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Elastography of soft materials and tissues by holographic imaging of surface acoustic waves |
Optics Express, Vol. 20, Issue 17, pp. 18887-18897 (2012)
http://dx.doi.org/10.1364/OE.20.018887
Acrobat PDF (1806 KB)
Abstract
We use optical interferometry to capture coherent surface acoustic waves for elastographic imaging. An inverse method is employed to convert multi-frequency data into an elastic depth profile. Using this method, we image elastic properties over a 55 mm range with <5 mm resolution. For relevance to breast cancer detection, we employ a tissue phantom with a tumor-like inclusion. Holographic elastography is also shown to be well-behaved in ex vivo tissue, revealing the subsurface position of a bone. Because digital holography can assess waves over a wide surface area, this constitutes a flexible new platform for large volume and non-invasive elastography.
© 2012 OSA
1. Introduction
G. Eskin and J. Ralston, “On the inverse boundary value problem for linear isotropic elasticity,” Inverse Probl. 18(3), 907–921 (2002). [CrossRef]
B. A. Auld, “General electromechanical reciprocity relations applied to the calculation of elastic wave scattering coefficients,” Wave Motion 1(1), 3–10 (1979). [CrossRef]
C. Kim, A. Facchetti, and T. J. Marks, “Polymer gate dielectric surface viscoelasticity modulates pentacene transistor performance,” Science 318(5847), 76–80 (2007). [CrossRef] [PubMed]
C. P. Buckley, C. Prisacariu, and C. Martin, “Elasticity and inelasticity of thermoplastic polyurethane elastomers: Sensitivity to chemical and physical structure,” Polymer (Guildf.) 51(14), 3213–3224 (2010). [CrossRef]
A. Samani, J. Zubovits, and D. Plewes, “Elastic moduli of normal and pathological human breast tissues: an inversion-technique-based investigation of 169 samples,” Phys. Med. Biol. 52(6), 1565–1576 (2007). [CrossRef] [PubMed]
L. Castéra, J. Vergniol, J. Foucher, B. Le Bail, E. Chanteloup, M. Haaser, M. Darriet, P. Couzigou, and V. De Lédinghen, “Prospective comparison of transient elastography, fibrotest, APRI, and liver biopsy for the assessment of fibrosis in chronic hepatitis C,” Gastroenterology 128(2), 343–350 (2005). [CrossRef] [PubMed]
A. Samani, J. Zubovits, and D. Plewes, “Elastic moduli of normal and pathological human breast tissues: an inversion-technique-based investigation of 169 samples,” Phys. Med. Biol. 52(6), 1565–1576 (2007). [CrossRef] [PubMed]
L. Gao, K. J. Parker, R. M. Lerner, and S. F. Levinson, “Imaging of the elastic properties of tissue--a review,” Ultrasound Med. Biol. 22(8), 959–977 (1996). [CrossRef] [PubMed]
S. J. Kirkpatrick, R. K. Wang, and D. D. Duncan, “OCT-based elastography for large and small deformations,” Opt. Express 14(24), 11585–11597 (2006). [CrossRef] [PubMed]
F.-C. Lin, M. P. Moschetti, and M. H. Ritzwoller, “Surface wave tomography of the western United States from ambient seismic noise: Rayleigh and Love wave phase velocity maps,” Geophys. J. Int. 173(1), 281–298 (2008). [CrossRef]
C. Glorieux, W. Gao, S. E. Kruger, K. Van de Rostyne, W. Lauriks, and J. Thoen, “Surface acoustic wave depth profiling of elastically inhomogeneous materials,” J. Appl. Phys. 88(7), 4394–4400 (2000). [CrossRef]
T. J. Royston, H. A. Mansy, and R. H. Sandler, “Excitation and propagation of surface waves on a viscoelastic half-space with application to medical diagnosis,” J. Acoust. Soc. Am. 106(6), 3678–3686 (1999). [CrossRef] [PubMed]
X. Zhang and J. F. Greenleaf, “Estimation of tissue’s elasticity with surface wave speed,” J. Acoust. Soc. Am. 122(5), 2522–2525 (2007). [CrossRef] [PubMed]
S. Schedin, G. Pedrini, and H. J. Tiziani, “Pulsed digital holography for deformation measurements on biological tissues,” Appl. Opt. 39(16), 2853–2857 (2000). [CrossRef] [PubMed]
M. S. Hernández-Montes, C. Pérez-López, and F. M. Santoyo, “Finding the position of tumor inhomogeneities in a gel-like model of a human breast using 3-D pulsed digital holography,” J. Biomed. Opt. 12(2), 024027 (2007). [CrossRef] [PubMed]
S. J. Kirkpatrick, R. K. Wang, D. D. Duncan, M. Kulesz-Martin, and K. Lee, “Imaging the mechanical stiffness of skin lesions by in vivo acousto-optical elastography,” Opt. Express 14(21), 9770–9779 (2006). [CrossRef] [PubMed]
S. Li, K. D. Mohan, W. W. Sanders, and A. L. Oldenburg, “Toward soft-tissue elastography using digital holography to monitor surface acoustic waves,” J. Biomed. Opt. 16(11), 116005 (2011). [CrossRef] [PubMed]
M. Leclercq, M. Karray, V. Isnard, F. Gautier, and P. Picart, “Quantitative evaluation of skin vibration induced by a bone-conduction device using holographic recording in the quasi-time-averaging regime,” in Digital Holography and Three-Dimensional Imaging, OSA Technical Digest (Optical Society of America, 2012), paper DW1C.2.
S. Li, K. D. Mohan, W. W. Sanders, and A. L. Oldenburg, “Toward soft-tissue elastography using digital holography to monitor surface acoustic waves,” J. Biomed. Opt. 16(11), 116005 (2011). [CrossRef] [PubMed]
2. Methods
2.1 Theoretical model and inverse method
C. Glorieux, W. Gao, S. E. Kruger, K. Van de Rostyne, W. Lauriks, and J. Thoen, “Surface acoustic wave depth profiling of elastically inhomogeneous materials,” J. Appl. Phys. 88(7), 4394–4400 (2000). [CrossRef]
C. Glorieux, W. Gao, S. E. Kruger, K. Van de Rostyne, W. Lauriks, and J. Thoen, “Surface acoustic wave depth profiling of elastically inhomogeneous materials,” J. Appl. Phys. 88(7), 4394–4400 (2000). [CrossRef]
T. L. Szabo, “Obtaining subsurface profiles from surface−acoustic−wave velocity dispersion,” J. Appl. Phys. 46(4), 1448–1454 (1975). [CrossRef]
B. R. Tittmann, L. A. Ahlberg, J. M. Richardson, and R. B. Thompson, “Determination of physical property gradients from measured surface wave dispersion,” IEEE Trans. Ultrason. Ferroelectr. Freq. Control 34(5), 500–507 (1987). [CrossRef] [PubMed]
J. Dahl, P. Hansen, S. Jensen, and T. Jensen, “Algorithms and software for total variation image reconstruction via first-order methods,” Numer. Algorithms 53(1), 67–92 (2010). [CrossRef]
P. C. Hansen and D. P. O'Leary, “The use of the L-curve in the regularization of discrete ill-posed problems,” SIAM J. Sci. Comput. 14(6), 1487–1503 (1993). [CrossRef]
2.2 Experimental setup
S. Li, K. D. Mohan, W. W. Sanders, and A. L. Oldenburg, “Toward soft-tissue elastography using digital holography to monitor surface acoustic waves,” J. Biomed. Opt. 16(11), 116005 (2011). [CrossRef] [PubMed]
2.3 Silicone phantom preparation
A. L. Oldenburg, F. J.-J. Toublan, K. S. Suslick, A. Wei, and S. A. Boppart, “Magnetomotive contrast for in vivo optical coherence tomography,” Opt. Express 13(17), 6597–6614 (2005). [CrossRef] [PubMed]
A. Samani, J. Zubovits, and D. Plewes, “Elastic moduli of normal and pathological human breast tissues: an inversion-technique-based investigation of 169 samples,” Phys. Med. Biol. 52(6), 1565–1576 (2007). [CrossRef] [PubMed]
3. Results and discussion
3.1 Elastic depth profiling of two-layer phantoms
S. Li, K. D. Mohan, W. W. Sanders, and A. L. Oldenburg, “Toward soft-tissue elastography using digital holography to monitor surface acoustic waves,” J. Biomed. Opt. 16(11), 116005 (2011). [CrossRef] [PubMed]
3.2 SAWs on a homogeneous phantom with a tumor-like inclusion
3.3 Imaging of an ex vivo tissue sample
4. Conclusion
K. Bliznakova, Z. Bliznakov, V. Bravou, Z. Kolitsi, and N. Pallikarakis, “A three-dimensional breast software phantom for mammography simulation,” Phys. Med. Biol. 48(22), 3699–3719 (2003). [CrossRef] [PubMed]
A. Samani, J. Zubovits, and D. Plewes, “Elastic moduli of normal and pathological human breast tissues: an inversion-technique-based investigation of 169 samples,” Phys. Med. Biol. 52(6), 1565–1576 (2007). [CrossRef] [PubMed]
K. Daoudi, A.-C. Boccara, and E. Bossy, “Detection and discrimination of optical absorption and shear stiffness at depth in tissue-mimicking phantoms by transient optoelastography,” Appl. Phys. Lett. 94(15), 154103 (2009). [CrossRef]
S. J. Kirkpatrick, R. K. Wang, and D. D. Duncan, “OCT-based elastography for large and small deformations,” Opt. Express 14(24), 11585–11597 (2006). [CrossRef] [PubMed]
Acknowledgments
References and links
G. Eskin and J. Ralston, “On the inverse boundary value problem for linear isotropic elasticity,” Inverse Probl. 18(3), 907–921 (2002). [CrossRef] | |
E. R. Engdahl, R. van der Hilst, and R. Buland, “Global teleseismic earthquake relocation with improved travel times and procedures for depth determination,” Bull. Seismol. Soc. Am. 88, 722–743 (1998). | |
B. A. Auld, “General electromechanical reciprocity relations applied to the calculation of elastic wave scattering coefficients,” Wave Motion 1(1), 3–10 (1979). [CrossRef] | |
C. Kim, A. Facchetti, and T. J. Marks, “Polymer gate dielectric surface viscoelasticity modulates pentacene transistor performance,” Science 318(5847), 76–80 (2007). [CrossRef] [PubMed] | |
C. P. Buckley, C. Prisacariu, and C. Martin, “Elasticity and inelasticity of thermoplastic polyurethane elastomers: Sensitivity to chemical and physical structure,” Polymer (Guildf.) 51(14), 3213–3224 (2010). [CrossRef] | |
A. Samani, J. Zubovits, and D. Plewes, “Elastic moduli of normal and pathological human breast tissues: an inversion-technique-based investigation of 169 samples,” Phys. Med. Biol. 52(6), 1565–1576 (2007). [CrossRef] [PubMed] | |
L. Castéra, J. Vergniol, J. Foucher, B. Le Bail, E. Chanteloup, M. Haaser, M. Darriet, P. Couzigou, and V. De Lédinghen, “Prospective comparison of transient elastography, fibrotest, APRI, and liver biopsy for the assessment of fibrosis in chronic hepatitis C,” Gastroenterology 128(2), 343–350 (2005). [CrossRef] [PubMed] | |
L. Gao, K. J. Parker, R. M. Lerner, and S. F. Levinson, “Imaging of the elastic properties of tissue--a review,” Ultrasound Med. Biol. 22(8), 959–977 (1996). [CrossRef] [PubMed] | |
A. Y. Iyo, “Acoustic radiation force impulse imaging - a literature review,” J. Diagn. Med. Sonog. 25(4), 204–211 (2009). [CrossRef] | |
R. Muthupillai, D. J. Lomas, P. J. Rossman, J. F. Greenleaf, A. Manduca, and R. L. Ehman, “Magnetic resonance elastography by direct visualization of propagating acoustic strain waves,” Science 269(5232), 1854–1857 (1995). [CrossRef] [PubMed] | |
K. Daoudi, A.-C. Boccara, and E. Bossy, “Detection and discrimination of optical absorption and shear stiffness at depth in tissue-mimicking phantoms by transient optoelastography,” Appl. Phys. Lett. 94(15), 154103 (2009). [CrossRef] | |
B. F. Kennedy, X. Liang, S. G. Adie, D. K. Gerstmann, B. C. Quirk, S. A. Boppart, and D. D. Sampson, “In vivo three-dimensional optical coherence elastography,” Opt. Express 19(7), 6623–6634 (2011). [CrossRef] [PubMed] | |
S. J. Kirkpatrick, R. K. Wang, and D. D. Duncan, “OCT-based elastography for large and small deformations,” Opt. Express 14(24), 11585–11597 (2006). [CrossRef] [PubMed] | |
F.-C. Lin, M. P. Moschetti, and M. H. Ritzwoller, “Surface wave tomography of the western United States from ambient seismic noise: Rayleigh and Love wave phase velocity maps,” Geophys. J. Int. 173(1), 281–298 (2008). [CrossRef] | |
C. Glorieux, W. Gao, S. E. Kruger, K. Van de Rostyne, W. Lauriks, and J. Thoen, “Surface acoustic wave depth profiling of elastically inhomogeneous materials,” J. Appl. Phys. 88(7), 4394–4400 (2000). [CrossRef] | |
T. J. Royston, H. A. Mansy, and R. H. Sandler, “Excitation and propagation of surface waves on a viscoelastic half-space with application to medical diagnosis,” J. Acoust. Soc. Am. 106(6), 3678–3686 (1999). [CrossRef] [PubMed] | |
X. Zhang and J. F. Greenleaf, “Estimation of tissue’s elasticity with surface wave speed,” J. Acoust. Soc. Am. 122(5), 2522–2525 (2007). [CrossRef] [PubMed] | |
S. Schedin, G. Pedrini, and H. J. Tiziani, “Pulsed digital holography for deformation measurements on biological tissues,” Appl. Opt. 39(16), 2853–2857 (2000). [CrossRef] [PubMed] | |
M. S. Hernández-Montes, C. Pérez-López, and F. M. Santoyo, “Finding the position of tumor inhomogeneities in a gel-like model of a human breast using 3-D pulsed digital holography,” J. Biomed. Opt. 12(2), 024027 (2007). [CrossRef] [PubMed] | |
S. J. Kirkpatrick, R. K. Wang, D. D. Duncan, M. Kulesz-Martin, and K. Lee, “Imaging the mechanical stiffness of skin lesions by in vivo acousto-optical elastography,” Opt. Express 14(21), 9770–9779 (2006). [CrossRef] [PubMed] | |
S. Li, K. D. Mohan, W. W. Sanders, and A. L. Oldenburg, “Toward soft-tissue elastography using digital holography to monitor surface acoustic waves,” J. Biomed. Opt. 16(11), 116005 (2011). [CrossRef] [PubMed] | |
M. Leclercq, M. Karray, V. Isnard, F. Gautier, and P. Picart, “Quantitative evaluation of skin vibration induced by a bone-conduction device using holographic recording in the quasi-time-averaging regime,” in Digital Holography and Three-Dimensional Imaging, OSA Technical Digest (Optical Society of America, 2012), paper DW1C.2. | |
I. A. Viktorov, Rayleigh and Lamb Waves: Physical Theory and Applications (Plenum Press, 1967) p. 3. | |
N. A. Haskell, “The dispersion of surface waves on multilayered media,” Bull. Seismol. Soc. Am. 43, 17–34 (1953). | |
T. L. Szabo, “Obtaining subsurface profiles from surface−acoustic−wave velocity dispersion,” J. Appl. Phys. 46(4), 1448–1454 (1975). [CrossRef] | |
B. R. Tittmann, L. A. Ahlberg, J. M. Richardson, and R. B. Thompson, “Determination of physical property gradients from measured surface wave dispersion,” IEEE Trans. Ultrason. Ferroelectr. Freq. Control 34(5), 500–507 (1987). [CrossRef] [PubMed] | |
F. I. Karahanoglu, I. Bayram, and D. Van De Ville, “A signal processing approach to generalized 1-D total variation” IEEE T. Signal Process. 59, 5265–5274 (2011). | |
J. Dahl, P. Hansen, S. Jensen, and T. Jensen, “Algorithms and software for total variation image reconstruction via first-order methods,” Numer. Algorithms 53(1), 67–92 (2010). [CrossRef] | |
P. C. Hansen and D. P. O'Leary, “The use of the L-curve in the regularization of discrete ill-posed problems,” SIAM J. Sci. Comput. 14(6), 1487–1503 (1993). [CrossRef] | |
A. L. Oldenburg, F. J.-J. Toublan, K. S. Suslick, A. Wei, and S. A. Boppart, “Magnetomotive contrast for in vivo optical coherence tomography,” Opt. Express 13(17), 6597–6614 (2005). [CrossRef] [PubMed] | |
K. Bliznakova, Z. Bliznakov, V. Bravou, Z. Kolitsi, and N. Pallikarakis, “A three-dimensional breast software phantom for mammography simulation,” Phys. Med. Biol. 48(22), 3699–3719 (2003). [CrossRef] [PubMed] |
OCIS Codes
(170.3880) Medical optics and biotechnology : Medical and biological imaging
(090.1995) Holography : Digital holography
ToC Category:
Medical Optics and Biotechnology
History
Original Manuscript: May 14, 2012
Revised Manuscript: July 2, 2012
Manuscript Accepted: July 10, 2012
Published: August 2, 2012
Virtual Issues
Vol. 7, Iss. 10 Virtual Journal for Biomedical Optics
Citation
Karan D. Mohan and Amy L. Oldenburg, "Elastography of soft materials and tissues by holographic imaging of surface acoustic waves," Opt. Express 20, 18887-18897 (2012)
http://www.opticsinfobase.org/oe/abstract.cfm?URI=oe-20-17-18887
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References
- G. Eskin and J. Ralston, “On the inverse boundary value problem for linear isotropic elasticity,” Inverse Probl.18(3), 907–921 (2002). [CrossRef]
- E. R. Engdahl, R. van der Hilst, and R. Buland, “Global teleseismic earthquake relocation with improved travel times and procedures for depth determination,” Bull. Seismol. Soc. Am.88, 722–743 (1998).
- B. A. Auld, “General electromechanical reciprocity relations applied to the calculation of elastic wave scattering coefficients,” Wave Motion1(1), 3–10 (1979). [CrossRef]
- C. Kim, A. Facchetti, and T. J. Marks, “Polymer gate dielectric surface viscoelasticity modulates pentacene transistor performance,” Science318(5847), 76–80 (2007). [CrossRef] [PubMed]
- C. P. Buckley, C. Prisacariu, and C. Martin, “Elasticity and inelasticity of thermoplastic polyurethane elastomers: Sensitivity to chemical and physical structure,” Polymer (Guildf.)51(14), 3213–3224 (2010). [CrossRef]
- A. Samani, J. Zubovits, and D. Plewes, “Elastic moduli of normal and pathological human breast tissues: an inversion-technique-based investigation of 169 samples,” Phys. Med. Biol.52(6), 1565–1576 (2007). [CrossRef] [PubMed]
- L. Castéra, J. Vergniol, J. Foucher, B. Le Bail, E. Chanteloup, M. Haaser, M. Darriet, P. Couzigou, and V. De Lédinghen, “Prospective comparison of transient elastography, fibrotest, APRI, and liver biopsy for the assessment of fibrosis in chronic hepatitis C,” Gastroenterology128(2), 343–350 (2005). [CrossRef] [PubMed]
- L. Gao, K. J. Parker, R. M. Lerner, and S. F. Levinson, “Imaging of the elastic properties of tissue--a review,” Ultrasound Med. Biol.22(8), 959–977 (1996). [CrossRef] [PubMed]
- A. Y. Iyo, “Acoustic radiation force impulse imaging - a literature review,” J. Diagn. Med. Sonog.25(4), 204–211 (2009). [CrossRef]
- R. Muthupillai, D. J. Lomas, P. J. Rossman, J. F. Greenleaf, A. Manduca, and R. L. Ehman, “Magnetic resonance elastography by direct visualization of propagating acoustic strain waves,” Science269(5232), 1854–1857 (1995). [CrossRef] [PubMed]
- K. Daoudi, A.-C. Boccara, and E. Bossy, “Detection and discrimination of optical absorption and shear stiffness at depth in tissue-mimicking phantoms by transient optoelastography,” Appl. Phys. Lett.94(15), 154103 (2009). [CrossRef]
- B. F. Kennedy, X. Liang, S. G. Adie, D. K. Gerstmann, B. C. Quirk, S. A. Boppart, and D. D. Sampson, “In vivo three-dimensional optical coherence elastography,” Opt. Express19(7), 6623–6634 (2011). [CrossRef] [PubMed]
- S. J. Kirkpatrick, R. K. Wang, and D. D. Duncan, “OCT-based elastography for large and small deformations,” Opt. Express14(24), 11585–11597 (2006). [CrossRef] [PubMed]
- F.-C. Lin, M. P. Moschetti, and M. H. Ritzwoller, “Surface wave tomography of the western United States from ambient seismic noise: Rayleigh and Love wave phase velocity maps,” Geophys. J. Int.173(1), 281–298 (2008). [CrossRef]
- C. Glorieux, W. Gao, S. E. Kruger, K. Van de Rostyne, W. Lauriks, and J. Thoen, “Surface acoustic wave depth profiling of elastically inhomogeneous materials,” J. Appl. Phys.88(7), 4394–4400 (2000). [CrossRef]
- T. J. Royston, H. A. Mansy, and R. H. Sandler, “Excitation and propagation of surface waves on a viscoelastic half-space with application to medical diagnosis,” J. Acoust. Soc. Am.106(6), 3678–3686 (1999). [CrossRef] [PubMed]
- X. Zhang and J. F. Greenleaf, “Estimation of tissue’s elasticity with surface wave speed,” J. Acoust. Soc. Am.122(5), 2522–2525 (2007). [CrossRef] [PubMed]
- S. Schedin, G. Pedrini, and H. J. Tiziani, “Pulsed digital holography for deformation measurements on biological tissues,” Appl. Opt.39(16), 2853–2857 (2000). [CrossRef] [PubMed]
- M. S. Hernández-Montes, C. Pérez-López, and F. M. Santoyo, “Finding the position of tumor inhomogeneities in a gel-like model of a human breast using 3-D pulsed digital holography,” J. Biomed. Opt.12(2), 024027 (2007). [CrossRef] [PubMed]
- S. J. Kirkpatrick, R. K. Wang, D. D. Duncan, M. Kulesz-Martin, and K. Lee, “Imaging the mechanical stiffness of skin lesions by in vivo acousto-optical elastography,” Opt. Express14(21), 9770–9779 (2006). [CrossRef] [PubMed]
- S. Li, K. D. Mohan, W. W. Sanders, and A. L. Oldenburg, “Toward soft-tissue elastography using digital holography to monitor surface acoustic waves,” J. Biomed. Opt.16(11), 116005 (2011). [CrossRef] [PubMed]
- M. Leclercq, M. Karray, V. Isnard, F. Gautier, and P. Picart, “Quantitative evaluation of skin vibration induced by a bone-conduction device using holographic recording in the quasi-time-averaging regime,” in Digital Holography and Three-Dimensional Imaging, OSA Technical Digest (Optical Society of America, 2012), paper DW1C.2.
- I. A. Viktorov, Rayleigh and Lamb Waves: Physical Theory and Applications (Plenum Press, 1967) p. 3.
- N. A. Haskell, “The dispersion of surface waves on multilayered media,” Bull. Seismol. Soc. Am.43, 17–34 (1953).
- T. L. Szabo, “Obtaining subsurface profiles from surface−acoustic−wave velocity dispersion,” J. Appl. Phys.46(4), 1448–1454 (1975). [CrossRef]
- B. R. Tittmann, L. A. Ahlberg, J. M. Richardson, and R. B. Thompson, “Determination of physical property gradients from measured surface wave dispersion,” IEEE Trans. Ultrason. Ferroelectr. Freq. Control34(5), 500–507 (1987). [CrossRef] [PubMed]
- F. I. Karahanoglu, I. Bayram, and D. Van De Ville, “A signal processing approach to generalized 1-D total variation” IEEE T. Signal Process.59, 5265–5274 (2011).
- J. Dahl, P. Hansen, S. Jensen, and T. Jensen, “Algorithms and software for total variation image reconstruction via first-order methods,” Numer. Algorithms53(1), 67–92 (2010). [CrossRef]
- P. C. Hansen and D. P. O'Leary, “The use of the L-curve in the regularization of discrete ill-posed problems,” SIAM J. Sci. Comput.14(6), 1487–1503 (1993). [CrossRef]
- A. L. Oldenburg, F. J.-J. Toublan, K. S. Suslick, A. Wei, and S. A. Boppart, “Magnetomotive contrast for in vivo optical coherence tomography,” Opt. Express13(17), 6597–6614 (2005). [CrossRef] [PubMed]
- K. Bliznakova, Z. Bliznakov, V. Bravou, Z. Kolitsi, and N. Pallikarakis, “A three-dimensional breast software phantom for mammography simulation,” Phys. Med. Biol.48(22), 3699–3719 (2003). [CrossRef] [PubMed]
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