Matrix Kendall's Tau and Matrix Elliptical Factor Model

Large-scale matrix-variate data have been widely observed nowadays in various research areas such as finance, signal processing and medical imaging. Modelling matrix-valued data by matrix-elliptical family not only provides a flexible way to handle heavy-tail property and tail dependencies, but also maintains the intrinsic row and column structure of random matrices. We proposed a new tool named matrix Kendall's tau which is efficient for analyzing random elliptical matrices. By applying this new type of Kendell’s tau to the matrix elliptical factor model, we propose a Matrix-type Robust Two-Step (MRTS) method to estimate the loading and factor spaces. See the details in He at al. (2022) . In this package, we provide the algorithms for calculating sample matrix Kendall's tau, the MRTS method and the Matrix Kendall's tau Eigenvalue-Ratio (MKER) method which is used for determining the number of factors.


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install.packages("MKendall")

1.5-4 by Yalin Wang, 3 years ago


Browse source code at https://github.com/cran/MKendall


Authors: Yong He [aut] , Yalin Wang [aut, cre] , Long Yu [aut] , Wang Zhou [aut] , Wenxin Zhou [aut]


Documentation:   PDF Manual  


GPL-2 license



See at CRAN