Prof. Daniel Hendler

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Early Detection of In-Memory Malicious Activity Based on Run-Time Environmental Features

Dorel Yaffe, Danny Hendler

We present a novel end-to-end solution for in-memory malicious activity detection done prior to exploitation by leveraging machine learning capabilities based on data from unique run-time logs, which are carefully curated in order to detect malicious activity in the memory of protected processes. This solution achieves reduced overhead and false positives as well as deployment simplicity.

Publication language English
Pages 397-404
Publication status Published - 01.01.2021

Keywords

Early detection
In-memory attacks
Malware detection

ASJC Scopus subject areas

Theoretical Computer Science
General Computer Science