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Stephen Paul Smolley

Publications -  4
Citations -  6119

Stephen Paul Smolley is an academic researcher. The author has contributed to research in topics: Unsupervised learning & Cross entropy. The author has an hindex of 4, co-authored 4 publications receiving 4365 citations.

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Proceedings ArticleDOI

Least Squares Generative Adversarial Networks

TL;DR: The Least Squares Generative Adversarial Network (LSGAN) as discussed by the authors adopts the least square loss function for the discriminator to solve the vanishing gradient problem in GANs.
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Least Squares Generative Adversarial Networks

TL;DR: This paper proposes the Least Squares Generative Adversarial Networks (LSGANs) which adopt the least squares loss function for the discriminator, and shows that minimizing the objective function of LSGAN yields minimizing the Pearson X2 divergence.
Journal ArticleDOI

On the Effectiveness of Least Squares Generative Adversarial Networks

TL;DR: The Least Squares Generative Adversarial Networks (LSGANs) are proposed which adopt the least squares loss for both the discriminator and the generator, and LSGANs are able to generate higher quality images than regular GANs.
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On the Effectiveness of Least Squares Generative Adversarial Networks

TL;DR: The Least Squares Generative Adversarial Network (LSGAN) as mentioned in this paper adopts the least square loss for both the discriminator and the generator to solve the vanishing gradient problem.