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The Role of Bottom-Up and Top-Down Cortical Interactions in Adaptation to Natural Scene Statistics

机译:自下而上和自上而下的皮质相互作用在适应自然场景统计中的作用

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Adaptation is a mechanism by which cortical neurons adjust their responses according to recently viewed stimuli. Visual information is processed in a circuit formed by feedforward (FF) and feedback (FB) synaptic connections of neurons in different cortical layers. Here, the functional role of FF-FB streams and their synaptic dynamics in adaptation to natural stimuli is assessed in psychophysics and neural model. We propose a cortical model which predicts psychophysically observed motion adaptation aftereffects (MAE) after exposure to geometrically distorted natural image sequences. The model comprises direction selective neurons in V1 and MT connected by recurrent FF and FB dynamic synapses. Psychophysically plausible model MAEs were obtained from synaptic changes within neurons tuned to salient direction signals of the broadband natural input. It is conceived that, motion disambiguation by FF-FB interactions is critical to encode this salient information. Moreover, only FF-FB dynamic synapses operating at distinct rates predicted psychophysical MAEs at different adaptation time-scales which could not be accounted for by single rate dynamic synapses in either of the streams. Recurrent FF-FB pathways thereby play a role during adaptation in a natural environment, specifically in inducing multilevel cortical plasticity to salient information and in mediating adaptation at different time-scales.
机译:适应是皮层神经元根据最近观察到的刺激调节其反应的机制。视觉信息在由不同皮质层中神经元的前馈(FF)和反馈(FB)突触连接形成的电路中进行处理。在这里,在心理物理学和神经模型中评估了FF-FB流的功能作用及其突触动力学对自然刺激的适应性。我们提出了一个皮层模型,该模型可预测暴露于几何变形的自然图像序列后在心理上观察到的运动适应后效应(MAE)。该模型包括V1和MT中的方向选择性神经元,这些神经元通过递归FF和FB动态突触连接。从神经元内的突触变化获得心理上合理的模型MAE,这些神经元已调整为宽带自然输入的显着方向信号。可以想到,通过FF-FB交互作用消除运动歧义对于编码此显着信息至关重要。此外,只有以不同速率运行的FF-FB动态突触在不同的适应时间尺度上预测了心理物理MAE,而这两个流中的单个速率动态突触均无法解决。因此,递归的FF-FB途径在自然环境的适应过程中发挥了作用,特别是在诱导皮质对显着信息的可塑性方面,以及在不同的时间尺度上介导适应。

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