Paper
15 July 1999 Estimation of the optical properties of two-layered tissue simulating phantoms from spatially resolved frequency-domain reflectance
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Proceedings Volume 3597, Optical Tomography and Spectroscopy of Tissue III; (1999) https://doi.org/10.1117/12.356806
Event: BiOS '99 International Biomedical Optics Symposium, 1999, San Jose, CA, United States
Abstract
Spatially resolved diffuse reflectance measurements of two-layer tissue simulating phantoms were performed in the frequency-domain. The measurements were fitted to a two-layer diffusion model of photon transport. The specific case of skin containing increasing amounts of exogenous absorber over homogeneous muscle tissue was simulated. The retrieved optical properties were compared with the known optical properties of the phantoms as well as with results obtained from Monte Carlo (M.C.) simulated data. It was found that in most cases, experimental factors that are yet to be accounted for rather than diffusion theory limitations determine the accuracy of retrieved optical properties. The absorption increase in the top layer could only be quantified for a layer thickness of 4mm. The errors in all other retrieved optical properties were in the 15-40% range with estimated uncertainties to the fitted parameter values being of similar magnitude.
© (1999) COPYRIGHT Society of Photo-Optical Instrumentation Engineers (SPIE). Downloading of the abstract is permitted for personal use only.
George Alexandrakis, Robert A. Weersink, Jody T. Bruulsema, and Michael S. Patterson "Estimation of the optical properties of two-layered tissue simulating phantoms from spatially resolved frequency-domain reflectance", Proc. SPIE 3597, Optical Tomography and Spectroscopy of Tissue III, (15 July 1999); https://doi.org/10.1117/12.356806
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Cited by 3 scholarly publications.
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KEYWORDS
Optical properties

Diffusion

Absorption

Data modeling

Reflectivity

Tissue optics

Scattering

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