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Formation of structural attractors in neuromorphic systems

arXiv · AI, language, vision and robotics · article · Sep 6, 2026 · UTC

This paper examines the theory of Invariant Structural Learning (ISL), which proposes a non-optimization approach to concept formation. Learning is interpreted as convergence to structural attractors in a hypergraph space, rather than as the minimization of a global loss function. The paper presents the ISL model, including its mathematical formalization, computational verification, and a hypothetical neurobiological interpretation. The mathematical section introduces the formal apparatus of the structural reduction process and proves its finite convergence, the existence and uniqueness of cla

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First collected: 2026-09-20T21:12:06.801Z. This is not the publication date.