박사

Three-dimensional measurement of micro-optical components using digital holography with pattern recognition

김도형 2015년
논문상세정보
' Three-dimensional measurement of micro-optical components using digital holography with pattern recognition' 의 주제별 논문영향력
논문영향력 선정 방법
논문영향력 요약
주제
  • 3d measurement
  • 3차원 검사
  • digital holography
  • micro-optical component
  • pattern recognition
  • phase quantitative image
  • 디지털 홀로그래피
  • 마이크로 광학 소자
  • 위상 이미지
  • 패턴인식
동일주제 총논문수 논문피인용 총횟수 주제별 논문영향력의 평균
239 0

0.0%

' Three-dimensional measurement of micro-optical components using digital holography with pattern recognition' 의 참고문헌

  • Zhou, Wenjing, Yingjie Yu, and Anand Asundi. "Study on aberration suppressing methods in digital micro-holography." Optics and Lasers in Engineering 47.2 (2009): 264-270.
  • Zhao, Jianlin, Hongzhen Jiang, and Jianglei Di. "Recording and reconstruction of a color holographic image by using digital lensless Fourier transform holography." Optics Express 16.4 (2008): 2514-2519.
  • Z. Kam, B. Hanser, M. G. Gustafsson, D. a Agard, and J. W. Sedat, “Computational adaptive optics for live three-dimensional biological imaging.,” Proc. Natl. Acad. Sci. U. S. A., vol. 98, no. 7, pp. 3790–5, Mar. 2001.
  • Yizhou, Zhang, et al. “Improvement of speckle noise reduction in lensless Fourier-transform digital holography” Proceedings of SPIE, vol. 8204, pp. 82042U, (2011).
  • Yaraş, Fahri, Hoonjong Kang, and Levent Onural. "State of the art in holographic displays: a survey." Journal of display technology 6.10 (2010): 443-454.
  • Yamaguchi, Ichirou, et al. "Image formation in phase-shifting digital holography and applications to microscopy." Applied Optics 40.34 (2001): 6177-6186.
  • Yamaguchi, Ichirou, and Tong Zhang. "Phase-shifting digital holography."Optics letters 22.16 (1997): 1268-1270.
  • Yamaguchi, Ichirou, Tatsuki Matsumura, and Jun-ichi Kato. "Phase-shifting color digital holography." Optics letters 27.13 (2002): 1108-1110.
  • Yamaguchi, Ichirou, Sohgo Ohta, and Jun-ichi Kato. "Surface contouring by phase-shifting digital holography." Optics and Lasers in Engineering 36.5 (2001): 417-428.
  • Xu, Lei, Jianmin Miao, and Anand Asundi. "Properties of digital holography based on in-line configuration." Optical Engineering 39.12 (2000): 3214-3219.
  • Wyant, J. C. "Testing aspherics using two-wavelength holography." Applied Optics 10.9 (1971): 2113-2118.
  • Wilson, Tony. "Confocal microscopy." Academic Press: London, etc 426 (1990): 1-64.
  • Weijuan, Qu, et al. "Microlens characterization by digital holographic microscopy with physical spherical phase compensation." Applied optics 49.33 (2010)
  • Weible, Kenneth J., et al. "Metrology of refractive microlens arrays." Photonics Europe. International Society for Optics and Photonics, 2004.
  • Wang, Zhaoyang, and Bongtae Han. "Advanced iterative algorithm for phase extraction of randomly phase-shifted interferograms." Optics letters 29.14 (2004): 1671-1673.
  • Wang, Yunxin, et al. "Speckle noise suppression in digital holography by angular diversity with phase-only spatial light modulator." Optics express 21.17 (2013): 19568-19578.
  • Wallace, Wes, Lutz H. Schaefer, and Jason R. Swedlow. "A workingperson's guide to deconvolution in light microscopy." Biotechniques 31.5 (2001): 1076-1097.
  • Wagner, Christophe, Wolfgang Osten, and Soenke Seebacher. "Direct shape measurement by digital wavefront reconstruction and multi wavelength contouring." Optical Engineering 39.1 (2000): 79-85.
  • Wagner, Christoph, et al. "Digital recording and numerical reconstruction of lensless Fourier holograms in optical metrology." Applied Optics 38.22 (1999): 4812-4820.
  • Van Kempen, G. M. P., et al. "A quantitative comparison of image restoration methods for confocal microscopy." Journal of Microscopy 185.3 (1997): 354-365.
  • Takaki, Yasuhiro, Hiroki Kawai, and Hitoshi Ohzu. "Hybrid holographic microscopy free of conjugate and zero-order images." Applied optics 38.23 (1999): 4990-4996.
  • Tajahuerce, Enrique, Osamu Matoba, and Bahram Javidi. "Shift-invariant three-dimensional object recognition by means of digital holography." Applied optics40.23 (2001): 3877-3886.
  • T. R. Judge, C. G. Quan, and P. J. Bryanstoncross, “Holographic Deformation Measurements by Fourier-Transform Technique with Automatic Phase Unwrapping,” Opt. Eng. 31, 533–543 (1992).
  • Stadelmaier, Alexander, and J rgen H. Massig. "Compensation of lens aberrations in digital holography." Optics letters 25.22 (2000): 1630-1632
  • Smith, Steven W. "The scientist and engineer's guide to digital signal processing." (1997).
  • Situ, Guohai, and Jingjuan Zhang. "Double random-phase encoding in the Fresnel domain." Optics Letters 29.14 (2004): 1584-1586.
  • Sherman, George C. "Application of the convolution theorem to Rayleigh's integral formulas." Journal of the Optical Society of America 57 (1967): 546-7.
  • Schnars, Ulf, and Werner Jueptner. Digital holography. Springer Berlin Heidelberg, 2005.
  • Schnars, Ulf, and Werner J ptner. "Direct recording of holograms by a CCD target and numerical reconstruction." Applied optics 33.2 (1994): 179-181.
  • Scalettar, B.A., J.R. Swedlow, J.W. Sedat, and D.A. Agard. 1996. Dispersion, aberration, and deconvolution in multi-wavelength fluorescence images. J. Microsc. 182:50-60.
  • Sarode, Milindkumar Vinayakrao, and Prashant R. Deshmukh. "Reduction of speckle noise and image enhancement of images using filtering technique."International Journal of Advancements in Technology 2.1 (2011): 30-38.
  • Samsheerali, P. T., Kedar Khare, and Joby Joseph. "Quantitative phase imaging with single shot digital holography." Optics Communications 319 (2014): 85-89.
  • S.-H. Lee, S.-Y. Lim, N.K. Kim, N.-C. Park, H. S. Yang, and Y.-P. Park, "Increasing the storage density of a page-based holographic data storage system by image upscaling using the PSF of the Nyquist aperture," Optics Express 19, 12053-12065 (2011).
  • S. F. Gibson, and F. Lanni, “Experimental test of an analytical model of aberration in an oil-immersion objective lens used in three-dimensional light microscopy.,” J. Opt. Soc. Am. A., vol. 9, no. 1, pp. 154–66, Jan. 1992.
  • Rust, Michael J., Mark Bates, and Xiaowei Zhuang. "Sub-diffraction-limit imaging by stochastic optical reconstruction microscopy (STORM)." Nature methods 3.10 (2006): 793-796.
  • Repetto, L., E. Piano, and C. Pontiggia. "Lensless digital holographic microscope with light-emitting diode illumination." Optics letters 29.10 (2004): 1132-1134.
  • Refregier, Philippe, and Bahram Javidi. "Optical image encryption based on input plane and Fourier plane random encoding." Optics Letters 20.7 (1995): 767-769.
  • Rappaz, Benjamin, et al. "Measurement of the integral refractive index and dynamic cell morphometry of living cells with digital holographic microscopy."Optics express 13.23 (2005): 9361-9373.
  • R. O. Duda and P. E. Hart, “Use of the Hough transformation to detect lines and curves in pictures,” Commun. ACM, vol. 15, no. 1, pp. 11–15, Jan. 1972.
  • Qiu, Fang, et al. "Speckle noise reduction in SAR imagery using a local adaptive median filter." GIScience & Remote Sensing 41.3 (2004): 244-266.
  • Post, D., and W. A. Baracat. "High-sensitivity moir interferometry—a simplified approach." Experimental Mechanics 21.3 (1981): 100-104.
  • Poon, Ting-Chung. Digital holography and three-dimensional display: Principles and Applications. Springer Science & Business Media, 2006.
  • Poon, Chin Y., and Bharat Bhushan. "Comparison of surface roughness measurements by stylus profiler, AFM and non-contact optical profiler." Wear190.1 (1995): 76-88.
  • Pedrini, Giancarlo, and Hans J. Tiziani. "Short-coherence digital microscopy by use of a lensless holographic imaging system." Applied optics 41.22 (2002): 4489-4496.
  • Pedrini, Giancarlo, Wolfgang Osten, and Mikhail E. Gusev. "High-speed digital holographic interferometry for vibration measurement." Applied optics 45.15 (2006): 3456-3462.
  • Pedrini, Giancarlo, Staffan Schedin, and Hans J. Tiziani. "Lensless digitalholographic interferometry for the measurement of large objects." Optics communications 171.1 (1999): 29-36.
  • Pawley, James. Handbook of biological confocal microscopy. Springer Science & Business Media, 2010.
  • Pastoor, Siegmund, and Matthias W pking. "3-D displays: A review of current technologies." Displays 17.2 (1997): 100-110.
  • Orchowski, A., W. D. Rau, and H. Lichte. "Electron holography surmounts resolution limit of electron microscopy." Physical review letters 74.3 (1995): 399.
  • Nussbaum, Ph, et al. "Design, fabrication and testing of microlens arrays for sensors and microsystems." Pure and Applied Optics: Journal of the European Optical Society Part A 6.6 (1997): 617.
  • Noll, Robert J. "Zernike polynomials and atmospheric turbulence." JOsA 66.3 (1976): 207-211.
  • Nguyen, Thuc-Quyen, et al. "Near-field scanning optical microscopy (NSOM) studies of the relationship between interchain interactions, morphology, photodamage, and energy transport in conjugated polymer films." The Journal of Physical Chemistry B 105.22 (2001): 5153-5160.
  • Murphy, Douglas B. Fundamentals of light microscopy and electronic imaging. John Wiley & Sons, 2002.
  • Murata, Shigeru, and Norifumi Yasuda. "Potential of digital holography in particle measurement." Optics & Laser Technology 32.7 (2000): 567-574.
  • Mico, Vicente, et al. "Synthetic aperture superresolution with multiple off-axis holograms." JOSA A 23.12 (2006): 3162-3170.
  • Mersereau, Keith O., et al. "Testing and measurement of microlenses." SPIE's 1993 International Symposium on Optics, Imaging, and Instrumentation. International Society for Optics and Photonics, 1993.
  • McNally, James G., et al. "Three-dimensional imaging by deconvolution microscopy." Methods 19.3 (1999): 373-385.
  • Matoba, Osamu, et al. "Real-time three-dimensional object reconstruction by use of a phase-encoded digital hologram." Applied Optics 41.29 (2002): 6187-6192.
  • Mart nez-Le n, Llu s, Giancarlo Pedrini, and Wolfgang Osten. "Applications of short-coherence digital holography in microscopy." Applied optics 44.19 (2005): 3977-3984.
  • Marquet, Pierre, et al. "Digital holographic microscopy: a noninvasive contrast imaging technique allowing quantitative visualization of living cells with subwavelength axial accuracy." Optics letters 30.5 (2005): 468-470.
  • Manley, Suliana, et al. "High-density mapping of single-molecule trajectories with photoactivated localization microscopy." Nature methods 5.2 (2008): 155-157.
  • M. Seifi, L. Denis, and C. Fournier, “Fast and accurate 3D object recognition directly from digital holograms.,” J. Opt. Soc. Am. A. Opt. Image Sci. Vis., vol. 30, no. 11, pp. 2216–24, Nov. 2013.
  • M. A. Schofield, and Y. Zhu, “Fast phase unwrapping algorithm for interferometric applications,” Opt. Lett. 28, 1194–1196 (2003).
  • M ller, J., V. Kebbel, and W. J ptner. "Digital holography as a tool for testing high-aperture micro-optics." Optics and lasers in engineering 43.7 (2005): 739-751.
  • Lehmann, Michael, and Hannes Lichte. "Tutorial on off-axis electron holography." Microscopy and Microanalysis 8.06 (2002): 447-466.
  • Lee, Myungjun, Oguzhan Yaglidere, and Aydogan Ozcan. "Field-portable reflection and transmission microscopy based on lensless holography."Biomedical optics express 2.9 (2011): 2721-2730.
  • Le Clerc, Fr d rique, Michel Gross, and Laurent Collot. "Synthetic-aperture experiment in the visible with on-axis digital heterodyne holography." Optics Letters 26.20 (2001): 1550-1552.
  • Latychevskaia, Tatiana, Fabian Gehri, and Hans-Werner Fink. "Depth-resolved holographic reconstructions by three-dimensional deconvolution." Optics express 18.21 (2010): 22527-22544.
  • Lai, Songcan, Brian King, and Mark A. Neifeld. "Wave front reconstruction by means of phase-shifting digital in-line holography." Optics communications173.1 (2000): 155-160.
  • Kreis, Thomas M., and Werner PO Ju. "Suppression of the dc term in digital holography." Optical Engineering 36.8 (1997): 2357-2360.
  • Kim, Myung K. Digital Holographic Microscopy. Springer New York, 2011.
  • Kemper, Bj rn, and Gert von Bally. "Digital holographic microscopy for live cell applications and technical inspection." Applied Optics 47.4 (2008): A52-A61.
  • Kelly, Damien P., et al. "Resolution limits in practical digital holographic systems." Optical Engineering 48.9 (2009): 095801-095801.
  • Keller, H.E. 1995. Objective lenses for confocal microscopy, p. 111-126. In J. Pawley (Ed.), Handbook of Biological Confocal Microscopy, 2nd ed. Plenum Press, New York.
  • Kebbel, Volker, Hans-J rgen Hartmann, and Werner PO J ptner. "Application of digital holographic microscopy for inspection of micro-optical components."Lasers in Metrology and Art Conservation. International Society for Optics and Photonics, 2001.
  • Kato, Jun-ichi, Ichirou Yamaguchi, and Tatsuki Matsumura. "Multicolor digital holography with an achromatic phase shifter." Optics letters 27.16 (2002): 1403-1405.
  • K. Curtis, and D. Psaltis, “Recording of multiple holograms in photopolymer films” Appl. Optics, vol. 31, no. 35, pp. 7425-7428, (1992
  • Jang, Ju-Seog, and Bahram Javidi. "Improved viewing resolution of threedimensional integral imaging by use of nonstationary micro-optics." Optics letters 27.5 (2002): 324-326.
  • Herzig, Hans Peter, ed. Micro-optics: elements, systems and applications. CRC Press, 1997.
  • Hell, Stefan W., and Jan Wichmann. "Breaking the diffraction resolution limit by stimulated emission: stimulated-emission-depletion fluorescence microscopy."Optics letters 19.11 (1994): 780-782.
  • Haussmann, G., and W. Lauterborn. "Determination of size and position of fast moving gas bubbles in liquids by digital 3-D image processing of hologram reconstructions." Applied optics 19.20 (1980): 3529-3535.
  • Hansma, P. K., et al. "Tapping mode atomic force microscopy in liquids."Applied Physics Letters 64.13 (1994): 1738-1740.
  • Gu, Claire, et al. "Cross-talk-limited storage capacity of volume holographic memory." JOSA A 9.11 (1992): 1978-1983.
  • Goodman, Joseph W., and R. W. Lawrence. "Digital image formation from electronically detected holograms." Applied physics letters 11.3 (1967): 77-79.
  • Goodman, Joseph W. Introduction to Fourier optics. Vol. 2. New York: McGraw-hill, 1968.
  • Gonzalez, Rafael C., Richard E. Woods, and Steven L. Eddins. Digital image processing using MATLAB. Vol. 2. Knoxville: Gatesmark Publishing, 2009.
  • Gerritsen, H. J., W. J. Hannan, and E. G. Ramberg. "Elimination of speckle noise in holograms with redundancy." Applied optics 7.11 (1968): 2301-2311.
  • Garcia-Sucerquia, Jorge, Jorge Alexis Herrera Ram rez, and Daniel Vel squez Prieto. "Reduction of speckle noise in digital holography by using digital image processing." Optik-International Journal for Light and Electron Optics 116.1 (2005): 44-48.
  • Gabor, Dennis. "A new microscopic principle." Nature 161.4098 (1948): 777-778.
  • F. Yi, I. Moon, B. Javidi, D. Boss, and P. Marquet, “Automated segmentation of multiple red blood cells with digital holographic microscopy.,” J. Biomed. Opt., vol. 18, no. 2, p. 26006, Feb. 2013.
  • Emery, Yves, et al. "Digital holography microscopy (DHM): fast and robust systems for industrial inspection with interferometer resolution." Optical Metrology. International Society for Optics and Photonics, 2005.
  • E. Maalouf and B. Colicchio, "Fluorescence microscopy three-dimensional depth variant point spread function interpolation using Zernike moments," J. Opt. Soc. Am. A 28, 1864-1870 (2011).
  • E. L. Leith, J. Upatnieks, and K. A. Haines, “Microscopy by wavefront reconstruction” J. Opt. Soc. Am. A, vol. 55, no. 8, pp. 981-986, (1965).
  • E. Hecht, “Optics” Addison Wesley, 4th Ed. chapter 4, (2001).
  • E. Cuche, P. Marquet, and C. Depeursinge, “Simultaneous amplitude-contrast and quantitative phase-contrast microscopy by numerical reconstruction of Fresnel off-axis holograms,” Applied Optics 38, 6994–7001 (1999).
  • E. Cuche, P. Marquet, and C. Depeursinge, "Simultaneous amplitude-contrast and quantitative phase-contrast microscopy by numerical reconstruction of Fresnel off-axis holograms," Appl. Opt. 38, 6994–7001 (1999).
  • E. Cuche, F. Bevilacqua, and C. Depeursinge, “Digital holography for quantitative phase contrast imaging,” Optics Letters 24, 291–293 (1999).
  • Dubois, Frank, Luc Joannes, and Jean-Claude Legros. "Improved threedimensional imaging with a digital holography microscope with a source of partial spatial coherence." Applied optics 38.34 (1999): 7085-7094.
  • Di, Jianglei, et al. "Phase aberration compensation of digital holographic microscopy based on least squares surface fitting." Optics Communications282.19 (2009): 3873-3877.
  • Demoli, Nazif, and Ivan Demoli. "Dynamic modal characterization of musical instruments using digital holography." Optics express 13.13 (2005): 4812-4817.
  • Daly, Dan. Microlens arrays. CRC Press, 2000.
  • Cuche, Etienne, Pierre Marquet, and Christian Depeursinge. "Spatial filtering for zero-order and twin-image elimination in digital off-axis holography." Applied optics 39.23 (2000): 4070-4075.
  • Cuche, Etienne, Frederic Bevilacqua, and Christian Depeursinge. "Digital holography for quantitative phase-contrast imaging." Optics letters 24.5 (1999): 291-293.
  • Creath, Katherine. "Step height measurement using two-wavelength phaseshifting interferometry." Applied optics 26.14 (1987): 2810-2816.
  • Coufal, Hans J., Glenn T. Sincerbox, and Demetri Psaltis. Holographic data storage. Springer-Verlag New York, Inc., 2000.
  • Cotte, Yann, et al. "Microscopy image resolution improvement by deconvolution of complex fields." Optics express 18.19 (2010): 19462-19478.
  • Colomb, Tristan, et al. "Total aberrations compensation in digital holographic microscopy with a reference conjugated hologram." Optics express 14.10 (2006): 4300-4306.
  • Colomb, Tristan, et al. "Numerical parametric lens for shifting, magnification, and complete aberration compensation in digital holographic microscopy."JOSA A 23.12 (2006): 3177-3190.
  • Colomb, Tristan, et al. "Automatic procedure for aberration compensation in digital holographic microscopy and applications to specimen shape compensation." Applied optics 45.5 (2006): 851-863.
  • Chen, Gu-Liang, et al. "Numerical suppression of zero-order image in digital holography." Optics express 15.14 (2007): 8851-8856.
  • Charri re, Florian, et al. "Characterization of microlenses by digital holographic microscopy." Applied optics 45.5 (2006): 829-835.
  • Cai, L. Z., Q. Liu, and X. L. Yang. "Phase-shift extraction and wave-front reconstruction in phase-shifting interferometry with arbitrary phase steps."Optics letters 28.19 (2003): 1808-1810.
  • C. J. Mann, L. F. Yu, C. M. Lo, and M. K. Kim, “High-resolution quantitative phase-contrast microscopy by digital holography,” Optics Express 13, 8693–8698 (2005).
  • Buchdahl, Hans Adolph. Optical aberration coefficients. Dover Publications, 1968.
  • Blaya, S., et al. "Highly sensitive photopolymerizable dry film for use in real time holography." Applied physics letters 73.12 (1998): 1628-1630.
  • Binnig, Gerd, Calvin F. Quate, and Ch Gerber. "Atomic force microscope."Physical review letters 56.9 (1986): 930.
  • Betzig, E., et al. "Near field scanning optical microscopy (NSOM): development and biophysical applications." Biophysical Journal 49.1 (1986): 269-279.
  • Bashkansky, M., et al. "Two-dimensional synthetic aperture imaging in the optical domain." Optics letters 27.22 (2002): 1983-1985.
  • B. Javidi and E. Tajahuerce, “Three-dimensional object recognition by use of digital holography,” Opt. Lett., vol. 25, no. 9, p. 610, May 2000.