References
129
References
1. E.Y. Eremina, Y.A. Eremin, T. Wriedt, Analysis of light scattering by erythrocyte based on
discrete sources method. Opt. Commun. 244, 15–23 (2005)
2. E.Y. Eremina, Y.A. Eremin, T. Wriedt, Different shape models for erythrocyte: light scattering
analysis based on the discrete sources method. J. Quant. Spectrosc. Radiat. Transf. 102, 3–10
(2006)
3. E.Y. Eremina, T. Wriedt, Light scattering analysis by a particle of extreme shape via discrete
sources method. J. Quant. Spectrosc. Radiat. Transf. 89, 67–77 (2004)
4. M.I. Mishchenko, W.J. Wiscombe, L.D. Travis, Light Scattering by No Spherical Particles:
Theory, Measurements and Applications (Academic press, San-Diego, 2000), Ch 2, pp. 29–60
5. P.C. Waterman, Matrix formulation of electromagnetic scattering. Proc. IEEE. 53(8), 805–812
(1969)
6. P.C. Waterman, Symmetry, unitarity and geometry in electromagnetic scattering. Phys. Rev. D
3(4), 825–839 (1971)
7. K.G. Kulikov, Light scattering by dielectric bodies of arbitrary shape with the application to
biophysical problem. in SPIE Photonics Europe, 16–19 April 2012, Belgium, Brussels, 2012
8. K.G. Kulikov, Light scattering by dielectric bodies of irregular shape in a layered medium
in problems of biomedical optics: I. Theory Comput. Model Tech. Phys. 57(12), 1623–1631
(2012)
9. K.G. Kulikov, Light scattering by dielectric bodies of irregular shape in a layered medium in
problems of biomedical optics: II. Numer. Anal. Tech. Phys. 8(12), 24–28 (2012)
10. J.M. Steinke, A.P. Shepherd, Comparison of Mie theory and the light scattering of red blood
cells. Appl. Opt. 27, 4027–4033 (1988)
11. A.N. Yaroslavsky, T. Goldbach, H. Schwarzmaier, Influence of the scattering phase function
approximation on the optical properties of blood determined from the integrating sphere measurements. J. Biomed. Opt. 4(1), 47–53 (1999)
12. L. Tsang, J.A. Rony, R.T. Shin, in Theory of Microwave Remote Sensing (New York, 1985)
13. G. Korn, T. Korn, in Handbook of Mathematics for Scientists and Engineers (Moscow, 1973)
14. A. Doicu, T. Wriedt, Y.A. Eremin, Light Scattering by Systems of Particles, Null-Field Method
with Discrete Sources: Theory and Programs (Springer, Berlin, New York, 2006)
15. D.S. Wang, P.W. Barber, Scattering by inhomogeneous nonspherical objects. Appl. Opt. 18,
1190–1198 (1979)
16. I.M Gel’fand, R.A. Minlos, Z.Ya. Shapiro, in Representations of the Rotation Group and
Lorentz Group and Their Applications (Moscow, 1958)
17. D.A. Varshalovich, A.N. Moskaliev, V.K. Kherson, in Quantum Theory of Angular Momentum
(Leningrad, 1975)
18. M.I. Mishchenko, L.D. Travis, T-matrix computations of light scattering by large spheroidal
particles. Opt. Commun. 109, 16–21 (1994)
19. M.I. Mishchenko, L.D. Travis, Capabilities and limitations of a current FORTRAN implementation of the T-matrix method for randomly oriented, rotationally symmetric scatterers. J.
Quant. Spectrosc. Radiat. Transfer. 60, 309–324 (1998)
20. V.V. Barun, A.P. Ivanov, The light absorption of blood during low-intensity laser irradiation of
the skin. Quantum Electron. 40(4), 371–378 (2010)
21. M.M. Asimov, R.M. Asimov, A.N. Rubinov, Action spectrum of the laser radiation on
hemoglobin of blood vessels in the skin. J. Appl. Spectrosc. 65, 919 (1998)
22. S.D. Zakharov, A.V. Ivanov, Optical oxygen effect in cells and prospects of using in the therapy
of tumors. Quantum Electron. 29, 192 (1999)
23. http://omlc.ogi.edu/spectra/hemoglobin/index.html
24. B.R. Duling, C. Desjardins, Capillary haematocrit - what does it mean. News Physiol. Sci. 2,
66 (1987)
25. R. Fahraeus, The suspension stability of blood. Physiol. Rev. 9, 241 (1929)
26. R.T. Yen, Y.C. Fung, Inversion of Fahraeus effect and effect of mainstream flow on capillary
hematocrit. J. Appl. Physiol. 42, 578 (1977)
129
References
1. E.Y. Eremina, Y.A. Eremin, T. Wriedt, Analysis of light scattering by erythrocyte based on
discrete sources method. Opt. Commun. 244, 15–23 (2005)
2. E.Y. Eremina, Y.A. Eremin, T. Wriedt, Different shape models for erythrocyte: light scattering
analysis based on the discrete sources method. J. Quant. Spectrosc. Radiat. Transf. 102, 3–10
(2006)
3. E.Y. Eremina, T. Wriedt, Light scattering analysis by a particle of extreme shape via discrete
sources method. J. Quant. Spectrosc. Radiat. Transf. 89, 67–77 (2004)
4. M.I. Mishchenko, W.J. Wiscombe, L.D. Travis, Light Scattering by No Spherical Particles:
Theory, Measurements and Applications (Academic press, San-Diego, 2000), Ch 2, pp. 29–60
5. P.C. Waterman, Matrix formulation of electromagnetic scattering. Proc. IEEE. 53(8), 805–812
(1969)
6. P.C. Waterman, Symmetry, unitarity and geometry in electromagnetic scattering. Phys. Rev. D
3(4), 825–839 (1971)
7. K.G. Kulikov, Light scattering by dielectric bodies of arbitrary shape with the application to
biophysical problem. in SPIE Photonics Europe, 16–19 April 2012, Belgium, Brussels, 2012
8. K.G. Kulikov, Light scattering by dielectric bodies of irregular shape in a layered medium
in problems of biomedical optics: I. Theory Comput. Model Tech. Phys. 57(12), 1623–1631
(2012)
9. K.G. Kulikov, Light scattering by dielectric bodies of irregular shape in a layered medium in
problems of biomedical optics: II. Numer. Anal. Tech. Phys. 8(12), 24–28 (2012)
10. J.M. Steinke, A.P. Shepherd, Comparison of Mie theory and the light scattering of red blood
cells. Appl. Opt. 27, 4027–4033 (1988)
11. A.N. Yaroslavsky, T. Goldbach, H. Schwarzmaier, Influence of the scattering phase function
approximation on the optical properties of blood determined from the integrating sphere measurements. J. Biomed. Opt. 4(1), 47–53 (1999)
12. L. Tsang, J.A. Rony, R.T. Shin, in Theory of Microwave Remote Sensing (New York, 1985)
13. G. Korn, T. Korn, in Handbook of Mathematics for Scientists and Engineers (Moscow, 1973)
14. A. Doicu, T. Wriedt, Y.A. Eremin, Light Scattering by Systems of Particles, Null-Field Method
with Discrete Sources: Theory and Programs (Springer, Berlin, New York, 2006)
15. D.S. Wang, P.W. Barber, Scattering by inhomogeneous nonspherical objects. Appl. Opt. 18,
1190–1198 (1979)
16. I.M Gel’fand, R.A. Minlos, Z.Ya. Shapiro, in Representations of the Rotation Group and
Lorentz Group and Their Applications (Moscow, 1958)
17. D.A. Varshalovich, A.N. Moskaliev, V.K. Kherson, in Quantum Theory of Angular Momentum
(Leningrad, 1975)
18. M.I. Mishchenko, L.D. Travis, T-matrix computations of light scattering by large spheroidal
particles. Opt. Commun. 109, 16–21 (1994)
19. M.I. Mishchenko, L.D. Travis, Capabilities and limitations of a current FORTRAN implementation of the T-matrix method for randomly oriented, rotationally symmetric scatterers. J.
Quant. Spectrosc. Radiat. Transfer. 60, 309–324 (1998)
20. V.V. Barun, A.P. Ivanov, The light absorption of blood during low-intensity laser irradiation of
the skin. Quantum Electron. 40(4), 371–378 (2010)
21. M.M. Asimov, R.M. Asimov, A.N. Rubinov, Action spectrum of the laser radiation on
hemoglobin of blood vessels in the skin. J. Appl. Spectrosc. 65, 919 (1998)
22. S.D. Zakharov, A.V. Ivanov, Optical oxygen effect in cells and prospects of using in the therapy
of tumors. Quantum Electron. 29, 192 (1999)
23. http://omlc.ogi.edu/spectra/hemoglobin/index.html
24. B.R. Duling, C. Desjardins, Capillary haematocrit - what does it mean. News Physiol. Sci. 2,
66 (1987)
25. R. Fahraeus, The suspension stability of blood. Physiol. Rev. 9, 241 (1929)
26. R.T. Yen, Y.C. Fung, Inversion of Fahraeus effect and effect of mainstream flow on capillary
hematocrit. J. Appl. Physiol. 42, 578 (1977)
