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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
2. What is Machine Learning? FREE CHAPTER 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

Summary

In this chapter, the concepts of transfer learning and fine-tuning were introduced. Training a very deep convolutional neural network from scratch, starting from random weights, requires the correct equipment, which is only found in academia and some big companies. Moreover, it can be a costly process since finding the architecture that achieves state-of-the-art results on a classification task requires multiple models to be designed and trained and for each of them to repeat the training process to search for the hyperparameter configuration that achieves the best results.

For this reason, transfer learning is the recommended practice to follow. It is especially useful when prototyping new solutions since it speeds up the training time and reduces the training costs.

TensorFlow Hub is the online library offered by the TensorFlow ecosystem. It contains an online catalog...

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