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Feature identification in time series data sets
Journal article

Feature identification in time series data sets

Abstract

We present a computationally inexpensive, flexible feature identification method which uses a comparison of time series to identify a rank-ordered set of features in geophysically-sourced data sets. Many physical phenomena perturb multiple physical variables nearly simultaneously, and so features are identified as time periods in which there are local maxima of absolute deviation in all time series. Unlike other available methods, this method …

Authors

Shaw J; Stastna M; Coutino A; Walter RK; Reinhardt E

Journal

Heliyon, Vol. 5, No. 5,

Publisher

Elsevier

Publication Date

May 2019

DOI

10.1016/j.heliyon.2019.e01708

ISSN

1879-4378

Labels

McMaster Research Centers and Institutes (RCI)