Connectome-constrained whole-brain models of Drosophila reproduce sensorimotor responses without per-cell tuning, yet associative learning inside a full spiking recurrent network remains an unsolved benchmark. We show that olfactory learnability is a property not of the rule and not of the neuron, but of the connectome...
Andrey A. Smarygin· Zenodo (CERN European Organi...· 0 citations
Connectome-constrained whole-brain models of Drosophila reproduce sensorimotor responses without per-cell tuning, yet associative learning inside a full spiking recurrent network remains an unsolved benchmark. We show that olfactory learnability is a property not of the rule and not of the neuron, but of the connectome...
Andrey A. Smarygin· Zenodo (CERN European Organi...· 0 citations
Spiking simulations of the Drosophila connectome routinely assign each synapse an excitatory or inhibitory sign by mapping the neurotransmitter (NT) predicted for the presynaptic body to a polarity. Using the recently released MaleCNS v1.0 whole-central-nervous-system connectome (166,700 neurons; 25,582,938 intra-datas...
Andrey A. Smarygin· Zenodo (CERN European Organi...· 0 citations
Spiking simulations of the Drosophila connectome routinely assign each synapse an excitatory or inhibitory sign by mapping the neurotransmitter (NT) predicted for the presynaptic body to a polarity. Using the recently released MaleCNS v1.0 whole-central-nervous-system connectome (166,700 neurons; 25,582,938 intra-datas...
Andrey A. Smarygin· Zenodo (CERN European Organi...· 0 citations
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