Title :
A Robust Monte Carlo Model for the Extraction of Biological Absorption and Scattering In Vivo
Author :
Bender, Janelle E. ; Vishwanath, Karthik ; Moore, Laura K. ; Brown, J. Quincy ; Chang, Vivide ; Palmer, Gregory M. ; Ramanujam, Nirmala
Author_Institution :
Dept. of Biomed. Eng., Duke Univ., Durham, NC
fDate :
4/1/2009 12:00:00 AM
Abstract :
We have a toolbox to quantify tissue optical properties that is composed of specialized fiberoptic probes for UV-visible diffuse reflectance spectroscopy and a fast, scalable inverse Monte Carlo (MC) model. In this paper, we assess the robustness of the toolbox for quantifying physiologically relevant parameters from turbid tissue-like media. In particular, we consider the effects of using different instruments, fiberoptic probes, and instrument-specific settings for a wide range of optical properties. Additionally, we test the quantitative accuracy of the inverse MC model for extracting the biologically relevant parameters of hemoglobin saturation and total hemoglobin concentration. We also test the effect of double-absorber phantoms (hemoglobin and crocin to model the absorption of hemoglobin and beta carotene, respectively, in the breast) for a range of absorption and scattering properties. We include an assessment on which reference phantom serves as the best calibration standard to enable accurate extraction of the absorption and scattering properties of the target sample. We found the best reference-target phantom combinations to be ones with similar scattering levels. The results from these phantom studies provide a set of guidelines for extracting optical parameters from clinical studies.
Keywords :
Monte Carlo methods; bio-optics; biological tissues; biomedical optical imaging; molecular biophysics; phantoms; physiological models; proteins; Monte Carlo model; UV-visible diffuse reflectance spectroscopy; beta carotene; biological absorption; biological scattering; crocin; double-absorber phantoms; fiberoptic probes; hemoglobin saturation; inverse Monte Carlo model; tissue optical properties; total hemoglobin concentration; turbid tissue-like media; Absorption; Biological system modeling; Biomedical optical imaging; Imaging phantoms; In vivo; Monte Carlo methods; Optical saturation; Optical scattering; Probes; Robustness; Biomedical optical spectroscopy; Monte Carlo (MC) methods; diffuse reflectance; tissue diagnostics; turbid media; Absorption; Algorithms; Breast; Female; Fiber Optic Technology; Guidelines as Topic; Hemoglobins; Humans; Models, Biological; Monte Carlo Method; Phantoms, Imaging; Spectrum Analysis; beta Carotene;
Journal_Title :
Biomedical Engineering, IEEE Transactions on
DOI :
10.1109/TBME.2008.2005994