11 Time-of-Flight Spectroscopy
275
3. O.H.A. Nielsen, A.A. Subash, F.D. Nielsen, A.B. Dahl, J.L. Skytte, S. Andersson-Engels, D.
Khoptyar, Spectral characterisation of dairy products using photon time-of-flight spectroscopy.
J. Near Infrared Spec. 21(5), 375–383 (2013)
4. A. Torricelli, D. Contini, A.D. Mora, E. Martinenghi, D. Tamborini, F. Villa, A. Tosi, L.
Spinelli, Recent advances in time-resolved NIR spectroscopy for nondestructive assessment of
fruit quality. Chem. Eng. Trans. 44, 43–48 (2015)
5. R. Lu, R.V. Beers, W. Saeys, C. Li, H. Cen, Measurement of optical properties of fruits and
vegetables: a review. Postharvest Biol. Tec. 159, 111003 (2020)
6. H. Fujii, Y. Yamada, K. Kobayashi, M. Watanabe, Y. Hoshi, Modeling of light propagation in
the human neck for diagnoses of thyroid cancers by diffuse optical tomography. Int. J. Numer.
Meth. Bio. 33(5), 1–12 (2017)
7. Y. Hoshi, Hemodynamic signals in fNIRS. Prog. Brain Res. 225, 153–179 (2016)
8. F. Martelli, S.D. Bianco, A. Ismaelli, D. Zaccanti, Light propagation through biological tissue
and other diffusive media.Theory, solutions, softw. (2009)
9. S.L. Jacques, Optical properties of biological tissues: a review. Phys. Med. Biol. 58(11), R37–
R61 (2013)
10. C. D’Andrea, A. Farina, D. Comelli, A. Pifferi, P. Taroni, G. Valentini, R. Cubeddu, L. Zoia,
M. Orlandi, A. Kienle, Time-resolved optical spectroscopy of wood. Appl. Spectro. 62(5),
569–574 (2008)
11. C. D’Andrea, A. Nevin, A. Farina, A. Bassi, R. Cubeddu, Assessment of variations in moisture
content of wood using time-resolved diffuse optical spectroscopy. Appl. Opt. 48(4), 87–93
(2009)
12. A. Kienle, C. D’Andrea, F. Foschum, P. Taroni, A. Pifferi, Light propagation in dry and wet
softwood. Opt. Express 16(13), 9895–9906 (2008)
13. R. Kitamura, T. Inagaki, S. Tsuchikawa, Determination of true optical absorption and scattering
coefficient of wooden cell wall substance by time-of-flight near infrared spectroscopy. Opt.
Express 24(4), 3999–4009 (2016)
14. G. Hans, R. Kitamura, T. Inagaki, B. Leblon, S. Tsuchikawa, Assessment of variations in airdry wood density using time-of-flight near-infrared spectroscopy. Wood Mater. Sci. Eng. 10(1),
57–68 (2015)
15. K. Konagaya, T. Inagaki, R. Kitamura, S. Tsuchikawa, Optical properties of drying wood
studied by time-resolved near-infrared spectroscopy. Opt. Express 24(9), 9561–9573 (2016)
16. M. Ban, T. Inagaki, T. Ma, S. Tsuchikawa, Effect of cellular structure on the optical properties
of wood. J. Near Infrared Spec. 26(1), 53–60 (2018)
17. T.J. Farrell, M.S. Patterson, B. Wilson, A diffusion theory model of spatially resolved, steadystate diffuse reflectance for the noninvasive determination of tissue optical properties in vivo.
Med. Phys. 19(4), 879–888 (1992)
18. Y. Shimomura, S. Miki, T. Tajiri, H. Tanaka, Noninvasive measurement of absolute hemodynamic components in human tissue using three-fiber-based diffuse reflectance spectroscopy. in
2009 IEEE LEOS Annual Meeting Conference Proceedings (2009), pp. 274–275
19. Y. Shimomura, T. Okada, Development of nondestructive measurement technique for fruits
sugar content with near-infrared laser diodes operating at three different wavelengths. Rev.
Laser Eng. 33(9), 620–625 (2005)
20. Y. Shimomura, T. Takami, Y. Ichimaru, K. Matsuo, R. Hyodo, New measurement technique
that uses three near infrared diode lasers for nondestructive evaluation of sugar content in fruits.
Proc. SPIE 5739, Light-Emitting Diodes: Res. Manuf. Appl. IX 5739, 145 (2005)
21. T. Inagaki, D. Nozawa, Y. Shimomura, S. Tsuchikawa, Three-fibre-based diffuse reflectance
spectroscopy for estimation of total solid content in natural rubber latex. J. Near Infrared Spec.
24(4), 327–335 (2016)
275
3. O.H.A. Nielsen, A.A. Subash, F.D. Nielsen, A.B. Dahl, J.L. Skytte, S. Andersson-Engels, D.
Khoptyar, Spectral characterisation of dairy products using photon time-of-flight spectroscopy.
J. Near Infrared Spec. 21(5), 375–383 (2013)
4. A. Torricelli, D. Contini, A.D. Mora, E. Martinenghi, D. Tamborini, F. Villa, A. Tosi, L.
Spinelli, Recent advances in time-resolved NIR spectroscopy for nondestructive assessment of
fruit quality. Chem. Eng. Trans. 44, 43–48 (2015)
5. R. Lu, R.V. Beers, W. Saeys, C. Li, H. Cen, Measurement of optical properties of fruits and
vegetables: a review. Postharvest Biol. Tec. 159, 111003 (2020)
6. H. Fujii, Y. Yamada, K. Kobayashi, M. Watanabe, Y. Hoshi, Modeling of light propagation in
the human neck for diagnoses of thyroid cancers by diffuse optical tomography. Int. J. Numer.
Meth. Bio. 33(5), 1–12 (2017)
7. Y. Hoshi, Hemodynamic signals in fNIRS. Prog. Brain Res. 225, 153–179 (2016)
8. F. Martelli, S.D. Bianco, A. Ismaelli, D. Zaccanti, Light propagation through biological tissue
and other diffusive media.Theory, solutions, softw. (2009)
9. S.L. Jacques, Optical properties of biological tissues: a review. Phys. Med. Biol. 58(11), R37–
R61 (2013)
10. C. D’Andrea, A. Farina, D. Comelli, A. Pifferi, P. Taroni, G. Valentini, R. Cubeddu, L. Zoia,
M. Orlandi, A. Kienle, Time-resolved optical spectroscopy of wood. Appl. Spectro. 62(5),
569–574 (2008)
11. C. D’Andrea, A. Nevin, A. Farina, A. Bassi, R. Cubeddu, Assessment of variations in moisture
content of wood using time-resolved diffuse optical spectroscopy. Appl. Opt. 48(4), 87–93
(2009)
12. A. Kienle, C. D’Andrea, F. Foschum, P. Taroni, A. Pifferi, Light propagation in dry and wet
softwood. Opt. Express 16(13), 9895–9906 (2008)
13. R. Kitamura, T. Inagaki, S. Tsuchikawa, Determination of true optical absorption and scattering
coefficient of wooden cell wall substance by time-of-flight near infrared spectroscopy. Opt.
Express 24(4), 3999–4009 (2016)
14. G. Hans, R. Kitamura, T. Inagaki, B. Leblon, S. Tsuchikawa, Assessment of variations in airdry wood density using time-of-flight near-infrared spectroscopy. Wood Mater. Sci. Eng. 10(1),
57–68 (2015)
15. K. Konagaya, T. Inagaki, R. Kitamura, S. Tsuchikawa, Optical properties of drying wood
studied by time-resolved near-infrared spectroscopy. Opt. Express 24(9), 9561–9573 (2016)
16. M. Ban, T. Inagaki, T. Ma, S. Tsuchikawa, Effect of cellular structure on the optical properties
of wood. J. Near Infrared Spec. 26(1), 53–60 (2018)
17. T.J. Farrell, M.S. Patterson, B. Wilson, A diffusion theory model of spatially resolved, steadystate diffuse reflectance for the noninvasive determination of tissue optical properties in vivo.
Med. Phys. 19(4), 879–888 (1992)
18. Y. Shimomura, S. Miki, T. Tajiri, H. Tanaka, Noninvasive measurement of absolute hemodynamic components in human tissue using three-fiber-based diffuse reflectance spectroscopy. in
2009 IEEE LEOS Annual Meeting Conference Proceedings (2009), pp. 274–275
19. Y. Shimomura, T. Okada, Development of nondestructive measurement technique for fruits
sugar content with near-infrared laser diodes operating at three different wavelengths. Rev.
Laser Eng. 33(9), 620–625 (2005)
20. Y. Shimomura, T. Takami, Y. Ichimaru, K. Matsuo, R. Hyodo, New measurement technique
that uses three near infrared diode lasers for nondestructive evaluation of sugar content in fruits.
Proc. SPIE 5739, Light-Emitting Diodes: Res. Manuf. Appl. IX 5739, 145 (2005)
21. T. Inagaki, D. Nozawa, Y. Shimomura, S. Tsuchikawa, Three-fibre-based diffuse reflectance
spectroscopy for estimation of total solid content in natural rubber latex. J. Near Infrared Spec.
24(4), 327–335 (2016)
