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Python Feature Engineering Cookbook

You're reading from   Python Feature Engineering Cookbook Over 70 recipes for creating, engineering, and transforming features to build machine learning models

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Product type Paperback
Published in Jan 2020
Publisher Packt
ISBN-13 9781789806311
Length 372 pages
Edition 1st Edition
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Author (1):
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Soledad Galli Soledad Galli
Author Profile Icon Soledad Galli
Soledad Galli
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Table of Contents (13) Chapters Close

Preface 1. Foreseeing Variable Problems When Building ML Models 2. Imputing Missing Data FREE CHAPTER 3. Encoding Categorical Variables 4. Transforming Numerical Variables 5. Performing Variable Discretization 6. Working with Outliers 7. Deriving Features from Dates and Time Variables 8. Performing Feature Scaling 9. Applying Mathematical Computations to Features 10. Creating Features with Transactional and Time Series Data 11. Extracting Features from Text Variables 12. Other Books You May Enjoy

Performing feature hashing

With feature hashing, the categories of a variable are converted into a series of binary vectors using a hashing function. How does this work? First, we determine, arbitrarily, the number of binary vectors to represent the category. For example, let's say we would like to use five vectors. Next, we need a hash function that will take a category and return a number between 0 and n-1, where n is the number of binary vectors. In our example, the hash function should return a value between 0 and 4. Let's say our hash function returns the value of 3 for the category blue. That means that our category blue will be represented by a 0 in the vectors 0, 1, 2, and 4 and 1 in the vector 3: [0,0,0,1,0]. Any hash function can be used as long as it returns a number between 0 and n-1.

An example of a hash function is the module or remainder...
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