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The distinction between POD and SVD methods is in the fact that in POD we center the data matrix such that each row will be of mean zero while in SVD the rows of the data matrix are not altered. 

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This statement mixes up how POD (Proper Orthogonal Decomposition) and SVD (Singular Value Decomposition) are typically applied. First, POD and SVD are closely related; POD often relies on the eigen-decomposition of a covariance (or correlation) matrix and is most accurately performed on data that have been centered. Ce......Login to view full explanation

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