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Geng Ji

3 accepted papers

2021

Marginalized Stochastic Natural Gradients for Black-Box Variational Inference

ICML 2021spotlight

Black-box variational inference algorithms use stochastic sampling to analyze diverse statistical models, like those expressed in probabilistic programming languages, without model-specific derivations. While the popular score-function estimator computes unbiased gradient estimates, its variance is…

Cited by 8SourcePDFScholar
2019

Variational Training for Large-Scale Noisy-OR Bayesian Networks

UAI 2019poster

We propose a stochastic variational inference algorithm for training large-scale Bayesian networks, where noisy-OR conditional distributions are used to capture higher-order relationships. One application is to the learning of hierarchical topic models for text data. While previous work has focused…

Cited by 9SourcePDFScholar