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首页> 外文期刊>Computational and mathematical methods in medicine >A Robust Algorithm for Optimisation and Customisation of Fractal Dimensions of Time Series Modified by Nonlinearly Scaling Their Time Derivatives: Mathematical Theory and Practical Applications
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A Robust Algorithm for Optimisation and Customisation of Fractal Dimensions of Time Series Modified by Nonlinearly Scaling Their Time Derivatives: Mathematical Theory and Practical Applications

机译:一种稳健的算法,用于优化和定制时间序列的非线性序列分形尺寸的定制和定制它们的时间衍生物:数学理论与实际应用

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Standard methods for computing the fractal dimensions of time series are usually tested with continuous nowhere differentiable functions, but not benchmarked with actual signals. Therefore they can produce opposite results in extreme signals. These methods also use different scaling methods, that is, different amplitude multipliers, which makes it difficult to compare fractal dimensions obtained from different methods. The purpose of this research was to develop an optimisation method that computes the fractal dimension of a normalised (dimensionless) and modified time series signal with a robust algorithm and a running average method, and that maximises the difference between two fractal dimensions, for example, a minimum and a maximum one. The signal is modified by transforming its amplitude by a multiplier, which has a non-linear effect on the signal’s time derivative. The optimisation method identifies the optimal multiplier of the normalised amplitude for targeted decision making based on fractal dimensions. The optimisation method provides an additional filter effect and makes the fractal dimensions less noisy. The method is exemplified by, and explained with, different signals, such as human movement, EEG, and acoustic signals.
机译:用于计算时间序列分形尺寸的标准方法通常用连续的无处不通的函数进行测试,但不能与实际信号进行基准测试。因此,它们可以在极端信号中产生相反的结果。这些方法还使用不同的缩放方法,即不同的幅度乘法器,这使得难以比较从不同方法获得的分形尺寸。该研究的目的是开发一种优化方法,其用鲁棒算法和运行的平均方法计算归一化(无量纲)和修改时间序列信号的分形尺寸,并且最大化两个分形尺寸之间的差异,例如,最小和最大值。通过通过乘法器转换其振幅来修改信号,这对信号的时间衍生具有非线性影响。优化方法识别基于分形尺寸的目标决策的归一化幅度的最佳乘数。优化方法提供额外的滤波器效果,并使分形尺寸不那么嘈杂。该方法是用不同的信号,例如人体运动,脑电图和声信号解释的方法。

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