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Choosing the diagonal loading factor for linear signal estimation using cross validation

Citation Author(s):
Jun Tong, Qinghua Guo, Jiangtao Xi, Yanguang Yu, Peter J. Schreier
Submitted by:
Peter Schreier
Last updated:
18 March 2016 - 4:29pm
Document Type:
Presentation Slides
Document Year:
2016
Event:
Presenters:
Peter Schreier
 

Linear signal estimation based on sample covariance matrices (SCMs) can perform poorly if the training data are limited and the SCMs are ill-conditioned. Diagonal loading (DL) may be used to improve robustness in the face of limited training data. This paper introduces two leave-one-out cross-validation schemes for choosing the DL factor. One scheme repeatedly splits the training data with respect to time, while the other repeatedly splits the out-of-training data with respect to space. We derive computationally efficient implementations and compare them with the oracle choice in terms of the mean squared error.

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