Skip to main content
Erschienen in: Lasers in Medical Science 1/2010

01.01.2010 | Original Article

Visible and near-infrared laser radiation in a biological tissue. A forward model for medical imaging by optical tomography

verfasst von: H. Trabelsi, M. Gantri, E. Sediki

Erschienen in: Lasers in Medical Science | Ausgabe 1/2010

Einloggen, um Zugang zu erhalten

Abstract

We present a numerical model for the study of a general, two-dimensional, time-dependent, laser radiation transfer problem in a biological tissue. The model is suitable for many situations, especially when the external laser source is pulsed or continuous. We used a control volume discrete-ordinate method associated with an implicit, three-level, second-order, time-differencing scheme. In medical imaging by laser techniques, this could be an optical tomography forward model. We considered a very thin rectangular biological tissue-like medium submitted to a visible or a near-infrared laser source. Different cases were treated numerically. The source was assumed to be monochromatic and collimated. We used either a continuous source or a short-pulsed source. The transmitted radiance was computed in detector points on the boundaries. Also, the distribution of the internal radiation intensity for different instants is presented. According to the source type, we examined either the steady-state response or the transient response of the medium. First, our model was validated by experimental results from the literature for a homogeneous biological tissue. The space and angular grid independency of our results is shown. Next, the proposed model was used to study changes in transmitted radiation for a homogeneous background medium in which were imbedded two heterogeneous objects. As a last investigation, we studied a multilayered biological tissue. We simulated near-infrared radiation in human skin, fat and muscle. Some results concerning the effects of fat thickness and positions of the detector source on the reflected radiation are presented.
Literatur
1.
Zurück zum Zitat Okada E, Firbank M, Schweiger M, Arridge SR, Cope M, Delpy DT (1997) Theoretical and experimental investigation of near-infrared light propagation in a model of the adult head. Appl Opt 36:21–31. doi:10.1364/AO.36.000021 CrossRefPubMed Okada E, Firbank M, Schweiger M, Arridge SR, Cope M, Delpy DT (1997) Theoretical and experimental investigation of near-infrared light propagation in a model of the adult head. Appl Opt 36:21–31. doi:10.​1364/​AO.​36.​000021 CrossRefPubMed
3.
Zurück zum Zitat Arridge SR, Cope M, Van der Zee P, Hillson PJ, Delpy DT (1986) In: Bacharach SL (ed) Visualisation of the oxygenation state of brain and muscle in newborn infants by near-infrared transillumination. Information processing in medical imaging. Martinus Nijhoff, New York, pp 155–176 Arridge SR, Cope M, Van der Zee P, Hillson PJ, Delpy DT (1986) In: Bacharach SL (ed) Visualisation of the oxygenation state of brain and muscle in newborn infants by near-infrared transillumination. Information processing in medical imaging. Martinus Nijhoff, New York, pp 155–176
5.
Zurück zum Zitat Welch AJ, Gardner C (2002) Optical and thermal response of tissue to laser radiation. Lasers in medicine. CRC press LLC Welch AJ, Gardner C (2002) Optical and thermal response of tissue to laser radiation. Lasers in medicine. CRC press LLC
6.
Zurück zum Zitat Jacques SL, Wang L, Hielscher A (1995) Time-resolved photon propagation in tissues. In: Welch AJ, van Gemert MJC (eds) Optical thermal response of laser irradiated tissue. Plenum, New York Jacques SL, Wang L, Hielscher A (1995) Time-resolved photon propagation in tissues. In: Welch AJ, van Gemert MJC (eds) Optical thermal response of laser irradiated tissue. Plenum, New York
7.
Zurück zum Zitat Riley J, Dehghani H, Schweiger M, Arridge SR, Ripoll J, Nieto-Vesperinas M (2000) 3D optical tomography in the presence of void regions. Opt Express 7:462–467CrossRefPubMed Riley J, Dehghani H, Schweiger M, Arridge SR, Ripoll J, Nieto-Vesperinas M (2000) 3D optical tomography in the presence of void regions. Opt Express 7:462–467CrossRefPubMed
9.
Zurück zum Zitat Martelli F, Bassani M, Alianelli L, Zangheri L, Zaccanti G (2000) Accuracy of the diffusion equation to describe photon migration through an infinite medium: numerical and experimental investigation. Phys Med Biol 45:1359–1373. doi:10.1088/0031-9155/45/5/318 CrossRefPubMed Martelli F, Bassani M, Alianelli L, Zangheri L, Zaccanti G (2000) Accuracy of the diffusion equation to describe photon migration through an infinite medium: numerical and experimental investigation. Phys Med Biol 45:1359–1373. doi:10.​1088/​0031-9155/​45/​5/​318 CrossRefPubMed
13.
Zurück zum Zitat Klose AD, Netz U, Beuthan J, Hielscher AH (2002) Optical tomography using the time- independent equation of radiative transfer. Part I: forward model. J Quant Spectrosc Radiat Transf 72:715–736. doi:10.1016/S0022-4073(01)00151-0 CrossRef Klose AD, Netz U, Beuthan J, Hielscher AH (2002) Optical tomography using the time- independent equation of radiative transfer. Part I: forward model. J Quant Spectrosc Radiat Transf 72:715–736. doi:10.​1016/​S0022-4073(01)00151-0 CrossRef
17.
Zurück zum Zitat Sakami M, Mitra KP, Hsu F (2002) Analysis of light pulse transport through two-dimensional scattering and absorbing media. J Quant Spectrosc Radiat Transf 73:169–179CrossRef Sakami M, Mitra KP, Hsu F (2002) Analysis of light pulse transport through two-dimensional scattering and absorbing media. J Quant Spectrosc Radiat Transf 73:169–179CrossRef
19.
Zurück zum Zitat Collin A, Boulet P, Lacroix D, Jeandel D (2005) On radiative transfer in water spray curtains using the discrete ordinates method. J Quant Spectrosc Radiat Transf 92:85–110CrossRef Collin A, Boulet P, Lacroix D, Jeandel D (2005) On radiative transfer in water spray curtains using the discrete ordinates method. J Quant Spectrosc Radiat Transf 92:85–110CrossRef
20.
21.
Zurück zum Zitat Press WH, Flannery BP, Teukolsky SA, Vetterling WT (1989) Integration of functions. In: Numerical recipes (fortran version), first edition, Cambridge University Press, New York, pp 102–130 Press WH, Flannery BP, Teukolsky SA, Vetterling WT (1989) Integration of functions. In: Numerical recipes (fortran version), first edition, Cambridge University Press, New York, pp 102–130
22.
Zurück zum Zitat Ferziger JH, Perić M (2002) Methods for unsteady problems. In: Computational methods for fluid dynamics, 3rd edition, Springer, Berlin, pp 135–156 Ferziger JH, Perić M (2002) Methods for unsteady problems. In: Computational methods for fluid dynamics, 3rd edition, Springer, Berlin, pp 135–156
Metadaten
Titel
Visible and near-infrared laser radiation in a biological tissue. A forward model for medical imaging by optical tomography
verfasst von
H. Trabelsi
M. Gantri
E. Sediki
Publikationsdatum
01.01.2010
Verlag
Springer-Verlag
Erschienen in
Lasers in Medical Science / Ausgabe 1/2010
Print ISSN: 0268-8921
Elektronische ISSN: 1435-604X
DOI
https://doi.org/10.1007/s10103-009-0647-6

Weitere Artikel der Ausgabe 1/2010

Lasers in Medical Science 1/2010 Zur Ausgabe