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Reply to 'Comment on `Performance of different synchronization measures in real data: A case study on electroencephalographic signals''

机译:答复“关于在真实数据中执行不同同步措施的评论:脑电信号的案例研究”

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摘要

We agree with the Comment by Nicolaou and Nasuto about the utility of mutual information (MI) when properly estimated and we also concur with their view that the estimation based on k nearest neighbors gives optimal results. However, we claim that embedding parameters can indeed change MI results, as we show for the electroencephalogram data sets of our original study and for coupled chaotic systems. Furthermore, we show that proper embedding can actually improve the estimation of MI with the k nearest neighbors algorithm.
机译:我们同意Nicolaou和Nasuto关于正确估计互信息量(MI)的效用的意见,我们也同意他们的观点,即基于k个最近邻的估算给出了最佳结果。但是,我们声称嵌入参数确实可以改变MI结果,正如我们对原始研究的脑电图数据集和耦合混沌系统所显示的那样。此外,我们证明了适当的嵌入实际上可以使用k最近邻算法改善MI的估计。

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