Corpus Wide Argument Mining - A Working Solution
Liat Ein-Dor, Eyal Shnarch, Lena Dankin, Alon Halfon, Benjamin Sznajder, Ariel Gera, Carlos Alzate, Martin Gleize, Leshem Choshen, Yufang Hou, Yonatan Bilu, Ranit Aharonov, Noam Slonim
摘要
One of the main tasks in argument mining is the retrieval of argumentative content pertaining to a given topic. Most previous work addressed this task by retrieving a relatively small number of relevant documents as the initial source for such content. This line of research yielded moderate success, which is of limited use in a real-world system. Furthermore, for such a system to yield a comprehensive set of relevant arguments, over a wide range of topics, it requires leveraging a large and diverse corpus in an appropriate manner. Here we present a first end-to-end high-precision, corpus-wide argument mining system. This is made possible by combining sentence-level queries over an appropriate indexing of a very large corpus of newspaper articles, with an iterative annotation scheme. This scheme addresses the inherent label bias in the data and pinpoints the regions of the sample space whose manual labeling is required to obtain high-precision among top-ranked candidates.
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引用它的顶会 Paper8
- Cluster & Tune: Boost Cold Start Performance in Text ClassificationEyal Shnarch, Ariel Gera, Alon Halfon, Lena Dankin 等ACL 2022 · 被引用 27 次
- Diversity Over Size: On the Effect of Sample and Topic Sizes for Topic-Dependent Argument Mining DatasetsBenjamin Schiller, Johannes Daxenberger, Andreas Waldis, Iryna GurevychEMNLP 2024 · 被引用 3 次
- Label-Efficient Model Selection for Text GenerationShir Ashury-Tahan, Ariel Gera, Benjamin Sznajder, Leshem Choshen 等ACL 2024 · 被引用 1 次
- Debatable Intelligence: Benchmarking LLM Judges via Debate Speech EvaluationNoy Sternlicht, Ariel Gera, Roy Bar-Haim, Tom Hope 等EMNLP 2025 · 被引用 1 次
- The Moral Debater: A Study on the Computational Generation of Morally Framed ArgumentsMilad Alshomary, Roxanne El Baff, Timon Gurcke, Henning WachsmuthACL 2022
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