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Poster
Wed 10:45 Combining Generative and Discriminative Models for Hybrid Inference
Victor Garcia Satorras · Zeynep Akata · Max Welling
Poster
Wed 10:45 Energy-Inspired Models: Learning with Sampler-Induced Distributions
Dieterich Lawson · George Tucker · Bo Dai · Rajesh Ranganath
Poster
Wed 17:00 The Thermodynamic Variational Objective
Vaden Masrani · Tuan Anh Le · Frank Wood
Poster
Tue 17:30 Direct Optimization through argmax for Discrete Variational Auto-Encoder
Guy Lorberbom · Andreea Gane · Tommi Jaakkola · Tamir Hazan
Poster
Tue 17:30 Scalable Structure Learning of Continuous-Time Bayesian Networks from Incomplete Data
Dominik Linzner · Michael Schmidt · Heinz Koeppl
Poster
Wed 10:45 Approximating the Permanent by Sampling from Adaptive Partitions
Jonathan Kuck · Tri Dao · Hamid Rezatofighi · Ashish Sabharwal · Stefano Ermon
Poster
Thu 17:00 Towards Hardware-Aware Tractable Learning of Probabilistic Models
Laura Galindez Olascoaga · Wannes Meert · Nimish Shah · Marian Verhelst · Guy Van den Broeck
Poster
Wed 10:45 Structured Graph Learning Via Laplacian Spectral Constraints
Sandeep Kumar · Jiaxi Ying · José Vinícius de Miranda Cardoso · Daniel Palomar
Poster
Thu 17:00 Flexible Modeling of Diversity with Strongly Log-Concave Distributions
Joshua Robinson · Suvrit Sra · Stefanie Jegelka
Poster
Tue 17:30 Scalable Bayesian dynamic covariance modeling with variational Wishart and inverse Wishart processes
Creighton Heaukulani · Mark van der Wilk
Poster
Wed 17:00 Amortized Bethe Free Energy Minimization for Learning MRFs
Sam Wiseman · Yoon Kim
Poster
Wed 17:00 Probabilistic Logic Neural Networks for Reasoning
Meng Qu · Jian Tang