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Data Science  with Python

You're reading from   Data Science with Python Combine Python with machine learning principles to discover hidden patterns in raw data

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Product type Paperback
Published in Jul 2019
Publisher Packt
ISBN-13 9781838552862
Length 426 pages
Edition 1st Edition
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Authors (3):
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Rohan Chopra Rohan Chopra
Author Profile Icon Rohan Chopra
Rohan Chopra
Mohamed Noordeen Alaudeen Mohamed Noordeen Alaudeen
Author Profile Icon Mohamed Noordeen Alaudeen
Mohamed Noordeen Alaudeen
Aaron England Aaron England
Author Profile Icon Aaron England
Aaron England
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Table of Contents (10) Chapters Close

About the Book 1. Introduction to Data Science and Data Pre-Processing FREE CHAPTER 2. Data Visualization 3. Introduction to Machine Learning via Scikit-Learn 4. Dimensionality Reduction and Unsupervised Learning 5. Mastering Structured Data 6. Decoding Images 7. Processing Human Language 8. Tips and Tricks of the Trade 1. Appendix

Multiple Linear Regression

Multiple linear regression models define the relationship between two or more features and the continuous outcome variable using y = α + β1xi1 + β2xi2 + … + βp-1xi,p-1. Again, α represents the intercept and β denotes the slope for each feature (x) in the model. Thus, if we are predicting the weight of an individual in kg using height in m, total cholesterol in milligrams per deciliter (mg/dL), and minutes of cardiovascular exercise per day, and the multiple linear regression model computes 1.5 as the value for α, 50 as the coefficient for β1, 0.1 as the coefficient for β2, and -0.4 as the coefficient for β3, this model can be interpreted as for every 1 m increase in height, weight increases by 50 kg, controlling for all other features in the model. Additionally, for every 1 mg/dL increase in total cholesterol, weight increases by 0.1 kg, controlling for all other features in the model. Lastly, for...

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