Harris Corner Detector

Unveiling the Magic of Image Feature Detection

Fouad Sabry

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Beschreibung

What is Harris Corner Detector


The Harris corner detector is a corner detection operator that is commonly used in computer vision algorithms to extract corners and infer features of an image. It was first introduced by Chris Harris and Mike Stephens in 1988 upon the improvement of Moravec's corner detector. Compared to its predecessor, Harris' corner detector takes the differential of the corner score into account with reference to direction directly, instead of using shifting patches for every 45 degree angles, and has been proved to be more accurate in distinguishing between edges and corners. Since then, it has been improved and adopted in many algorithms to preprocess images for subsequent applications.


How you will benefit


(I) Insights, and validations about the following topics:


Chapter 1: Harris corner detector


Chapter 2: Corner detection


Chapter 3: Structure tensor


Chapter 4: Harris affine region detector


Chapter 5: Lucas-Kanade method


Chapter 6: Hessian matrix


Chapter 7: Geometric feature learning


Chapter 8: Tensor density


Chapter 9: Mehrotra predictor-corrector method


Chapter 10: Discrete Laplace operator


(II) Answering the public top questions about harris corner detector.


(III) Real world examples for the usage of harris corner detector in many fields.


Who this book is for


Professionals, undergraduate and graduate students, enthusiasts, hobbyists, and those who want to go beyond basic knowledge or information for any kind of Harris Corner Detector.

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Schlagwörter

Geometric feature learning, Harris corner detector, Lucas-Kanade method, Hessian matrix, Harris affine region detector, Structure tensor, Corner detection