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Data Science for Marketing Analytics

You're reading from   Data Science for Marketing Analytics A practical guide to forming a killer marketing strategy through data analysis with Python

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Product type Paperback
Published in Sep 2021
Publisher Packt
ISBN-13 9781800560475
Length 636 pages
Edition 2nd Edition
Languages
Tools
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Authors (3):
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Vishwesh Ravi Shrimali Vishwesh Ravi Shrimali
Author Profile Icon Vishwesh Ravi Shrimali
Vishwesh Ravi Shrimali
Mirza Rahim Baig Mirza Rahim Baig
Author Profile Icon Mirza Rahim Baig
Mirza Rahim Baig
Gururajan Govindan Gururajan Govindan
Author Profile Icon Gururajan Govindan
Gururajan Govindan
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Toc

Table of Contents (11) Chapters Close

Preface
1. Data Preparation and Cleaning 2. Data Exploration and Visualization FREE CHAPTER 3. Unsupervised Learning and Customer Segmentation 4. Evaluating and Choosing the Best Segmentation Approach 5. Predicting Customer Revenue Using Linear Regression 6. More Tools and Techniques for Evaluating Regression Models 7. Supervised Learning: Predicting Customer Churn 8. Fine-Tuning Classification Algorithms 9. Multiclass Classification Algorithms Appendix

Summary

In this chapter, you have learned how to structure datasets by arranging them in a tabular format. Then, you learned how to combine data from multiple sources. You also learned how to get rid of duplicates and needless columns. Along with that, you discovered how to effectively address missing values in your data. By learning how to perform these steps, you now have the skills to make your data ready for further analysis.

Data processing and wrangling are the most important steps in marketing analytics. Around 60% of the efforts in any project are spent on data processing and exploration. Data processing when done right can unravel a lot of value and insights. As a marketing analyst, you will be working with a wide variety of data sources, and so the skills you have acquired in this chapter will help you to perform common data cleaning and wrangling tasks on data obtained in a variety of formats.

In the next chapter, you will enhance your understanding of pandas and...

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