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Conductance-based dendrites perform reliability-weighted opinion pooling

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arxiv 2006.15099 v1 pith:QQIGF466 submitted 2020-06-26 q-bio.NC

classification q-bio.NC
keywords integrationneuronsconductance-baseddendritesdifferentdynamicsmodelmultisensory
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Cue integration, the combination of different sources of information to reduce uncertainty, is a fundamental computational principle of brain function. Starting from a normative model we show that the dynamics of multi-compartment neurons with conductance-based dendrites naturally implement the required probabilistic computations. The associated error-driven plasticity rule allows neurons to learn the relative reliability of different pathways from data samples, approximating Bayes-optimal observers in multisensory integration tasks. Additionally, the model provides a functional interpretation of neural recordings from multisensory integration experiments and makes specific predictions for membrane potential and conductance dynamics of individual neurons.

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