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Julia for Data Science

You're reading from  Julia for Data Science

Product type Book
Published in Sep 2016
Publisher Packt
ISBN-13 9781785289699
Pages 346 pages
Edition 1st Edition
Languages
Author (1):
Anshul Joshi Anshul Joshi
Profile icon Anshul Joshi
Toc

Table of Contents (17) Chapters close

Julia for Data Science
Credits
About the Author
About the Reviewer
www.PacktPub.com
Preface
1. The Groundwork – Julia's Environment 2. Data Munging 3. Data Exploration 4. Deep Dive into Inferential Statistics 5. Making Sense of Data Using Visualization 6. Supervised Machine Learning 7. Unsupervised Machine Learning 8. Creating Ensemble Models 9. Time Series 10. Collaborative Filtering and Recommendation System 11. Introduction to Deep Learning

Confidence interval


This describes the amount of uncertainty associated with the unknown population parameter in the estimated range of values of the population.

Interpreting the confidence intervals

Suppose it is given that the population mean is greater than 100 and less than 300, with a confidence interval of 95%.

General perception is that the chance of the population mean falling between 100 and 300 is 95%. This is wrong, as the population mean is not a random variable but is constant and doesn't change, and its probability of falling in any specified range is 0 to 1.

The uncertainty level associated with a sampling method is described by the confidence level. Suppose to select different samples and for each of these samples to compute a different interval estimate we used the same sampling method. The true population parameter would be included in some of these interval estimates, but not in every one.

So, the 95% confidence level means that the population parameter is included in 95...

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