Mehdi (University of San Diego) Ghayoumi 
Deep Learning in Practice 

Ajutor

Deep Learning in Practice helps you learn how to develop and optimize a model for your projects using Deep Learning (DL) methods and architectures.


Key features:



  • D emonstrates a quick review on Python, Num Py, and Tensor Flow fundamentals.

  • E xplains and provides examples of deploying Tensor Flow and Keras in several projects.

  • E xplains the fundamentals of Artificial Neural Networks (ANNs).

  • P resents several examples and applications of ANNs.

  • L earning the most popular DL algorithms features.

  • E xplains and provides examples for the DL algorithms that are presented in this book.

  • A nalyzes the DL network’s parameter and hyperparameters.

  • R eviews state-of-the-art DL examples.

  • N ecessary and main steps for DL modeling.

  • I mplements a Virtual Assistant Robot (VAR) using DL methods.

  • N ecessary and fundamental information to choose a proper DL algorithm.

  • G ives instructions to learn how to optimize your DL model IN PRACTICE .


This book is useful for undergraduate and graduate students, as well as practitioners in industry and academia. It will serve as a useful reference for learning deep learning fundamentals and implementing a deep learning model for any project, step by step.

€54.06
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Format EPUB ● Pagini 218 ● ISBN 9781000483390 ● Editura CRC Press ● Publicat 2021 ● Descărcabil 3 ori ● Valută EUR ● ID 8171926 ● Protecție împotriva copiilor Adobe DRM
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