bioRxiv · 10.1101/2024.09.09.612048
Overcoming the limitations of motion sensor models by considering dendritic computations
Abstract
The estimation of motion is a fundamental process for any sighted animal. Computational models for motion sensors have a long and successful history but they still suffer from fundamental shortcomings, as they disagree with physiological evidence and each model is dedicated to a specific type of motion, which is controversial from a biological standpoint. In this work we propose a new approach for modeling motion sensors that considers dendritic computations, a key aspect for predicting single-neuron responses that had previously been absent from motion models. We show how, by taking into account the dynamic and input-dependent nature of dendritic nonlinearities, our motion sensor model is able to overcome the fundamental limitations of standard approaches.
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Luna, R., Serrano-Pedraza, I., Bertalmio, M.. 2024-09-13. Overcoming the limitations of motion sensor models by considering dendritic computations. https://doi.org/10.1101/2024.09.09.612048
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