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Joseph Marino

6 accepted papers

2021

Hierarchical Autoregressive Modeling for Neural Video Compression

ICLR 2021poster

Recent work by Marino et al. (2020) showed improved performance in sequential density estimation by combining masked autoregressive flows with hierarchical latent variable models. We draw a connection between such autoregressive generative models and the task of lossy video compression. Specifically…

Cited by 52SourcePDFScholar
2021

Iterative Amortized Policy Optimization

NeurIPS 2021poster

Policy networks are a central feature of deep reinforcement learning (RL) algorithms for continuous control, enabling the estimation and sampling of high-value actions. From the variational inference perspective on RL, policy networks, when used with entropy or KL regularization, are a form of amort…

2019

Variational Autoencoders with Jointly Optimized Latent Dependency Structure

ICLR 2019poster

We propose a method for learning the dependency structure between latent variables in deep latent variable models. Our general modeling and inference framework combines the complementary strengths of deep generative models and probabilistic graphical models. In particular, we express the latent var…

Cited by 29SourcePDFScholar
2018

Learning to Infer

ICLR 2018workshop

Inference models, which replace an optimization-based inference procedure with a learned model, have been fundamental in advancing Bayesian deep learning, the most notable example being variational auto-encoders (VAEs). In this paper, we propose iterative inference models, which learn how to optimiz…

Cited by 7SourceScholar
2018

Probabilistic Video Generation using Holistic Attribute Control

ECCV 2018poster

Videos express highly structured spatio-temporal patterns of visual data. A video can be thought of as being governed by two factors: (i) temporally invariant (e.g., person identity), or slowly varying (e.g., activity), attribute-induced appearance, encoding the persistent content of each frame, and…

Cited by 88SourcePDFScholar