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Practical Computer Vision

You're reading from   Practical Computer Vision Extract insightful information from images using TensorFlow, Keras, and OpenCV

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Product type Paperback
Published in Feb 2018
Publisher Packt
ISBN-13 9781788297684
Length 234 pages
Edition 1st Edition
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Author (1):
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Abhinav Dadhich Abhinav Dadhich
Author Profile Icon Abhinav Dadhich
Abhinav Dadhich
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Toc

Table of Contents (12) Chapters Close

Preface 1. A Fast Introduction to Computer Vision FREE CHAPTER 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

Segmentation

Segmentation is often referred to as the clustering of pixels of a similar category. An example is as shown in the following screenshot. Here, we see that inputs are on the left and the segmentation results are on the right. The colors of an object are according to pre-defined object categories. These examples are taken from the Pascal VOC dataset:

In the top picture on the left, there are several small aeroplanes in the background and, therefore, we see small pixels colored accordingly in the corresponding image on the right. In the bottom-left picture, there are two pets laying together, therefore, their segmented image on the right has different colors for the pixels belonging to the cat and dog respectively. In this figure, the boundary is differently colored for convenience and does not imply a different category.

In traditional segmentation techniques, the...

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