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Synthetic Data for Deep Learning

Synthetic Data for Deep Learning

Paperback

Series: Springer Optimization and Its Applications, Book 174

Business GeneralProbability & StatisticsProgramming

ISBN10: 3030751805
ISBN13: 9783030751807
Publisher: Springer
Published: Jun 28 2022
Pages: 348
Weight: 1.12
Height: 0.75 Width: 6.14 Depth: 9.21
Language: English

This is the first book on synthetic data for deep learning, and its breadth of coverage may render this book as the default reference on synthetic data for years to come. The book can also serve as an introduction to several other important subfields of machine learning that are seldom touched upon in other books. Machine learning as a discipline would not be possible without the inner workings of optimization at hand. The book includes the necessary sinews of optimization though the crux of the discussion centers on the increasingly popular tool for training deep learning models, namely synthetic data. It is expected that the field of synthetic data will undergo exponential growth in the near future. This book serves as a comprehensive survey of the field.

Also from

Nikolenko, Sergey I.

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Business General