发表状态 | 已发表Published |
题名 | Covariance structure regularization via entropy loss function |
作者 | |
发表日期 | 2014 |
发表期刊 | Computational Statistics and Data Analysis
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ISSN/eISSN | 0167-9473 |
卷号 | 72页码:315-327 |
摘要 | The need to estimate structured covariance matrices arises in a variety of applications and the problem is widely studied in statistics. A new method is proposed for regularizing the covariance structure of a given covariance matrix whose underlying structure has been blurred by random noise, particularly when the dimension of the covariance matrix is high. The regularization is made by choosing an optimal structure from an available class of covariance structures in terms of minimizing the discrepancy, defined via the entropy loss function, between the given matrix and the class. A range of potential candidate structures comprising tridiagonal Toeplitz, compound symmetry, AR(1), and banded Toeplitz is considered. It is shown that for the first three structures local or global minimizers of the discrepancy can be computed by one-dimensional optimization, while for the fourth structure Newton's method enables efficient computation of the global minimizer. Simulation studies are conducted, showing that the proposed new approach provides a reliable way to regularize covariance structures. The approach is also applied to real data analysis, demonstrating the usefulness of the proposed approach in practice. © 2013 Elsevier B.V. All rights reserved. |
关键词 | Covariance estimation Covariance structure Entropy loss function Kullback-Leibler divergence Regularization |
DOI | 10.1016/j.csda.2013.10.004 |
URL | 查看来源 |
收录类别 | SCIE |
语种 | 英语English |
WOS研究方向 | Computer Science ; Mathematics |
WOS类目 | Computer Science, Interdisciplinary Applications ; Statistics & Probability |
WOS记录号 | WOS:000330147000022 |
引用统计 | |
文献类型 | 期刊论文 |
条目标识符 | https://repository.uic.edu.cn/handle/39GCC9TT/5036 |
专题 | 个人在本单位外知识产出 |
作者单位 | School of Mathematics, University of Manchester, Manchester M13 9PL, United Kingdom |
推荐引用方式 GB/T 7714 | Lin, Lijing,Higham, Nicholas J.,Pan, Jianxin. Covariance structure regularization via entropy loss function[J]. Computational Statistics and Data Analysis, 2014, 72: 315-327. |
APA | Lin, Lijing, Higham, Nicholas J., & Pan, Jianxin. (2014). Covariance structure regularization via entropy loss function. Computational Statistics and Data Analysis, 72, 315-327. |
MLA | Lin, Lijing,et al."Covariance structure regularization via entropy loss function". Computational Statistics and Data Analysis 72(2014): 315-327. |
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