Spark-MLlib intrusion detection mechanism using machine learning models
Asra Sarwath,
Raafiya Gulmeher,
Zeenath Sultana
Abstract:<p align="justify"><span>Typically, a single method is employed in machine learning (ML) based intrusion detection to identify intrusion information. However, this approach lacks flexibility, has a low detection rate, and struggles to handle high-dimensional data. Consequently, it is not efficient in addressing these challenges. This study proposes a new intrusion detection architecture that utilizes Spark and ensures resilient data dissemination across the platform to improve its effectiveness. It… Show more
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