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bioRxiv · 10.1101/221218

Motor selection dynamics in FEF explain the reaction time variance of saccades to single targets

Abstract

In studies of voluntary movement, a most elemental quantity is the reaction time (RT) between the onset of a visual stimulus and a saccade toward it. However, this RT demonstrates extremely high variability, which in spite of extensive research remains unexplained. It is well established that, when a visual target appears, oculomotor activity gradually builds up until a critical level is reached, at which point a saccade is triggered. Here, we further characterize the dynamics of this rise-to-threshold process based on computational work and single-neuron recordings from the frontal eye field (FEF) of behaving monkeys. We find that the baseline activity, build-up rate, and threshold level show strong, nonlinear co-dependencies that explain the distinct RT distributions observed experimentally. The results indicate that intrinsic randomness contributes little to saccade variance, which results mainly from an intricate, fundamentally deterministic mechanism of motor conflict resolution that has subtle yet highly characteristic manifestations.

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BibTeXRIS

Hauser, C. K., Zhu, D., Stanford, T. R., Salinas, E.. 2017-11-17. Motor selection dynamics in FEF explain the reaction time variance of saccades to single targets. https://doi.org/10.1101/221218

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