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Autor(en): 
  • Joe Suzuki
  • Graphical Models and Causal Discovery with Python: 100 Exercises for Building Logic 
     

    (Buch)
    Dieser Artikel gilt, aufgrund seiner Grösse, beim Versand als 3 Artikel!


    Übersicht

    Auf mobile öffnen
     
    Lieferstatus:   i.d.R. innert 7-14 Tagen versandfertig
    Veröffentlichung:  Juni 2026  
    Genre:  EDV / Informatik 
     
    Causal discovery / Data Science / Datenbanken / graphical model / Information Criteria / Lingam / machine learning / Maschinelles Lernen
    ISBN:  9789819553075 
    EAN-Code: 
    9789819553075 
    Verlag:  Springer EN 
    Einband:  Kartoniert  
    Sprache:  English  
    Dimensionen:  H 235 mm / B 155 mm / D  
    Seiten:  195 
    Illustration:  XII, 195 p. 383 illus., 140 illus. in color., farbige Illustrationen, schwarz-weiss Illustrationen 
    Zus. Info:  EUDR exemption - product or manufacturing materials placed on the market prior to 31.12.2025. 
    Bewertung: Titel bewerten / Meinung schreiben
    Inhalt:
    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 Python 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:

    • A clear and self-contained introduction, bridging probability, statistics, and modern causal discovery techniques
    • 100 exercises with solutions, supporting self-study and classroom use
    • Reproducible Python code, allowing readers to implement and extend the methods themselves
    • Intuitive figures and visual explanations that clarify abstract concepts
    • Broad coverage of applications within statistics and data science, connecting rigorous theory with modern machine learning and causal inference
      



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