Community Inference from Graph Signals with Hidden Nodes

Published: May 1, 2019
Abstract
Many recent works on inference of graph structure assume that the graph signals are fully observable. For large graphs with thousands or millions of nodes, this entails high complexity on the data collection and processing steps. Here, we study a community inference problem on partially observed (sub-sampled) graph signals which sidesteps topology inference, while revealing the coarse structure of the graph directly. Two variants of the...
Paper Details
Title
Community Inference from Graph Signals with Hidden Nodes
Published Date
May 1, 2019
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