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doi:10.22028/D291-38842
Titel: | Few-Shot Pidgin Text Adaptation via Contrastive Fine-Tuning |
VerfasserIn: | Chang, Ernie Alabi, Jesujoba Adelani, David Ifeoluwa Demberg, Vera |
HerausgeberIn: | Scherrer, Yves |
Sprache: | Englisch |
Titel: | Proceedings of the Ninth Workshop on NLP for Similar Languages, Varieties and Dialects (VarDial 2022) - the 29th International Conference on Computational Linguistics : October 12-17, 2022, Gyeongju, Republic of Korea |
Seiten: | 4286-4291 |
Verlag/Plattform: | ACL |
Erscheinungsjahr: | 2022 |
Erscheinungsort: | [Stroudsburg, PA] |
Konferenzort: | Gyeongju, Republic of Korea |
DDC-Sachgruppe: | 400 Sprache, Linguistik |
Dokumenttyp: | Konferenzbeitrag (in einem Konferenzband / InProceedings erschienener Beitrag) |
Abstract: | The surging demand for multilingual dialogue systems often requires a costly labeling process for each language addition. For low resource languages, human annotators are continuously tasked with the adaptation of resource-rich language utterances for each new domain. However, this prohibitive and impractical process can often be a bottleneck for low resource languages that are still without proper translation systems nor parallel corpus. In particular, it is difficult to obtain task-specific low resource language annotations for the English-derived creoles (e.g. Nigerian and Cameroonian Pidgin). To address this issue, we utilize the pretrained language models i.e. BART which has shown great potential in language generation/understanding – we propose to finetune the BART model to generate utterances in Pidgin by leveraging the proximity of the source and target languages, and utilizing positive and negative examples in constrastive training objectives. We collected and released the first parallel Pidgin-English conversation corpus in two dialogue domains and showed that this simple and effective technique is suffice to yield impressive results for English-to-Pidgin generation, which are two closely-related languages. |
URL der Erstveröffentlichung: | https://aclanthology.org/2022.coling-1.377/ |
Link zu diesem Datensatz: | urn:nbn:de:bsz:291--ds-388423 hdl:20.500.11880/35022 http://dx.doi.org/10.22028/D291-38842 |
Datum des Eintrags: | 30-Jan-2023 |
Fakultät: | MI - Fakultät für Mathematik und Informatik |
Fachrichtung: | MI - Informatik |
Professur: | MI - Prof. Dr. Vera Demberg |
Sammlung: | SciDok - Der Wissenschaftsserver der Universität des Saarlandes |
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