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Fundamentals of Data Science Part II

- Statistical Modeling

About Fundamentals of Data Science Part II

In Part II of this series, we cover the elements of statistical modeling, focusing on:validation methodology principles of object-oriented design linear and logistic regression generalized linear models causality time series analysis Bayesian statistics, including simulations in pymc3 Modeling customer lifetime values, including a detailed study of the beta-Bernoulli/beta-binomial model, a discretized version of the classic Pareto/NBD an introduction to credibility theory The theory is illustrated with simulations in Python throughout the text.

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  • Language:
  • English
  • ISBN:
  • 9781941043127
  • Binding:
  • Paperback
  • Pages:
  • 356
  • Published:
  • January 16, 2022
  • Dimensions:
  • 156x234x19 mm.
  • Weight:
  • 499 g.
Delivery: 1-2 weeks
Expected delivery: December 5, 2024

Description of Fundamentals of Data Science Part II

In Part II of this series, we cover the elements of statistical modeling, focusing on:validation methodology
principles of object-oriented design
linear and logistic regression
generalized linear models
causality
time series analysis
Bayesian statistics, including simulations in pymc3
Modeling customer lifetime values, including a detailed study of the beta-Bernoulli/beta-binomial model, a discretized version of the classic Pareto/NBD
an introduction to credibility theory
The theory is illustrated with simulations in Python throughout the text.

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