EPISODE · Jan 14, 2026 · 28 MIN
[人人能懂] 从“分身术”思考,到“反向”学习,再到“说人话”的KPI
from AI可可AI生活
你有没有想过,AI要如何像高手一样,同时“试驾”多种思路?我们又该如何给狂飙的AI装上“定速巡航”,让它在学习时永不“翻车”?今天,我们就从几篇最新的AI论文出发,聊一聊AI要如何学会“分身术”思考,如何跳出“思维定式”的陷阱,甚至,我们以后可能再也不用费劲地给AI设定KPI,直接“说人话”就能让它们完美协作。准备好了吗?让我们一起探索AI思考方式的深层变革。00:00:35 如何像高手一样思考?答案可能在“分身术”里00:05:07 给狂飙的AI装上定速巡航00:09:57 思维定式是怎么炼成的?AI给了我们一个新答案00:15:23 怎么让AI大模型学会“左右互搏”?00:21:37 AI界的“KPI”革命,未来我们不用再跟机器打哑谜本期介绍的几篇论文:[CL] Multiplex Thinking: Reasoning via Token-wise Branch-and-Merge[Microsoft Research & University of Pennsylvania]https://arxiv.org/abs/2601.08808---[LG] Controlled LLM Training on Spectral Sphere[Microsoft Research Asia & Renmin University]https://arxiv.org/abs/2601.08393---[LG] Rewarding the Rare: Uniqueness-Aware RL for Creative Problem Solving in LLMs[MIT & NUS]https://arxiv.org/abs/2601.08763---[LG] Reverse Flow Matching: A Unified Framework for Online Reinforcement Learning with Diffusion and Flow Policies[MIT]https://arxiv.org/abs/2601.08136---[LG] The End of Reward Engineering: How LLMs Are Redefining Multi-Agent Coordination[New York University & Lerna AI]https://arxiv.org/abs/2601.08237在小宇宙查看该单集文稿
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[人人能懂] 从“分身术”思考,到“反向”学习,再到“说人话”的KPI
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