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Probabilistic deep learning
Paperback
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- Book Synopsis
- Probabilistic Deep Learning with Python shows how probabilistic deep learning models gives readers the tools to identify and account for uncertainty and potential errors in their results. Starting by applying the underlying maximum likelihood principle of curve fitting to deep learning, readers will move on to using the Python-based Tensorflow Probability framework, and set up Bayesian neural networks that can state their uncertainties. Purchase of the print book includes a free eBook in PDF, Kindle, and ePub formats from Manning Publications.
- About The Author
- Oliver Duerr is professor for data science at the University of Applied Sciences in Konstanz, Germany.
- Product Details
-
- ISBN
- 9781617296079
- Format
- Paperback
- Publisher
- Manning Publications, (09 June 2020)
- Number of Pages
- 252
- Weight
- 572 grams
- Language
- English
- Dimensions
- 235 x 187 x 18 mm
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