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The TensorFlow Workshop

You're reading from   The TensorFlow Workshop A hands-on guide to building deep learning models from scratch using real-world datasets

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Product type Paperback
Published in Dec 2021
Publisher Packt
ISBN-13 9781800205253
Length 600 pages
Edition 1st Edition
Languages
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Authors (4):
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Matthew Moocarme Matthew Moocarme
Author Profile Icon Matthew Moocarme
Matthew Moocarme
Abhranshu Bagchi Abhranshu Bagchi
Author Profile Icon Abhranshu Bagchi
Abhranshu Bagchi
Anthony Maddalone Anthony Maddalone
Author Profile Icon Anthony Maddalone
Anthony Maddalone
Anthony So Anthony So
Author Profile Icon Anthony So
Anthony So
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Toc

Table of Contents (13) Chapters Close

Preface
1. Introduction to Machine Learning with TensorFlow 2. Loading and Processing Data FREE CHAPTER 3. TensorFlow Development 4. Regression and Classification Models 5. Classification Models 6. Regularization and Hyperparameter Tuning 7. Convolutional Neural Networks 8. Pre-Trained Networks 9. Recurrent Neural Networks 10. Custom TensorFlow Components 11. Generative Models Appendix

Introduction

In the previous chapter, you learned how convolution neural networks (CNNs) analyze images and learn relevant patterns to classify their main subjects or identify objects within them. You also saw the different types of layers used for such models.

But rather than training a model from scratch, it would be more efficient if you could reuse existing models with pre-calculated weights. This is exactly what transfer learning and fine-tuning are about. You will learn how to apply these techniques to your own projects and datasets in this chapter.

You will also look at the ImageNet competition and the corresponding dataset that is used by deep learning researchers to benchmark their models against state-of-the-art algorithms. Finally, you will learn how to use TensorFlow Hub's resources to build your own model.

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