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Mayank Nagda

4 accepted papers

2025

Tethering Broken Themes: Aligning Neural Topic Models with Labels and Authors

NAACL 2025findings

Topic models are a popular approach for extracting semantic information from large document collections. However, recent studies suggest that the topics generated by these models often do not align well with human intentions. Although metadata such as labels and authorship information are available,…

2024

Evaluating Dynamic Topic Models

ACL 2024long

There is a lack of quantitative measures to evaluate the progression of topics through time in dynamic topic models (DTMs). Filling this gap, we propose a novel evaluation measure for DTMs that analyzes the changes in the quality of each topic over time. Additionally, we propose an extension combini…

Cited by 2SourcePDFScholar
2024

Text Style Transfer Evaluation Using Large Language Models

COLING 2024main

Evaluating Text Style Transfer (TST) is a complex task due to its multi-faceted nature. The quality of the generated text is measured based on challenging factors, such as style transfer accuracy, content preservation, and overall fluency. While human evaluation is considered to be the gold standard…

Cited by 11SourcePDFScholar