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  4. Cross-Domain Argument Quality Estimation
 
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July 2023
Conference Paper
Title

Cross-Domain Argument Quality Estimation

Abstract
Argumentation is one of society's foundational pillars, and, sparked by advances in NLP, and the vast availability of text data, automated mining of arguments receives increasing attention. A decisive property of arguments is their strength or quality. While there are works on the automated estimation of argument strength, their scope is narrow: they focus on isolated datasets and neglect the interactions with related argument-mining tasks, such as argument identification and evidence detection. In this work, we close this gap by approaching argument quality estimation from multiple different angles: Grounded on rich results from thorough empirical evaluations, we assess the generalization capabilities of argument quality estimation across diverse domains and the interplay with related argument mining tasks. We find that generalization depends on a sufficient representation of different domains in the training part. In zero-shot transfer and multi-task experiments, we reveal that argument quality is among the more challenging tasks but can improve others. We publish our code at https://github.com/fromm-m/acl-cross-domain-aq.
Author(s)
Fromm, Michael  
Fraunhofer-Institut für Intelligente Analyse- und Informationssysteme IAIS  
Berrendorf, Max
LMU Munich, Database Systems and Data Mining
Faerman, Evgeniy
LMU Munich, Database Systems and Data Mining
Seidl, Thomas
LMU Munich, Database Systems and Data Mining
Mainwork
Findings of the Association for Computational Linguistics. ACL 2023  
Conference
Association for Computational Linguistics (ACL Annual Meeting) 2023  
Open Access
DOI
10.18653/v1/2023.findings-acl.848
Language
English
Fraunhofer-Institut für Intelligente Analyse- und Informationssysteme IAIS  
Keyword(s)
  • Computational linguistics

  • Argument identifications

  • Argument qualities

  • Automated estimation

  • Automated mining

  • Cross-domain

  • Empirical evaluations

  • Mining tasks

  • Property

  • Quality estimation

  • Text data

  • Zero-shot learning

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