Abstract
The Open Source software package pathpy, available at https://www.pathpy.net, implements statistical techniques to learn optimal graphical models for the causal topology generated by paths in time-series data. Operationalizing Occam's razor, these models balance model complexity with explanatory power for empirically observed paths in relational time series. Standard network analysis is justified if the inferred optimal model is a first-order network model. Optimal models with orders larger than one indicate higher-order dependencies and can be used to improve the analysis of dynamical processes, node centralities and clusters. Show more
Permanent link
https://doi.org/10.3929/ethz-b-000490211Publication status
publishedExternal links
Book title
WWW '21: Companion Proceedings of the Web Conference 2021Pages / Article No.
Publisher
Association for Computing MachineryEvent
Subject
higher-order graph models; temporal network; graph mining; network analysis; network visualization; causal paths; softwareOrganisational unit
03682 - Schweitzer, Frank / Schweitzer, Frank
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