Semiparametric Structural Equation Models for Causal Discovery
Shohei Shimizu
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Description for Semiparametric Structural Equation Models for Causal Discovery
paperback. Series: SpringerBriefs in Statistics. Num Pages: 80 pages, 20 black & white illustrations, biography. BIC Classification: PBT; PBWH; UYQM. Category: (P) Professional & Vocational. Dimension: 235 x 155. .
This is the first book to provide a comprehensive introduction to a new semiparametric causal discovery approach known as LiNGAM, with the fundamental background needed to understand it. It offers a general overview of the basics of the LiNGAM approach for causal discovery, estimation principles, and algorithms.
This semiparametric approach is one of the most exciting new topics in the field of causal discovery. The new framework assumes parametric assumptions on the functional forms of structural equations but makes no assumption on the distributions of exogenous variables other than non-Gaussianity. It provides data-analysis tools capable of estimating ... Read more
Product Details
Format
Paperback
Publication date
2022
Publisher
Springer Verlag, Japan Japan
Number of pages
80
Condition
New
Series
SpringerBriefs in Statistics
Number of Pages
94
Place of Publication
Tokyo, Japan
ISBN
9784431557838
SKU
V9784431557838
Shipping Time
Usually ships in 15 to 20 working days
Ref
99-15
About Shohei Shimizu
Shohei Shimizu, Professor, Shiga University Team Leader, RIKEN
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