Papers › Soft Language Prompts for Language Transfer

Soft Language Prompts for Language Transfer

2 Jul 2024arXiv:2407.02317archive 2025-07-28

Ivan Vykopal, Simon Ostermann, Marián Šimko

Cross-lingual knowledge transfer, especially between high- and low-resource languages, remains challenging in natural language processing (NLP). This study offers insights for improving cross-lingual NLP applications through the combination of parameter-efficient fine-tuning methods. We systematically explore strategies for enhancing cross-lingual transfer through the incorporation of language-specific and task-specific adapters and soft prompts. We present a detailed investigation of various combinations of these methods, exploring their efficiency across 16 languages, focusing on 10 mid- and low-resource languages. We further present to our knowledge the first use of soft prompts for language transfer, a technique we call soft language prompts. Our findings demonstrate that in contrast to claims of previous work, a combination of language and task adapters does not always work best; instead, combining a soft language prompt with a task adapter outperforms most configurations in many cases.

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ivanvykopal/adapter-prompt-evaluation officialmentioned in papermentioned on GitHubpytorch report
kinit-sk/adapter-prompt-evaluation officialmentioned in papermentioned on GitHubpytorch report

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Cross-Lingual TransferTransfer Learningparameter-efficient fine-tuning

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