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Adaptation without parameter change: Dynamic gain control in motion detection

机译:无需更改参数即可进行自适应:运动检测中的动态增益控制

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摘要

Many sensory systems adapt their input-output relationship to changes in the statistics of the ambient stimulus. Such adaptive behavior has been measured in a motion detection sensitive neuron of the fly visual system, H1. The rapid adaptation of the velocity response gain has been interpreted as evidence of optimal matching of the H1 response to the dynamic range of the stimulus, thereby maximizing its information transmission. Here, we show that correlation-type motion detectors, which are commonly thought to underlie fly motion vision, intrinsically possess adaptive properties. Increasing the amplitude of the velocity fluctuations leads to a decrease of the effective gain and the time constant of the velocity response without any change in the parameters of these detectors. The seemingly complex property of this adaptation turns out to be a straightforward consequence of the multi-dimensionality of the stimulus and the nonlinear nature of the system.
机译:许多感觉系统使它们的输入-输出关系适应环境刺激的统计数据的变化。已经在飞行视觉系统H1的运动检测敏感神经元中测量了这种自适应行为。速度响应增益的快速适应已被解释为H1响应与刺激的动态范围最佳匹配的证据,从而最大限度地提高了其信息传递。在这里,我们显示了通常被认为是飞行运动视觉基础的相关类型运动检测器本质上具有自适应属性。速度波动幅度的增加导致有效增益的减小和速度响应的时间常数的减小,而这些检测器的参数没有任何变化。这种适应性看似复杂的性质原来是刺激的多维性和系统的非线性性质的直接结果。

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