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Deep Learning with MXNet Cookbook

You're reading from   Deep Learning with MXNet Cookbook Discover an extensive collection of recipes for creating and implementing AI models on MXNet

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Product type Paperback
Published in Dec 2023
Publisher Packt
ISBN-13 9781800569607
Length 370 pages
Edition 1st Edition
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Author (1):
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Andrés P. Torres Andrés P. Torres
Author Profile Icon Andrés P. Torres
Andrés P. Torres
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Table of Contents (12) Chapters Close

Preface 1. Chapter 1: Up and Running with MXNet FREE CHAPTER 2. Chapter 2: Working with MXNet and Visualizing Datasets – Gluon and DataLoader 3. Chapter 3: Solving Regression Problems 4. Chapter 4: Solving Classification Problems 5. Chapter 5: Analyzing Images with Computer Vision 6. Chapter 6: Understanding Text with Natural Language Processing 7. Chapter 7: Optimizing Models with Transfer Learning and Fine-Tuning 8. Chapter 8: Improving Training Performance with MXNet 9. Chapter 9: Improving Inference Performance with MXNet 10. Index 11. Other Books You May Enjoy

Understanding image datasets – loading, managing, and visualizing the Fashion-MNIST dataset

One of the fields that has grown considerably in DL in the last years has been computer vision (CV). Since the AlexNet revolution in 2012, CV has expanded from lab research to surpassing human performance in real-world datasets (known as “in the wild”).

In this recipe, we will explore the simplest CV task: image classification. Given a set of images, our task is to correctly classify that image among a given set of labels (classes).

One of the most classic image classification datasets is the MNIST (which stands for the Modified National Institute of Standards and Technology) database. Similarly sized, but more suited for current CV analysis, is the Fashion-MNIST dataset. This dataset is a multi-label image classification dataset, with a training set of 60k examples and a test set of 10k examples, with each example belonging to 1 of these 10 categories (starting with...

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