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A Plea for Adaptive Data Analysis: An Introduction to HHT for Nonlinear and Nonstationary Data. Norden E. Huang Research Center for Adaptive Data Analysis National Central University Nanjing October 2009. Data Processing and Data Analysis.
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A Plea for Adaptive Data Analysis:An Introduction to HHT for Nonlinear and Nonstationary Data Norden E. Huang Research Center for Adaptive Data Analysis National Central University Nanjing October 2009
Data Processing and Data Analysis • Processing [proces < L. Processus < pp of Procedere = Proceed: pro- forward + cedere, to go] : A particular method of doing something. • Data Processing >>>> Mathematically meaningful parameters • Analysis[Gr. ana, up, throughout + lysis, a loosing] : A separating of any whole into its parts, especially with an examination of the parts to find out their nature, proportion, function, interrelationship etc. • Data Analysis >>>> Physical understandings
Scientific Activities Collecting and analyzing data, synthesizing and theorizing the analyzed results are the core of scientific activities. Therefore, data analysis is a key link in this continuous loop.
Data Analysis There are, unfortunately, tensions between sciences and mathematics. Data analysis is too important to be left to the mathematicians. Why?!
Mathematicians Absolute proofs Logic consistency Mathematical rigor Scientists/Engineers Agreement with observations Physical meaning Working Approximations Different Paradigms Mathematics vs. Science/Engineering
Motivations for alternatives: Problems for Traditional Methods • Physical processes are mostly nonstationary • Physical Processes are mostly nonlinear • Data from observations are invariably too short • Physical processes are mostly non-repeatable. Ensemble mean impossible, and temporal mean might not be meaningful for lack of stationarity and ergodicity. Traditional methods are inadequate.
The Traditional View of the Hilbert Transform for Data Analysis
The Empirical Mode Decomposition Method and Hilbert Spectral AnalysisSifting
Empirical Mode DecompositionSifting : to get one IMF component
The Stoppage Criteria The Cauchy type criterion: when SD is small than a pre-set value, where Or, simply pre-determine the number of iterations.
Empirical Mode DecompositionSifting : to get all the IMF components
The Idea and the need of Instantaneous Frequency According to the classic wave theory, the wave conservation law is based on a gradually changing φ(x,t) such that Therefore, both wave number and frequency must have instantaneous values. But how to find φ(x, t)?
The combination of Hilbert Spectral Analysis and Empirical Mode Decomposition has been designated by NASA as HHT (HHT vs. FFT)
Pair-wise % 0.0003 0.0001 0.0215 0.0117 0.0022 0.0031 0.0026 0.0083 0.0042 0.0369 0.0400 Overall % 0.0452 Orthogonality Check
Properties of EMD Basis The Adaptive Basis based on and derived from the data by the empirical method satisfy nearly all the traditional requirements for basis empirically and a posteriori: Complete Convergent Orthogonal Unique
Ensemble EMDNoise Assisted Signal Analysis (nasa) Utilizing the uniformly distributed reference frame based on the white noise to eliminate the mode mixing Enable EMD to apply to function with spiky or flat portion The true result of EMD is the ensemble of infinite trials. Wu and Huang, Adv. Adapt. Data Ana., 2009
New Multi-dimensional EEMD • Extrema defined easily • Computationally inexpensive, relatively • Ensemble approach removed the Mode Mixing • Edge effects easier to fix in each 1D slice • Results are 2-directional Wu, Huang and Chen, AADA, 2009
What This Means • EMD separates scales in physical space; it generates an extremely sparse representation for any given data. • Added noises help to make the decomposition more robust with uniform scale separations. • Instantaneous Frequency offers a total different view for nonlinear data: instantaneous frequency needs no harmonics and is unlimited by uncertainty principle. • Adaptive basis is indispensable for nonstationary and nonlinear data analysis • EMD establishes a new paradigm of data analysis