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Pro Deep Learning with TensorFlow: A Mathematical Approach to Advanced Artificial Intelligence in Python

Book information

Publisher
Apress
Year
2018
ISBN
9781484230954, 9781484230961
Language
english
Format
EPUB
Filesize
7 MB (7530491 bytes)
Pages
0\0
Time added
2019-02-13 12:47:08

Description

Deploy deep learning solutions in production with ease using TensorFlow. You'll also develop the mathematical understanding and intuition required to invent new deep learning architectures and solutions on your own. Pro Deep Learning with TensorFlow provides practical, hands-on expertise so you can learn deep learning from scratch and deploy meaningful deep learning solutions. This book will allow you to get up to speed quickly using TensorFlow and to optimize different deep learning architectures. All of the practical aspects of deep learning that are relevant in any industry are emphasized in this book. You will be able to use the prototypes demonstrated to build new deep learning applications. The code presented in the book is available in the form of iPython notebooks and scripts which allow you to try out examples and extend them in interesting ways. You will be equipped with the mathematical foundation and scientific knowledge to pursue research in this field and give back to the community.  What You'll Learn Understand full stack deep learning using TensorFlow and gain a solid mathematical foundation for deep learningDeploy complex deep learning solutions in production using TensorFlowCarry out research on deep learning and perform experiments using TensorFlow Who This Book Is For Data scientists and machine learning professionals, software developers, graduate students, and open source enthusiasts Front Matter ....Pages i-xxi Mathematical Foundations (Santanu Pattanayak)....Pages 1-87 Introduction to Deep-Learning Concepts and TensorFlow (Santanu Pattanayak)....Pages 89-152 Convolutional Neural Networks (Santanu Pattanayak)....Pages 153-221 Natural Language Processing Using Recurrent Neural Networks (Santanu Pattanayak)....Pages 223-278 Unsupervised Learning with Restricted Boltzmann Machines and Auto-encoders (Santanu Pattanayak)....Pages 279-343 Advanced Neural Networks (Santanu Pattanayak)....Pages 345-392 Back Matter ....Pages 393-398

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