Master Bayesian modeling through Bayesian linear regression, generalized linear models, hierarchical models and model selection. This course will deepen your understanding of modeling techniques and the importance of the prior when contrasted with traditional frequentist modeling approaches. You will understand the benefits of hierarchical models and how they automatically identify the right amount of pooling between data to provide a balance between the complete and no pooling approaches. You will learn how to apply posterior predictive checks for model selection and understand the Occam’s razor principle. This course combines theoretical modeling foundations with hands-on implementations.

您将学到什么
Implement variational inference for scalable Bayesian analysis and determine when to prefer VI over MCMC methods.
Apply Gaussian Process Regression and Dirichlet Processes for flexible non-parametric modeling solutions.
Execute complete Bayesian workflows using PyMC3 from model specification through validation and diagnostics.
Build decision-theoretic models using loss functions for applications in sports analytics, healthcare, and business decision-making.
您将获得的技能
- Statistical Inference
- Predictive Analytics
- Statistical Modeling
- Model Evaluation
- Markov Model
- Statistical Methods
- Statistical Machine Learning
- Sampling (Statistics)
- Mathematical Modeling
- Machine Learning Algorithms
- Regression Analysis
- Predictive Modeling
- Data-Driven Decision-Making
- Computational Thinking
- Bayesian Statistics
- Logistic Regression
- Probability Distribution
- Statistical Analysis
要了解的详细信息
了解顶级公司的员工如何掌握热门技能

积累特定领域的专业知识
本课程是 Applied Bayesian Data Analysis 专项课程 专项课程的一部分
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