Progress in Biomedical Optics, vol. 2979 (Japan), The International Biomedical Optics Society, (97), pp. 795-806. |
Japanese Journal of Applied Physics, vol. 37, No. 5A, (Japan), The Society of Applied Physics and the Physical Society of Japan, (May 15, 1998), pp. 2717-2723. |
Hikari Alliance, vol. 9, No. 11 (Japan), Nippon Kogyo Shuppan (Nov. 1998), pp. 6-8. |
The Forward and Inverse Problems in Time Resolved Infra-Red Imaging, S. Arridge, pp. 35-64 (p. 5 of specification). |
A Perturbation Approach for Optical Diffusion Tomography Using Continuous-Wave and Time-Resolved Data, R. Barbour et al., pp. 87-120 (p. 5 of specification). |
A. Perturbation Approach for Imagining in Dense Scattering Media: Derivation and Evaluation of Imaging Operators, H. Graber et al., pp. 121-143 (p. 5 of specification). |
Photon Hitting Density, J. Schotland et al., Applied Optics, vol. 32, No. 4, (Feb. 1, 1993), pp. 448-453 (p. 66 of specification). |
Imaging Diffusive Media Using Time-Independent and Tine-Harmonic Sources: Dependence of Image Quality on Imaging Algorithms, Target Volume, Weight Matrix, and View Angles, J. Change et al., pp. 448-464 (p. 5 of specification). |
Initial Assessment of a Simple System for Frequency Domain Diffuse Optical Tomography, B. Pogue et al., pp. 1709-1729 (p. 5 of specification). |
Photon-Measurement Density Functions. Part 1: Analytical Forms, S. Arridge, pp. 7395-7409 (pp. 5 and 66 of specification). |
Imaging of Multiple Targets in Dense Scattering Media, H. Graber et al., pp. 219-234 (discussed at p. 5 of specification). |
Reconstructuring Absorber Images in a Three-Dimensional Scattering Medium by Using Photon-Path Data, A. Maki et al., pp. 299-304 (discussed at p. 5 of specification). |
Optical Image Reconstruction Using Frequency-Domain Data: Stimulations and Experiments, H. Jiang et al., pp. 253-266 (p. 6 of specification). |
Optical Imaging in Medicine: II. Modelling and Reconstruction, S. Arridge et al., pp. 841-853 (p. 6 of specification). |
Tomographic Image Reconstruction from Optical Projections in Light-Diffusing Media, S. Colak et al., pp. 180-213 (p. 6 of specification). |
Photon Migration Model for Turbid Biological Medium Having Various Shapes, Y. Tsuchiya et al., pp. 79-81 (p. 7 of specification). |
Frequency Domain Analysis of Photon Migration Based on the Microscopic Beer-Lambert Law, Y. Tsuchiya et al., pp. 4848-4851 (p. 7 of specification). |
Quantitation of Absorbing Substances in Turbid Media Such as Human Tissues Based on the Microscopic Beer-Lambert Law, Y. Tsuchiya et al., pp. 269-280 (p. 7 of specification). |
Quantitation of Absorbers in Turbid Media Using Time Integrated Spectroscopy Based on Microscopic Beer-Lambert Law, H. Zhang et al., pp. 21-22 (p. 7 of specification). |
Monte Carlo and Diffusion Calculations of Photon Migration in Non-Infinite Highly Scattering Media, J. Haselgrove et al., pp. 30-41 (p. 66 of specification). |
Isotropic Photon Injection for Noninvasive Tissue Spectroscopy, Y. Tsuchiya et al., pp. 2495-2501 (p. 66 of specification). |
Time-Resolved Transillumination for Medical Diagnostics, R. Berg et al., pp. 110-119 (p. 72 of specification). |
Development of Time Resolved Spectroscopy System for Quantitative Non-Invasive Tissue Measurement, M. Miwa et al., pp. 142-149 (p. 72 of specification). |
A Solid Tissue Phantom for Photon Migration Studies, R. Cubeddu et al., pp. 1971-1979 (p. 72 of specification). |
Determination of the Optical Properties of Turbid Media from a Single Monte Carlo Simulation, A. Kienle et al., pp. 2221-2227 (pp. 73 and 75 of specification). |