Digital Signal Processing Reference
In-Depth Information
64. P. Debevec and J. Malik, “Recovering High Dynamic Range Radiance Maps from Pho-
tographs,” in ACM Siggraph , 1997.
65. A. Schmidt and A. Grasnick, “Multi-viewpoint autostereoscopic displays from 4D-vision,” in
SPIE Photonics West 2002: Electronic Imaging , 2002.
66. S. Winkler, Digital Video Quality, John Wiley & Sons, 2005.
67. J. Konrad, B. Lacotte, and E. Dubois, “Cancellation of image crosstalk in time-sequential
displays of stereoscopic video,” IEEE Trans. Image Process., vol. 9, pp. 897-908, May 2000.
68. M. Zwicker, W. Matusik, F. Durand, H. Pfister, and C. Forlines, “Antialiasing for automulti-
scopic 3D displays,” in ACM SIGGRAPH 2006 , Boston, Massachusetts, 2006.
69. A. Boev, R. Bregovic, and A. Gotchev, “Methodology for design of anti-aliasing filters
for autostereoscopic displays,” Special issue on Advanced Techniques on Multirate Signal
Processing for Digital Information Processing, Journal of IET Signal Processing, vol. 5, no. 3,
pp. 333-343, June 2010.
70. A. Boev, R. Bregovic, A. Gotchev, and K. Egiazarian, “Anti-aliasing filtering of 2D images
for multi-view auto-stereoscopic displays,” in The 2009 International Workshop on Local and
Non-Local Approximation in Image Processing, LNLA 2009 , Helsinki, Finland, 2009.
71. A. Boev, R. Bregovic, and A. Gotchev, “Design of tuneable anti-aliasing filters for multiview
displays,” in Stereoscopic Displays and Applications XXII, Proc. SPIE 7863 , 2011.
72. R. Brar, P. Surman, I. Sexton, R. Bates, W. Lee, K. Hopf, F. Neumann, S. Day, and E. Willman,
“Laser-Based Head-Tracked 3D Display Research,” Display Technology, Journal of, vol. 6, no.
10, pp. 531-543, 2010.
73. K. Hopf, F. Neumann, and D. Przewozny, “Multi-user eye tracking suitable for 3D display
applications,” in 3DTV Conference: The True Vision - Capture, Transmission and Display of
3D Video (3DTV-CON), 2011 , 2011.
74. A. Boev, M. Goergiev, A. Gotchev, N. Daskalov, and K. Egiazarian, “Optimized visualization
of stereo images on an OMAP platform with integrated parallax barrier auto-stereoscopic
display,” in 17th European Signal Conference, EUSIPCO 2009 , Glasgow, Scotland, 2009.
75. V. Uzunov, A. Gotchev, K. Egiazarian, and J. Astola, “Face Detection by Optimal Atomic
Decomposition,” in SPIE Optics and Photonics 2005: Algorithms, Architectures, and Devices
and Mathematical Methods, Mathematical Methods in Pattern and Image Analysis , San Diego,
California, USA, 2005.
76. N. G. Kingsbury, “Complex wavelets for shift invariant analysis and filtering of signals,”
Journal of Applied and Computational Harmonic Analysis, vol. 10, no. 3, pp. 234-253, May
2001.
77. H. Essaky Sankaran, A. Gotchev, K. Egiazarian, and J. Astola, “Complex wavelets versus
Gabor wavelets for facial feature extraction: a comparative study,” in Proc. SPIE Image
processing : algorithms and systems IV, Vol. 5672 , San Jose, CA, 2005.
78. A. Boev, M. Georgiev, A. Gotchev, and K. Egiazarian, “Optimized single-viewer mode of
multiview autostereoscopic display,” in Proc. of 16th European Signal Conference EUSIPCO
2008 , Lausanne, Switzerland, 2008.
79. S. K. Mitra, Digital signal processing: A computer based approach, 3 ed., New York: McGraw-
Hill, 2005.
80. M. W. Halle, “Holographic stereograms as discrete imaging systems,” in Practical Holography
VIII , San Jose, CA.
81. V. Podlozhnyuk, “Image Convolution with CUDA, white paper,” Nvidia Corp, June 2007.
[Online]. Available: http://developer.download.nvidia.com . [Accessed June 2012].
82. A. Karaoglu, B. H. Lee, W.-S. Cheong, A. Boev, and A. Gotchev, “Fast repurposing of high-
resolution stereo video content for mobile use,” in Real-Time Image and Video Processing
2012, , Brussels, Belgium, 2012.
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
Search WWH ::




Custom Search