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Bayesian Analysis with Python: A practical guide to probabilistic modeling
86% of respondents would recommend this to a friend
ISK 8526
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You will possess a functional understanding of probabilistic modeling, enabling you to design and implement Bayesian models for your data science challenges.
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What Stands Out
Product Details
| Publisher | Packt Publishing |
| Publication date | January 31, 2024 |
| Edition | 3rd |
| Language | English |
| Print length | 394 pages |
| ISBN-10 | 1805127160 |
| ISBN-13 | 978-1805127161 |
| Item Weight | 1.49 pounds (680 grams) |
| Dimensions | 7.5 x 0.89 x 9.25 inches (19.1 x 2.3 x 23.5 cm) |
Who Should Buy?
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Data Scientists
Ideal for data scientists looking to implement probabilistic models using Python for data analysis and decision-making.
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Statisticians
Great for statisticians seeking to deepen their understanding of Bayesian methods and their applications in real-world scenarios.
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Students
Perfect for students in statistics or data science who need a practical guide to Bayesian analysis techniques and applications.
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Beginner Programmers
Not suitable for beginners unfamiliar with programming or basic concepts in statistics and probability.
Product Description
Bayesian Analysis with Python: A practical guide to probabilistic modeling
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Probability & Statistics Editorial Review
**Editorial Review of "Bayesian Analysis with Python - Third Edition"** The third edition of "Bayesian Analysis with Python" has been well-received by readers who appreciate its pragmatic and concise approach to a complex subject. This book caters primarily to intermediate Python developers who are beginning to delve into Bayesian analysis, striking a balance between theory and practical application. It goes beyond merely explaining Bayesian methods, embedding hands-on experience through coding examples that utilize essential Python libraries such as PyMC and ArviZ. Readers praise its clear organization and readability, noting that it provides a solid foundation for using Bayesian statistical models in Python. The mix of practical and theoretical insights gives learners a comprehensive understanding of various statistical concepts, including hierarchical models, generalized linear models, and Bayesian additive regression trees (BART). The conversational writing style is a hit with many, providing an approachable feel, although some may find this informal tone less suitable for academic contexts. However, potential buyers are cautioned that while the book aims to be accessible, a fundamental background in probability and statistics can be advantageous. The initial chapter moves quickly, which might challenge complete beginners without any prior exposure to the subject. Furthermore, some readers felt that more in-depth explanations of the code would enhance understanding, as the book can at times assume a level of familiarity that not every user may possess. This book is particularly recommended for students and practitioners who have a reasonable level of comfort with Python and a basic grounding in mathematical statistics. For those meeting these criteria, it’s heralded as an excellent resource that can deepen their understanding of Bayesian frameworks. However, individuals requiring immediate practical solutions for work-related questions may need to seek additional resources that offer rapid, hands-on training. **
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Pros
- Concise and clear writing style, making a complex topic accessible.
- Strong practical focus with numerous code examples.
- Comprehensive coverage of Bayesian concepts and models.
- Excellent for readers with prior knowledge of Python and statistics.
Cons
- Assumes some background in probability and statistics may be necessary for full comprehension.
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ISK 8526
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Features & Benefits
- Learn Bayesian modeling with state-of-the-art Python libraries.
- Step-by-step guidance for conducting Bayesian data analysis.
- Enhanced learning with sample problems and practice exercises.
- Includes free PDF eBook with purchase of print or Kindle version.
- Explore various models, including hierarchical and generalized linear models.
- No prior statistical knowledge required; ideal for beginners and professionals.
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