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Diffusion of neuromodulators for temporal credit assignment
João Barretto-Bittar1,2, Anna Levina1,3, Emmanouil Giannakakis1,3,4
1Department of Computer Sciences, University of Tübingen, Tübingen 72076, Germany.
Abstract:
Biological learning achieves temporal credit assignment despite sparse and imprecise feedback, often relying on neuromodulatory signals acting over space and time. Here, we introduce a learning mechanism in which error information diffuses locally through the network, similar to volume transmission of neuromodulators. This distributed modulation allows neurons to learn even in the absence of direct feedback, using the local concentration of the diffusing credit signal. Applied to recurrent spiking neural networks with sparse feedback connectivity, diffusive credit signaling improves learning across three benchmark tasks. Using eligibility propagation as a baseline, we show how diffusion-based modulation can provide a plausible mechanism for credit assignment in sparsely connected neural circuits.
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