Journal Article PreJuSER-17745

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Linear and Kernel Methods for Multivariate Change Detection

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2012
Elsevier Science Amsterdam [u.a.]

Computers & geosciences 38, 107 - 114 () [10.1016/j.cageo.2011.05.012]

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Abstract: The iteratively reweighted multivariate alteration detection (IR-MAD) algorithm may be used both for unsupervised change detection in multi- and hyperspectral remote sensing imagery and for automatic radiometric normalization of multitemporal image sequences. Principal components analysis (PCA), as well as maximum autocorrelation factor (MAF) and minimum noise fraction (MNF) analyses of IR-MAD images, both linear and kernel-based (nonlinear), may further enhance change signals relative to no-change background. IDL (Interactive Data Language) implementations of IR-MAD, automatic radiometric normalization, and kernel PCA/MAF/MNF transformations are presented that function as transparent and fully integrated extensions of the ENVI remote sensing image analysis environment. The train/test approach to kernel PCA is evaluated against a Hebbian learning procedure. Matlab code is also available that allows fast data exploration and experimentation with smaller datasets. New, multiresolution versions of IR-MAD that accelerate convergence and that further reduce no-change background noise are introduced. Computationally expensive matrix diagonalization and kernel image projections are programmed to run on massively parallel CUDA-enabled graphics processors, when available, giving an order of magnitude enhancement in computational speed. The software is available from the authors' Web sites. (C) 2011 Elsevier Ltd. All rights reserved.

Keyword(s): J ; CUDA (auto) ; ENVI (auto) ; IDL (auto) ; IR-MAD (auto) ; iMAD (auto) ; Kernel methods (auto) ; Matlab (auto) ; Radiometric normalization (auto) ; Remote sensing (auto) ; Multiresolution (auto)


Note: Record converted from VDB: 12.11.2012

Contributing Institute(s):
  1. Agrosphäre (IBG-3)
Research Program(s):
  1. Terrestrische Umwelt (P24)

Appears in the scientific report 2012
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Medline ; JCR ; NationallizenzNationallizenz ; SCOPUS ; Science Citation Index ; Science Citation Index Expanded ; Thomson Reuters Master Journal List ; Web of Science Core Collection ; Zoological Record
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 Record created 2012-11-13, last modified 2020-07-02



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