The Temporal Dynamics of Cortical Normalization Models of Decision-making

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Abstract

Normalization is a widespread neural computation in both early sensory coding and higher-order processes such as attention and multisensory integration. It has been shown that during decision-making, normalization implements a context-dependent value code in parietal cortex. In this paper we develop a simple differential equations model based on presumed neural circuitry that implements normalization at equilibrium and predicts specific time-varying properties of value coding. Moreover, we show that when parameters representing value are changed, the solution curves change in a manner consistent with normalization theory and experiment. We show that these dynamic normalization models naturally implement a time-discounted normalization over past activity, implying an intrinsic reference-dependence in value coding of a kind seen experimentally. These results suggest that a single network mechanism can explain transient and sustained decision activity, reference dependence through time discounting, and hence emphasizes the importance of a dynamic rather than static view of divisive normalization in neural coding.

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LoFaro, T., Louie, K., Webb, R., & Glimcher, P. W. (2014). The Temporal Dynamics of Cortical Normalization Models of Decision-making. Letters in Biomathematics, 1(2), 209–220. https://doi.org/10.1080/23737867.2014.11414481

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