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Statistical inference on random dot product graphs: a survey
The random dot product graph (RDPG) is an independent-edge random graph that is
analytically tractable and, simultaneously, either encompasses or can successfully …
analytically tractable and, simultaneously, either encompasses or can successfully …
The connectome of an insect brain
Brains contain networks of interconnected neurons and so knowing the network architecture
is essential for understanding brain function. We therefore mapped the synaptic-resolution …
is essential for understanding brain function. We therefore mapped the synaptic-resolution …
Representation learning for dynamic graphs: A survey
Graphs arise naturally in many real-world applications including social networks,
recommender systems, ontologies, biology, and computational finance. Traditionally …
recommender systems, ontologies, biology, and computational finance. Traditionally …
Entrywise eigenvector analysis of random matrices with low expected rank
Recovering low-rank structures via eigenvector perturbation analysis is a common problem
in statistical machine learning, such as in factor analysis, community detection, ranking …
in statistical machine learning, such as in factor analysis, community detection, ranking …
Consistency of spectral clustering in stochastic block models
We analyze the performance of spectral clustering for community extraction in stochastic
block models. We show that, under mild conditions, spectral clustering applied to the …
block models. We show that, under mild conditions, spectral clustering applied to the …
An integrative framework for sensor-based measurement of teamwork in healthcare
There is a strong link between teamwork and patient safety. Emerging evidence supports the
efficacy of teamwork improvement interventions. However, the availability of reliable, valid …
efficacy of teamwork improvement interventions. However, the availability of reliable, valid …
Random walks, Markov processes and the multiscale modular organization of complex networks
Most methods proposed to uncover communities in complex networks rely on combinatorial
graph properties. Usually an edge-counting quality function, such as modularity, is optimized …
graph properties. Usually an edge-counting quality function, such as modularity, is optimized …
Regularized spectral clustering under the degree-corrected stochastic blockmodel
T Qin, K Rohe - Advances in neural information processing …, 2013 - proceedings.neurips.cc
Spectral clustering is a fast and popular algorithm for finding clusters in networks. Recently,
Chaudhuri et al. and Amini et al. proposed variations on the algorithm that artificially inflate …
Chaudhuri et al. and Amini et al. proposed variations on the algorithm that artificially inflate …
Achieving optimal misclassification proportion in stochastic block models
Community detection is a fundamental statistical problem in network data analysis. In this
paper, we present a polynomial time two-stage method that provably achieves optimal …
paper, we present a polynomial time two-stage method that provably achieves optimal …
Dynamic stochastic blockmodels for time-evolving social networks
Significant efforts have gone into the development of statistical models for analyzing data in
the form of networks, such as social networks. Most existing work has focused on modeling …
the form of networks, such as social networks. Most existing work has focused on modeling …