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Mastering TensorFlow 1.x

You're reading from   Mastering TensorFlow 1.x Advanced machine learning and deep learning concepts using TensorFlow 1.x and Keras

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Product type Paperback
Published in Jan 2018
Publisher Packt
ISBN-13 9781788292061
Length 474 pages
Edition 1st Edition
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Toc

Table of Contents (21) Chapters Close

Preface 1. TensorFlow 101 2. High-Level Libraries for TensorFlow FREE CHAPTER 3. Keras 101 4. Classical Machine Learning with TensorFlow 5. Neural Networks and MLP with TensorFlow and Keras 6. RNN with TensorFlow and Keras 7. RNN for Time Series Data with TensorFlow and Keras 8. RNN for Text Data with TensorFlow and Keras 9. CNN with TensorFlow and Keras 10. Autoencoder with TensorFlow and Keras 11. TensorFlow Models in Production with TF Serving 12. Transfer Learning and Pre-Trained Models 13. Deep Reinforcement Learning 14. Generative Adversarial Networks 15. Distributed Models with TensorFlow Clusters 16. TensorFlow Models on Mobile and Embedded Platforms 17. TensorFlow and Keras in R 18. Debugging TensorFlow Models 19. Tensor Processing Units
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Tensor Processing Units

A Tensor Processing Unit (TPU) is an application-specific integrated circuit (ASIC) that implements hardware circuits optimized for the computation requirements of deep neural networks. A TPU is based on a Complex Instruction Set Computer (CISC) instruction set that implements high-level instructions for running complex tasks for training deep neural networks. The heart of the TPU architecture resides in the systolic arrays that optimize the matrix operations.

The Architecture of TPU
Image from: https://cloud.google.com/blog/big-data/2017/05/images/149454602921110/tpu-15.png

TensorFlow provides a compiler and software stack that translates the API calls from TensorFlow graphs into TPU instructions. The following block diagram depicts the architecture of TensorFlow models running on top of the TPU stack:

Image from: https://cloud.google.com/blog/big-data...
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