arXiv:2510.24772cs.CLcs.AI2025-10被引 1

揭示大模型自信与能力脱节的内在机制

Confidence is Not Competence

  • 通过分析模型内部状态几何,发现评估与执行阶段差异显著
  • 评估空间维度高但推理轨迹维数低,导致信心无法控制结果
  • 适合研究大模型决策机制或可信人工智能的读者

大型语言模型常表现出自信与实际解题能力之间的矛盾。本文通过分析模型在预生成评估和解题执行两个阶段的内部状态几何结构,揭示了这种脱节的机制。一个简单的线性探测器可解码模型的“可解性信念”,该信念轴在不同模型家族及数学、代码、规划、逻辑任务间具有泛化性。然而,评估空间的主成分显示其具有高线性有效维度,而后续推理轨迹则在低维流形上演化。从思维到行动的几何复杂度急剧下降,正是信心与能力脱节的根源。因果干预表明,沿信念轴的线性扰动不影响最终解,说明复杂评估空间中的微调无法操控受约束的执行动态。因此,我们发现一种双系统架构:几何复杂的评估器驱动几何简单的执行器。这一发现挑战了‘可解码信念即可控杠杆’的假设,主张应针对执行过程的程序动力学而非评估几何进行干预。

原文摘要 · Abstract (English)

Large language models (LLMs) often exhibit a puzzling disconnect between their asserted confidence and actual problem-solving competence. We offer a mechanistic account of this decoupling by analyzing the geometry of internal states across two phases - pre-generative assessment and solution execution. A simple linear probe decodes the internal "solvability belief" of a model, revealing a well-ordered belief axis that generalizes across model families and across math, code, planning, and logic tasks. Yet, the geometries diverge - although belief is linearly decodable, the assessment manifold has high linear effective dimensionality as measured from the principal components, while the subsequent reasoning trace evolves on a much lower-dimensional manifold. This sharp reduction in geometric complexity from thought to action mechanistically explains the confidence-competence gap. Causal interventions that steer representations along the belief axis leave final solutions unchanged, indicating that linear nudges in the complex assessment space do not control the constrained dynamics of execution. We thus uncover a two-system architecture - a geometrically complex assessor feeding a geometrically simple executor. These results challenge the assumption that decodable beliefs are actionable levers, instead arguing for interventions that target the procedural dynamics of execution rather than the high-level geometry of assessment.

大模型认知机制信念解码执行动态

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