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Visual Interactive Approach for Mining Twitter’s Networks

Record type:

papersoftware
Creator:
AbdCheHerKac
Editor:
LabLux
Publisher:
CCSDSpringer
Host:avatar
International audience Understanding the semantic behind relational data is very challenging, especially, when it is tricky to provide efficient analysis at scale. Furthermore, the complexity is also driven by the dynamical nature of data. Indeed, the analysis given at a specific time point becomes unsustainable even incorrect over time. In this paper, we rely on a visual interactive approach to handle Twitter’s networks using NLCOMS. NLCOMS provides multiple and coordinated views in order to grasp the underlying information. Finally, the applicability of the proposed approach is assessed on real-world data of the ANR-Info-RSN project.

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hal.univ-lorraine.fr

Tags

Twitter’s networks Community detectionInteractive visualization Graph visualization [SCCO.COMP]Cognitive science/Computer science