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Automated Machine Learning with AutoKeras

You're reading from   Automated Machine Learning with AutoKeras Deep learning made accessible for everyone with just few lines of coding

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Product type Paperback
Published in May 2021
Publisher Packt
ISBN-13 9781800567641
Length 194 pages
Edition 1st Edition
Languages
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Author (1):
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Luis Sobrecueva Luis Sobrecueva
Author Profile Icon Luis Sobrecueva
Luis Sobrecueva
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Table of Contents (15) Chapters Close

Preface 1. Section 1: AutoML Fundamentals
2. Chapter 1: Introduction to Automated Machine Learning FREE CHAPTER 3. Chapter 2: Getting Started with AutoKeras 4. Chapter 3: Automating the Machine Learning Pipeline with AutoKeras 5. Section 2: AutoKeras in Practice
6. Chapter 4: Image Classification and Regression Using AutoKeras 7. Chapter 5: Text Classification and Regression Using AutoKeras 8. Chapter 6: Working with Structured Data Using AutoKeras 9. Chapter 7: Sentiment Analysis Using AutoKeras 10. Chapter 8: Topic Classification Using AutoKeras 11. Section 3: Advanced AutoKeras
12. Chapter 9: Working with Multimodal and Multitasking Data 13. Chapter 10: Exporting and Visualizing the Models 14. Other Books You May Enjoy

Hello MNIST: Implementing our first AutoKeras experiment

Our first experiment will be an image classifier using the MNIST dataset. This MINST classification task is like the "hello world" of DL. It is a classic problem of classifying images of handwritten digits into 10 categories (0 to 9). The images come from the MNIST, the most famous and widely used dataset in ML. It contains 70,000 images (60,000 for training and 10,000 for testing) collected in the 1980s by the NIST.

In the next screenshot, you can see some samples of every number in the MNIST dataset:

Figure 2.10 – MNIST dataset sample images

AutoKeras is designed to easily classify all types of data inputs—such as structured data, text, or images—as each of them contains a specific class.

For this task, we will use ImageClassifier. This class generates and tests different models and hyperparameters, returning an optimal classifier to categorize the images of handwritten...

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