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首页> 外文期刊>PLoS Computational Biology >Learning the Optimal Control of Coordinated Eye and Head Movements
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Learning the Optimal Control of Coordinated Eye and Head Movements

机译:学习协调眼球和头部运动的最佳控制

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摘要

Various optimality principles have been proposed to explain the characteristics of coordinated eye and head movements during visual orienting behavior. At the same time, researchers have suggested several neural models to underly the generation of saccades, but these do not include online learning as a mechanism of optimization. Here, we suggest an open-loop neural controller with a local adaptation mechanism that minimizes a proposed cost function. Simulations show that the characteristics of coordinated eye and head movements generated by this model match the experimental data in many aspects, including the relationship between amplitude, duration and peak velocity in head-restrained and the relative contribution of eye and head to the total gaze shift in head-free conditions. Our model is a first step towards bringing together an optimality principle and an incremental local learning mechanism into a unified control scheme for coordinated eye and head movements.
机译:已经提出了各种最佳原理来解释视觉定向行为期间眼睛和头部协调运动的特征。同时,研究人员建议了几种神经模型来潜在地产生扫视,但是这些并不包括在线学习作为优化机制。在这里,我们建议一种具有局部自适应机制的开环神经控制器,该机制可最大程度地降低拟议的成本函数。仿真表明,该模型产生的眼球和头部协调运动特性与实验数据在很多方面都相匹配,包括幅度,持续时间和峰值速度在头枕约束中的关系,以及眼球和头部对总视线移动的相对贡献。在无头的情况下。我们的模型是将最佳原理和增量本地学习机制整合到统一的控制方案中以协调眼睛和头部运动的第一步。

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