Discrete Choices: A Comprehensive Guide to Distributions and Inference for Categorical Data
Autor Jiju Gillariose, Joshin Joseph, Christophe Chesneauen Limba Engleză Paperback – mar 2027
Balancing theoretical rigor with practical relevance, Discrete Choices: A Comprehensive Guide to Distributions and Inference for Categorical Data is suitable both as a graduate-level textbook and as a professional reference for researchers and practitioners working with discrete data.
- Introduces a clear and didactic understanding of essential concepts in statistics and data science, including categorical data and statistical inference
- Includes numerous illustrations of theoretical concepts and worked examples, which provide explanations and additional context
- Aligns with commonly offered upper-level courses in statistics, data science, and related topics in the field
- Serves as a valuable resource for students and instructors and as solid foundational material with a unified approach for early-stage researchers
- Offers ancillary support, including an Instructor’s Solutions Manual and additional R and Python programming study resources for students
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Specificații
ISBN-13: 9780443526671
ISBN-10: 0443526672
Pagini: 150
Dimensiuni: 191 x 235 mm
Editura: ELSEVIER SCIENCE
ISBN-10: 0443526672
Pagini: 150
Dimensiuni: 191 x 235 mm
Editura: ELSEVIER SCIENCE
Cuprins
Part I Foundations and Core Methods
1. Foundations of Categorical Data
2. Core Distributions for Discrete Outcomes
3. Hierarchical & Conjugate Families
4. Statistical Inference
5. Model Diagnostics and Selection
Part II Advanced Topics and Applications
6. Advanced and Emerging Topics
7. Applications Across Fields
8. Categorical Treatments and Fairness in Prediction
9. Case Studies and Data Labs
1. Foundations of Categorical Data
2. Core Distributions for Discrete Outcomes
3. Hierarchical & Conjugate Families
4. Statistical Inference
5. Model Diagnostics and Selection
Part II Advanced Topics and Applications
6. Advanced and Emerging Topics
7. Applications Across Fields
8. Categorical Treatments and Fairness in Prediction
9. Case Studies and Data Labs