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AWS Certified Machine Learning - Specialty (MLS-C01) Certification Guide - Second Edition

You're reading from  AWS Certified Machine Learning - Specialty (MLS-C01) Certification Guide - Second Edition

Product type Book
Published in Feb 2024
Publisher Packt
ISBN-13 9781835082201
Pages 342 pages
Edition 2nd Edition
Languages
Authors (2):
Somanath Nanda Somanath Nanda
Profile icon Somanath Nanda
Weslley Moura Weslley Moura
Profile icon Weslley Moura
View More author details

Table of Contents (13) Chapters

Preface 1. Chapter 1: Machine Learning Fundamentals 2. Chapter 2: AWS Services for Data Storage 3. Chapter 3: AWS Services for Data Migration and Processing 4. Chapter 4: Data Preparation and Transformation 5. Chapter 5: Data Understanding and Visualization 6. Chapter 6: Applying Machine Learning Algorithms 7. Chapter 7: Evaluating and Optimizing Models 8. Chapter 8: AWS Application Services for AI/ML 9. Chapter 9: Amazon SageMaker Modeling 10. Chapter 10: Model Deployment 11. Chapter 11: Accessing the Online Practice Resources 12. Other Books You May Enjoy

Dealing with unbalanced datasets

At this point, you might have realized why data preparation is probably the longest part of the data scientist’s work. You have learned about data transformation, missing data values, and outliers, but the list of problems goes on. Don’t worry – you are on the right journey to master this topic!

Another well-known problem with ML models, specifically with classification problems, is unbalanced classes. In a classification model, you can say that a dataset is unbalanced when most of its observations belong to one (or some) of the classes (target variable).

This is very common in fraud identification systems: for example, where most of the events belong to a regular operation, while a very small number of events belong to a fraudulent operation. In this case, you can also say that fraud is a rare event.

There is no strong rule for defining whether a dataset is unbalanced or not, it really depends on the context of your business...

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