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Learning Bayesian Models with R

You're reading from   Learning Bayesian Models with R Become an expert in Bayesian Machine Learning methods using R and apply them to solve real-world big data problems

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Product type Paperback
Published in Oct 2015
Publisher Packt
ISBN-13 9781783987603
Length 168 pages
Edition 1st Edition
Languages
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Author (1):
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Hari Manassery Koduvely Hari Manassery Koduvely
Author Profile Icon Hari Manassery Koduvely
Hari Manassery Koduvely
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Table of Contents (11) Chapters Close

Preface 1. Introducing the Probability Theory FREE CHAPTER 2. The R Environment 3. Introducing Bayesian Inference 4. Machine Learning Using Bayesian Inference 5. Bayesian Regression Models 6. Bayesian Classification Models 7. Bayesian Models for Unsupervised Learning 8. Bayesian Neural Networks 9. Bayesian Modeling at Big Data Scale Index

Regression of energy efficiency with building parameters


In this section, we will do a linear regression of the building's energy efficiency measure, heating load (Y1) as a function of the building parameters. It would be useful to do a preliminary descriptive analysis to find which building variables are statistically significant. For this, we will first create bivariate plots of Y1 and all the X variables. We will also compute the Spearman correlation between Y1 and all the X variables. The R script for performing these tasks is as follows:

>library(ggplot2)
>library(gridExtra)

>df <- read.csv("ENB2012_data.csv",header = T)
>df <- df[,c(1:9)]
>str(df)
>df[,6] <- as.numeric(df[,6])
>df[,8] <- as.numeric(df[,8])

>attach(df)
>bp1 <- ggplot(data = df,aes(x = X1,y = Y1)) + geom_point()
>bp2 <- ggplot(data = df,aes(x = X2,y = Y1)) + geom_point()
>bp3 <- ggplot(data = df,aes(x = X3,y = Y1)) + geom_point()
>bp4 <- ggplot(data = df,aes...
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