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R Statistics Cookbook

You're reading from  R Statistics Cookbook

Product type Book
Published in Mar 2019
Publisher Packt
ISBN-13 9781789802566
Pages 448 pages
Edition 1st Edition
Languages
Concepts
Author (1):
Francisco Juretig Francisco Juretig
Profile icon Francisco Juretig

Table of Contents (12) Chapters

Preface 1. Getting Started with R and Statistics 2. Univariate and Multivariate Tests for Equality of Means 3. Linear Regression 4. Bayesian Regression 5. Nonparametric Methods 6. Robust Methods 7. Time Series Analysis 8. Mixed Effects Models 9. Predictive Models Using the Caret Package 10. Bayesian Networks and Hidden Markov Models 11. Other Books You May Enjoy

Introduction

This chapter discusses two powerful techniques used in advanced statistics. The first one, Bayesian networks (usually referred to as BNs), is a graphical model based on Bayesian theory, which is used to represent probabilistic relationships between several variables. The second one, the hidden Markov model (HMM), is a model that can handle both observable and non-observable variables that affect a dependent variable. In the simplest scenario, we might observe whether people arrive at an office with an umbrella or not, with the intention of deducing whether it was raining or not.

This chapter is divided into two parts: there are four recipes dedicated to BNs and three recipes dedicated to HMMs.

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