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Practical Computer Vision

You're reading from  Practical Computer Vision

Product type Book
Published in Feb 2018
Publisher Packt
ISBN-13 9781788297684
Pages 234 pages
Edition 1st Edition
Languages
Author (1):
Abhinav Dadhich Abhinav Dadhich
Profile icon Abhinav Dadhich
Toc

Table of Contents (12) Chapters close

Preface 1. A Fast Introduction to Computer Vision 2. Libraries, Development Platform, and Datasets 3. Image Filtering and Transformations in OpenCV 4. What is a Feature? 5. Convolutional Neural Networks 6. Feature-Based Object Detection 7. Segmentation and Tracking 8. 3D Computer Vision 9. Mathematics for Computer Vision 10. Machine Learning for Computer Vision 11. Other Books You May Enjoy

Datasets and libraries

We will be continuing the use of OpenCV and NumPy for image processing. For deep learning, we will use Keras with the TensorFlow backend. For segmentation, we will be using the Pascal VOC dataset. This has annotations for object detection, as well as segmentation. For tracking, we will use the MOT16 dataset, which consists of an annotated sequence of images from video. We will mention how to use the code in the sections where it is used.

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