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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

Table of Contents (17) Chapters

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

Summary


In this chapter, we learned what data munging is and why it is necessary for data science. Julia provides functionalities to facilitate data munging with the DataFrames.jl package, with features such as these:

  • NA: A missing value in Julia is represented by a specific data type, NA.

  • DataArray: DataArray provided in the DataFrames.jl provides features such as allowing us to store some missing values in an array.

  • DataFrame: DataFrame is 2-D data structure like spreadsheets. It is very similar to R or pandas's dataframes, and provides many functionalities to represent and analyze data. DataFrames has many features well suited for data analysis and statistical modeling.

  • A dataset can have different types of data in different columns.

  • Records have a relation with other records in the same row of different columns of the same length.

  • Columns can be labeled. Labeling helps us to easily become familiar with the data and access it without the need to remember their numerical indices.

We learned...

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