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首页> 外文期刊>Journal of vision >Dynamic interaction between retinal and extraretinal signals in motion integration for smooth pursuit
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Dynamic interaction between retinal and extraretinal signals in motion integration for smooth pursuit

机译:视网膜和视网膜外信号在运动整合中的动态相互作用,实现顺畅的追踪

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Abstract Abstract: Abstract?? Due to the aperture problem, the initial direction of tracking responses to a translating bar is biased towards the direction orthogonal to the bar. This observation offers a powerful way to explore the interactions between retinal and extraretinal signals in controlling our actions. We conducted two experiments to probe these interactions by briefly (200 and 400 ms) blanking the moving target (45?° or 135?° tilted bar) during steady state (Experiment 1) and at different moments during the early phase of pursuit (Experiment 2). In Experiment 1, we found a marginal but statistically significant directional bias on target reappearance for all subjects in at least one blank condition (200 or 400 ms). In Experiment 2, no systematic significant directional bias was observed at target reappearance after a blank. These results suggest that the weighting of retinal and extraretinal signals is dynamically modulated during the different phases of pursuit. Based on our previous theoretical work on motion integration, we propose a new closed-loop two-stage recurrent Bayesian model where retinal and extraretinal signals are dynamically weighted based on their respective reliabilities and combined to compute the visuomotor drive. With a single free parameter, the model reproduces many aspects of smooth pursuit observed across subjects during and immediately after target blanking. It provides a new theoretical framework to understand how different signals are dynamically combined based on their relative reliability to adaptively control our actions. Overall, the model and behavioral results suggest that human subjects rely more strongly on prediction during the early phase than in the steady state phase of pursuit.
机译:摘要摘要:摘要?由于孔径问题,对平移棒的跟踪响应的初始方向偏向与棒垂直的方向。该观察结果为探索视网膜和视网膜外信号在控制我们的行为之间的相互作用提供了一种有力的方法。我们进行了两个实验,通过在稳态(实验1)和追踪早期(实验1)的不同时刻使运动目标(45?°或135?°倾斜杆)短暂消隐(200和400 ms)来探测这些相互作用2)。在实验1中,我们发现在至少一个空白条件(200或400 ms)下,所有受试者的目标重现率均出现了边缘性但统计学上显着的方向偏差。在实验2中,在空白后目标重新出现时未观察到系统的明显方向偏差。这些结果表明,在追踪的不同阶段,视网膜和视网膜外信号的权重是动态调制的。基于我们先前关于运动积分的理论工作,我们提出了一种新的闭环两阶段递归贝叶斯模型,其中视网膜和视网膜外信号根据其各自的可靠性进行动态加权,并结合起来以计算视觉运动驱动力。使用单个自由参数,该模型可再现目标消隐期间和目标消隐之后在对象之间观察到的平滑追踪的许多方面。它提供了一个新的理论框架,以了解如何根据信号的相对可靠性动态组合不同的信号,以自适应地控制我们的行为。总体而言,模型和行为结果表明,与追求的稳态阶段相比,人类受试者在早期阶段更依赖于预测。

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