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Machine Learning with TensorFlow 1.x

You're reading from   Machine Learning with TensorFlow 1.x Second generation machine learning with Google's brainchild - TensorFlow 1.x

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Product type Paperback
Published in Nov 2017
Publisher Packt
ISBN-13 9781786462961
Length 304 pages
Edition 1st Edition
Languages
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Authors (3):
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 Hua Hua
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Hua
 Ahmed Ahmed
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Ahmed
 Ul Azeem Ul Azeem
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Ul Azeem
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Toc

Table of Contents (19) Chapters Close

Title Page
Credits
About the Authors
About the Reviewer
www.PacktPub.com
Customer Feedback
Preface
1. Getting Started with TensorFlow FREE CHAPTER 2. Your First Classifier 3. The TensorFlow Toolbox 4. Cats and Dogs 5. Sequence to Sequence Models-Parlez-vous Français? 6. Finding Meaning 7. Making Money with Machine Learning 8. The Doctor Will See You Now 9. Cruise Control - Automation 10. Go Live and Go Big 11. Going Further - 21 Problems 12. Advanced Installation

Using the classifier


We will demonstrate the usage of the classifier with notMNIST_small.tar.gz, which becomes the test set. For ongoing use of the classifier, you can source your own images and run them through a similar pipeline to test, not train.

You can create some 28x28 images yourself and place them into the test set for evaluation. You will be pleasantly surprised!

The practical issue with field usage is the heterogeneity of images in the wild. You may need to find images, crop them, downscale them, or perform a dozen other transformations. This all falls into the usage pipeline, which we discussed earlier.

Another technique to cover larger images, such as finding a letter on a page-sized image, is to slide a small window across the large image and feed every subsection of the image through the classifier.

We'll be taking our models into production in future chapters but, as a preview, one common setup is to move the trained model into a server on the cloud. The façade of the system...

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