MOP.P.5
EARLY MALWARE DETECTION AND NEXT-ACTION PREDICTION
Zahra Jamadi, Amir G. Aghdam, Electrical and Computer Engineering Department, Concordia University, Montreal, Canada., Canada
Session:
MOP.P: Poster session #1 Poster
Track:
RFID applications in healthcare, wearable, precision agriculture, transportation, safety, security, inventory management, logistics, fashion, retail
Location:
Poster Area
Presentation Time:
Mon, 4 Sep, 16:30 - 18:00 Portugal Time
Abstract
In this paper, we propose a framework for early-stage malware detection and mitigation by leveraging natural language processing (NLP) techniques and machine learning algorithms. Our primary contribution is presenting an approach for predicting the upcoming actions of malware by treating application programming interface (API) call sequences as natural language inputs and employing text classification methods, specifically a Bi-LSTM neural network, to predict the next API call. This enables proactive threat identification and mitigation, demonstrating the effectiveness of applying NLP principles to API call sequences. The Bi-LSTM model is evaluated using two datasets. Additionally, by modeling consecutive API calls as 2-gram and 3-gram strings, we extract new features to be further processed using a Bagging-XGBoost algorithm, effectively predicting malware presence at its early stages. The accuracy of the proposed framework is evaluated by simulations.
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Session MOP.P
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