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Mastering OpenCV 4

You're reading from   Mastering OpenCV 4 A comprehensive guide to building computer vision and image processing applications with C++

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Product type Paperback
Published in Dec 2018
Publisher
ISBN-13 9781789533576
Length 280 pages
Edition 3rd Edition
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Authors (2):
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Roy Shilkrot Roy Shilkrot
Author Profile Icon Roy Shilkrot
Roy Shilkrot
David Millán Escrivá David Millán Escrivá
Author Profile Icon David Millán Escrivá
David Millán Escrivá
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Toc

Table of Contents (12) Chapters Close

Preface 1. Cartoonifier and Skin Color Analysis on the RaspberryPi FREE CHAPTER 2. Explore Structure from Motion with the SfM Module 3. Face Landmark and Pose with the Face Module 4. Number Plate Recognition with Deep Convolutional Networks 5. Face Detection and Recognition with the DNN Module 6. Introduction to Web Computer Vision with OpenCV.js 7. Android Camera Calibration and AR Using the ArUco Module 8. iOS Panoramas with the Stitching Module 9. Finding the Best OpenCV Algorithm for the Job 10. Avoiding Common Pitfalls in OpenCV 11. Other Books You May Enjoy

Summary

Choosing the best computer vision algorithm for the job is an illusive process, which is the reason many engineers do not perform it. While published survey work on different choices provides benchmark performance, in many situations it doesn't model the particular system requirements an engineer might encounter, and new tests must be implemented. The major problem in testing algorithmic options is instrumentation code, which is an added work for engineers, and not always simple. OpenCV provides base APIs for algorithms in several vision problem domains, but the cover age is not complete. On the other hand, OpenCV has very extensive coverage of problems in computer vision, and is one of the premier frameworks to perform such tests.

Making an informed decision when picking an algorithm is a very important aspect of vision engineering, with many elements to optimize...

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