Setting standards in Turkish NLP: TR-MMLU for large language model evaluation

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Tarih

2025-01-04

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Yayıncı

Cornell Univ

Erişim Hakkı

info:eu-repo/semantics/openAccess

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Özet

Language models have made remarkable advancements in understanding and generating human language, achieving notable success across a wide array of applications. However, evaluating these models remains a significant challenge, particularly for resource-limited languages such as Turkish. To address this gap, we introduce the Turkish MMLU (TR-MMLU) benchmark, a comprehensive evaluation framework designed to assess the linguistic and conceptual capabilities of large language models (LLMs) in Turkish. TR-MMLU is constructed from a carefully curated dataset comprising 6,200 multiple-choice questions across 62 sections, selected from a pool of 280,000 questions spanning 67 disciplines and over 800 topics within the Turkish education system. This benchmark provides a transparent, reproducible, and culturally relevant tool for evaluating model performance. It serves as a standard framework for Turkish NLP research, enabling detailed analyses of LLMs’ capabilities in processing Turkish text and fostering the development of more robust and accurate language models. In this study, we evaluate state-of-the-art LLMs on TR-MMLU, providing insights into their strengths and limitations for Turkish-specific tasks. Our findings reveal critical challenges, such as the impact of tokenization and fine-tuning strategies, and highlight areas for improvement in model design. By setting a new standard for evaluating Turkish language models, TR-MMLU aims to inspire future innovations and support the advancement of Turkish NLP research.

Açıklama

Anahtar Kelimeler

Large Language Models (LLM), Natural Language Processing (NLP), Artificial Intelligence, Turkish NLP

Kaynak

Arxiv

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N/A

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Künye

Bayram, M. A., Fincan, A. A., Gümüş, A. S., Diri, B., Yıldırım, S. & Aytaş, Ö. (2025). Setting standards in Turkish NLP: TR-MMLU for large language model evaluation. Arxiv, 1-6. doi: https://doi.org/10.48550/arXiv.2501.00593