Common Sense Beyond English: Evaluating and Improving Multilingual Language Models for Commonsense Reasoning
Bill Yuchen Lin, Seyeon Lee, Xiaoyang Qiao, Xiang Ren
摘要
Commonsense reasoning research has so far been mainly limited to English. We aim to evaluate and improve popular multilingual language models (ML-LMs) to help advance commonsense reasoning (CSR) beyond English. We collect the Mickey corpus, consisting of 561k sentences in 11 different languages, which can be used for analyzing and improving ML-LMs. We propose Mickey Probe, a language-agnostic probing task for fairly evaluating the common sense of popular ML-LMs across different languages. Also, we create two new datasets, X-CSQA and X-CODAH, by translating their English versions to 15 other languages, so that we can evaluate popular ML-LMs for cross-lingual commonsense reasoning. To improve the performance beyond English, we propose a simple yet effective method -multilingual contrastive pretraining (MCP). It significantly enhances sentence representations, yielding a large performance gain on both benchmarks (e.g., +2.7% accuracy for X-CSQA over XLM-R L ) 1 .
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引用它的顶会 Paper19
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- How do Large Language Models Handle Multilingualism?Yiran Zhao, Wenxuan Zhang, Guizhen Chen, Kenji Kawaguchi 等NeurIPS 2024 · 被引用 196 次
- Language models are multilingual chain-of-thought reasonersFreda Shi, Mirac Suzgun, Markus Freitag, Xuezhi Wang 等ICLR 2023 · 被引用 52 次
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- MindMerger: Efficiently Boosting LLM Reasoning in non-English LanguagesZixian Huang, Wenhao Zhu, Gong Cheng, Lei Li 等NeurIPS 2024 · 被引用 31 次
它引用的顶会 Paper8
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