Random acyclic networks
classification
⚛️ physics.soc-ph
cond-mat.stat-mechphysics.data-an
keywords
modelacyclicnetworksrandomdirectedgraphgraphsnetwork
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Directed acyclic graphs are a fundamental class of networks that includes citation networks, food webs, and family trees, among others. Here we define a random graph model for directed acyclic graphs and give solutions for a number of the model's properties, including connection probabilities and component sizes, as well as a fast algorithm for simulating the model on a computer. We compare the predictions of the model to a real-world network of citations between physics papers and find surprisingly good agreement, suggesting that the structure of the real network may be quite well described by the random graph.
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