arXiv Open Access 2025

The Reflexive Integrated Information Unit: A Differentiable Primitive for Artificial Consciousness

Gnankan Landry Regis N'guessan Issa Karambal
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Abstrak

Research on artificial consciousness lacks the equivalent of the perceptron: a small, trainable module that can be copied, benchmarked, and iteratively improved. We introduce the Reflexive Integrated Information Unit (RIIU), a recurrent cell that augments its hidden state $h$ with two additional vectors: (i) a meta-state $μ$ that records the cell's own causal footprint, and (ii) a broadcast buffer $B$ that exposes that footprint to the rest of the network. A sliding-window covariance and a differentiable Auto-$Φ$ surrogate let each RIIU maximize local information integration online. We prove that RIIUs (1) are end-to-end differentiable, (2) compose additively, and (3) perform $Φ$-monotone plasticity under gradient ascent. In an eight-way Grid-world, a four-layer RIIU agent restores $>90\%$ reward within 13 steps after actuator failure, twice as fast as a parameter-matched GRU, while maintaining a non-zero Auto-$Φ$ signal. By shrinking "consciousness-like" computation down to unit scale, RIIUs turn a philosophical debate into an empirical mathematical problem.

Topik & Kata Kunci

Penulis (2)

G

Gnankan Landry Regis N'guessan

I

Issa Karambal

Format Sitasi

N'guessan, G.L.R., Karambal, I. (2025). The Reflexive Integrated Information Unit: A Differentiable Primitive for Artificial Consciousness. https://arxiv.org/abs/2506.13825

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2025
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en
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arXiv
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