Zhihan Li
2024
What Are the Implications of Your Question? Non-Information Seeking Question-Type Identification in CNN Transcripts
Yao Sun
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Anastasiia Tatlubaeva
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Zhihan Li
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Chester Palen-Michel
Proceedings of the 2024 Joint International Conference on Computational Linguistics, Language Resources and Evaluation (LREC-COLING 2024)
Non-information seeking questions (NISQ) capture the subtle dynamics of human discourse. In this work, we utilize a dataset of over 1,500 information-seeking question(ISQ) and NISQ to evaluate human and machine performance on classifying fine-grained NISQ types. We introduce the first publicly available corpus focused on annotating both ISQs and NISQs as an initial benchmark. Additionally, we establish competitive baselines by assessing diverse systems, including Generative Pre-Trained Transformer Language models, on a new question classification task. Our results demonstrate the inherent complexity of making nuanced NISQ distinctions. The dataset is publicly available at https://github.com/YaoSun0422/NISQ_dataset.git
2023
Model-Agnostic Meta-Learning for Natural Language Understanding Tasks in Finance
Bixing Yan
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Shaoling Chen
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Yuxuan He
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Zhihan Li
Proceedings of the Fifth Workshop on Financial Technology and Natural Language Processing and the Second Multimodal AI For Financial Forecasting
2008
Text Mining Based Query Expansion for Chinese IR
Zhihan Li
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Yue Xu
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Shlomo Geva
Proceedings of the Australasian Language Technology Association Workshop 2008
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Co-authors
- Yao Sun 1
- Anastasiia Tatlubaeva 1
- Chester Palen-Michel 1
- Bixing Yan 1
- Shaoling Chen 1
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