Super-resolution method for arbitrary retrospective sampling in fluorescence tomography with raster scanning photodetectors.
Abstract
Dense spatial sampling is required in high-resolution optical imaging and many other
biomedical optical imaging methods, such as diffuse optical imaging. Arrayed photodetectors,
in particular charge coupled device cameras are commonly used mainly because of their
high pixel count. Nonetheless, discrete-element photodetectors, such as photomultiplier
tubes, are often desirable in many performance-demanding imaging applications. However,
utilization of the discrete-element photodetectors typically requires raster scan
to achieve arbitrary retrospective sampling with high density. Care must be taken
in using the relatively large sensitive areas of discrete-element photodetectors to
densely sample the image plane. In addition, off-line data analysis and image reconstruction
often require full-field sampling. Pixel-by-pixel scanning is not only slow but also
unnecessary in diffusion-limited imaging. We propose a super-resolution method that
can recover the finer features of an image sampled with a coarse-scale sensor. This
generalpurpose method was established on the spatial transfer function of the photodetector-lens
system, and achieved super-resolution by inversion of this linear transfer function.
Regularized optimization algorithms were used to achieve optimized deconvolution.
Compared to the uncorrected blurred image, the proposed super-resolution method significantly
improved image quality in terms of resolution and quantitation. Using this reconstruction
method, the acquisition speed with a scanning photodetector can be dramatically improved
without significantly sacrificing sampling density or flexibility.
Type
Journal articleSubject
Fluorescence tomographydata sampling
deconvolution
diffuse optical imaging
motion deblurring
reconstruction
super-resolution
Permalink
https://hdl.handle.net/10161/13280Published Version (Please cite this version)
10.1117/12.2001518Publication Info
Zhang, Xiaofeng (2013). Super-resolution method for arbitrary retrospective sampling in fluorescence tomography
with raster scanning photodetectors. Proc SPIE Int Soc Opt Eng, 8572. 10.1117/12.2001518. Retrieved from https://hdl.handle.net/10161/13280.This is constructed from limited available data and may be imprecise. To cite this
article, please review & use the official citation provided by the journal.
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Show full item recordScholars@Duke
Xiaofeng Zhang
Assistant Professor of Radiology
Xiaofeng “Steve” Zhang graduated from Tsinghua University (China) in Chemical
Engineering (B.E. in 1997), and received his graduate degrees from University of Illinois
at Urbana-Champaign in Electrical Engineering (M.S. in 2003 and Ph.D. in 2005). He
studies the interaction of light with biological tissue, with which to noninvasively
probe various biomedical phenomena in vivo, and the means to tomographically visualize
such phenomena.

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