Papers › Towards Deeper Understanding of Variational Autoencoding Models

Towards Deeper Understanding of Variational Autoencoding Models

28 Feb 2017arXiv:1702.08658archive 2025-07-28

Shengjia Zhao, Jiaming Song, Stefano Ermon

We propose a new family of optimization criteria for variational auto-encoding models, generalizing the standard evidence lower bound. We provide conditions under which they recover the data distribution and learn latent features, and formally show that common issues such as blurry samples and uninformative latent features arise when these conditions are not met. Based on these new insights, we propose a new sequential VAE model that can generate sharp samples on the LSUN image dataset based on pixel-wise reconstruction loss, and propose an optimization criterion that encourages unsupervised learning of informative latent features.

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int_shape ShengjiaZhao/Generalized-PixelVAE/pixel_cnn_pp/nn.py official repository ran · our draft was wrong fingerprinted MIT (permissive) · 3ba6aec873833b39 · report
concat_elu ShengjiaZhao/Generalized-PixelVAE/pixel_cnn_pp/nn.py official repository unverified MIT (permissive) · c2617c0e25b5f26a · report
fc_lrelu ShengjiaZhao/Generalized-PixelVAE/pixel_cnn_pp/encoder.py official repository unverified MIT (permissive) · b0dceb387145ee42 · report
log_sum_exp ShengjiaZhao/Generalized-PixelVAE/pixel_cnn_pp/nn.py official repository unverified MIT (permissive) · ad066f5de5f84073 · report
lrelu ShengjiaZhao/Generalized-PixelVAE/pixel_cnn_pp/encoder.py official repository unverified MIT (permissive) · 4661a1e5a82037d4 · report
mlp_discriminator ShengjiaZhao/Generalized-PixelVAE/pixel_cnn_pp/encoder.py official repository unverified MIT (permissive) · a66320a04203e090 · report

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