Argument Pair Extraction via Attention-guided Multi-Layer Multi-Cross Encoding
Liying Cheng, Tianyu Wu, Lidong Bing, Luo Si
摘要
Argument pair extraction (APE) is a research task for extracting arguments from two passages and identifying potential argument pairs. Prior research work treats this task as a sequence labeling problem and a binary classification problem on two passages that are directly concatenated together, which has a limitation of not fully utilizing the unique characteristics and inherent relations of two different passages. This paper proposes a novel attention-guided multi-layer multi-cross encoding scheme to address the challenges. The new model processes two passages with two individual sequence encoders and updates their representations using each other's representations through attention. In addition, the pair prediction part is formulated as a tablefilling problem by updating the representations of two sequences' Cartesian product. Furthermore, an auxiliary attention loss is introduced to guide each argument to align to its paired argument. An extensive set of experiments show that the new model significantly improves the APE performance over several alternatives 1 .
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- Explainable Legal Case Matching via Inverse Optimal Transport-based Rationale ExtractionWeijie Yu, Zhongxiang Sun, Jun Xu, Zhenhua Dong 等SIGIR 2022 · 被引用 45 次
- Exploring the Potential of Large Language Models in Computational ArgumentationGuizhen Chen, Liying Cheng, Anh Tuan Luu, Lidong BingACL 2024 · 被引用 8 次
- IAM: A Comprehensive and Large-Scale Dataset for Integrated Argument Mining TasksLiying Cheng, Lidong Bing, Ruidan He, Qian Yu 等ACL 2022
- PITA: Prompting Task Interaction for Argumentation MiningYang Sun, Muyi Wang, Jianzhu Bao, Bin Liang 等ACL 2024
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