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Empirical Mode Decomposition for Trivariate Signals

机译:三元信号的经验模态分解

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摘要

An extension of empirical mode decomposition (EMD) is proposed in order to make it suitable for operation on trivariate signals. Estimation of local mean envelope of the input signal, a critical step in EMD, is performed by taking projections along multiple directions in three-dimensional spaces using the rotation property of quaternions. The proposed algorithm thus extracts rotating components embedded within the signal and performs accurate time-frequency analysis, via the Hilbert-Huang transform. Simulations on synthetic trivariate point processes and real-world three-dimensional signals support the analysis.
机译:提出了经验模式分解(EMD)的扩展,以使其适用于对三变量信号进行运算。使用四元数的旋转特性,通过在三维空间中沿多个方向进行投影来执行输入信号局部平均包络的估计,这是EMD中的关键步骤。因此,提出的算法通过Hilbert-Huang变换提取嵌入信号中的旋转分量并执行准确的时频分析。对合成三变量点过程和真实世界的三维信号的仿真支持该分析。

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