Efficient Pairwise Annotation of Argument Quality
Lukas Gienapp, Benno Stein, Matthias Hagen, Martin Potthast
摘要
We present an efficient annotation framework for argument quality, a feature difficult to be measured reliably as per previous work. A stochastic transitivity model is combined with an effective sampling strategy to infer highquality labels with low effort from crowdsourced pairwise judgments. The model's capabilities are showcased by compiling Webis-ArgQuality-20, an argument quality corpus that comprises scores for rhetorical, logical, dialectical, and overall quality inferred from a total of 41,859 pairwise judgments among 1,271 arguments. With up to 93% cost savings, our approach significantly outperforms existing annotation procedures. Furthermore, novel insight into argument quality is provided through statistical analysis, and a new aggregation method to infer overall quality from individual quality dimensions is proposed.
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- The Viability of Crowdsourcing for RAG EvaluationLukas Gienapp, Tim Hagen, Maik Fröbe, Matthias Hagen 等SIGIR 2025 · 被引用 7 次
- Data-Driven Insight Synthesis for Multi-Dimensional DataJunjie Xing, Xinyu Wang, H. V. JagadishVLDB 2024 · 被引用 5 次
- Let's discuss! Quality Dimensions and Annotated Datasets for Computational Argument Quality AssessmentRositsa V. Ivanova, Thomas Huber, Christina NiklausEMNLP 2024 · 被引用 2 次
- A Multi-persona Framework for Argument Quality AssessmentBojun Jin, Jianzhu Bao, Yufang Hou, Yang Sun 等ACL 2025
- LLM-based Rewriting of Inappropriate Argumentation using Reinforcement Learning from Machine FeedbackTimon Ziegenbein, Gabriella Skitalinskaya, Alireza Bayat Makou, Henning WachsmuthACL 2024
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