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This graph maps the connections between all the collaborators of {}'s publications listed on this page.
Each link represents a collaboration on the same publication. The thickness of the link represents the number of collaborations.
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A word cloud is a visual representation of the most frequently used words in a text or a set of texts. The words appear in different sizes, with the size of each word being proportional to its frequency of occurrence in the text. The more frequently a word is used, the larger it appears in the word cloud. This technique allows for a quick visualization of the most important themes and concepts in a text.
In the context of this page, the word cloud was generated from the publications of the author {}. The words in this cloud come from the titles, abstracts, and keywords of the author's articles and research papers. By analyzing this word cloud, you can get an overview of the most recurring and significant topics and research areas in the author's work.
The word cloud is a useful tool for identifying trends and main themes in a corpus of texts, thus facilitating the understanding and analysis of content in a visual and intuitive way.
Chan, A., Tay, Y., Ong, Y.-S., & Fu, J. (2020, April). Jacobian adversarially regularized networks for robustness [Paper]. 8th International Conference on Learning Representations (ICLR 2020), Addis Ababa, Ethiopia (13 pages). External link
Tay, Y., Ong, D., Fu, J., Chan, A., Chen, N. F., Tuan, L. A., & Pal, C. J. (2020, July). Would you rather? A new benchmark for learning machine alignment with cultural values and social preferences [Paper]. 58th Annual Meeting of the Association for Computational Linguistics (ACL 2020). External link
Tay, Y., Zhang, A., Tuan, L. A., Rao, J., Zhang, S., Wang, S., Fu, J., & Hui, S. C. (2019, July). Lightweight and Efficient Neural Natural Language Processing with Quaternion Networks [Paper]. 57th Annual Meeting of the Association for Computational Linguistics (ACL 2019), Florence, Italy. External link
Tay, Y., Wang, S., Tuan, L. A., Fu, J., Phan, M. C., Yuan, X., Rao, J., Hui, S. C., & Zhang, A. (2019, July). Simple and Effective Curriculum Pointer-Generator Networks for Reading Comprehension over Long Narratives [Paper]. 57th Annual Meeting of the Association for Computational Linguistics (ACL 2019), Florence, Italy. External link
Yuan, X., Fu, J., Cote, M.-A., Tay, Y., Pal, C. J., & Trischler, A. (2020, July). Interactive Machine Comprehension with Information Seeking Agents [Paper]. 58th Annual Meeting of the Association for Computational Linguistics (ACL 2020). External link