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Synapse
March 3, 20260 citationsOpen Access

Des réseaux de neurones sur graphes auto-explicatifs basés sur la logique

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ARAlessio RagnoMPMarc PlantevitCRC. Robardet

Key Points

  • The study demonstrates that graph-based neural networks can possess self-explaining properties, enhancing interpretability.
  • Key findings reveal that these networks improve AI decision-making by leveraging logical frameworks, simplifying complex data.
  • Observational analysis focuses on the implementation of neural networks with logic-based graphs to assess their interpretability.
  • The findings suggest that graph structures may facilitate better understanding of AI behavior; further exploration is warranted.

Abstract

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Cite This Study

Ragno et al. (2026) studied this question.

synapsesocial.com/papers/69a7622dc6e9836116a30639https://hal.science/hal-05511164
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