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Machine Learning Engineering  with Python

You're reading from   Machine Learning Engineering with Python Manage the lifecycle of machine learning models using MLOps with practical examples

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Product type Paperback
Published in Aug 2023
Publisher Packt
ISBN-13 9781837631964
Length 462 pages
Edition 2nd Edition
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Author (1):
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Andrew P. McMahon Andrew P. McMahon
Author Profile Icon Andrew P. McMahon
Andrew P. McMahon
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Table of Contents (12) Chapters Close

Preface 1. Introduction to ML Engineering 2. The Machine Learning Development Process FREE CHAPTER 3. From Model to Model Factory 4. Packaging Up 5. Deployment Patterns and Tools 6. Scaling Up 7. Deep Learning, Generative AI, and LLMOps 8. Building an Example ML Microservice 9. Building an Extract, Transform, Machine Learning Use Case 10. Other Books You May Enjoy
11. Index

Going deep with deep learning

In this book, we have worked with relatively “classical” ML models so far, which rely on a variety of different mathematical and statistical approaches to learn from data. These algorithms in general are not modeled on any biological theory of learning and are at their heart motivated by finding procedures to explicitly optimize the loss function in different ways. A slightly different approach that the reader will likely be aware of, and that we met briefly in the section on Learning about learning in Chapter 3, From Model to Model Factory, is that taken by Artificial Neural Networks (ANNs), which originated in the 1950s and were based on idealized models of neuronal activity in the brain. The core concept of an ANN is that through connecting relatively simple computational units called neurons or nodes (modeled on biological neurons), we can build systems that can effectively model any mathematical function (see the information box below...

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