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Language-Independent Representations Improve Zero-Shot Summarization

Solovyev, Vladimir ; Liu, Danni ORCID iD icon 1; Niehues, Jan ORCID iD icon 1
1 Institut für Anthropomatik und Robotik (IAR), Karlsruher Institut für Technologie (KIT)

Abstract (englisch):

Finetuning pretrained models on downstream generation tasks often leads to catastrophic forgetting in zero-shot conditions. In this work, we focus on summarization and tackle the problem through the lens of language-independent representations. After training on monolingual summarization, we perform zero-shot transfer to new languages or language pairs. We first show naively finetuned models are highly language-specific in both output behavior and internal representations, resulting in poor zero-shot performance. Next, we propose query-key (QK) finetuning to decouple task-specific knowledge from the pretrained language generation abilities. Then, after showing downsides of the standard adversarial language classifier, we propose a balanced variant that more directly enforces language-agnostic representations. Moreover, our qualitative analyses show removing source language identity correlates to zero-shot summarization performance. Our code is openly available.


Verlagsausgabe §
DOI: 10.5445/IR/1000172058
Veröffentlicht am 03.07.2024
Cover der Publikation
Zugehörige Institution(en) am KIT Institut für Anthropomatik und Robotik (IAR)
Publikationstyp Proceedingsbeitrag
Publikationsmonat/-jahr 06.2024
Sprache Englisch
Identifikator KITopen-ID: 1000172058
Erschienen in Proceedings of the 2024 Conference of the North American Chapter of the Association for Computational Linguistics: Human Language Technologies. Vol.: 2. Ed.: K. Duh
Veranstaltung Annual Conference of the North American Chapter of the Association for Computational Linguistics : Human Language Technologies (NAACL 2024), Mexiko-Stadt, Mexiko, 16.06.2024 – 21.06.2024
Verlag Association for Computational Linguistics (ACL)
Seiten 772–782
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