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Optimal speed estimation in natural image movies predicts human performance

机译:自然影像电影中的最佳速度估计可预测人类的表现

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Accurate perception of motion depends critically on accurate estimation of retinal motion speed. Here we first analyse natural image movies to determine the optimal space-time receptive fields (RFs) for encoding local motion speed in a particular direction, given the constraints of the early visual system. Next, from the RF responses to natural stimuli, we determine the neural computations that are optimal for combining and decoding the responses into estimates of speed. The computations show how selective, invariant speed-tuned units might be constructed by the nervous system. Then, in a psychophysical experiment using matched stimuli, we show that human performance is nearly optimal. Indeed, a single efficiency parameter accurately predicts the detailed shapes of a large set of human psychometric functions. We conclude that many properties of speed-selective neurons and human speed discrimination performance are predicted by the optimal computations, and that natural stimulus variation affects optimal and human observers almost identically.
机译:对运动的准确感知关键取决于视网膜运动速度的准确估计。在这里,我们首先分析自然图像电影,以确定在早期视觉系统的限制下,用于在特定方向上编码局部运动速度的最佳时空接收场(RF)。接下来,从对自然刺激的RF响应中,我们确定最适合将响应组合和解码为速度估计值的神经计算。计算表明神经系统如何构建选择性的,不变的速度调节单位。然后,在使用匹配刺激的心理物理实验中,我们证明了人类的表现几乎是最佳的。实际上,单个效率参数可以准确预测一大组人类心理测量功能的详细形状。我们得出的结论是,通过最佳计算可以预测速度选择神经元的许多特性和人类速度区分性能,并且自然刺激变化对最佳观察者和人类观察者的影响几乎相同。

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