High-Dimensional Covariance Matrix Estimation: Shrinkage Toward a Diagonal Target

High-Dimensional Covariance Matrix Estimation: Shrinkage Toward a Diagonal Target
Author: Mr. Sakai Ando
Publisher: International Monetary Fund
Total Pages: 32
Release: 2023-12-08
Genre: Business & Economics
ISBN:


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This paper proposes a novel shrinkage estimator for high-dimensional covariance matrices by extending the Oracle Approximating Shrinkage (OAS) of Chen et al. (2009) to target the diagonal elements of the sample covariance matrix. We derive the closed-form solution of the shrinkage parameter and show by simulation that, when the diagonal elements of the true covariance matrix exhibit substantial variation, our method reduces the Mean Squared Error, compared with the OAS that targets an average variance. The improvement is larger when the true covariance matrix is sparser. Our method also reduces the Mean Squared Error for the inverse of the covariance matrix.


High-Dimensional Covariance Matrix Estimation: Shrinkage Toward a Diagonal Target
Language: en
Pages: 32
Authors: Mr. Sakai Ando
Categories: Business & Economics
Type: BOOK - Published: 2023-12-08 - Publisher: International Monetary Fund

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This paper proposes a novel shrinkage estimator for high-dimensional covariance matrices by extending the Oracle Approximating Shrinkage (OAS) of Chen et al. (2
High-Dimensional Covariance Estimation
Language: en
Pages: 204
Authors: Mohsen Pourahmadi
Categories: Mathematics
Type: BOOK - Published: 2013-06-24 - Publisher: John Wiley & Sons

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Methods for estimating sparse and large covariance matrices Covariance and correlation matrices play fundamental roles in every aspect of the analysis of multiv
Shrinkage Estimation for Mean and Covariance Matrices
Language: en
Pages: 119
Authors: Hisayuki Tsukuma
Categories: Medical
Type: BOOK - Published: 2020-04-16 - Publisher: Springer Nature

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This book provides a self-contained introduction to shrinkage estimation for matrix-variate normal distribution models. More specifically, it presents recent te
High-Dimensional Probability
Language: en
Pages: 299
Authors: Roman Vershynin
Categories: Business & Economics
Type: BOOK - Published: 2018-09-27 - Publisher: Cambridge University Press

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An integrated package of powerful probabilistic tools and key applications in modern mathematical data science.
Exploration of Regularized Covariance Estimates with Analytical Shrinkage Intensity for Producing Invertible Covariance Matrices in High Dimensional Hyperspectral Data
Language: en
Pages: 18
Authors:
Categories:
Type: BOOK - Published: 2007 - Publisher:

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Removing background from hyperspectral scenes is a common step in the process of searching for materials of interest. Some approaches to background subtraction