Ebook Gratuit TensorFlow for Deep Learning : From Linear Regression to Reinforcement Learning, by Bharath Ramsundar

Ebook Gratuit TensorFlow for Deep Learning : From Linear Regression to Reinforcement Learning, by Bharath Ramsundar

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TensorFlow for Deep Learning : From Linear Regression to Reinforcement Learning, by Bharath Ramsundar

TensorFlow for Deep Learning : From Linear Regression to Reinforcement Learning, by Bharath Ramsundar


TensorFlow for Deep Learning : From Linear Regression to Reinforcement Learning, by Bharath Ramsundar


Ebook Gratuit TensorFlow for Deep Learning : From Linear Regression to Reinforcement Learning, by Bharath Ramsundar

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TensorFlow for Deep Learning : From Linear Regression to Reinforcement Learning, by Bharath Ramsundar

Détails sur le produit

Broché: 300 pages

Editeur : O'Reilly Media, Inc, USA (4 avril 2018)

Langue : Anglais

ISBN-10: 1491980451

ISBN-13: 978-1491980453

Dimensions du produit:

17,5 x 1,3 x 23,1 cm

Moyenne des commentaires client :

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Classement des meilleures ventes d'Amazon:

440.032 en Livres (Voir les 100 premiers en Livres)

This book has one page for every Data Scientific topic, each of which could take a book of its own. It is too short even for a review, not speaking about a textbook. Absolutely useless.

I am happy to have my book. The content is clear and rich. However on the delivery of my new book, some of the pages were crinkled.

Good fundamentals to understand how to code and play with tensors and python for Deep Learning

Had high expectations but the book totally ruined them. The book does not covers concepts which you might already know. Finally I had no idea whether this book is intended to teach more of tensorflow concepts or deep learning paradigms. In my opinion it failed to do both. The book starts of well explaining the core concepts of Tensorflow. But as you go into individual chapters for sequential processing or vision, they just shared the code and did a very poor job in explaining the Tensorflow Api. It is equivalent to seeing some code on github and try learning yourself using google.Since I already understand the core concepts like sessions/graphs this book is of no use to me. The worst part is that the code samples are the most basic you could get. For text processing they took Tensorflow.org tutorial and diluted it so much there is hardly anything to learn on text processing side.Essentially this book = basic concepts (which most people already know) + aggregation of github codes for each subject ( which are too basic and you can easily find much much better repositories online).The worst part is even the code samples are buggy. Even the basic linear regression code is wrong and does not optimise unless you change that. In my opinion the text processing code is wrong too, but I'm not too sure of it.

TensorFlow for Deep Learning by Ramsundar and Zadeh is 230 pages of great machine learning content that should compliment any data science library. If I had to complain, my largest gripe would be the strong bias toward the mathematical details of tensor calculus. Not that math is undesirable, but with only 230 pages to spare I felt that equations were often thrown out without adequate explanation.The introduction also comes on a little strong. The first chapter is named “Machine Learning Eats Computer Science”. Perhaps a better title would be “Deep Learning Hype at Full Throttle”. But let’s be real, deep learning is a subset of computer science – very useful for certain tasks and useless for others. The text would have you believe that deep learning is some new alien technology that is not related to algorithmic approaches at all.But this book has it where it counts. The structure of the chapters is laid out in a very intuitive manner that demonstrates that these authors know exactly what they are talking about and are eager to share the knowledge. First, Tensorflow primitive are introduced, next linear regression is explored, then on to fully connected deep networks. The fun really begins next with hyperparameter optimization, convolutional neural networks, recurrent neural networks, reinforced learning, and finally training. Relevant topics, logistically ordered, and adequately explained.It’s not a perfect book, however. Some of the diagrams and graphs have descriptions that refer to colors, yet all the images printed in the book are black and white. This makes some figures very difficult to interpret.The ending chapter on ethics also shares a lot in common with the hyped-up introduction – for example, dramatic fretting over sentient war terminators and suggesting quitting your job over questionable learning applications is a little much. In truth, governments leveraging technology to suppress freedom should be our concern – and this has been true for all time and all technologies. Enforceable checks and balances of a structured government have always been the best defense, not quitting a job… but I digress.Overall a very worthy addition to a data science library. You’ll probably want to have at least an introductory grasp on the Tensorflow and deep learning before reading this book, but it’s a great next step. Highly recommended.

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