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Neural Networks with Keras Cookbook

You're reading from   Neural Networks with Keras Cookbook Over 70 recipes leveraging deep learning techniques across image, text, audio, and game bots

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Product type Paperback
Published in Feb 2019
Publisher Packt
ISBN-13 9781789346640
Length 568 pages
Edition 1st Edition
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Authors (2):
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V Kishore Ayyadevara V Kishore Ayyadevara
Author Profile Icon V Kishore Ayyadevara
V Kishore Ayyadevara
Srinivas Pradeep Srinivas Pradeep
Author Profile Icon Srinivas Pradeep
Srinivas Pradeep
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Toc

Table of Contents (18) Chapters Close

Preface 1. Building a Feedforward Neural Network 2. Building a Deep Feedforward Neural Network FREE CHAPTER 3. Applications of Deep Feedforward Neural Networks 4. Building a Deep Convolutional Neural Network 5. Transfer Learning 6. Detecting and Localizing Objects in Images 7. Image Analysis Applications in Self-Driving Cars 8. Image Generation 9. Encoding Inputs 10. Text Analysis Using Word Vectors 11. Building a Recurrent Neural Network 12. Applications of a Many-to-One Architecture RNN 13. Sequence-to-Sequence Learning 14. End-to-End Learning 15. Audio Analysis 16. Reinforcement Learning 17. Other Books You May Enjoy

Impact of batch size on model accuracy

In the previous sections, for all the models that we have built, we considered a batch size of 32. In this section, we will try to understand the impact of varying the batch size on accuracy.

Getting ready

To understand the reason batch size has an impact on model accuracy, let's contrast two scenarios where the total dataset size is 60,000:

  • Batch size is 30,000
  • Batch size is 32

When the batch size is large, the number of times of weight update per epoch is small, when compared to the scenario when the batch size is small.

The reason for a high number of weight updates per epoch when the batch size is small is that less data points are considered to calculate the loss value. This...

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Neural Networks with Keras Cookbook
Published in: Feb 2019
Publisher: Packt
ISBN-13: 9781789346640
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