Literature DB >> 34151186

Modulation of Dopamine for Adaptive Learning: A Neurocomputational Model.

Jeffrey B Inglis1, Vivian V Valentin2, F Gregory Ashby2.   

Abstract

There have been many proposals that learning rates in the brain are adaptive, in the sense that they increase or decrease depending on environmental conditions. The majority of these models are abstract and make no attempt to describe the neural circuitry that implements the proposed computations. This article describes a biologically detailed computational model that overcomes this shortcoming. Specifically, we propose a neural circuit that implements adaptive learning rates by modulating the gain on the dopamine response to reward prediction errors, and we model activity within this circuit at the level of spiking neurons. The model generates a dopamine signal that depends on the size of the tonically active dopamine neuron population and the phasic spike rate. The model was tested successfully against results from two single-neuron recording studies and a fast-scan cyclic voltammetry study. We conclude by discussing the general applicability of the model to dopamine mediated tasks that transcend the experimental phenomena it was initially designed to address.

Entities:  

Keywords:  adaptive learning rate; computational cognitive neuroscience; dopamine; ventral subiculum

Year:  2020        PMID: 34151186      PMCID: PMC8210637          DOI: 10.1007/s42113-020-00083-x

Source DB:  PubMed          Journal:  Comput Brain Behav        ISSN: 2522-0861


  111 in total

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10.  Silencing the critics: understanding the effects of cocaine sensitization on dorsolateral and ventral striatum in the context of an actor/critic model.

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