Tree-Structured Topic Modeling with Nonparametric Neural Variational Inference
Ziye Chen, Cheng Ding, Zusheng Zhang, Yanghui Rao, Haoran Xie
Abstract
Topic modeling has been widely used for discovering the latent semantic structure of documents, but most existing methods learn topics with a flat structure. Although probabilistic models can generate topic hierarchies by introducing nonparametric priors like Chinese restaurant process, such methods have data scalability issues. In this study, we develop a tree-structured topic model by leveraging nonparametric neural variational inference. Particularly, the latent components of the stickbreaking process are first learned for each document, then the affiliations of latent components are modeled by the dependency matrices between network layers. Utilizing this network structure, we can efficiently extract a tree-structured topic hierarchy with reasonable structure, low redundancy, and adaptable widths. Experiments on real-world datasets validate the effectiveness of our method.
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Cited by top-tier papers3
- HTKG: Deep Keyphrase Generation with Neural Hierarchical Topic GuidanceYuxiang Zhang, Tao Jiang, Tianyu Yang, Xiaoli Li et al.SIGIR 2022 · 14 citations
- Nonlinear Structural Equation Model Guided Gaussian Mixture Hierarchical Topic ModelingHegang Chen, Pengbo Mao, Yuyin Lu, Yanghui RaoACL 2023 · 13 citations
- Neural Topic Modeling via Contextual and Graph Information FusionJiyuan Liu, Jiaxing Yan, Chunjiang Zhu, Xingyu Liu et al.EMNLP 2025
Builds on2
- CluHTM - Semantic Hierarchical Topic Modeling based on CluWordsFelipe Viegas, Washington Cunha, Christian Gomes, Antônio Pereira De Souza Júnior et al.ACL 2020 · 34 citations
- Neural Mixed Counting Models for Dispersed Topic DiscoveryJiemin Wu, Yanghui Rao, Zusheng Zhang, Haoran Xie et al.ACL 2020 · 16 citations
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