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Hands-On Neural Networks with Keras

You're reading from   Hands-On Neural Networks with Keras Design and create neural networks using deep learning and artificial intelligence principles

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Product type Paperback
Published in Mar 2019
Publisher Packt
ISBN-13 9781789536089
Length 462 pages
Edition 1st Edition
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Author (1):
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Niloy Purkait Niloy Purkait
Author Profile Icon Niloy Purkait
Niloy Purkait
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Table of Contents (16) Chapters Close

Preface 1. Section 1: Fundamentals of Neural Networks FREE CHAPTER
2. Overview of Neural Networks 3. A Deeper Dive into Neural Networks 4. Signal Processing - Data Analysis with Neural Networks 5. Section 2: Advanced Neural Network Architectures
6. Convolutional Neural Networks 7. Recurrent Neural Networks 8. Long Short-Term Memory Networks 9. Reinforcement Learning with Deep Q-Networks 10. Section 3: Hybrid Model Architecture
11. Autoencoders 12. Generative Networks 13. Section 4: Road Ahead
14. Contemplating Present and Future Developments 15. Other Books You May Enjoy

Multi-network predictions and ensemble models

Another way to get the best of neural networks is by using ensemble models. The idea is quite simple: why use one network when you can use many? In other words, why not design different neural networks, each sensitive to specific representations in the input data? Then, we can average out their predictions, getting a more generalizable and parsimonious prediction than using just one network.

We can even attribute weights to each network, by pegging each network's prediction to the test accuracy it achieves on the task. Then, we can take a weighted average of the predictions (weighted with their relative accuracies) from each network to get to a more comprehensive prediction altogether.

Intuitively, we just look at the data with different eyes; each network, by virtue of its design, may pay attention to different factors of variance...

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