We explore the use of residual networks for argumentation mining, with an emphasis on link prediction. We propose a domain-agnostic method that makes no assumptions on document or argument structure. We evaluate our method on a challenging dataset consisting of user-generated comments collected from an online platform. Results show that our model outperforms an equivalent deep network and offers results comparable with state-of-the-art methods that rely on domain knowledge.

Galassi Andrea, L.M. (2018). Argumentative Link Prediction using Residual Networks and Multi-Objective Learning. Association for Computational Linguistics [10.18653/v1/W18-5201].

Argumentative Link Prediction using Residual Networks and Multi-Objective Learning

Galassi Andrea
;
Lippi Marco;Torroni Paolo
2018

Abstract

We explore the use of residual networks for argumentation mining, with an emphasis on link prediction. We propose a domain-agnostic method that makes no assumptions on document or argument structure. We evaluate our method on a challenging dataset consisting of user-generated comments collected from an online platform. Results show that our model outperforms an equivalent deep network and offers results comparable with state-of-the-art methods that rely on domain knowledge.
2018
Proceedings of the 5th Workshop on Argument Mining
1
10
Galassi Andrea, L.M. (2018). Argumentative Link Prediction using Residual Networks and Multi-Objective Learning. Association for Computational Linguistics [10.18653/v1/W18-5201].
Galassi Andrea, Lippi Marco, Torroni Paolo
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11585/648213
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