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An Invariance Principle For Maintaining The Operating Point Of A Neuron

机译:维持神经元工作点的不变性原理

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Sensory neurons adapt to changes in the natural statistics of their environments through processes such as gain control and firing threshold adjustment. It has been argued that neurons early in sensory pathways adapt according to information-theoretic criteria, perhaps maximising their coding efficiency or information rate. Here, we draw a distinction between how a neuron's preferred operating point is determined and how its preferred operating point is maintained through adaptation. We propose that a neuron's preferred operating point can be characterised by the probability density function (PDF) of its output spike rate, and that adaptation maintains an invariant output PDF, regardless of how this output PDF is initially set. Considering a sigmoidal transfer function for simplicity, we derive simple adaptation rules for a neuron with one sensory input that permit adaptation to the lower-order statistics of the input, independent of how the preferred operating point of the neuron is set. Thus, if the preferred operating point is, in fact, set according to information-theoretic criteria, then these rules nonetheless maintain a neuron at that point. Our approach generalises from the unimodal case to the multimodal case, for a neuron with inputs from distinct sensory channels, and we briefly consider this case too.
机译:感觉神经元通过诸如增益控制和触发阈值调整之类的过程适应环境自然统计的变化。有人认为,在感觉通路的早期,神经元会根据信息理论标准进行适应,也许会最大化其编码效率或信息率。在这里,我们在如何确定神经元的首选工作点与如何通过自适应保持其首选工作点之间做出了区分。我们建议,神经元的首选工作点可以通过其输出尖峰频率的概率密度函数(PDF)来表征,并且自适应方法可以保持不变的输出PDF,无论该输出PDF的初始设置如何。为了简单起见,考虑了S形传递函数,我们推导了具有一个感觉输入的神经元的简单适应规则,该规则允许适应输入的低阶统计量,而与如何设置神经元的优选工作点无关。因此,如果实际上根据信息理论标准设置了首选工作点,则这些规则仍然会在该点保持神经元。对于具有来自不同感觉通道的输入的神经元,我们的方法从单峰情况到多峰情况进行了概括,我们也简要地考虑了这种情况。

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