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Kernel bandwidth optimization in spike rate estimation

机译:峰值速率估计中的内核带宽优化

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摘要

Kernel smoother and a time-histogram are classical tools for estimating an instantaneous rate of spike occurrences. We recently established a method for selecting the bin width of the time-histogram, based on the principle of minimizing the mean integrated square error (MISE) between the estimated rate and unknown underlying rate. Here we apply the same optimization principle to the kernel density estimation in selecting the width or “bandwidth” of the kernel, and further extend the algorithm to allow a variable bandwidth, in conformity with data. The variable kernel has the potential to accurately grasp non-stationary phenomena, such as abrupt changes in the firing rate, which we often encounter in neuroscience. In order to avoid possible overfitting that may take place due to excessive freedom, we introduced a stiffness constant for bandwidth variability. Our method automatically adjusts the stiffness constant, thereby adapting to the entire set of spike data. It is revealed that the classical kernel smoother may exhibit goodness-of-fit comparable to, or even better than, that of modern sophisticated rate estimation methods, provided that the bandwidth is selected properly for a given set of spike data, according to the optimization methods presented here.
机译:内核平滑器和时间直方图是用于估计峰值出现的瞬时速率的经典工具。我们最近基于最小化估计速率和未知基础速率之间的平均积分平方误差(MISE)的原理,建立了一种选择时间直方图的bin宽度的方法。在这里,我们在选择内核的宽度或“带宽”时将相同的优化原理应用于内核密度估计,并进一步扩展算法以允许可变带宽,从而与数据保持一致。可变核有可能准确地把握非平稳现象,例如射击频率的突然变化,这在神经科学中经常遇到。为了避免由于过度的自由而可能发生的过度拟合,我们引入了带宽可变性的刚度常数。我们的方法会自动调整刚度常数,从而适应整个峰值数据集。结果表明,如果针对给定的一组尖峰数据正确选择带宽,那么根据优化,经典的内核平滑器可能会表现出与现代复杂速率估计方法相当甚至更好的拟合优度。这里介绍的方法。

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