A Discrete Variational Recurrent Topic Model without the Reparametrization Trick
Mehdi Rezaee, Francis Ferraro
摘要
We show how to learn a neural topic model with discrete random variables---one that explicitly models each word's assigned topic---using neural variational inference that does not rely on stochastic backpropagation to handle the discrete variables. The model we utilize combines the expressive power of neural methods for representing sequences of text with the topic model's ability to capture global, thematic coherence. Using neural variational inference, we show improved perplexity and document understanding across multiple corpora. We examine the effect of prior parameters both on the model and variational parameters and demonstrate how our approach can compete and surpass a popular topic model implementation on an automatic measure of topic quality.
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引用它的顶会 Paper5
- Is Automated Topic Model Evaluation Broken? The Incoherence of CoherenceAlexander Miserlis Hoyle, Pranav Goel, Andrew Hian-Cheong, Denis Peskov 等NeurIPS 2021 · 被引用 220 次
- Topic Modeling Revisited: A Document Graph-based Neural Network PerspectiveDazhong Shen, Chuan Qin, Chao Wang, Zheng Dong 等NeurIPS 2021 · 被引用 50 次
- Neural Dynamic Focused Topic ModelKostadin Cvejoski, Ramsés J. Sánchez, César OjedaAAAI 2023 · 被引用 9 次
- Topic-Driven and Knowledge-Aware Transformer for Dialogue Emotion DetectionLixing Zhu, Gabriele Pergola, Lin Gui, Deyu Zhou 等ACL 2021
- TAN-NTM: Topic Attention Networks for Neural Topic ModelingMadhur Panwar, Shashank Shailabh, Milan Aggarwal, Balaji KrishnamurthyACL 2021
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