DocumentCode
1298698
Title
A spectral-discrimination method for tear-film lipid-layer thickness estimation from fringe pattern images
Author
Khamene, Ali ; Negahdaripour, Shahriar ; Tseng, Scheffer C G
Author_Institution
Dept. of Electr. & Comput. Eng., Miami Univ., Coral Gables, FL, USA
Volume
47
Issue
2
fYear
2000
Firstpage
249
Lastpage
258
Abstract
Examination of the tear-film lipid layer is often helpful in the prognosis of prospective contact lens patients and contact lens related problems, and in the analysis of symptomatic noncontact lens-wearing patients. In particular, the thickness of the lipid layer is considered to be an informative cue in studying the tear-film stability and uncovering of certain disorders. The authors propose a method for the accurate estimation of the lipid-layer thickness, exploiting the intensity and color information in Fizeau fringe images. The technique is based on a quantitative measure for discriminating among the spectra associated with different thicknesses. The authors propose an optical system for imaging the interference patterns, develop a mathematical model based on the physics of the fringe formation and sensing, and describe the calibration of the optical system using this model. The thickness extraction is readily carried out utilizing a lookup table. The proposed method would enable objective evaluation of the lipid layer characteristics, and provide a means for examining the dynamic changes in its thickness and spatial distribution during inter-blink periods.
Keywords
contact lenses; eye; light interferometry; medical image processing; optical images; physiological models; thickness measurement; Fizeau fringe images; contact lens related problems; fringe pattern images; inter-blink periods; lookup table; mathematical model; optical system calibration; prospective contact lens patients prognosis; spatial distribution; spectral-discrimination method; symptomatic noncontact lens-wearing patients; tear-film lipid-layer thickness estimation; tear-film stability; Calibration; Interference; Lenses; Lipidomics; Mathematical model; Optical imaging; Optical sensors; Physics; Stability; Thickness measurement; Algorithms; Calibration; Color; Humans; Image Processing, Computer-Assisted; Interferometry; Lipids; Models, Biological; Optics; Surface Properties; Tears;
fLanguage
English
Journal_Title
Biomedical Engineering, IEEE Transactions on
Publisher
ieee
ISSN
0018-9294
Type
jour
DOI
10.1109/10.821773
Filename
821773
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