arXiv:2608.29459cs.AI2026-08

发现大模型的推理能力可在隐空间用向量表示并操控

Toward Latent Language Model Skills Steering and Optimization: An Empirical Study

论文配图:Toward Latent Language Model Skills Steering and Optimization: An Empirical Study
图 1 · 摘自论文原文
  • 将技能视为激活空间中的方向,可直接操作
  • 独立方向组合能生成更高级技能
  • 适合研究模型内部机制与可控生成的学者

技能作为大语言模型(LLM)程序化能力的有用抽象,捕捉了模型执行结构化、多步推理和程序的能力。现有方法通常将技能视为通过提示或程序显式定义的表层结构,未回答这些程序化能力在模型内部如何表示,以及能否作为潜在空间中的结构化对象进行操控。本文通过实证研究,探究了程序化技能是否能在激活空间中表示为方向,以及对这些方向进行向量空间操作能否表达技能级行为。结果表明,程序化技能确实具备向量空间表示:单独激活技能方向可改变模型行为;独立提取的方向可组合形成更高阶技能。对比方向实现上下文相关的算法个性化,而技能方向的优化轨迹呈非单调演化,中间状态常优于完全优化解。这些结果支持了程序化技能的表征层面观点:它们具有可直接通过内部干预操纵的潜在向量空间组织。

原文摘要 · Abstract (English)

Skills, as a useful abstraction for the procedural capabilities of large language models (LLMs), capture how models perform structured, multi-step reasoning and program execution. Existing approaches typically treat skills as explicit, surface-level constructs specified through prompts or programs, leaving open the question of how such procedural capabilities are represented inside the model and whether they can be manipulated as structured objects in latent space. In this empirical study, we investigate whether procedural LLM skills can be represented as directions in activation space and whether vector-space operations over these directions can express skill-level behaviors. We find that procedural skills admit a vector-space representation: individual skill directions can be activated to shift model behavior; independently extracted directions can compose to form higher-level skills. Contrastive directions yield context-conditioned algorithmic personalization and optimization trajectories over skill directions evolve non-monotonically, with intermediate states often surpassing fully optimized solutions. These results support a representation-level view of procedural LLM skills: they admit a latent vector-space organization that allows direct manipulation through internal interventions.

大模型技能表示隐空间操控向量操作

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