A nonparametric two-sample hypothesis testing problem for random dot product graphs
Tang, Minh · Athreya, Avanti · Sussman, Daniel L. · Lyzinski, Vince · Priebe, Carey E.
Original · EN
We consider the problem of testing whether two finite-dimensional random dot product graphs have generating latent positions that are independently drawn from the same distribution, or distributions that are related via scaling or projection. We propose a test statistic that is a kernel-based function of the adjacency spectral embedding for each graph. We obtain a limiting distribution for our test statistic under the null and we show that our test procedure is consistent across a broad range of alternatives.
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