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WangchanThaiInstruct: An instruction-following Dataset for Culture-Aware, Multitask, and Multi-domain Evaluation in Thai

WangchanThaiInstruct: An instruction-following Dataset for Culture-Aware, Multitask, and Multi-domain Evaluation in Thai

来源:Arxiv_logoArxiv
英文摘要

Large language models excel at instruction-following in English, but their performance in low-resource languages like Thai remains underexplored. Existing benchmarks often rely on translations, missing cultural and domain-specific nuances needed for real-world use. We present WangchanThaiInstruct, a human-authored Thai dataset for evaluation and instruction tuning, covering four professional domains and seven task types. Created through a multi-stage quality control process with annotators, domain experts, and AI researchers, WangchanThaiInstruct supports two studies: (1) a zero-shot evaluation showing performance gaps on culturally and professionally specific tasks, and (2) an instruction tuning study with ablations isolating the effect of native supervision. Models fine-tuned on WangchanThaiInstruct outperform those using translated data in both in-domain and out-of-domain benchmarks. These findings underscore the need for culturally and professionally grounded instruction data to improve LLM alignment in low-resource, linguistically diverse settings.

Peerat Limkonchotiwat、Pume Tuchinda、Lalita Lowphansirikul、Surapon Nonesung、Panuthep Tasawong、Alham Fikri Aji、Can Udomcharoenchaikit、Sarana Nutanong

南亚语系(澳斯特罗-亚细亚语系)

Peerat Limkonchotiwat,Pume Tuchinda,Lalita Lowphansirikul,Surapon Nonesung,Panuthep Tasawong,Alham Fikri Aji,Can Udomcharoenchaikit,Sarana Nutanong.WangchanThaiInstruct: An instruction-following Dataset for Culture-Aware, Multitask, and Multi-domain Evaluation in Thai[EB/OL].(2025-08-21)[2025-09-02].https://arxiv.org/abs/2508.15239.点此复制

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