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Hands-On Deep Learning with Apache Spark

You're reading from   Hands-On Deep Learning with Apache Spark Build and deploy distributed deep learning applications on Apache Spark

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Product type Paperback
Published in Jan 2019
Publisher Packt
ISBN-13 9781788994613
Length 322 pages
Edition 1st Edition
Languages
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Author (1):
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Guglielmo Iozzia Guglielmo Iozzia
Author Profile Icon Guglielmo Iozzia
Guglielmo Iozzia
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Table of Contents (19) Chapters Close

Preface 1. The Apache Spark Ecosystem FREE CHAPTER 2. Deep Learning Basics 3. Extract, Transform, Load 4. Streaming 5. Convolutional Neural Networks 6. Recurrent Neural Networks 7. Training Neural Networks with Spark 8. Monitoring and Debugging Neural Network Training 9. Interpreting Neural Network Output 10. Deploying on a Distributed System 11. NLP Basics 12. Textual Analysis and Deep Learning 13. Convolution 14. Image Classification 15. What's Next for Deep Learning? 16. Other Books You May Enjoy Appendix A: Functional Programming in Scala 1. Appendix B: Image Data Preparation for Spark

Hyperparameter optimization

Before any training can begin, ML techniques in general, and so DL techniques, have a set of parameters that have to be chosen. They are referred to as hyperparameters. Keeping focus on DL, we can say that some of these (the number of layers and their size) define the architecture of a neural network, while others define the learning process (learning rate, regularization, and so on). Hyperparameter optimization is an attempt to automate this process (that has a significant impact on the results achieved by training a neural network) using a dedicated software that applies some search strategies. DL4J provides a tool, Arbiter, for hyperparameter optimization of neural nets. This tool doesn't fully automate the process—a manual intervention from data scientists or developers is needed in order to specify the search spaces (the ranges of valid...

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