Title of article :
Deconvolution Methods for Mitigation of Transverse Blurring in Optical Coherence Tomography
Author/Authors :
T. S. Ralston، نويسنده , , D. L. Marks، نويسنده , , F. Kamalabadi، نويسنده , , and S. A. Boppart، نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 2005
Abstract :
Imaging resolution in optical coherence tomography
(OCT) is a key determinant for acquiring clinically useful optical
biopsies of tissues. In contrast to light or confocal microscopy,
the axial and transverse resolutions in OCT are independent
and each can be analyzed individually. A method for mitigating
transverse blurring and the apparent loss of transverse resolution
in OCT by means of Gaussian beam deconvolution is presented.
Such a method provides better representation of a specimen by
using known physical parameters of a lens. To implement this
method, deconvolution algorithms based on a focal-dependent
kernel are investigated. First, the direct inverse problem is investigated
using two types of regularization, truncated singular
value decomposition, and Tikhonov. Second, an iterative expectation
maximization algorithm, the Richardson–Lucy algorithm,
with a beam-width-dependent iteration scheme is developed. A
dynamically iterative Richardson–Lucy algorithm can reduce
transverse blurring by providing an improvement in the transverse
point-spread-function for sparse scattering samples in
regions up to two times larger than the confocal region of the lens.
These deblurring improvements inside and outside of the confocal
region, which are validated experimentally, are possible without
introducing new optical imaging hardware or acquiring multiple
images of the same specimen. Implementation of this method in
sparse scattering specimens, such as engineered tissues, has the
potential to improve cellular detection and categorization.
Keywords :
Deconvolution , Focusing , Gaussian beam , Richardson–Lucy , transverse resolution.
Journal title :
IEEE TRANSACTIONS ON IMAGE PROCESSING
Journal title :
IEEE TRANSACTIONS ON IMAGE PROCESSING