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Dynamic Neural Dowker Network: Approximating Persistent Homology in Dynamic Directed Graphs

By Hao Li and others
Persistent homology, a fundamental technique within Topological Data Analysis (TDA), captures structural and shape characteristics of graphs, yet encounters computational difficulties when applied to dynamic directed graphs. This paper introduces the Dynamic Neural Dowker Network (DNDN), a novel framework specifically designed to approximate the results of dynamic Dowker filtration, aiming... Show more
August 17, 2024
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Dynamic Neural Dowker Network: Approximating Persistent Homology in Dynamic Directed Graphs
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