BriefGPT.xyz
Nov, 2016
生成对抗网络作为基于能量模型的变分训练
Generative Adversarial Networks as Variational Training of Energy Based Models
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Shuangfei Zhai, Yu Cheng, Rogerio Feris, Zhongfei Zhang
TL;DR
该论文研究了深度生成模型在有效的无监督学习中的应用, 提出了 VGAN 模型, 通过最小化能量密度函数的负对数似然的变分下界, 使得模型能够用 Variational Distribution 进行采样, 从而可以更方便地训练模型。
Abstract
In this paper, we study
deep generative models
for effective
unsupervised learning
. We propose VGAN, which works by minimizing a
variational lowe
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