Kód: 53735776
Move beyond predictions and learn how to build machine learning systems that represent uncertainty, update intelligently, and support better decisions.The Bayesian Machine Learning Handbook gives you a structured path from essenti ... celý popis
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Anotace knihy
The Bayesian Machine Learning Handbook gives you a structured path from essential probability concepts to advanced probabilistic models. Whether you are a student, researcher, data scientist, or machine learning practitioner, this comprehensive reference helps you understand both the reasoning and mathematics behind modern Bayesian methods.
Inside, you will learn how to:
Organized into five progressive parts and fifteen detailed chapters, the handbook balances mathematical foundations with worked examples, practical guidance, model diagnostics, and implementation considerations. Its extensive glossary and research-based references also make it a dependable resource for continued study.
Instead of treating uncertainty as an inconvenience, you will learn to model it honestly and use it as a powerful source of insight.
Parametry knihy
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