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February 20, 20260 citationsOpen Access

MIB-V15: A Unified Certification Protocol for Causal Logical Encoding in Neural Networks

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RRRégis RIGAUD

Key Points

  • The aim is to provide a coherent certification protocol that verifies whether neural networks causally encode logical propositions instead of just simulating them.
  • Introduced MIB-V15 certification protocol with five blocking steps.
  • Utilized QK-Causal Tracing and Kneedle algorithm for Pareto-Alignment.
  • Applied Divergence-Adjusted IIA normalized by Earth Mover Distance.
  • Incorporated MIB-SAT structural invariance across benchmark families.
  • Implemented AI-SMT formal verification via Marabou.
  • Developed a coherent certification pipeline for neural SAT solvers and language models.
  • Confirmed the protocol produces six governance decisions based on causal encoding outcomes.
  • Empirical calibration reduces arbitrary parameter choices, enhancing reliability.

Abstract

We present MIB-V15, a unified certification protocol for determining whether a neuralnetwork causally encodes logical propositions rather than merely simulating them throughsurface-level heuristics. The protocol integrates five sequentially blocking steps —QK-Causal Tracing, Pareto-Alignment via the Kneedle algorithm, Divergence-Adjusted IIA(DA-IIA) normalised by Earth Mover Distance, MIB-SAT structural invariance acrossseven benchmark families, and AI-SMT formal verification via Marabou — into a coherentcertification pipeline applicable to both neural SAT solvers (Track A) and large languagemodels producing Chain-of-Thought reasoning (Track B). A cross-track arbitrationframework resolves contradictions between internal mechanisms and textualself-explanations. The protocol outputs one of six governance decisions (Scenarios A–F),providing actionable deployment guidance. All thresholds are empirically calibrated onsymbolic solver baselines (MiniSat, Kissat) to eliminate arbitrary parameter choices. Thisdocument constitutes the formal specification of the pipeline, its theoretical justification,and its implementation architecture, as generated by the meta-forge automated codegeneration system.

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Cite This Study

Régis RIGAUD (2026) studied this question.

synapsesocial.com/papers/6997fa6dad1d9b11b3453a4ehttps://doi.org/10.5281/zenodo.18683677
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