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Deep Learning By Example

You're reading from  Deep Learning By Example

Product type Book
Published in Feb 2018
Publisher Packt
ISBN-13 9781788399906
Pages 450 pages
Edition 1st Edition
Languages
Toc

Table of Contents (18) Chapters close

Preface 1. Data Science - A Birds' Eye View 2. Data Modeling in Action - The Titanic Example 3. Feature Engineering and Model Complexity – The Titanic Example Revisited 4. Get Up and Running with TensorFlow 5. TensorFlow in Action - Some Basic Examples 6. Deep Feed-forward Neural Networks - Implementing Digit Classification 7. Introduction to Convolutional Neural Networks 8. Object Detection – CIFAR-10 Example 9. Object Detection – Transfer Learning with CNNs 10. Recurrent-Type Neural Networks - Language Modeling 11. Representation Learning - Implementing Word Embeddings 12. Neural Sentiment Analysis 13. Autoencoders – Feature Extraction and Denoising 14. Generative Adversarial Networks 15. Face Generation and Handling Missing Labels 16. Implementing Fish Recognition 17. Other Books You May Enjoy

CIFAR-10 object detection – revisited

In the previous chapter, we trained a simple convolution neural network (CNN) model on the CIFAR-10 dataset. Here, we are going to demonstrate the case of using a pre-trained model as a feature extractor while removing the fully connected layer of the pre-trained model, and then we'll feed these extracted features or transferred values to a softmax layer.

The pre-trained model in this implementation will be the inception model, which will be pre-trained on ImageNet. But bear in mind that this implementation builds on the previous two chapters that introduced CNN.

Solution outline

Again, we are going to replace the final fully connected layer of the pre-trained inception...

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