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2018 | OriginalPaper | Chapter

Automating Feature Extraction and Feature Selection in Big Data Security Analytics

Authors : Dimitrios Sisiaridis, Olivier Markowitch

Published in: Artificial Intelligence and Soft Computing

Publisher: Springer International Publishing

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Abstract

Feature extraction and feature selection are the first tasks in pre-processing of input logs in order to detect cybersecurity threats and attacks by utilizing data mining techniques in the field of Artificial Intelligence. When it comes to the analysis of heterogeneous data derived from different sources, these tasks are found to be time-consuming and difficult to be managed efficiently.
In this paper, we present an approach for handling feature extraction and feature selection utilizing machine learning algorithms for security analytics of heterogeneous data derived from different network sensors. The approach is implemented in Apache Spark, using its python API, named pyspark.

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Literature
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2.
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4.
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go back to reference Sisiaridis, D., Kuchta, V., Markowitch, O.: A categorical approach in handling event-ordering in distributed systems. In: Parallel and Distributed Systems (ICPADS), pp. 1145–1150. IEEE (2016) Sisiaridis, D., Kuchta, V., Markowitch, O.: A categorical approach in handling event-ordering in distributed systems. In: Parallel and Distributed Systems (ICPADS), pp. 1145–1150. IEEE (2016)
Metadata
Title
Automating Feature Extraction and Feature Selection in Big Data Security Analytics
Authors
Dimitrios Sisiaridis
Olivier Markowitch
Copyright Year
2018
DOI
https://doi.org/10.1007/978-3-319-91262-2_38

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