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Deep Learning for Computer Vision

You're reading from  Deep Learning for Computer Vision

Product type Book
Published in Jan 2018
Publisher Packt
ISBN-13 9781788295628
Pages 310 pages
Edition 1st Edition
Languages
Author (1):
Rajalingappaa Shanmugamani Rajalingappaa Shanmugamani
Profile icon Rajalingappaa Shanmugamani

Table of Contents (17) Chapters

Title Page
Copyright and Credits
Packt Upsell
Foreword
Contributors
Preface
Getting Started Image Classification Image Retrieval Object Detection Semantic Segmentation Similarity Learning Image Captioning Generative Models Video Classification Deployment Other Books You May Enjoy

Summary


In this chapter, you have learned how to extract features from an image and use them for CBIR. You also learned how to use TensorFlow Serving to get the inference of image features. We saw how to utilize approximate nearest neighbour or faster matching rather than a linear scan. You understood how hashing may still improve the results. The idea of autoencoders was introduced, and we saw how to train smaller feature vectors for search. An example of image denoising using an autoencoder was also shown. We saw the possibility of using a bit-based comparison that can scale this up to billions of images. 

In the next chapter, we will see how to train models for object detection problems. We will leverage open source models to get good accuracy and understand all the algorithms behind them. At the end, we will use all the ideas to train a pedestrian detection model.

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