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    Please use this identifier to cite or link to this item: https://ir.lib.ncu.edu.tw/handle/987654321/107796


    Title: Empirical mode decomposition-based time-frequency analysis of multivariate signals: The power of adaptive data analysis
    Authors: 黃鍔;Mandic, Danilo P.;Rehman, Naveed Ur;Wu, Zhaohua;Huang, Norden E.
    Contributors: 認知智慧與精準健康照護研究中心
    Keywords: Empirical mode decomposition;Oscillators;Signal processing algorithms;Time-frequency analysis;Wavelet transforms
    Date: 2013-01-01
    Issue Date: 2026-04-23 14:26:16 (UTC+8)
    Publisher: Institute of Electrical and Electronics Engineers Inc.;IEEE
    Abstract: 摘要: This article addresses data-driven time-frequency (T-F) analysis of multivariate signals, which is achieved through the empirical mode decomposition (EMD) algorithm and its noise assisted and multivariate extensions, the ensemble EMD (EEMD) and multivariate EMD (MEMD). Unlike standard approaches that project data onto predefined basis functions (harmonic, wavelet) thus coloring the representation and blurring the interpretation, the bases for EMD are derived from the data and can be nonlinear and nonstationary. For multivariate data, we show how the MEMD aligns intrinsic joint rotational modes across the intermittent, drifting, and noisy data channels, facilitating advanced synchrony and data fusion analyses. Simulations using real-world case studies illuminate several practical aspects, such as the role of noise in T-F localization, dealing with unbalanced multichannel data, and nonuniform sampling for computational efficiency.
    其他題名: MSP
    出版者: IEEE
    出版日期: 2013-11
    出處: IEEE signal processing magazine, 2013-11, Vol.30 (6), p.74-86
    資源來源: IEEE Electronic Library (IEL)
    識別號: ISSN: 1053-5888
    識別號: DOI: 10.1109/MSP.2013.2267931
    識別號: CODEN: ISPRE6
    Appears in Collections:[Cognitive Intelligence & Precision Healthcar] journal & Dissertation

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