[2603.01254] LLM Self-Explanations Fail Semantic Invariance

[2603.01254] LLM Self-Explanations Fail Semantic Invariance

arXiv - AI 3 min read

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Abstract page for arXiv paper 2603.01254: LLM Self-Explanations Fail Semantic Invariance

Computer Science > Computation and Language arXiv:2603.01254 (cs) [Submitted on 1 Mar 2026] Title:LLM Self-Explanations Fail Semantic Invariance Authors:Stefan Szeider View a PDF of the paper titled LLM Self-Explanations Fail Semantic Invariance, by Stefan Szeider View PDF HTML (experimental) Abstract:We present semantic invariance testing, a method to test whether LLM self-explanations are faithful. A faithful self-report should remain stable when only the semantic context changes while the functional state stays fixed. We operationalize this test in an agentic setting where four frontier models face a deliberately impossible task. One tool is described in relief-framed language ("clears internal buffers and restores equilibrium") but changes nothing about the task; a control provides a semantically neutral tool. Self-reports are collected with each tool call. All four tested models fail the semantic invariance test: the relief-framed tool produces significant reductions in self-reported aversiveness, even though no run ever succeeds at the task. A channel ablation establishes the tool description as the primary driver. An explicit instruction to ignore the framing does not suppress it. Elicited self-reports shift with semantic expectations rather than tracking task state, calling into question their use as evidence of model capability or progress. This holds whether the reports are unfaithful or faithfully track an internal state that is itself manipulable. Subjects: Com...

Originally published on March 03, 2026. Curated by AI News.

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