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Statistical comparisons of spatio-temporal networks

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Authors : Achard, Sophie (Author of the conference)
CIRM (Publisher )

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Abstract : In the scenario where multiple instances of networks with same nodes are available and nodes are attached to spatial features, it is worth combining both information in order to explain the role of the nodes. The explainability of node role in complex networks is very difficult, however crucial in different application scenarios such as social science, neuroscience, computer science... Many efforts have been made on the quantification of hubs revealing particular nodes in a network using a given structural property. Yet, for spatio-temporal networks, the identification of node role remains largely unexplored. In this talk, I will show limitations of classical methods on a real datasets coming from brain connectivity comparing healthy subjects to coma patients. Then, I will present recent work using equivalence relation of the nodal structural properties. Comparisons of graphs with same nodes set is evaluated with a new similarity score based on graph structural patterns. This score provides a nodal index to determine node role distinctiveness in a graph family. Finally, illustrations on different datasets concerning human brain functional connectivity will be described.

Keywords : graph comparison; node roles detection; human brain functional connectivity

MSC Codes :
05C75 - Structural characterization of types of graphs
62P10 - Applications of statistics to biology and medical sciences
90B15 - Network models, stochastic
92B20 - Neural networks, artificial life and related topics

Additional resources :
https://www.cirm-math.fr/RepOrga/2588/Slides/achard.pdf

    Information on the Video

    Film maker : Hennenfent, Guillaume
    Language : English
    Available date : 05/12/2022
    Conference Date : 07/11/2022
    Subseries : Research talks
    arXiv category : Quantitative Biology
    Mathematical Area(s) : Probability & Statistics
    Format : MP4 (.mp4) - HD
    Video Time : 00:48:51
    Targeted Audience : Researchers ; Graduate Students ; Doctoral Students, Post-Doctoral Students
    Download : https://videos.cirm-math.fr/2022-11-07_Achard.mp4

Information on the Event

Event Title : Machine Learning and Signal Processing on Graphs / Apprentissage automatique et traitement du signal sur graphes
Event Organizers : Keriven, Nicolas ; Loukas, Andreas ; Pustelnik, Nelly ; Tremblay, Nicolas ; Vaiter, Samuel
Dates : 07/11/2022 - 11/11/2022
Event Year : 2022
Event URL : https://conferences.cirm-math.fr/2588.html

Citation Data

DOI : 10.24350/CIRM.V.19981403
Cite this video as: Achard, Sophie (2022). Statistical comparisons of spatio-temporal networks. CIRM. Audiovisual resource. doi:10.24350/CIRM.V.19981403
URI : http://dx.doi.org/10.24350/CIRM.V.19981403

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