cs.AI updates on arXiv.org 10月28日 12:14
概念模型与推理捷径研究
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本文研究了概念模型中推理捷径的问题,通过建立概念模型与推理捷径之间的联系,推导出识别概念和推理层的理论条件,并指出现有方法在实践中常无法满足这些条件。

arXiv:2502.11245v2 Announce Type: replace-cross Abstract: Concept-based Models are neural networks that learn a concept extractor to map inputs to high-level concepts and an inference layer to translate these into predictions. Ensuring these modules produce interpretable concepts and behave reliably in out-of-distribution is crucial, yet the conditions for achieving this remain unclear. We study this problem by establishing a novel connection between Concept-based Models and reasoning shortcuts (RSs), a common issue where models achieve high accuracy by learning low-quality concepts, even when the inference layer is fixed and provided upfront. Specifically, we extend RSs to the more complex setting of Concept-based Models and derive theoretical conditions for identifying both the concepts and the inference layer. Our empirical results highlight the impact of RSs and show that existing methods, even combined with multiple natural mitigation strategies, often fail to meet these conditions in practice.

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概念模型 推理捷径 模型准确性 理论条件 实践挑战
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