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Titel:

ICA, kernel methods and nonnegativity: New paradigms for dynamical component analysis of fMRI data

Autor(en):
Gruber, P.; Meyer-Bäse, A.; Foo, S.; Theis, F. J.
Abstract:
In the last decades, functional magnetic resonance imaging (fMRI) has been introduced into clinical practice. As a consequence of this advanced noninvasive medical imaging technique, the analysis and visualization of medical image time-series data poses a new challenge to both research and medical application. But often, the model data for a regression or generalized linear model-based analysis are not available. Hence exploratory data-driven techniques, i.e. blind source separation (BSS) method...     »
Stichworte:
Genetic Algorithm Kernel Method ROC Nonnegative matrix factorization Sparseness PCA
Zeitschriftentitel:
Eng. Appl. Artif. Intel.
Jahr:
2009
Band / Volume:
22
Heft / Issue:
4-5
Seitenangaben Beitrag:
497-504
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