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Geometry Fundamentals of Computer Vision [Kõva köide]

  • Formaat: Hardback, 510 pages, kõrgus x laius: 235x155 mm, 74 Illustrations, color; 59 Illustrations, black and white; XIV, 510 p. 133 illus., 74 illus. in color., 1 Hardback
  • Ilmumisaeg: 16-Sep-2025
  • Kirjastus: Springer Nature Switzerland AG
  • ISBN-10: 9819673437
  • ISBN-13: 9789819673438
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  • Formaat: Hardback, 510 pages, kõrgus x laius: 235x155 mm, 74 Illustrations, color; 59 Illustrations, black and white; XIV, 510 p. 133 illus., 74 illus. in color., 1 Hardback
  • Ilmumisaeg: 16-Sep-2025
  • Kirjastus: Springer Nature Switzerland AG
  • ISBN-10: 9819673437
  • ISBN-13: 9789819673438

This book enables readers to acquire a fundamental knowledge of computer vision from the perspective of geometry, including knowledge of image processing and pattern recognition intended for two-dimensional geometry analysis of images, knowledge of computer vision intended for three-dimensional geometry analysis of images. From the pedagogic point of view, the author intends that this book helps students develop an ability to flexibly apply geometry fundamentals of computer vision to solve practical engineering problems. In this sense, this book is also a professional reference for engineers dedicated to computer vision involved intelligent systems. This book attaches importance to clarification of how relevant knowledge of computer vision stems from practical applications and emphasizes the dialectic relationship between the knowledge and practical applications, enabling readers not only to “know how” for practice, but also to “know why” in terms of mathematical essence. Throughout this book, the author tends to provide detailed theoretical derivations and explanations to clarify essential reasons behind computer vision methods. Besides, this book provides plenty of original demonstration code scripts (in Matlab) that are complete, interesting, easy for practice, and of application values for engineering activities. By code demonstration, the author presents how to flexibly take advantage of geometry fundamentals of computer vision to realize various kinds of visual effects that are actually technology basis of many interesting and useful applications.

Introduction.- Image Processing For Feature Extraction.- Computational
Geometry.- Projective Geometry And Camera Model.- Camera Calibration.-
Pattern Recognition For Feature Organization.- Applications.
Hao Li, associate professor and doctoral supervisor at Shanghai Jiao Tong University (SJTU). He received the B.Eng. and M.Eng. degrees from the Department of Automation of SJTU in 2006 and 2009 respectively, and received the Ph.D. degree from the Institut National de Recherche en Informatique et en Automatique (INRIA), France, and the Robotics Center of MINES ParisTech, France, in 2012. His expertise consists in automation, computer vision, data fusion, cooperative intelligent systems, and software engineering.