoT, IDS, Machine learning, Data science, data analysis, review, platform

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