Fundamentals of Robust Machine Learning
eBook - ePub

Fundamentals of Robust Machine Learning

Handling Outliers and Anomalies in Data Science

  1. English
  2. ePUB (mobile friendly)
  3. Available on iOS & Android
eBook - ePub

Fundamentals of Robust Machine Learning

Handling Outliers and Anomalies in Data Science

About this book

An essential guide for tackling outliers and anomalies in machine learning and data science.

In recent years, machine learning (ML) has transformed virtually every area of research and technology, becoming one of the key tools for data scientists. Robust machine learning is a new approach to handling outliers in datasets, which is an often-overlooked aspect of data science. Ignoring outliers can lead to bad business decisions, wrong medical diagnoses, reaching the wrong conclusions or incorrectly assessing feature importance, just to name a few.

Fundamentals of Robust Machine Learning offers a thorough but accessible overview of this subject by focusing on how to properly handle outliers and anomalies in datasets. There are two main approaches described in the book: using outlier-tolerant ML tools, or removing outliers before using conventional tools. Balancing theoretical foundations with practical Python code, it provides all the necessary skills to enhance the accuracy, stability and reliability of ML models.

Fundamentals of Robust Machine Learning readers will also find:

  • A blend of robust statistics and machine learning principles
  • Detailed discussion of a wide range of robust machine learning methodologies, from robust clustering, regression and classification, to neural networks and anomaly detection
  • Python code with immediate application to data science problems

Fundamentals of Robust Machine Learning is ideal for undergraduate or graduate students in data science, machine learning, and related fields, as well as for professionals in the field looking to enhance their understanding of building models in the presence of outliers.

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Information

Publisher
Wiley
Year
2025
Print ISBN
9781394294374
Edition
1
eBook ISBN
9781394294381

Table of contents

  1. Cover
  2. Table of Contents
  3. Title Page
  4. Copyright
  5. Dedication
  6. Preface
  7. About the Companion Website
  8. 1 Introduction
  9. 2 Robust Linear Regression
  10. 3 The Log‐Cosh Loss Function
  11. 4 Outlier Detection, Metrics, and Standardization
  12. 5 Robustness of Penalty Estimators
  13. 6 Robust Regularized Models
  14. 7 Quantile Regression Using Log‐Cosh
  15. 8 Robust Binary Classification
  16. 9 Neural Networks Using Log‐Cosh
  17. 10 Multi‐class Classification and Adam Optimization
  18. 11 Anomaly Detection and Evaluation Metrics
  19. 12 Case Studies in Data Science
  20. Index
  21. End User License Agreement

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Yes, you can access Fundamentals of Robust Machine Learning by Resve A. Saleh,Sohaib Majzoub,A. K. Md. Ehsanes Saleh in PDF and/or ePUB format, as well as other popular books in Computer Science & Computer Science General. We have over 1.5 million books available in our catalogue for you to explore.