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The theoretical basis for the determination of optical pathlengths in tissue: temporal and frequency analysis

Physics in Medicine and Biology · 1992 · Vol. 37(7) · pp. 1531–1560
Simon ArridgeM. CopeDavid T. Delpy

Abstract

A concise theoretical treatment is developed for the calculation of mean time, differential pathlength, phase shift, modulation depth and integrated intensity of measurements of light intensity as a function of time on the surface of tissue, resulting from either the input of picosecond light pulses, or radio frequency-modulated light. The treatment uses the Green's function of the diffusion approximation to the radiative transfer equation, and develops this and its Fourier transform in a variety of geometries. Detailed comparisons are made of several of these parameters in several geometries, and their relation to experimentally measured clinical data. The limitations of the use of phase measurements is discussed.

Optical Imaging and Spectroscopy TechniquesPhotoacoustic and Ultrasonic ImagingThermoregulation and physiological responsesOptical transfer functionOpticsFourier transformRadiative transferPhase (matter)Computational physicsIntensity (physics)Transfer functionPicosecondDiffusion

MeSH terms

Diagnostic ImagingDiffusionInfrared RaysLasersLightMathematicsModels, TheoreticalScattering, Radiation

Funding

  • Wolfson Foundation
  • Hamamatsu Photonics K.K.
Citations
586
FWCI
10.92
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