High-Speed 3D Imaging with Digital Fringe Projection Techniques (e-bog) af Zhang, Song
Zhang, Song (forfatter)

High-Speed 3D Imaging with Digital Fringe Projection Techniques e-bog

619,55 DKK (inkl. moms 774,44 DKK)
Digital fringe projection (DFP) techniques are used for non-contact shape measurement of 3D images. In the rapidly expanding field of 3D high-speed imaging, the demand for DFP continues to grow due to the technology's fast speed, flexibility, low cost, and high accuracy.High-Speed 3D Imaging with Digital Fringe Projection Techniques discusses the generation of digital fringe with digital video ...
E-bog 619,55 DKK
Forfattere Zhang, Song (forfatter)
Forlag CRC Press
Udgivet 3 september 2018
Længde 198 sider
Genrer PHJ
Sprog English
Format pdf
Beskyttelse LCP
ISBN 9781482234343
Digital fringe projection (DFP) techniques are used for non-contact shape measurement of 3D images. In the rapidly expanding field of 3D high-speed imaging, the demand for DFP continues to grow due to the technology's fast speed, flexibility, low cost, and high accuracy.High-Speed 3D Imaging with Digital Fringe Projection Techniques discusses the generation of digital fringe with digital video projection devices, covering a variety of core technical aspects. The book begins by establishing the theoretical foundations of fringe pattern analysis, reviewing various 3D imaging techniques while highlighting the advantages of DFP. The author then:Describes the differences between digital light processing (DLP), liquid crystal display (LCD), and liquid crystal on silicon (LCoS)Explains how to unwrap phase maps temporally and spatiallyShows how to generate fringe patterns with video projectorsDemonstrates how to convert phase to coordinates through system calibrationsProvides a detailed example of a built-from-scratch 3D imaging systemIncorporating valuable insights gained during the author's 15+ years of 3D imaging research, High-Speed 3D Imaging with Digital Fringe Projection Techniques illuminates the pathway to advancement in high-speed 3D optical imaging using DFP.