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01HAERAE-HUB /KMMLU KMMLU (Korean-MMLU) We propose KMMLU, a new Korean benchmark with 35,030 expert-level multiple-choice questions across 45 subjects ranging from humanities to STEM. Unlike previous Korean benchmarks that are translated from existing English benchmarks, KMMLU is collected from original Korean exams, capturing linguistic and cultural aspects of the Korean language. We test 26 publically available and proprietary LLMs, identifying significant room for improvement. The best publicly… See the full description on the dataset page: https://huggingface.co/datasets/HAERAE-HUB/KMMLU.tabularmultiple-choice100K<n<1M101 likes8.9k downloads3y agoHugging Face02HAERAE-HUB /KMMLU-HARD KMMLU (Korean-MMLU) We propose KMMLU, a new Korean benchmark with 35,030 expert-level multiple-choice questions across 45 subjects ranging from humanities to STEM. Unlike previous Korean benchmarks that are translated from existing English benchmarks, KMMLU is collected from original Korean exams, capturing linguistic and cultural aspects of the Korean language. We test 26 publically available and proprietary LLMs, identifying significant room for improvement. The best publicly… See the full description on the dataset page: https://huggingface.co/datasets/HAERAE-HUB/KMMLU-HARD.textquestion-answering1K<n<10K13 likes3k downloads3y agoHugging Face03HAERAE-HUB /HRM8K | 📖 Paper | 📝 Blog | 🖥️ Code(Coming soon!) | HRM8K We introduce HAE-RAE Math 8K (HRM8K), a bilingual math reasoning benchmark for Korean and English. HRM8K comprises 8,011 instances for evaluation, sourced through a combination of translations from established English benchmarks (e.g., GSM8K, MATH, OmniMath, MMMLU) and original problems curated from existing Korean math exams. Benchmark Overview The HRM8K benchmark consists of two subsets: Korean School Math (KSM):… See the full description on the dataset page: https://huggingface.co/datasets/HAERAE-HUB/HRM8K.tabular1K<n<10K24 likes1.7k downloads2y agoHugging Face04HAERAE-HUB /KoSimpleEvaltext100K<n<1M0 likes731 downloads1y agoHugging Face05HAERAE-HUB /HAE_RAE_BENCH_1.0The HAE_RAE_BENCH 1.0 is the original implementation of the dataset froom the paper: HAE-RAE BENCH paper. The benchmark is a collection of 1,538 instances across 6 tasks: standard_nomenclature, loan_word, rare_word, general_knowledge, history and reading comprehension. To replicate the studies from the paper, see below. Dataset Overview Task Instances Version Explanation standard_nomenclature 153 v1.0 Multiple-choice questions about Korean standard nomenclatures from… See the full description on the dataset page: https://huggingface.co/datasets/HAERAE-HUB/HAE_RAE_BENCH_1.0.text1K<n<10K1 likes291 downloads2y agoHugging Face06HAERAE-HUB /K2-EvalResearch Paper coming soon! K2EvalK^{2} EvalK2Eval K2EvalK^{2} EvalK2Eval is a novel benchmark featuring 90 handwritten instructions that require in-depth knowledge of Korean language and culture for accurate completion. Benchmark Overview The design principle behind K2EvalK^{2} EvalK2Eval centers on collecting instructions that necessitate knowledge specific to Korean culture and context in order to solve. This approach distinguishes our work from simply translating… See the full description on the dataset page: https://huggingface.co/datasets/HAERAE-HUB/K2-Eval.textn<1K8 likes213 downloads2y agoHugging Face07HAERAE-HUB /KUDGEOfficial data repository for LLM-as-a-Judge & Reward Model: What They Can and Cannot DoTLDR; Automated Evaluators (LLM-as-a-Judge, Reward Models) can be transferred to non-English settings without additional training. (most of the times) Dataset Description At the best of our knowledge, KUDGE is the only, non-English, human-annotated meta-evaluation dataset at this point. Consisted of 5,012 human annotation from native Korean speakers, we expect KUDGE to be widely used as a tool… See the full description on the dataset page: https://huggingface.co/datasets/HAERAE-HUB/KUDGE.tabular1K<n<10K7 likes194 downloads2y agoHugging Face08HAERAE-HUB /Ko-PIQA Ko-PIQA: Korean Physical Commonsense Reasoning Dataset 📖 Dataset Overview Ko-PIQA is a Korean Physical Commonsense Reasoning dataset designed to complement English-centric benchmarks like PIQA and to include culturally-grounded physical reasoning questions. Total items: 441 Culturally-grounded items: 87 (19.7%)(e.g., kimchi storage, hanbok care, ondol heating) Format: PIQA-style binary choice (solution0 / solution1) Goal: Evaluate Korean LLM physical reasoning… See the full description on the dataset page: https://huggingface.co/datasets/HAERAE-HUB/Ko-PIQA.tabularn<1K3 likes90 downloads9mo agoHugging Face09HAERAE-HUB /HRMCR HRMCR HAE-RAE Multi-Step Commonsense Reasoning (HRMCR) is a collection of multi-step reasoning questions automatically generated using templates and algorithms. The questions in HRMCR require LLMs to recall diverse aspects of Korean culture and perform multiple reasoning steps to solve them. 📖 Paper 🖥️ Code (Coming soon!) Example of generated questions in the HRMCR benchmark. The figure showcases generated questions (left) alongside their automatically generated solutions… See the full description on the dataset page: https://huggingface.co/datasets/HAERAE-HUB/HRMCR.textn<1K3 likes42 downloads2y agoHugging Face10HAERAE-HUB /QARV-binary-setThe QARV (Question and Answers with Regional Variance) project aims to curate a collection of questions with answers that exhibit regional variations across different nations. text1K<n<10K0 likes37 downloads2y agoHugging Face11bzantium /HAERAE-en HAERAE-en (English-Translated HAERAE-BENCH) This dataset is the English-translated version of the original HAERAE-BENCH, a benchmark designed to evaluate the linguistic and knowledge-based capabilities of Korean language models. For a detailed understanding of the original dataset's construction and motivation, please refer to the paper: HAE-RAE: A New Public Korean-Specific Benchmark Dataset. HAERAE-en was created to enable the evaluation of non-Korean models on the knowledge and… See the full description on the dataset page: https://huggingface.co/datasets/bzantium/HAERAE-en.textquestion-answering1K<n<10K0 likes36 downloads1y agoHugging Face12HAERAE-HUB /kin_20250421text1M<n<10M0 likes35 downloads1y agoHugging Face13HAERAE-HUB /HAE_RAE_BENCH_2.0HAE_RAE_BENCH 2.0 is a miny implementation of Big-Bench consisted of 5 tasks: date_understanding, context_definition_alignment, proverb_unscrambling, 2_digit_multiply, and 3_digit_subtract. Paper Coming Soon (probably). text1K<n<10K4 likes33 downloads2y agoHugging Face

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