
Ebook Info
- Published: 1995
- Number of pages: 200 pages
- Format: PDF
- File Size: 3.33 MB
- Authors: Heidi H. Andersen
Description
In the last decade, graphical models have become increasingly popular as a statistical tool. This book is the first which provides an account of graphical models for multivariate complex normal distributions. Beginning with an introduction to the multivariate complex normal distribution, the authors develop the marginal and conditional distributions of random vectors and matrices. Then they introduce complex MANOVA models and parameter estimation and hypothesis testing for these models. After introducing undirected graphs, they then develop the theory of complex normal graphical models including the maximum likelihood estimation of the concentration matrix and hypothesis testing of conditional independence.
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Free Download Linear and Graphical Models: for the Multivariate Complex Normal Distribution (Lecture Notes in Statistics Book 101) 1st Edition in PDF format
Linear and Graphical Models: for the Multivariate Complex Normal Distribution (Lecture Notes in Statistics Book 101) 1st Edition PDF Free Download
Download Linear and Graphical Models: for the Multivariate Complex Normal Distribution (Lecture Notes in Statistics Book 101) 1st Edition 1995 PDF Free
Linear and Graphical Models: for the Multivariate Complex Normal Distribution (Lecture Notes in Statistics Book 101) 1st Edition 1995 PDF Free Download
Download Linear and Graphical Models: for the Multivariate Complex Normal Distribution (Lecture Notes in Statistics Book 101) 1st Edition PDF
Free Download Ebook Linear and Graphical Models: for the Multivariate Complex Normal Distribution (Lecture Notes in Statistics Book 101) 1st Edition