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Hands-On Neural Networks with TensorFlow 2.0

You're reading from   Hands-On Neural Networks with TensorFlow 2.0 Understand TensorFlow, from static graph to eager execution, and design neural networks

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Product type Paperback
Published in Sep 2019
Publisher Packt
ISBN-13 9781789615555
Length 358 pages
Edition 1st Edition
Languages
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Author (1):
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Paolo Galeone Paolo Galeone
Author Profile Icon Paolo Galeone
Paolo Galeone
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Table of Contents (15) Chapters Close

Preface 1. Section 1: Neural Network Fundamentals FREE CHAPTER
2. What is Machine Learning? 3. Neural Networks and Deep Learning 4. Section 2: TensorFlow Fundamentals
5. TensorFlow Graph Architecture 6. TensorFlow 2.0 Architecture 7. Efficient Data Input Pipelines and Estimator API 8. Section 3: The Application of Neural Networks
9. Image Classification Using TensorFlow Hub 10. Introduction to Object Detection 11. Semantic Segmentation and Custom Dataset Builder 12. Generative Adversarial Networks 13. Bringing a Model to Production 14. Other Books You May Enjoy

Fine-tuning

Fine-tuning is a different approach to transfer learning. Both share the same goal of transferring the knowledge learned on a dataset on a specific task to a different dataset and a different task. Transfer learning, as shown in the previous section, reuses the pre-trained model without making any changes to its feature extraction part; in fact, it is considered a non-trainable part of the network.

Fine-tuning, instead, consists of fine-tuning the pre-trained network weights by continuing backpropagation.

When to fine-tune

Fine-tuning a network requires having the correct hardware; backpropagating the gradients through a deeper network requires you to load more information in memory. Very deep networks have been...

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