Book Image

Deep Learning with TensorFlow 2 and Keras - Second Edition

By : Antonio Gulli, Amita Kapoor, Sujit Pal
Book Image

Deep Learning with TensorFlow 2 and Keras - Second Edition

By: Antonio Gulli, Amita Kapoor, Sujit Pal

Overview of this book

Deep Learning with TensorFlow 2 and Keras, Second Edition teaches neural networks and deep learning techniques alongside TensorFlow (TF) and Keras. You’ll learn how to write deep learning applications in the most powerful, popular, and scalable machine learning stack available. TensorFlow is the machine learning library of choice for professional applications, while Keras offers a simple and powerful Python API for accessing TensorFlow. TensorFlow 2 provides full Keras integration, making advanced machine learning easier and more convenient than ever before. This book also introduces neural networks with TensorFlow, runs through the main applications (regression, ConvNets (CNNs), GANs, RNNs, NLP), covers two working example apps, and then dives into TF in production, TF mobile, and using TensorFlow with AutoML.
Table of Contents (19 chapters)
17
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18
Index

References

  1. Rumelhart, David E., Geoffrey E. Hinton, and Ronald J. Williams. Learning Internal Representations by Error Propagation. No. ICS-8506. California Univ San Diego La Jolla Inst for Cognitive Science, 1985 (http://www.cs.toronto.edu/~fritz/absps/pdp8.pdf).
  2. Hinton, Geoffrey E., and Ruslan R. Salakhutdinov. Reducing the dimensionality of data with neural networks. science 313.5786 (2006): 504-507. (https://www.semanticscholar.org/paper/Reducing-the-dimensionality-of-data-with-neural-Hinton-Salakhutdinov/46eb79e5eec8a4e2b2f5652b66441e8a4c921c3e)
  3. Masci, Jonathan, et al. Stacked convolutional auto-encoders for hierarchical feature extraction. Artificial Neural Networks and Machine Learning–ICANN 2011 (2011): 52-59. (https://www.semanticscholar.org/paper/Reducing-the-dimensionality-of-data-with-neural-Hinton-Salakhutdinov/46eb79e5eec8a4e2b2f5652b66441e8a4c921c3e)
  4. Japkowicz, Nathalie, Catherine Myers, and Mark Gluck. A novelty detection approach to classification...