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+ ---
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+ language:
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+ - zh
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+ base_model:
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+ - Seikaijyu/RWKV6-3B-Chn-UnlimitedRP-mini-chat
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+ tags:
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+ - quantization
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+ quantized_by: btaskel
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+ ---
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+ From Seikaijyu/RWKV6-3B-Chn-UnlimitedRP-mini-chat:
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+ https://huggingface.co/Seikaijyu/RWKV6-3B-Chn-UnlimitedRP-mini-chat
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+
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+ Based on my experience, Q4_K_S and Q4_K_M are usually the balance points between model size, quantization, and speed.
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+
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+ In some benchmarks, selecting a large-parameter low-quantization LLM tends to perform better than a small-parameter high-quantization LLM.
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+ 根据我的经验,通常Q4_K_S、Q4_K_M是模型尺寸/量化/速度的平衡点
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+ 在某些基准测试中,选择大参数低量化模型往往比选择小参数高量化模型表现更好。