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Think Bayes: Bayesian Statistics in Python (O'reilly)
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If you know how to program, you're ready to tackle Bayesian statistics. With this book, you'll learn how to solve statistical problems with Python code instead of mathematical formulas, using discrete probability distributions rather than continuous mathematics.
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- If you know how to program, you're ready to tackle Bayesian statistics. With this book, you'll learn how to solve statistical problems with Python code instead of mathematical formulas, using discrete probability distributions rather than continuous mathematics. Once you get the math out of the way, the Bayesian fundamentals will become clearer and you'll begin to apply these techniques to real-world problems. Bayesian statistical methods are becoming more common and more important, but there aren't many resources available to help beginners. Based on undergraduate classes taught by author Allen B. Downey, this book's computational approach helps you get a solid start. Use your programming skills to learn and understand Bayesian statistics Work with problems involving estimation, prediction, decision analysis, evidence, and Bayesian hypothesis testing Get started with simple examples, using coins, dice, and a bowl of cookies Learn computational methods for solving real-world problems
| Publisher | O'Reilly Media |
| Publication date | June 22, 2021 |
| Edition | 2nd |
| Language | English |
| Print length | 335 pages |
| ISBN-10 | 149208946X |
| ISBN-13 | 978-1492089469 |
| Item Weight | 2.31 pounds (1.05 kg) |
| Dimensions | 7 x 0.75 x 9 inches (17.8 x 1.9 x 22.9 cm) |
Who Should Buy?
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Data Scientists
Ideal for data scientists looking to implement Bayesian methods in real-world applications using Python programming.
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Students
Perfect for students studying statistics or data analysis who want to learn Bayesian statistics through practical coding exercises.
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Researchers
Beneficial for researchers needing to understand Bayesian inference and apply it to their scientific studies and data.
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Beginners
Not suitable for complete beginners in statistics or programming who may struggle with complex concepts without prior knowledge.
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Probability & Statistics Editorial Review
Think Bayes: Bayesian Statistics in Python (O'reilly) offers a comprehensive approach to understanding Bayesian statistics, highlighting its practical applications in Python. With a focus on building intuition, this book is especially beneficial for those who have a basic understanding of Bayes and wish to deepen their knowledge through real-world examples. The author's integration of theory and practice is praised, making complex concepts more approachable. Readers appreciate the included solutions to problems, which facilitates learning. However, some find the use of the empiricaldist Python library a bit confusing.
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優點
- Builds intuition for Bayesian statistics
- Practical Python examples provided
- Solutions included for better learning
- Clear connection between theory and practice
- Ideal for those with basic Bayes knowledge
缺點
- Use of empiricaldist library may confuse some readers
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特色和優勢
- Learn Bayesian statistics with Python
- Solve statistical problems using Python code
- No need for mathematical formulas
- Use discrete probability distributions
- Start with simple examples
- Apply techniques to real-world problems
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