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Application of fractal theory in analysis of human electroencephalographic signals.

机译:分形理论在人类脑电信号分析中的应用。

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In medical discipline, complexity measure is focused on the analysis of nonlinear patterns in processing waveform signals. The complexity measure of such waveform signals is well performed by fractal dimension technique, which is an index for measuring the complexity of an object. Its applications are found in diverse fields like medical, image and signal processing. Several algorithms have been suggested to compute the fractal dimension of waveforms. We have evaluated the performance of the two famous algorithms namely Higuchi and Katz. They contain some problems of determining the initial and final length of scaling factors and their performance with electroencephalogram (EEG) signals did not give better results. In this paper, fractal dimension is proposed as an effective tool for analyzing and measuring the complexity of nonlinear human EEG signals. We have developed an algorithm based on size measure relationship (SMR) method. The SMR algorithm can be used to detect the brain disorders and it locates the affected brain portions by analyzing the behavior of signals. The efficiency of the algorithm to locate the critical brain sites (recurrent seizure portion) is compared to other fractal dimension algorithms. The K-means clustering algorithm is used for grouping of electrode positions.
机译:在医学学科中,复杂度测量的重点是分析处理波形信号中的非线性模式。通过分数维技术可以很好地执行这种波形信号的复杂度测量,该分数维技术是用于测量对象的复杂度的指标。它的应用广泛应用于医疗,图像和信号处理等各个领域。已经提出了几种算法来计算波形的分形维数。我们评估了Higuchi和Katz这两种著名算法的性能。它们包含确定缩放因子的初始和最终长度的一些问题,并且它们在脑电图(EEG)信号下的性能无法提供更好的结果。本文提出了分形维数作为分析和测量非线性人类脑电信号复杂度的有效工具。我们已经开发了一种基于尺寸度量关系(SMR)方法的算法。 SMR算法可用于检测脑部疾病,并通过分析信号的行为来定位受影响的大脑部分。与其他分形维数算法相比,该算法确定关键性大脑部位(反复发作的部位)的效率高。 K-均值聚类算法用于电极位置的分组。

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