Deep Learning With Python

Deep Learning With Python

Author
Francois Chollet [Chollet, Francois]
Publisher
Manning Publications
Language
English
Year
2017
ISBN
9781617294433,1617294438
File Type
epub
File Size
7.2 MiB

**Summary**__Deep Learning with Python__ introduces the field of deep learning using the Python language and the powerful Keras library. Written by Keras creator and Google AI researcher François Chollet, this book builds your understanding through intuitive explanations and practical examples.Purchase of the print book includes a free eBook in PDF, Kindle, and ePub formats from Manning Publications.**About the Technology**Machine learning has made remarkable progress in recent years. We went from near-unusable speech and image recognition, to near-human accuracy. We went from machines that couldn't beat a serious Go player, to defeating a world champion. Behind this progress is deep learning—a combination of engineering advances, best practices, and theory that enables a wealth of previously impossible smart applications.**About the Book**__Deep Learning with Python__ introduces the field of deep learning using the Python language and the powerful Keras library. Written by Keras creator and Google AI researcher François Chollet, this book builds your understanding through intuitive explanations and practical examples. You'll explore challenging concepts and practice with applications in computer vision, natural-language processing, and generative models. By the time you finish, you'll have the knowledge and hands-on skills to apply deep learning in your own projects.**What's Inside*** Deep learning from first principles* Setting up your own deep-learning environment* Image-classification models* Deep learning for text and sequences* Neural style transfer, text generation, and image generation**About the Reader**Readers need intermediate Python skills. No previous experience with Keras, TensorFlow, or machine learning is required.**About the Author****François Chollet** works on deep learning at Google in Mountain View, CA. He is the creator of the Keras deep-learning library, as well as a contributor to the TensorFlow machine-learning framework. He also does deep-learning research, with a focus on computer vision and the application of machine learning to formal reasoning. His papers have been published at major conferences in the field, including the Conference on Computer Vision and Pattern Recognition (CVPR), the Conference and Workshop on Neural Information Processing Systems (NIPS), the International Conference on Learning Representations (ICLR), and others.**Table of Contents**PART 1 - FUNDAMENTALS OF DEEP LEARNING1. What is deep learning?2. Before we begin: the mathematical building blocks of neural networks3. Getting started with neural networks4. Fundamentals of machine learningPART 2 - DEEP LEARNING IN PRACTICE1. Deep learning for computer vision2. Deep learning for text and sequences3. Advanced deep-learning best practices4. Generative deep learning5. Conclusions6. appendix A - Installing Keras and its dependencies on Ubuntu7. appendix B - Running Jupyter notebooks on an EC2 GPU instance\*\*

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