Bayesian Analysis with Python
Martin, Osvaldo
Sold by GreatBookPrices, Columbia, MD, U.S.A.
AbeBooks Seller since April 6, 2009
New - Soft cover
Condition: New
Quantity: Over 20 available
Add to basketSold by GreatBookPrices, Columbia, MD, U.S.A.
AbeBooks Seller since April 6, 2009
Condition: New
Quantity: Over 20 available
Add to basketUnleash the power and flexibility of the Bayesian framework
Key Features:
Book Description:
The purpose of this book is to teach the main concepts of Bayesian data analysis. We will learn how to effectively use PyMC3, a Python library for probabilistic programming, to perform Bayesian parameter estimation, to check models and validate them. This book begins presenting the key concepts of the Bayesian framework and the main advantages of this approach from a practical point of view. Moving on, we will explore the power and flexibility of generalized linear models and how to adapt them to a wide array of problems, including regression and classification. We will also look into mixture models and clustering data, and we will finish with advanced topics like non-parametrics models and Gaussian processes. With the help of Python and PyMC3 you will learn to implement, check and expand Bayesian models to solve data analysis problems.
What You Will Learn:
Who this book is for:
Students, researchers and data scientists who wish to learn Bayesian data analysis with Python and implement probabilistic models in their day to day projects. Programming experience with Python is essential. No previous statistical knowledge is assumed.
Osvaldo Martin is a Researcher at The National Scientific and Technical Research Council (CONICET), the main organization in charge of the promotion of Science and Technology in Argentina. He has worked on Structural Bioinformatics and Computational Biology problems, especially on how to validate protein structural models. He has experience on using Markov Chain Monte Carlo methods to simulate molecules and he loves to use Python to solve data analysis problems. He has taught courses about Structural Bioinformatics, Python programming and more recently Bayesian data analysis. Python and Bayesian statistics had transformed the way he do science and thinks about problems in general. He was really motivated to write this book to help others into developing probabilistic models with Python, regardless of their mathematical background. He is an active member of the PyMOL community (a C/Python-based molecular viewer) and recently he has been contributing to the PyMC3 library.
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