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01Multi-Agent-LLMs /DEBATE DEBATE: Diverse Multi-Agent Debates This dataset is presented in the paper "MALLM: Multi-Agent Large Language Models Framework". Citation comming soon. tabulartext-generation10K<n<100K2 likes710 downloads1y agoHugging Face02TreeAILab /Multi-turn_Long-context_Benchmark_for_LLMs LoopServe: An Adaptive Dual-phase LLM Inference Acceleration System for Multi-Turn Dialogues Arxiv: https://www.arxiv.org/abs/2507.13681 Huggingface: https://huggingface.co/papers/2507.13681 Introduction LoopServe Multi-Turn Dialogue Benchmark is a comprehensive evaluation dataset comprising multiple diverse datasets designed to assess large language model performance in realistic conversational scenarios. Unlike traditional benchmarks that place queries only at the end… See the full description on the dataset page: https://huggingface.co/datasets/TreeAILab/Multi-turn_Long-context_Benchmark_for_LLMs.textquestion-answering1K<n<10K0 likes451 downloads1y agoHugging Face03SupraLabs /LLM-self-identification Self Identification – Give your Language model an identity About Self Identification Self identification is training set SupraLabs curated for developers/trainers to experiment with to let your language model know about their identity. Self identification let your LM know these information about them: Model ID Model Name Model Description Model Creator Model Family Model Architecture Parameter Count Knowledge Cutoff Here is an example from the dataset: If… See the full description on the dataset page: https://huggingface.co/datasets/SupraLabs/LLM-self-identification.texttext-generationn<1K15 likes178 downloads2mo agoHugging Face04llmsql-bench /llmsql-benchmark LLMSQL Benchmark ⚠️ A newer version of this dataset is available:👉 https://huggingface.co/datasets/llmsql-bench/llmsql-2.0 This benchmark is designed to evaluate text-to-SQL models. For usage of this benchmark see https://github.com/LLMSQL/llmsql-benchmark. Arxiv Article: https://arxiv.org/abs/2510.02350 Files tables.jsonl — Database table metadata questions.jsonl — All available questions train_questions.jsonl, val_questions.jsonl, test_questions.jsonl — Data… See the full description on the dataset page: https://huggingface.co/datasets/llmsql-bench/llmsql-benchmark.textquestion-answering10K<n<100K2 likes154 downloads7mo agoHugging Face05r-karra /Cleaned_KJV_Bible_for_LLMsgatedtextsummarization10K<n<100K1 likes7 downloads4mo agoHugging Face06fadilahtulUkhti /llm-smallproject OpenMathInstruct-1 OpenMathInstruct-1 is a math instruction tuning dataset with 1.8M problem-solution pairs generated using permissively licensed Mixtral-8x7B model. The problems are from GSM8K and MATH training subsets and the solutions are synthetically generated by allowing Mixtral model to use a mix of text reasoning and code blocks executed by Python interpreter. The dataset is split into train and validation subsets that we used in the ablations experiments. These two subsets… See the full description on the dataset page: https://huggingface.co/datasets/fadilahtulUkhti/llm-smallproject.textquestion-answering1M<n<10M0 likes5 downloads9mo agoHugging Face

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