2022
DOI: 10.48550/arxiv.2203.15009
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DAMNETS: A Deep Autoregressive Model for Generating Markovian Network Time Series

Abstract: In this work, we introduce DAMNETS, a deep generative model for Markovian network time series. Time series of networks are found in many fields such as trade or payment networks in economics, contact networks in epidemiology or social media posts over time. Generative models of such data are useful for Monte-Carlo estimation and data set expansion, which is of interest for both data privacy and model fitting. Using recent ideas from the Graph Neural Network (GNN) literature, we introduce a novel GNN encoder-de… Show more

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