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Liquid AI 发布 Open d1:零输出 Token 的开放权重决策模型

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作者称 Liquid AI 发布 Open d1 系列两个开放权重决策模型 d1-3B 与 d1-omni-600M,直接输出校准概率,输出 token 恒为 0。d1-3B 在 Decision Index v0.2.1 得 48.57,为 10B 以下最佳,超过 Decider 35B-A3B(47.11),但 Knowledge 项落后 Winnow-12B。单问题延迟 8–50 毫秒(视硬件而定)。以上为作者声称,未经独立核实。

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RT Marktechpost AI Liquid AI just released Open d1, 2 open-weight decision models that never generate a single token. d1-3B (text + vision) and d1-omni-600M (text + image, or text + audio) read a state plus typed questions and return calibrated probabilities in 1 forward pass. The core idea is to replace "generate JSON, then parse it" with a direct readout. Every question is a noul (P(yes)), a choice (a distribution over named options) or a score (a position on a 2 to 10 level rubric). Output tokens: always 0. d1-3B scores 48.57 on Decision Index v0.2.1. That is the best result under 10B, and above Decider 35B-A3B (47.11), a model 12x its size. The trade-off: it trails on Knowledge (23.8 vs 33.8 for Winnow-12B). It is a decision engine, not a chat model. Latency per question: 8 ms on RTX 4090, 16 ms on Jetson AGX Thor, 50 ms on Jetson Orin Nano. Day-one llama.cpp support...... Full analysis: https://www.marktechpost.com/2026/10/07/liquid-ai-releases-open-weight-d1-3b-and-d1-omni-600m-multimodal-decision-models-with-zero-output-tokens/ d1-3B: http://huggingface.co/LiquidAI/d1-3B d1-omni-600M: http://huggingface.co/LiquidAI/d1-omni-600M Docs: http://docs.liquid.ai/lfm/models/decision-models @liquidai @nvidia

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