DocumentCode
3603589
Title
Efficient Shape Reconstruction of Microlens Using Optical Microscopy
Author
Yangjie Wei ; Chengdong Wu ; Yi Wang ; Zaili Dong
Author_Institution
Coll. of Inf. Sci. & Eng., Northeastern Univ., Shenyang, China
Volume
62
Issue
12
fYear
2015
Firstpage
7655
Lastpage
7664
Abstract
The imaging properties of a microlens are highly related to its 3-D profile; therefore, it is of fundamental importance to measure its 3-D geometrical characteristics with high accuracy after industrial fabrication. However, common 3-D measurement tools are difficult to use for fast, noninvasive, and precise 3-D measurement of a microlens. Depth acquisition is a direct way to understand the 3-D properties of objects in computer vision, and shape from defocus (SFD) has been demonstrated to be effective for 3-D reconstruction. In this paper, a depth reconstruction method from blurring using optical microscopy and optical diffraction is proposed to reconstruct the global shape of a microlens. First, the relationship between the intensity distribution and the depth information is introduced. Second, a blurring imaging model with optical diffraction is formulated through curve fitting, accounting for relative blurring and heat diffusion, and a new SFD method with optical diffraction and defocused images is proposed. Finally, a polydimethylsiloxane (PDMS) microlens is used to validate the proposed SFD method, and the results show that its global shape can be reconstructed with high precision. The average estimation error is 77 nm, and the cost time is reduced by 92.5% compared with atomic force microscopy scanning.
Keywords
computer vision; curve fitting; image restoration; light diffraction; microlenses; optical microscopy; blurring imaging model; computer vision; curve fitting; defocused images; depth acquisition; depth information; depth reconstruction method; heat diffusion; imaging properties; intensity distribution; optical diffraction; optical microscopy; polydimethylsiloxane microlens; relative blurring; shape from defocus; shape reconstruction; Lenses; Microoptics; Optical diffraction; Optical imaging; Shape; Three-dimensional displays; Microlens; PDMS; optical diffusion; polydimethylsiloxane (PDMS); relative blurring; shape from defocus; shape from defocus (SFD);
fLanguage
English
Journal_Title
Industrial Electronics, IEEE Transactions on
Publisher
ieee
ISSN
0278-0046
Type
jour
DOI
10.1109/TIE.2015.2454480
Filename
7153541
Link To Document