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Graph."],"published-print":{"date-parts":[[2020,12,31]]},"abstract":"<jats:p>We introduce rendering algorithms for the simulation of speckle statistics observed in scattering media under coherent near-field imaging conditions. Our work is motivated by the recent proliferation of techniques that use speckle correlations for tissue imaging applications: The ability to simulate the image measurements used by these speckle imaging techniques in a physically-accurate and computationally-efficient way can facilitate the widespread adoption and improvement of these techniques. To this end, we draw inspiration from recently-introduced Monte Carlo algorithms for rendering speckle statistics under far-field conditions (collimated sensor and illumination). We derive variants of these algorithms that are better suited to the near-field conditions (focused sensor and illumination) required by tissue imaging applications. Our approach is based on using Gaussian apodization to approximate the sensor and illumination aperture, as well as von Mises-Fisher functions to approximate the phase function of the scattering material. We show that these approximations allow us to derive closed-form expressions for the focusing operations involved in simulating near-field speckle patterns. As we demonstrate in our experiments, these approximations accelerate speckle rendering simulations by a few orders of magnitude compared to previous techniques, at the cost of negligible bias. We validate the accuracy of our algorithms by reproducing ground truth speckle statistics simulated using wave-optics solvers, and real-material measurements available in the literature. Finally, we use our algorithms to simulate biomedical imaging techniques for focusing through tissue.<\/jats:p>","DOI":"10.1145\/3414685.3417813","type":"journal-article","created":{"date-parts":[[2020,11,27]],"date-time":"2020-11-27T21:51:05Z","timestamp":1606513865000},"page":"1-18","update-policy":"https:\/\/doi.org\/10.1145\/crossmark-policy","source":"Crossref","is-referenced-by-count":15,"title":["Rendering near-field speckle statistics in scattering media"],"prefix":"10.1145","volume":"39","author":[{"given":"Chen","family":"Bar","sequence":"first","affiliation":[{"name":"Technion, Israel"}],"role":[{"role":"author","vocabulary":"crossref"}]},{"given":"Ioannis","family":"Gkioulekas","sequence":"additional","affiliation":[{"name":"Carnegie Mellon University"}],"role":[{"role":"author","vocabulary":"crossref"}]},{"given":"Anat","family":"Levin","sequence":"additional","affiliation":[{"name":"Technion, Israel"}],"role":[{"role":"author","vocabulary":"crossref"}]}],"member":"320","published-online":{"date-parts":[[2020,11,27]]},"reference":[{"key":"e_1_2_2_1_1","doi-asserted-by":"crossref","unstructured":"David Abookasis and Joseph Rosen. 2004. NOISE 2 imaging system: seeing through scattering tissue with a reference point. Opt. Lett. (2004).  David Abookasis and Joseph Rosen. 2004. NOISE 2 imaging system: seeing through scattering tissue with a reference point. Opt. Lett. (2004).","DOI":"10.1364\/OL.29.000956"},{"key":"e_1_2_2_2_1","volume-title":"Mesoscopic Physics of Electrons and Photons","author":"Akkermans Eric","unstructured":"Eric Akkermans and Gilles Montambaux . 2007. Mesoscopic Physics of Electrons and Photons . Cambridge University Press . Eric Akkermans and Gilles Montambaux. 2007. Mesoscopic Physics of Electrons and Photons. Cambridge University Press."},{"key":"e_1_2_2_3_1","volume-title":"Clustering on the unit hypersphere using von Mises-Fisher distributions. JMLR","author":"Banerjee Arindam","year":"2005","unstructured":"Arindam Banerjee , Inderjit S. Dhillon , Joydeep Ghosh , and Suvrit Sra . 2005. Clustering on the unit hypersphere using von Mises-Fisher distributions. JMLR ( 2005 ). Arindam Banerjee, Inderjit S. Dhillon, Joydeep Ghosh, and Suvrit Sra. 2005. Clustering on the unit hypersphere using von Mises-Fisher distributions. JMLR (2005)."},{"key":"e_1_2_2_4_1","volume-title":"A Monte Carlo Framework for Rendering Speckle Statistics in Scattering Media. ACM TOG","author":"Bar Chen","year":"2019","unstructured":"Chen Bar , Marina Alterman , Ioannis Gkioulekas , and Anat Levin . 2019. A Monte Carlo Framework for Rendering Speckle Statistics in Scattering Media. ACM TOG ( 2019 ). Chen Bar, Marina Alterman, Ioannis Gkioulekas, and Anat Levin. 2019. A Monte Carlo Framework for Rendering Speckle Statistics in Scattering Media. ACM TOG (2019)."},{"key":"e_1_2_2_5_1","unstructured":"Chen Bar Ioannis Gkioulekas and Anat Levin. 2020. Project Website. https:\/\/github.com\/chabner\/gaussianBeam-field.  Chen Bar Ioannis Gkioulekas and Anat Levin. 2020. Project Website. https:\/\/github.com\/chabner\/gaussianBeam-field."},{"key":"e_1_2_2_6_1","volume":"200","author":"Barsky Brian A.","unstructured":"Brian A. Barsky and Todd J. Kosloff. 200 8. Algorithms for Rendering Depth of Field Effects in Computer Graphics. ICCOMP (2008). Brian A. Barsky and Todd J. Kosloff. 2008. Algorithms for Rendering Depth of Field Effects in Computer Graphics. ICCOMP (2008).","journal-title":"Todd J. Kosloff."},{"key":"e_1_2_2_7_1","volume-title":"Passive sensing around the corner using spatial coherence. Nature Communications","author":"Batarseh Mahed","year":"2018","unstructured":"Mahed Batarseh , Sergey Sukhov , Zhean Shen , H. Gemar , Roxana Rezvani , and Aristide Dogariu . 2018. Passive sensing around the corner using spatial coherence. Nature Communications ( 2018 ). Mahed Batarseh, Sergey Sukhov, Zhean Shen, H. Gemar, Roxana Rezvani, and Aristide Dogariu. 2018. Passive sensing around the corner using spatial coherence. Nature Communications (2018)."},{"key":"e_1_2_2_8_1","volume-title":"Radiative transfer of acoustic waves in continuous complex media: Beyond the Helmholtz equation. Physical Review E","author":"Baydoun Ibrahim","year":"2016","unstructured":"Ibrahim Baydoun , Diego Baresch , Romain Pierrat , and Arnaud Derode . 2016. Radiative transfer of acoustic waves in continuous complex media: Beyond the Helmholtz equation. Physical Review E ( 2016 ). Ibrahim Baydoun, Diego Baresch, Romain Pierrat, and Arnaud Derode. 2016. Radiative transfer of acoustic waves in continuous complex media: Beyond the Helmholtz equation. Physical Review E (2016)."},{"key":"e_1_2_2_9_1","volume-title":"A local frequency analysis of light scattering and absorption. ACM TOG","author":"Belcour Laurent","year":"2014","unstructured":"Laurent Belcour , Kavita Bala , and Cyril Soler . 2014. A local frequency analysis of light scattering and absorption. ACM TOG ( 2014 ). Laurent Belcour, Kavita Bala, and Cyril Soler. 2014. A local frequency analysis of light scattering and absorption. ACM TOG (2014)."},{"key":"e_1_2_2_10_1","volume-title":"A Phenomenological Approach to Integrating Gaussian Beam Properties and Speckle into a Physically-Based Renderer. VMV","author":"Bergmann Stephan","year":"2016","unstructured":"Stephan Bergmann , Mahsa Mohammadikaji , Stephan Irgenfried , Heinz Worn , J\u00fcrgen Beyerer , and Carsten Dachsbacher . 2016. A Phenomenological Approach to Integrating Gaussian Beam Properties and Speckle into a Physically-Based Renderer. VMV ( 2016 ). Stephan Bergmann, Mahsa Mohammadikaji, Stephan Irgenfried, Heinz Worn, J\u00fcrgen Beyerer, and Carsten Dachsbacher. 2016. A Phenomenological Approach to Integrating Gaussian Beam Properties and Speckle into a Physically-Based Renderer. VMV (2016)."},{"key":"e_1_2_2_11_1","volume-title":"Correlations in coherent multiple scattering. Physics Reports","author":"Berkovits Richard","year":"1994","unstructured":"Richard Berkovits and Shechao Feng . 1994. Correlations in coherent multiple scattering. Physics Reports ( 1994 ). Richard Berkovits and Shechao Feng. 1994. Correlations in coherent multiple scattering. Physics Reports (1994)."},{"key":"e_1_2_2_12_1","volume-title":"Berne and Robert Pecora","author":"Bruce","year":"2000","unstructured":"Bruce J. Berne and Robert Pecora . 2000 . Dynamic light scattering: with applications to chemistry, biology, and physics. Courier Corporation . Bruce J. Berne and Robert Pecora. 2000. Dynamic light scattering: with applications to chemistry, biology, and physics. Courier Corporation."},{"key":"e_1_2_2_13_1","volume-title":"Mosk","author":"Bertolotti Jacopo","year":"2012","unstructured":"Jacopo Bertolotti , Elbert G. Van Putten , Christian Blum , Ad Lagendijk , Willem L. Vos , and Allard P . Mosk . 2012 . Non-invasive imaging through opaque scattering layers. Nature ( 2012). Jacopo Bertolotti, Elbert G. Van Putten, Christian Blum, Ad Lagendijk, Willem L. Vos, and Allard P. Mosk. 2012. Non-invasive imaging through opaque scattering layers. Nature (2012)."},{"key":"e_1_2_2_14_1","volume-title":"A radiative transfer framework for non-exponential media. ACM TOG","author":"Bitterli Benedikt","year":"2018","unstructured":"Benedikt Bitterli , Srinath Ravichandran , Thomas M\u00fcller , Magnus Wrenninge , Jan Nov\u00e1k , Steve Marschner , and Wojciech Jarosz . 2018. A radiative transfer framework for non-exponential media. ACM TOG ( 2018 ). Benedikt Bitterli, Srinath Ravichandran, Thomas M\u00fcller, Magnus Wrenninge, Jan Nov\u00e1k, Steve Marschner, and Wojciech Jarosz. 2018. A radiative transfer framework for non-exponential media. ACM TOG (2018)."},{"key":"e_1_2_2_15_1","volume-title":"Yodh","author":"Boas David A.","year":"1997","unstructured":"David A. Boas and Arjun G . Yodh . 1997 . Spatially varying dynamical properties of turbid media probed with diffusing temporal light correlation. JOSA A ( 1997). David A. Boas and Arjun G. Yodh. 1997. Spatially varying dynamical properties of turbid media probed with diffusing temporal light correlation. JOSA A (1997)."},{"key":"e_1_2_2_16_1","volume-title":"Huffman","author":"Bohren Craig F.","year":"1983","unstructured":"Craig F. Bohren and Donald R . Huffman . 1983 . Absorption and scattering of light by small particle. John Wiley & Sons . Craig F. Bohren and Donald R. Huffman. 1983. Absorption and scattering of light by small particle. John Wiley & Sons."},{"key":"e_1_2_2_17_1","volume-title":"Single-shot speckle correlation fluorescence microscopy in thick scattering tissue with image reconstruction priors. Journal of Biophotonics","author":"Chang Julie","year":"2018","unstructured":"Julie Chang and Gordon Wetzstein . 2018. Single-shot speckle correlation fluorescence microscopy in thick scattering tissue with image reconstruction priors. Journal of Biophotonics ( 2018 ). Julie Chang and Gordon Wetzstein. 2018. Single-shot speckle correlation fluorescence microscopy in thick scattering tissue with image reconstruction priors. Journal of Biophotonics (2018)."},{"key":"e_1_2_2_18_1","volume":"199","author":"Cheong Wai-Fung","unstructured":"Wai-Fung Cheong , Scott A. Prahl , and Ashley J. Welch. 199 0. A review of the optical properties of biological tissues. IEEE JQE (1990). Wai-Fung Cheong, Scott A. Prahl, and Ashley J. Welch. 1990. A review of the optical properties of biological tissues. IEEE JQE (1990).","journal-title":"Ashley J. Welch."},{"key":"e_1_2_2_19_1","volume-title":"Christopher Fang-Yen, Pilsung Kang, Kyoung Jin Lee, Ramachandra R. Dasari, Michael S. 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Reflectance Model for Diffraction. ACM TOG (2012)."},{"key":"e_1_2_2_21_1","volume-title":"A reciprocal formulation of nonexponential radiative transfer. 1: Sketch and motivation. Journal of Computational and Theoretical Transport","author":"Eon Eugene","year":"2018","unstructured":"Eugene d' Eon . 2018. A reciprocal formulation of nonexponential radiative transfer. 1: Sketch and motivation. Journal of Computational and Theoretical Transport ( 2018 ). Eugene d'Eon. 2018. A reciprocal formulation of nonexponential radiative transfer. 1: Sketch and motivation. Journal of Computational and Theoretical Transport (2018)."},{"key":"e_1_2_2_22_1","volume-title":"Correlation transfer: Development and application. JQSRT","author":"Dougherty Ronald L.","year":"1994","unstructured":"Ronald L. Dougherty , Bruce J. Ackerson , Nafaa M. Reguigui , F. Dorri-Nowkoorani , and Ulf Nobbmann . 1994. Correlation transfer: Development and application. JQSRT ( 1994 ). Ronald L. Dougherty, Bruce J. Ackerson, Nafaa M. Reguigui, F. Dorri-Nowkoorani, and Ulf Nobbmann. 1994. Correlation transfer: Development and application. JQSRT (1994)."},{"key":"e_1_2_2_23_1","volume-title":"Yodh","author":"Durduran Turgut","year":"2010","unstructured":"Turgut Durduran , Regine Choe , Wesley B. Baker , and Arjun G . Yodh . 2010 . Diffuse optics for tissue monitoring and tomography. Reports on Progress in Physics ( 2010). Turgut Durduran, Regine Choe, Wesley B. Baker, and Arjun G. Yodh. 2010. Diffuse optics for tissue monitoring and tomography. Reports on Progress in Physics (2010)."},{"key":"e_1_2_2_24_1","volume-title":"Memory-effect based deconvolution microscopy for super-resolution imaging through scattering media. Scientific Reports","author":"Edrei Eitan","year":"2016","unstructured":"Eitan Edrei and Giuliano Scarcelli . 2016. Memory-effect based deconvolution microscopy for super-resolution imaging through scattering media. Scientific Reports ( 2016 ). Eitan Edrei and Giuliano Scarcelli. 2016. Memory-effect based deconvolution microscopy for super-resolution imaging through scattering media. Scientific Reports (2016)."},{"key":"e_1_2_2_25_1","unstructured":"Robert K. Erf. 1978. Speckle Metrology. Elsevier.  Robert K. Erf. 1978. Speckle Metrology. Elsevier."},{"key":"e_1_2_2_26_1","doi-asserted-by":"crossref","unstructured":"Shechao Feng Charles Kane Patrick A. Lee and A. Douglas Stone. 1988. Correlations and fluctuations of coherent wave transmission through disordered media. Phys. Rev. Lett. (1988).  Shechao Feng Charles Kane Patrick A. Lee and A. Douglas Stone. 1988. Correlations and fluctuations of coherent wave transmission through disordered media. Phys. Rev. Lett. (1988).","DOI":"10.1103\/PhysRevLett.61.834"},{"key":"e_1_2_2_27_1","volume-title":"Looking through walls and around corners. Physica A","author":"Freund Isaac","year":"1990","unstructured":"Isaac Freund . 1990. Looking through walls and around corners. Physica A ( 1990 ). Isaac Freund. 1990. Looking through walls and around corners. Physica A (1990)."},{"key":"e_1_2_2_28_1","volume-title":"Surface correlations in multiple-scattering media. Phys Rev A","author":"Freund Isaac","year":"1992","unstructured":"Isaac Freund and Danny Eliyahu . 1992. Surface correlations in multiple-scattering media. Phys Rev A ( 1992 ). Isaac Freund and Danny Eliyahu. 1992. Surface correlations in multiple-scattering media. Phys Rev A (1992)."},{"key":"e_1_2_2_29_1","volume-title":"Anisoplanatism in adaptive optics. JOSA","author":"Fried David L.","year":"1982","unstructured":"David L. Fried . 1982. Anisoplanatism in adaptive optics. JOSA ( 1982 ). David L. Fried. 1982. Anisoplanatism in adaptive optics. JOSA (1982)."},{"key":"e_1_2_2_30_1","volume-title":"Niels J\u00f8rgen Christensen, and Henrik Wann Jensen","author":"Frisvad Jeppe Revall","year":"2007","unstructured":"Jeppe Revall Frisvad , Niels J\u00f8rgen Christensen, and Henrik Wann Jensen . 2007 . Computing the scattering properties of participating media using Lorenz-Mie theory. ACM TOG ( 2007). Jeppe Revall Frisvad, Niels J\u00f8rgen Christensen, and Henrik Wann Jensen. 2007. Computing the scattering properties of participating media using Lorenz-Mie theory. ACM TOG (2007)."},{"key":"e_1_2_2_31_1","doi-asserted-by":"crossref","unstructured":"Ioannis Gkioulekas Shuang Zhao Kavita Bala Todd Zickler and Anat Levin. 2013. Inverse Volume Rendering with Material Dictionaries. ACM TOG (2013).  Ioannis Gkioulekas Shuang Zhao Kavita Bala Todd Zickler and Anat Levin. 2013. Inverse Volume Rendering with Material Dictionaries. ACM TOG (2013).","DOI":"10.1145\/2508363.2508377"},{"key":"e_1_2_2_32_1","volume-title":"Dynamic light scattering. American Journal of Physics","author":"Goldburg Walter I.","year":"1999","unstructured":"Walter I. Goldburg . 1999. Dynamic light scattering. American Journal of Physics ( 1999 ). Walter I. Goldburg. 1999. Dynamic light scattering. American Journal of Physics (1999)."},{"key":"e_1_2_2_33_1","volume-title":"Introduction to Fourier Optics","author":"Goodman Joseph W.","unstructured":"Joseph W. Goodman . 1968. Introduction to Fourier Optics . McGraw-Hill . Joseph W. Goodman. 1968. Introduction to Fourier Optics. McGraw-Hill."},{"key":"e_1_2_2_34_1","volume-title":"Speckle Phenomena in Optics: Theory and Applications","author":"Goodman Joseph W.","unstructured":"Joseph W. Goodman . 2007. Speckle Phenomena in Optics: Theory and Applications . Roberts and Company Pub . Joseph W. Goodman. 2007. Speckle Phenomena in Optics: Theory and Applications. Roberts and Company Pub."},{"key":"e_1_2_2_35_1","volume-title":"Frequency domain normal map filtering. ACM TOG","author":"Han Charles","year":"2007","unstructured":"Charles Han , Bo Sun , Ravi Ramamoorthi , and Eitan Grinspun . 2007. Frequency domain normal map filtering. ACM TOG ( 2007 ). Charles Han, Bo Sun, Ravi Ramamoorthi, and Eitan Grinspun. 2007. Frequency domain normal map filtering. ACM TOG (2007)."},{"key":"e_1_2_2_36_1","volume-title":"Guidestar-assisted wavefront-shaping methods for focusing light into biological tissue. Nature Photonics","author":"Horstmeyer Roarke","year":"2015","unstructured":"Roarke Horstmeyer , Haowen Ruan , and Changhuei Yang . 2015. Guidestar-assisted wavefront-shaping methods for focusing light into biological tissue. Nature Photonics ( 2015 ). Roarke Horstmeyer, Haowen Ruan, and Changhuei Yang. 2015. Guidestar-assisted wavefront-shaping methods for focusing light into biological tissue. Nature Photonics (2015)."},{"key":"e_1_2_2_37_1","doi-asserted-by":"publisher","DOI":"10.1007\/978-3-642-57323-1"},{"key":"e_1_2_2_38_1","volume-title":"Rastogi","author":"Jacquot Pierre","year":"1979","unstructured":"Pierre Jacquot and Pramod K . Rastogi . 1979 . Speckle motions induced by rigid-body movements in free-space geometry: an explicit investigation and extension to new cases. Appl. Opt . (1979). Pierre Jacquot and Pramod K. Rastogi. 1979. Speckle motions induced by rigid-body movements in free-space geometry: an explicit investigation and extension to new cases. Appl. Opt. (1979)."},{"key":"e_1_2_2_39_1","volume-title":"A radiative transfer framework for rendering materials with anisotropic structure. ACM TOG","author":"Jakob Wenzel","year":"2010","unstructured":"Wenzel Jakob , Adam Arbree , Jonathan T. Moon , Kavita Bala , and Steve Marschner . 2010. A radiative transfer framework for rendering materials with anisotropic structure. ACM TOG ( 2010 ). Wenzel Jakob, Adam Arbree, Jonathan T. Moon, Kavita Bala, and Steve Marschner. 2010. A radiative transfer framework for rendering materials with anisotropic structure. ACM TOG (2010)."},{"key":"e_1_2_2_40_1","volume-title":"Hanson","author":"Jakobsen Michael L.","year":"2012","unstructured":"Michael L. Jakobsen , Hal T. Yura , and Steen G . Hanson . 2012 . Spatial filtering velocimetry of objective speckles for measuring out-of-plane motion. Appl. Opt . (2012). Michael L. Jakobsen, Hal T. Yura, and Steen G. Hanson. 2012. Spatial filtering velocimetry of objective speckles for measuring out-of-plane motion. Appl. Opt. (2012)."},{"key":"e_1_2_2_41_1","volume-title":"A radiative transfer framework for spatially-correlated materials. ACM TOG","author":"Jarabo Adrian","year":"2018","unstructured":"Adrian Jarabo , Carlos Aliaga , and Diego Gutierrez . 2018. A radiative transfer framework for spatially-correlated materials. ACM TOG ( 2018 ). Adrian Jarabo, Carlos Aliaga, and Diego Gutierrez. 2018. A radiative transfer framework for spatially-correlated materials. ACM TOG (2018)."},{"key":"e_1_2_2_42_1","volume-title":"A practical model for subsurface light transport. ACM TOG","author":"Jensen Henrik Wann","year":"2001","unstructured":"Henrik Wann Jensen , Stephen R. Marschner , Marc Levoy , and Pat Hanrahan . 2001. A practical model for subsurface light transport. ACM TOG ( 2001 ). Henrik Wann Jensen, Stephen R. Marschner, Marc Levoy, and Pat Hanrahan. 2001. A practical model for subsurface light transport. ACM TOG (2001)."},{"key":"e_1_2_2_43_1","volume-title":"Translation correlations in anisotropically scattering media. Nature Physics","author":"Judkewitz Benjamin","year":"2014","unstructured":"Benjamin Judkewitz , Roarke Horstmeyer , Ivo Vellekoop , and Changhuei Yang . 2014. Translation correlations in anisotropically scattering media. Nature Physics ( 2014 ). Benjamin Judkewitz, Roarke Horstmeyer, Ivo Vellekoop, and Changhuei Yang. 2014. Translation correlations in anisotropically scattering media. Nature Physics (2014)."},{"key":"e_1_2_2_44_1","volume-title":"Focusing and Compression of Ultrashort Pulses through Scattering Media. Nature Photonics","author":"Katz Ori","year":"2010","unstructured":"Ori Katz , Yaron Bromberg , Eran Small , and Yaron Silberberg . 2010. Focusing and Compression of Ultrashort Pulses through Scattering Media. Nature Photonics ( 2010 ). Ori Katz, Yaron Bromberg, Eran Small, and Yaron Silberberg. 2010. Focusing and Compression of Ultrashort Pulses through Scattering Media. Nature Photonics (2010)."},{"key":"e_1_2_2_45_1","volume-title":"Non-invasive singleshot imaging through scattering layers and around corners via speckle correlation. Nature Photonics","author":"Katz Ori","year":"2014","unstructured":"Ori Katz , Pierre Heidmann , Mathias Fink , and Sylvain Gigan . 2014. Non-invasive singleshot imaging through scattering layers and around corners via speckle correlation. Nature Photonics ( 2014 ). Ori Katz, Pierre Heidmann, Mathias Fink, and Sylvain Gigan. 2014. Non-invasive singleshot imaging through scattering layers and around corners via speckle correlation. Nature Photonics (2014)."},{"key":"e_1_2_2_46_1","volume-title":"Looking around corners and through thin turbid layers in real time with scattered incoherent light. Nature Photonics","author":"Katz Ori","year":"2012","unstructured":"Ori Katz , Eran Small , and Yaron Silberberg . 2012. Looking around corners and through thin turbid layers in real time with scattered incoherent light. Nature Photonics ( 2012 ). Ori Katz, Eran Small, and Yaron Silberberg. 2012. Looking around corners and through thin turbid layers in real time with scattered incoherent light. Nature Photonics (2012)."},{"key":"e_1_2_2_47_1","volume-title":"Advances in Speckle Metrology and Related Techniques","author":"Kaufmann Guillermo H.","unstructured":"Guillermo H. Kaufmann . 2011. Advances in Speckle Metrology and Related Techniques . Wiley . Guillermo H. Kaufmann. 2011. Advances in Speckle Metrology and Related Techniques. Wiley."},{"key":"e_1_2_2_48_1","volume-title":"A Realistic Camera Model for Computer Graphics. ACM TOG","author":"Kolb Craig","year":"1995","unstructured":"Craig Kolb , Don Mitchell , and Pat Hanrahan . 1995. A Realistic Camera Model for Computer Graphics. ACM TOG ( 1995 ). Craig Kolb, Don Mitchell, and Pat Hanrahan. 1995. A Realistic Camera Model for Computer Graphics. ACM TOG (1995)."},{"key":"e_1_2_2_49_1","volume-title":"Jian Wei Tay, and Lihong V. Wang","author":"Lai Puxiang","year":"2015","unstructured":"Puxiang Lai , Lidai Wang , Jian Wei Tay, and Lihong V. Wang . 2015 . Photoacoustically guided wavefront shaping for enhanced optical focusing in scattering media. Nature Photonics ( 2015). Puxiang Lai, Lidai Wang, Jian Wei Tay, and Lihong V. Wang. 2015. Photoacoustically guided wavefront shaping for enhanced optical focusing in scattering media. Nature Photonics (2015)."},{"key":"e_1_2_2_50_1","volume-title":"Deep speckle correlation: a deep learning approach toward scalable imaging through scattering media. Optica","author":"Li Yunzhe","year":"2018","unstructured":"Yunzhe Li , Yujia Xue , and Lei Tian . 2018. Deep speckle correlation: a deep learning approach toward scalable imaging through scattering media. Optica ( 2018 ). Yunzhe Li, Yujia Xue, and Lei Tian. 2018. Deep speckle correlation: a deep learning approach toward scalable imaging through scattering media. Optica (2018)."},{"key":"e_1_2_2_51_1","volume-title":"Monte Carlo modeling of optical coherence tomography imaging through turbid media. Applied optics","author":"Lu Qiang","year":"2004","unstructured":"Qiang Lu , Xiaosong Gan , Min Gu , and Qingming Luo . 2004. Monte Carlo modeling of optical coherence tomography imaging through turbid media. Applied optics ( 2004 ). Qiang Lu, Xiaosong Gan, Min Gu, and Qingming Luo. 2004. Monte Carlo modeling of optical coherence tomography imaging through turbid media. Applied optics (2004)."},{"key":"e_1_2_2_52_1","volume-title":"Directional statistics","author":"Mardia Kanti","unstructured":"Kanti Mardia and Peter Jupp . 2000. Directional statistics . John Wiley & Sons . Kanti Mardia and Peter Jupp. 2000. Directional statistics. John Wiley & Sons."},{"key":"e_1_2_2_53_1","volume-title":"Introduction to Optical Microscopy","author":"Mertz Jerome","unstructured":"Jerome Mertz . 2019. Introduction to Optical Microscopy . Cambridge University Press . Jerome Mertz. 2019. Introduction to Optical Microscopy. Cambridge University Press."},{"key":"e_1_2_2_54_1","volume-title":"Bifano","author":"Mertz Jerome","year":"2015","unstructured":"Jerome Mertz , Hari Paudel , and Thomas G . Bifano . 2015 . Field of view advantage of conjugate adaptive optics in microscopy applications. Applied Optics ( 2015). Jerome Mertz, Hari Paudel, and Thomas G. Bifano. 2015. 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Acquiring scattering properties of participating media by dilution. ACM TOG (2006)."},{"key":"e_1_2_2_60_1","doi-asserted-by":"publisher","DOI":"10.1145\/3386569.3392406"},{"key":"e_1_2_2_61_1","volume-title":"Real-time wavefront shaping through scattering media by all-optical feedback. Nature Photonics","author":"Nixon Micha","year":"2013","unstructured":"Micha Nixon , Ori Katz , Eran Small , Yaron Bromberg , Asher A. Friesem , Yaron Silberberg , and Nir Davidson . 2013. Real-time wavefront shaping through scattering media by all-optical feedback. Nature Photonics ( 2013 ). Micha Nixon, Ori Katz, Eran Small, Yaron Bromberg, Asher A. Friesem, Yaron Silberberg, and Nir Davidson. 2013. Real-time wavefront shaping through scattering media by all-optical feedback. Nature Photonics (2013)."},{"key":"e_1_2_2_62_1","volume-title":"Monte Carlo Methods for Volumetric Light Transport Simulation. Computer Graphics Forum","author":"Novak Jan","year":"2018","unstructured":"Jan Novak , Iliyan Georgiev , Johannes Hanika , and Wojciech Jarosz . 2018. Monte Carlo Methods for Volumetric Light Transport Simulation. Computer Graphics Forum ( 2018 ). Jan Novak, Iliyan Georgiev, Johannes Hanika, and Wojciech Jarosz. 2018. Monte Carlo Methods for Volumetric Light Transport Simulation. Computer Graphics Forum (2018)."},{"key":"e_1_2_2_63_1","volume-title":"Vellekoop","author":"Osnabrugge Gerwin","year":"2017","unstructured":"Gerwin Osnabrugge , Roarke Horstmeyer , Ioannis N. Papadopoulos , Benjamin Judkewitz , and Ivo M . Vellekoop . 2017 . Generalized optical memory effect. Optica ( 2017). Gerwin Osnabrugge, Roarke Horstmeyer, Ioannis N. Papadopoulos, Benjamin Judkewitz, and Ivo M. Vellekoop. 2017. Generalized optical memory effect. Optica (2017)."},{"key":"e_1_2_2_64_1","volume-title":"Low-coherence optical tomography in turbid tissue: theoretical analysis. Applied optics","author":"Pan Yingtian","year":"1995","unstructured":"Yingtian Pan , Reginald Birngruber , J\u00fcrgen Rosperich , and Ralf Engelhardt . 1995. Low-coherence optical tomography in turbid tissue: theoretical analysis. Applied optics ( 1995 ). Yingtian Pan, Reginald Birngruber, J\u00fcrgen Rosperich, and Ralf Engelhardt. 1995. Low-coherence optical tomography in turbid tissue: theoretical analysis. Applied optics (1995)."},{"key":"e_1_2_2_65_1","volume-title":"Diffusing wave spectroscopy. Physical review letters","author":"Pine David J.","year":"1988","unstructured":"David J. Pine , David A. Weitz , Paul M. Chaikin , and Eric Herbolzheimer . 1988. Diffusing wave spectroscopy. Physical review letters ( 1988 ). David J. Pine, David A. Weitz, Paul M. Chaikin, and Eric Herbolzheimer. 1988. Diffusing wave spectroscopy. Physical review letters (1988)."},{"key":"e_1_2_2_66_1","doi-asserted-by":"publisher","DOI":"10.1364\/OE.11.003605"},{"key":"e_1_2_2_67_1","doi-asserted-by":"publisher","DOI":"10.1073\/pnas.0604791103"},{"key":"e_1_2_2_68_1","doi-asserted-by":"crossref","unstructured":"Iman Sadeghi Adolfo Munoz Philip Laven Wojciech Jarosz Francisco Seron Diego Gutierrez and Henrik Jensen. 2012. Physically-Based Simulation of Rainbows. ACM TOG. (2012).  Iman Sadeghi Adolfo Munoz Philip Laven Wojciech Jarosz Francisco Seron Diego Gutierrez and Henrik Jensen. 2012. Physically-Based Simulation of Rainbows. ACM TOG. (2012).","DOI":"10.1145\/2077341.2077344"},{"key":"e_1_2_2_69_1","doi-asserted-by":"publisher","DOI":"10.1364\/OE.16.005728"},{"key":"e_1_2_2_70_1","doi-asserted-by":"crossref","unstructured":"Joseph M. Schmitt and A. Kn\u00fcttel. 1997. Model of optical coherence tomography of heterogeneous tissue. JOSA A (1997).  Joseph M. Schmitt and A. Kn\u00fcttel. 1997. Model of optical coherence tomography of heterogeneous tissue. JOSA A (1997).","DOI":"10.1364\/JOSAA.14.001231"},{"key":"e_1_2_2_71_1","doi-asserted-by":"publisher","DOI":"10.1364\/OE.23.013505"},{"key":"e_1_2_2_72_1","doi-asserted-by":"publisher","DOI":"10.1145\/3072959.3073607"},{"key":"e_1_2_2_73_1","volume-title":"Fourier Depth of Field. ACM TOG","author":"Soler Cyril","year":"2009","unstructured":"Cyril Soler , Kartic Subr , Fr\u00e9do Durand , Nicolas Holzschuch , and Fran\u00e7ois Sillion . 2009. Fourier Depth of Field. ACM TOG ( 2009 ). Cyril Soler, Kartic Subr, Fr\u00e9do Durand, Nicolas Holzschuch, and Fran\u00e7ois Sillion. 2009. Fourier Depth of Field. ACM TOG (2009)."},{"key":"e_1_2_2_74_1","volume-title":"Diffraction shaders. ACM TOG","author":"Stam Jos","year":"1999","unstructured":"Jos Stam . 1999. Diffraction shaders. ACM TOG ( 1999 ). Jos Stam. 1999. Diffraction shaders. ACM TOG (1999)."},{"key":"e_1_2_2_75_1","volume-title":"Rendering deformed speckle images with a Boolean model. JMIV","author":"Sur Fr\u00e9d\u00e9ric","year":"2018","unstructured":"Fr\u00e9d\u00e9ric Sur , Beno\u00eet Blaysat , and Michel Gr\u00e9diac . 2018. Rendering deformed speckle images with a Boolean model. JMIV ( 2018 ). Fr\u00e9d\u00e9ric Sur, Beno\u00eet Blaysat, and Michel Gr\u00e9diac. 2018. Rendering deformed speckle images with a Boolean model. JMIV (2018)."},{"key":"e_1_2_2_76_1","volume-title":"Fleischer","author":"Takasaki Kevin T.","year":"2014","unstructured":"Kevin T. Takasaki and Jason W . Fleischer . 2014 . Phase-space measurement for depth-resolved memory-effect imaging. Optical Express ( 2014). Kevin T. Takasaki and Jason W. Fleischer. 2014. Phase-space measurement for depth-resolved memory-effect imaging. Optical Express (2014)."},{"key":"e_1_2_2_77_1","volume-title":"An open-source Matlab toolbox for computing multiple scattering problems by disks. Computer Physics Communications","author":"Thierry Bertrand","year":"2015","unstructured":"Bertrand Thierry , Xavier Antoine , Chokri Chniti , and Hasan Alzubaidi . 2015. &mu;-diff : An open-source Matlab toolbox for computing multiple scattering problems by disks. Computer Physics Communications ( 2015 ). Bertrand Thierry, Xavier Antoine, Chokri Chniti, and Hasan Alzubaidi. 2015. &mu;-diff: An open-source Matlab toolbox for computing multiple scattering problems by disks. Computer Physics Communications (2015)."},{"key":"e_1_2_2_78_1","volume-title":"Cox","author":"Treeby Bradley E.","year":"2010","unstructured":"Bradley E. Treeby and Ben T . Cox . 2010 . k-Wave: MATLAB toolbox for the simulation and reconstruction of photoacoustic wave-fields. JBO ( 2010). Bradley E. Treeby and Ben T. Cox. 2010. k-Wave: MATLAB toolbox for the simulation and reconstruction of photoacoustic wave-fields. JBO (2010)."},{"key":"e_1_2_2_79_1","doi-asserted-by":"crossref","unstructured":"Elbert G. van Putten Duygu Akbulut Jacopo Bertolotti Willem. L. Vos Ad Lagendijk and Allard. P. Mosk. 2011. Scattering Lens Resolves Sub-100 nm Structures with Visible Light. Phys. Rev. Lett. (2011).  Elbert G. van Putten Duygu Akbulut Jacopo Bertolotti Willem. L. Vos Ad Lagendijk and Allard. P. Mosk. 2011. Scattering Lens Resolves Sub-100 nm Structures with Visible Light. Phys. Rev. Lett. (2011).","DOI":"10.1103\/PhysRevLett.106.193905"},{"key":"e_1_2_2_80_1","volume-title":"Aegerter","author":"Vellekoop Ivo M.","year":"2010","unstructured":"Ivo M. Vellekoop and Christof M . Aegerter . 2010 . Scattered light fluorescence microscopy: imaging through turbid layers. Opt. Lett . (2010). Ivo M. Vellekoop and Christof M. Aegerter. 2010. Scattered light fluorescence microscopy: imaging through turbid layers. Opt. Lett. (2010)."},{"key":"e_1_2_2_81_1","volume-title":"Digital optical phase conjugation of fluorescence in turbid tissue. Applied Physics Letters","author":"Vellekoop Ivo M.","year":"2012","unstructured":"Ivo M. Vellekoop , Meng Cui , and Changhuei Yang . 2012. Digital optical phase conjugation of fluorescence in turbid tissue. Applied Physics Letters ( 2012 ). Ivo M. Vellekoop, Meng Cui, and Changhuei Yang. 2012. Digital optical phase conjugation of fluorescence in turbid tissue. Applied Physics Letters (2012)."},{"key":"e_1_2_2_82_1","volume-title":"Mosk","author":"Vellekoop Ivo M.","year":"2010","unstructured":"Ivo M. Vellekoop , Aart Lagendijk , and Allard P . Mosk . 2010 . Exploiting disorder for perfect focusing. Nature Photonics ( 2010). Ivo M. Vellekoop, Aart Lagendijk, and Allard P. Mosk. 2010. Exploiting disorder for perfect focusing. Nature Photonics (2010)."},{"key":"e_1_2_2_83_1","volume-title":"Mosk","author":"Vellekoop Ivo M.","year":"2007","unstructured":"Ivo M. Vellekoop and Allard P . Mosk . 2007 . Focusing coherent light through opaque strongly scattering media. Opt. Lett . (2007). Ivo M. Vellekoop and Allard P. Mosk. 2007. Focusing coherent light through opaque strongly scattering media. Opt. Lett. (2007)."},{"key":"e_1_2_2_84_1","volume-title":"Hullin","author":"Werner Sebastian","year":"2017","unstructured":"Sebastian Werner , Zdravko Velinov , Wenzel Jakob , and Matthias B . Hullin . 2017 . Scratch Iridescence : Wave-Optical Rendering of Diffractive Surface Structure. ACM TOG ( 2017). Sebastian Werner, Zdravko Velinov, Wenzel Jakob, and Matthias B. Hullin. 2017. Scratch Iridescence: Wave-Optical Rendering of Diffractive Surface Structure. ACM TOG (2017)."},{"key":"e_1_2_2_85_1","volume-title":"Electric field Monte Carlo simulation of polarized light propagation in turbid media","author":"Min Xu.","year":"2004","unstructured":"Min Xu. 2004. Electric field Monte Carlo simulation of polarized light propagation in turbid media . Optical Express ( 2004 ). Min Xu. 2004. Electric field Monte Carlo simulation of polarized light propagation in turbid media. Optical Express (2004)."},{"key":"e_1_2_2_86_1","volume-title":"Rendering specular microgeometry with wave optics. ACM TOG","author":"Yan Ling-Qi","year":"2018","unstructured":"Ling-Qi Yan , Milo\u0161 Ha\u0161an , Bruce Walter , Steve Marschner , and Ravi Ramamoorthi . 2018. Rendering specular microgeometry with wave optics. ACM TOG ( 2018 ). Ling-Qi Yan, Milo\u0161 Ha\u0161an, Bruce Walter, Steve Marschner, and Ravi Ramamoorthi. 2018. Rendering specular microgeometry with wave optics. ACM TOG (2018)."},{"key":"e_1_2_2_87_1","volume-title":"Optical phase conjugation for turbidity suppression in biological samples. Nature photonics","author":"Yaqoob Zahid","year":"2008","unstructured":"Zahid Yaqoob , Demetri Psaltis , Michael Feld , and Changhuei Yang . 2008. Optical phase conjugation for turbidity suppression in biological samples. Nature photonics ( 2008 ). Zahid Yaqoob, Demetri Psaltis, Michael Feld, and Changhuei Yang. 2008. Optical phase conjugation for turbidity suppression in biological samples. Nature photonics (2008)."},{"key":"e_1_2_2_88_1","unstructured":"Amnon Yariv. 1997. Optical electronics in modern communications. New York : Oxford University Press.  Amnon Yariv. 1997. Optical electronics in modern communications. New York : Oxford University Press."},{"key":"e_1_2_2_89_1","volume-title":"Numerical solution of initial boundary value problems involving Maxwell's equations in isotropic media","author":"Yee Kane","year":"1966","unstructured":"Kane Yee . 1966. Numerical solution of initial boundary value problems involving Maxwell's equations in isotropic media . IEEE TAP ( 1966 ). Kane Yee. 1966. Numerical solution of initial boundary value problems involving Maxwell's equations in isotropic media. 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ACM TOG (2020)."},{"key":"e_1_2_2_92_1","volume-title":"A differential theory of radiative transfer. ACM TOG","author":"Zhang Cheng","year":"2019","unstructured":"Cheng Zhang , Lifan Wu , Changxi Zheng , Ioannis Gkioulekas , Ravi Ramamoorthi , and Shuang Zhao . 2019. A differential theory of radiative transfer. ACM TOG ( 2019 ). Cheng Zhang, Lifan Wu, Changxi Zheng, Ioannis Gkioulekas, Ravi Ramamoorthi, and Shuang Zhao. 2019. A differential theory of radiative transfer. 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