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Neural Network Programming with TensorFlow

You're reading from   Neural Network Programming with TensorFlow Unleash the power of TensorFlow to train efficient neural networks

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Product type Paperback
Published in Nov 2017
Publisher Packt
ISBN-13 9781788390392
Length 274 pages
Edition 1st Edition
Languages
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Authors (2):
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Manpreet Singh Ghotra Manpreet Singh Ghotra
Author Profile Icon Manpreet Singh Ghotra
Manpreet Singh Ghotra
Rajdeep Dua Rajdeep Dua
Author Profile Icon Rajdeep Dua
Rajdeep Dua
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Toc

Table of Contents (11) Chapters Close

Preface 1. Maths for Neural Networks FREE CHAPTER 2. Deep Feedforward Networks 3. Optimization for Neural Networks 4. Convolutional Neural Networks 5. Recurrent Neural Networks 6. Generative Models 7. Deep Belief Networking 8. Autoencoders 9. Research in Neural Networks 10. Getting started with TensorFlow

What is optimization?


The process to find maxima or minima is based on constraints. The choice of optimization algorithm for your deep learning model can mean the difference between good results in minutes, hours, and days.

Note

Optimization sits at the center of deep learning. Most learning problems reduce to optimization problems. Let's imagine we are solving a problem for some set of data. Using this pre-processed data, we train a model by solving an optimization problem, which optimizes the weights of the model with regards to the chosen loss function and some regularization function.

Hyper parameters of a model play a significant role in the efficient training of a model. Therefore, it is essential to use the different optimization strategies and algorithms to measure appropriate and optimum values of model's hyper parameters, which affect our Model's learning process, and finally the output of a model.

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