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Characterizing Empirical Mode Decomposition Algorithm Using Signal Processing Techniques

机译:利用信号处理技术表征经验模态分解算法

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In this paper, we propose a model for empirical mode decomposition algorithm to represent nonlinear and nonstationary data. Two threshold operators (Signum and Relu) and the set of fundamental operators of a linear time invariant system (viz. delay, summer, and scalar multiplier) are used to completely characterize the proposed model. Models for finding number of zero crossings and number of local extrema of residual intrinsic mode function are also discussed. These representations are also based on the same block of elements, n-bit asynchronous up-counter and binary to decimal conversion. We obtain a closed-form expression for residual intrinsic mode functions to decompose the input signal using the proposed model. Performance of the proposed model is analyzed and discussed in terms of orthogonality index and percentage error in energy. Also, linear-in-the-parameter model for the two threshold operators is discussed in this paper.
机译:在本文中,我们提出了一种经验模式分解算法模型,用于表示非线性和非平稳数据。两个阈值算子(Signum和Relu)和线性时不变系统的基本算子集(即延迟,求和器和标量乘子)用于完全表征所提出的模型。还讨论了寻找零交叉数和剩余固有模式函数的局部极值数的模型。这些表示也基于相同的元素块,n位异步递增计数器和二进制到十进制的转换。我们为剩余的固有模式函数获得了一个封闭形式的表达式,以使用建议的模型分解输入信号。根据正交性指标和能量百分比误差对提出的模型的性能进行了分析和讨论。此外,本文还讨论了两个阈值运算符的参数线性模型。

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