InfoCTM: A Mutual Information Maximization Perspective of Cross-Lingual Topic Modeling
Xiaobao Wu, Xinshuai Dong, Thong Nguyen, Chaoqun Liu, Liangming Pan, Anh Tuan Luu
Abstract
Cross-lingual topic models have been prevalent for cross-lingual text analysis by revealing aligned latent topics. However, most existing methods suffer from producing repetitive topics that hinder further analysis and performance decline caused by low-coverage dictionaries. In this paper, we propose the Cross-lingual Topic Modeling with Mutual Information (InfoCTM). Instead of the direct alignment in previous work, we propose a topic alignment with mutual information method. This works as a regularization to properly align topics and prevent degenerate topic representations of words, which mitigates the repetitive topic issue. To address the low-coverage dictionary issue, we further propose a cross-lingual vocabulary linking method that finds more linked cross-lingual words for topic alignment beyond the translations of a given dictionary. Extensive experiments on English, Chinese, and Japanese datasets demonstrate that our method outperforms state-of-the-art baselines, producing more coherent, diverse, and well-aligned topics and showing better transferability for cross-lingual classification tasks.
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Install the CLIlune papers fulltext 25372817-4d28-44a0-81fa-daf44c1f104fCited by top-tier papers12
- Effective Neural Topic Modeling with Embedding Clustering RegularizationXiaobao Wu, Xinshuai Dong, Thong Thanh Nguyen, Anh Tuan LuuICML 2023 · 87 citations
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- How Should Pre-Trained Language Models Be Fine-Tuned Towards Adversarial Robustness?Xinshuai Dong, Anh Tuan Luu, Min Lin, Shuicheng Yan et al.NeurIPS 2021 · 80 citations
- Short Text Topic Modeling with Topic Distribution Quantization and Negative Sampling DecoderXiaobao Wu, Chunping Li, Yan Zhu, Yishu MiaoEMNLP 2020 · 61 citations
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