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Chapter

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Title

Generating clickbait spoilers with an ensemble of large language models

Authors

[ 1 ] Wydział Informatyki i Telekomunikacji, Politechnika Poznańska | [ 2 ] Instytut Informatyki, Wydział Informatyki i Telekomunikacji, Politechnika Poznańska | [ S ] student | [ P ] employee

Scientific discipline (Law 2.0)

[2.3] Information and communication technology

Year of publication

2023

Chapter type

chapter in monograph / paper

Publication language

english

Abstract

EN Clickbait posts are a widespread problem in the webspace. The generation of spoilers, i.e. short texts that neutralize clickbait by providing in- formation that satisfies the curiosity induced by it, is one of the proposed solutions to the problem. Current state-of-the-art methods are based on passage retrieval or question answer- ing approaches and are limited to generating spoilers only in the form of a phrase or a pas- sage. In this work, we propose an ensemble of fine-tuned large language models for clickbait spoiler generation. Our approach is not limited to phrase or passage spoilers, but is also able to generate multipart spoilers that refer to sev- eral non-consecutive parts of text. Experimen- tal evaluation demonstrates that the proposed ensemble model outperforms the baselines in terms of BLEU, METEOR and BERTScore metrics.

Pages (from - to)

431 - 436

URL

https://aclanthology.org/2023.inlg-main.32/

Book

Proceedings of the 16th International Natural Language Generation Conference

Presented on

16th International Natural Language Generation Conference INLG 2023, 11-15.09.2023, Prague, Czech Republic

License type

CC BY (attribution alone)

Open Access Mode

publisher's website

Open Access Text Version

final published version

Date of Open Access to the publication

at the time of publication

Ministry points / chapter

5

Ministry points / conference (CORE)

70

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