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An O(n) method of calculating Kendall correlations of spike trains

机译:计算钉列车Kendall相关性的O(n)方法

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摘要

The ability to record from increasingly large numbers of neurons, and the increasing attention being paid to large scale neural network simulations, demands computationally fast algorithms to compute relevant statistical measures. We present an O(n) algorithm for calculating the Kendall correlation of spike trains, a correlation measure that is becoming especially recognized as an important tool in neuroscience. We show that our method is around 50 times faster than the O (n ln n) method which is a current standard for quickly computing the Kendall correlation. In addition to providing a faster algorithm, we emphasize the role that taking the specific nature of spike trains had on reducing the run time. We imagine that there are many other useful algorithms that can be even more significantly sped up when taking this into consideration. A MATLAB function executing the method described here has been made freely available on-line.
机译:至创纪录的能力来自于越来越大量的神经元,并增加地注意大规模的神经网络模拟,要求计算的快速算法来计算相关统计的措施。我们提出了一个O(n)的算法来计算脉冲序列,即变得特别公认的神经科学的一个重要工具的相关措施的Kendall相关。我们表明,我们的方法是比它是快速计算Kendall相关的电流标准为O(n LN n)的方法快50倍左右。除了提供更快的算法,我们强调的是采取穗列车的具体性质上减少了运行时有作用。我们可以想象,还有很多其他有用的算法考虑到这一点的时候,可以更加显著加快。执行这里所述的方法的MATLAB函数已被免费提供上线。

著录项

  • 作者

    William Redman;

  • 作者单位
  • 年度 2019
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
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