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NeurIPS2022顶会

Posterior Collapse of a Linear Latent Variable Model

Zihao Wang, Liu Ziyin

2022年份
29被引次数
10顶会引用

摘要

This work identifies the existence and cause of a type of posterior collapse that frequently occurs in the Bayesian deep learning practice. For a general linear latent variable model that includes linear variational autoencoders as a special case, we precisely identify the nature of posterior collapse to be the competition between the likelihood and the regularization of the mean due to the prior. Our result suggests that posterior collapse may be related to neural collapse and dimensional collapse and could be a subclass of a general problem of learning for deeper architectures.

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