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Neural Network Projects with Python

You're reading from   Neural Network Projects with Python The ultimate guide to using Python to explore the true power of neural networks through six projects

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Product type Paperback
Published in Feb 2019
Publisher Packt
ISBN-13 9781789138900
Length 308 pages
Edition 1st Edition
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Author (1):
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James Loy James Loy
Author Profile Icon James Loy
James Loy
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Table of Contents (10) Chapters Close

Preface 1. Machine Learning and Neural Networks 101 2. Predicting Diabetes with Multilayer Perceptrons FREE CHAPTER 3. Predicting Taxi Fares with Deep Feedforward Networks 4. Cats Versus Dogs - Image Classification Using CNNs 5. Removing Noise from Images Using Autoencoders 6. Sentiment Analysis of Movie Reviews Using LSTM 7. Implementing a Facial Recognition System with Neural Networks 8. What's Next? 9. Other Books You May Enjoy

Siamese neural networks

So far, we have seen that a pure CNN and a pure Euclidean distance approach would not work well for facial recognition. However, we don't have to discard them entirely. Each of them provides something useful for us. Can we combine them together to form something better?

Intuitively, humans recognize faces by comparing their key features. For example, humans use features such as the shape of the eyes, the thickness of the eyebrows, the size of the nose, the overall shape of the face, and so on to recognize a person. This ability comes naturally to us, and we are seldom affected by variations in angles and lighting. Could we somehow teach a neural network to identify these features from images of faces, before using the Euclidean distance to measure the similarity between the identified features? This should sound familiar to you! As we have seen in...

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