Joe Suzuki Suzuki Graphical Models and Causal Discovery with R

Graphical Models and Causal Discovery with R

von Joe Suzuki

100 Exercises for Building Logic

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Beschreibung

Beginning with a gentle introduction to causal discovery and the foundations of probability and statistics, this textbook is written in a highly pedagogical way. By uniting probability theory, statistical inference, and graph theory, the book offers a systematic pathway from foundational principles to cutting-edge algorithms, including independence tests, the PC algorithm, LiNGAM, information criteria, and Bayesian methods. Far more than a theoretical treatment, this volume emphasizes hands-on learning through R implementations, carefully designed exercises with solutions, and intuitive graphical illustrations. Readers will gain the ability to see, run, and understand causal discovery methods in practice. 

Key features of this book include:


Beginning with a gentle introduction to causal discovery and the foundations of probability and statistics, this textbook is written in a highly pedagogical way. By uniting probability theory, statistical inference, and graph theory, the book offers a systematic pathway from foundational principles to cutting-edge algorithms, including independence tests, the PC algorithm, LiNGAM, information criteria, and Bayesian methods. Far more than a theoretical treatment, this volume emphasizes hands-on learning through R implementations, carefully designed exercises with solutions, and intuitive graphical illustrations. Readers will gain the ability to see, run, and understand causal discovery methods in practice. 

Key features of this book include:


Presents 100 carefully selected exercises accompanied by solutions in the main text Provides an in-depth understanding of R source programs, rather than explaining how to use ready-made packages Written in an easy-to-follow and self-contained style

Autor*in

Joe Suzuki

Themen in »Graphical Models and Causal Discovery with R«

Graphical Model Causal Discovery Machine Learning Data Science LiNGAM Information Criteria Probabilistic Graphical Model R

Stimmen zu »Graphical Models and Causal Discovery with R«

Details

ISBN: 9789819542673
Verlag: Springer Singapore
Erscheinung: 05.04.2026

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