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Hands-On Convolutional Neural Networks with TensorFlow

You're reading from   Hands-On Convolutional Neural Networks with TensorFlow Solve computer vision problems with modeling in TensorFlow and Python

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Product type Paperback
Published in Aug 2018
Publisher Packt
ISBN-13 9781789130331
Length 272 pages
Edition 1st Edition
Languages
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Authors (5):
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Richard Burton Richard Burton
Author Profile Icon Richard Burton
Richard Burton
Giounona Tzanidou Giounona Tzanidou
Author Profile Icon Giounona Tzanidou
Giounona Tzanidou
Iffat Zafar Iffat Zafar
Author Profile Icon Iffat Zafar
Iffat Zafar
Leonardo Araujo Leonardo Araujo
Author Profile Icon Leonardo Araujo
Leonardo Araujo
Nimesh Patel Nimesh Patel
Author Profile Icon Nimesh Patel
Nimesh Patel
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Table of Contents (12) Chapters Close

Preface 1. Setup and Introduction to TensorFlow FREE CHAPTER 2. Deep Learning and Convolutional Neural Networks 3. Image Classification in TensorFlow 4. Object Detection and Segmentation 5. VGG, Inception Modules, Residuals, and MobileNets 6. Autoencoders, Variational Autoencoders, and Generative Adversarial Networks 7. Transfer Learning 8. Machine Learning Best Practices and Troubleshooting 9. Training at Scale 10. References 11. Other Books You May Enjoy

Machine Learning Best Practices and Troubleshooting

It is essential in machine learning engineering to know how to proceed during the development of a system to avoid pitfalls and address common issues. The easiest way to create a machine learning system, that saves you money and time, is to reuse code and pretrained models that have been applied to similar problems to your own. If this does not cover your needs, then you may need to train your own CNN architecture as this can sometimes be the best way to solve your problem. However, one of the biggest challenges to face is finding large scale, publicly available datasets that are tailor-made to your problem. Therefore, it is often the case that you may need to create your own dataset. When creating your own dataset it is very crucial to organize it appropriately in order to insure successful model training.

In this chapter we...

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