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Maximal autocorrelation functions in functional data analysis

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Authors

Hooker, Giles
Roberts, Steven

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Kluwer Academic Publishers

Abstract

This paper proposes a new factor rotation for the context of functional principal components analysis. This rotation seeks to re-express a functional subspace in terms of directions of decreasing smoothness as represented by a generalized smoothing metric. The rotation can be implemented simply and we show on two examples that this rotation can improve the interpretability of the leading components.

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Statistics and Computing

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Restricted until

2037-12-31