eaddario/DeepSeek-R1-Distill-Qwen-7B-GGUF - Каталог нейросетей
Генерация текста

eaddario/DeepSeek-R1-Distill-Qwen-7B-GGUF

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eaddario/DeepSeek-R1-Distill-Qwen-7B-GGUF

> DeepSeek-R1-Zero, a model trained via large-scale reinforcement learning (RL) without supervised fine-tuning (SFT) as a preliminary step, demonstrated remarkable performance on reasoning. With RL, DeepSeek-R1-Zero naturally emerged with numerous powerful and interesting reasoning behaviors. However, DeepSeek-R1-Zero encounters challenges such as endless repetition, poor readability, and language mixing. To address these issues and further enhance reasoning performance, we introduce DeepSeek-R1, which incorporates cold-start data before RL. DeepSeek-R1 achieves performance comparable to OpenAI-o1 across math, code, and reasoning tasks. To support the research community, we have open-sourced DeepSeek-R1-Zero, DeepSeek-R1, and six dense models distilled from DeepSeek-R1 based on Llama and Qwen. DeepSeek-R1-Distill-Qwen-32B outperforms OpenAI-o1-mini across various benchmarks, achieving new state-of-the-art results for dense models. > > NOTE: Before running DeepSeek-R1 series models locally, we kindly recommend reviewing the Usage Recommendation section. An area of personal interest is finding ways to optimize the inference performance of LLMs when deployed in resource-constrained…

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Задача: Генерация текста
Автор: eaddario
Теги: gguf, quant, experimental, en, endpoints_compatible, conversational
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