From measurements to metrics: PCA-based indicators of cyber anomaly

Farid A.K.M. Ahmed, Tommy Johnson, Sonia Tsui · Proceedings of SPIE, the International Society for Optical Engineering/Proceedings of SPIE · 2012

We present a framework of the application of Principal Component Analysis (PCA) to automatically obtain meaningful metrics from intrusion detection measurements. In particular, we report the progress made in applying PCA to analyze the behavioral measurements of malware and provide some preliminary results in selecting dominant attributes from an arbitrary number of malware attributes. The results will be useful in formulating an optimal detection threshold in the principal component space, which can both validate and augment existing malware classifiers.

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