Title :
Simple photon diffusion analysis of the effects of multiple scattering on pulse oximetry
Author :
Schmitt, Joseph M.
Author_Institution :
Nat. Center for Res. Resources, Nat. Inst. of Health, Bethesda, MD, USA
Abstract :
Photon diffusion theory is used to derive analytical expressions that relate the AC-DC intensity ratios measured by transmission-mode and reflectance-mode pulse oximeters to arterial oxygen saturation (S aO 2). The effects of multiple scattering are examined by comparing the results of the photon diffusion analysis with those obtained using an analysis is based on the Beer-Lambert law which neglects scattering. It is shown that the difference between the average lengths of the paths traveled by red and infrared photons makes the calibration curve of oximeters sensitive to the total attenuation coefficients of the tissue in the two wavelength bands, as well as to absorption by the pulsating arterial blood. Therefore, the shape of the calibration curve is affected by tissue blood volume, source-detector placement, and other variables that change the wavelength dependence of the attenuation coefficient of the tissue. After evaluating the relationship between S aO 2 and the red/IR AC-DC ratio under a variety of physiological conditions, it is concluded that for oximeters utilizing fixed calibration curves based on measurements obtained from normal subjects, errors introduced by interfering variables should be less than a few percent when S aO 2 exceeds 70%.
Keywords :
biomedical measurement; light scattering; oxygen; photon transport theory; AC-DC intensity ratios; Beer-Lambert law; analytical expressions; arterial O/sub 2/ saturation; calibration curve; infrared photons; multiple scattering effects; normal subjects; physiological conditions; pulsating arterial blood; pulse oximetry; red photons; simple photon diffusion analysis; tissue attenuation coefficient; tissue blood volume; total attenuation coefficient; Biomedical measurements; Blood; Calibration; Electromagnetic scattering; Light scattering; Optical pulses; Optical scattering; Optical sensors; Particle scattering; Pulse measurements; Absorption; Blood Volume; Calibration; Light; Mathematical Computing; Oximetry; Pulsatile Flow; Scattering, Radiation; Sensitivity and Specificity;
Journal_Title :
Biomedical Engineering, IEEE Transactions on