Publication | Closed Access
The Deep Regression Bayesian Network and Its Applications: Probabilistic Deep Learning for Computer Vision
76
Citations
29
References
2018
Year
Structured PredictionEngineeringMachine LearningAutoencodersEducationBayesian InferenceGenerative SystemData ScienceGenerative ModelLatent Variable MethodsMachine VisionRich DependenciesGenerative ModelsProbabilistic Deep LearningBayesian NetworkComputer ScienceDeep LearningComputer VisionStatistical InferenceGenerative AiDeep Directed Models
Deep directed generative models have attracted much attention recently due to their generative modeling nature and powerful data representation ability. In this article, we review different structures of deep directed generative models and the learning and inference algorithms associated with the structures. We focus on a specific structure that consists of layers of Bayesian networks (BNs) due to the property of capturing inherent and rich dependencies among latent variables. The major difficulty of learning and inference with deep directed models with many latent variables is the intractable inference due to the dependencies among the latent variables and the exponential number of latent variable configurations. Current solutions use variational methods, often through an auxiliary network, to approximate the posterior probability inference. In contrast, inference can also be performed directly without using any auxiliary network to maximally preserve the dependencies among the latent variables. Specifically, by exploiting the sparse representation with the latent space, max-max instead of maxsum operation can be used to overcome the exponential number of latent configurations. Furthermore, the max-max operation and augmented coordinate ascent (AugCA) are applied to both supervised and unsupervised learning as well as to various inference. Quantitative evaluations on benchmark data sets of different models are given for both data representation and feature-learning tasks.
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