期刊论文详细信息
Frontiers in Virtual Reality
Cybercopters Swarm: Immersive analytics for alerts classification based on periodic data
Virtual Reality
Marc-Oliver Pahl1  Thierry Duval2  Nicolas Delcombel2 
[1] Institut de Recherche en Informatique et Systèmes Aléatoires (IRISA), UMR CNRS 6074, IMT Atlantique, Cesson-Sévigné, France;Lab-STICC, UMR CNRS 6285, IMT Atlantique, Brest, France;
关键词: immersive analytics;    cybersecurity;    periodic signals;    virtual reality;    alarm classification;   
DOI  :  10.3389/frvir.2023.1156656
 received in 2023-02-01, accepted in 2023-03-20,  发布年份 2023
来源: Frontiers
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【 摘 要 】

This paper assesses the usefulness of an interactive and navigable 3D environment to help decision-making in cybersecurity. Malware programs frequently emit periodic signals in network logs; however, normal periodical network activities, such as software updates and data collection activities, mask them. Thus, if automatic systems use periodicity to successfully detect malware, they also detect ordinary activities as suspicious ones and raise false positives. Hence, there is a need to provide tools to sort the alerts raised by such software. Data visualizations can make it easier to categorize these alerts, as proven by previous research. However, traditional visualization tools can struggle to display a large amount of data that needs to be treated in cybersecurity in a clear way. In response, this paper explores the use of Immersive Analytics to interact with complex dataset representations and collect cues for alert classification. We created a prototype that uses a helical representation to underline periodicity in the distribution of one variable of a dataset. We tested this prototype in an alert triage scenario and compared it with a state-of-the-art 2D visualization with regard to the visualization efficiency, usability, workload, and flow induced.

【 授权许可】

Unknown   
Copyright © 2023 Delcombel, Duval and Pahl.

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