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Python Deep Learning Cookbook

You're reading from   Python Deep Learning Cookbook Over 75 practical recipes on neural network modeling, reinforcement learning, and transfer learning using Python

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Product type Paperback
Published in Oct 2017
Publisher Packt
ISBN-13 9781787125193
Length 330 pages
Edition 1st Edition
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Author (1):
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Indra den Bakker Indra den Bakker
Author Profile Icon Indra den Bakker
Indra den Bakker
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Table of Contents (15) Chapters Close

Preface 1. Programming Environments, GPU Computing, Cloud Solutions, and Deep Learning Frameworks FREE CHAPTER 2. Feed-Forward Neural Networks 3. Convolutional Neural Networks 4. Recurrent Neural Networks 5. Reinforcement Learning 6. Generative Adversarial Networks 7. Computer Vision 8. Natural Language Processing 9. Speech Recognition and Video Analysis 10. Time Series and Structured Data 11. Game Playing Agents and Robotics 12. Hyperparameter Selection, Tuning, and Neural Network Learning 13. Network Internals 14. Pretrained Models

Extracting bottleneck features with ResNet

The ResNet architecture was introduced in 2015 in the paper Deep Residual Learning for Image Recognition (https://arxiv.org/abs/1512.03385). ResNet has a different network architecture than VGG. It consists of micro-architectures that are stacked on top of each other. ResNet won the ILSVRC competition in 2015 and surpassed human performance on the ImageNet dataset. In this recipe, we will demonstrate how to leverage ResNet50 weights to extract bottleneck features. 

How to do it...

  1. We start by implementing all Keras tools:
from keras.models import Model
from keras.applications.resnet50 import ResNet50

from keras.applications.resnet50 import preprocess_input
from keras...
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