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Typological Diversity in Intermediate-Task Training for Cross-Lingual Robustness in XTREME-R

Domaine:

natural language processing
Créateur:
Ass
Éditeur:
Zenodo
Hôte:avatar
Intermediate-task training---fine-tuning a pretrained model on an intermediate task before fine-tuning again on the target task---often improves model performance substantially on language understanding tasks in monolingual English settings. We investigate whether English intermediate-task training is still helpful on non-English target tasks. Using nine intermediate language-understanding tasks, we evaluate intermediate-task transfer in a zero-shot cross-lingual setting on the XTREME benchmark. We see large improvements from intermediate training on the BUCC and Tatoeba sentence retrieval tas Research goal: Does the inclusion of typologically distant languages in intermediate-task training improve robustness in zero-shot cross-lingual transfer for low-resource languages in XTREME-R, as evaluated by per-language accuracy and variance reduction? Autonomous synthesis report generated by Assignee Research. Tribunal consensus score: 9.0/10. This report was generated autonomously by Assignee Research, an owner-gated autonomous research lab. The content synthesizes findings from peer-reviewed papers. Tribunal score: 9.0/10.

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doi.org

Tags

inclusiontypologicallydistantlanguagesintermediate-tasktrainingimproverobustness

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Creative Commons Attribution 4.0 Internationalhttps://creativecommons.org/licenses/by/4.0/legalcode