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Hands-On Data Preprocessing in Python

You're reading from  Hands-On Data Preprocessing in Python

Product type Book
Published in Jan 2022
Publisher Packt
ISBN-13 9781801072137
Pages 602 pages
Edition 1st Edition
Languages
Concepts
Author (1):
Roy Jafari Roy Jafari
Profile icon Roy Jafari

Table of Contents (24) Chapters

Preface 1. Part 1:Technical Needs
2. Chapter 1: Review of the Core Modules of NumPy and Pandas 3. Chapter 2: Review of Another Core Module – Matplotlib 4. Chapter 3: Data – What Is It Really? 5. Chapter 4: Databases 6. Part 2: Analytic Goals
7. Chapter 5: Data Visualization 8. Chapter 6: Prediction 9. Chapter 7: Classification 10. Chapter 8: Clustering Analysis 11. Part 3: The Preprocessing
12. Chapter 9: Data Cleaning Level I – Cleaning Up the Table 13. Chapter 10: Data Cleaning Level II – Unpacking, Restructuring, and Reformulating the Table 14. Chapter 11: Data Cleaning Level III – Missing Values, Outliers, and Errors 15. Chapter 12: Data Fusion and Data Integration 16. Chapter 13: Data Reduction 17. Chapter 14: Data Transformation and Massaging 18. Part 4: Case Studies
19. Chapter 15: Case Study 1 – Mental Health in Tech 20. Chapter 16: Case Study 2 – Predicting COVID-19 Hospitalizations 21. Chapter 17: Case Study 3: United States Counties Clustering Analysis 22. Chapter 18: Summary, Practice Case Studies, and Conclusions 23. Other Books You May Enjoy

Exercises

  1. This question is about the difference between dataset reformulation and dataset restructuring. Answer the following questions:

    a) In your own words, describe the difference between dataset reformulation and dataset restructuring.

    b) In Example 3 of this chapter, we moved the data from month_df to predict_df. The text described the level II data cleaning for both table reformulation and table restructuring. Which of the two occurred? Is it possible that the distinction we provided for the difference between table restructuring and reformulation cannot specify which one happened? Would that matter?

  2. For this exercise, we will be using LaqnData.csv, which can be found on the London Air website (https://www.londonair.org.uk/LondonAir/Default.aspx) and includes the hourly readings of five air particles (NO, NO2, NOX, PM2.5, and PM10) from a specific site. Perform the following steps for this dataset:

    a) Read the dataset into air_df using pandas.

    b) Use the .unique() function...

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