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Optimization of compute unified device architecture for real-time ultrahigh-resolution optical coherence tomography

Authors
Kim, Ji-hyunAum, JaehongHan, Jae-HoJeong, Jichai
Issue Date
1-Jan-2015
Publisher
ELSEVIER SCIENCE BV
Keywords
Near infrared optical reflectometry; Optical imaging; Optical coherence tomography; Parallel computing
Citation
OPTICS COMMUNICATIONS, v.334, pp.308 - 313
Indexed
SCIE
SCOPUS
Journal Title
OPTICS COMMUNICATIONS
Volume
334
Start Page
308
End Page
313
URI
https://scholar.korea.ac.kr/handle/2021.sw.korea/94680
DOI
10.1016/j.optcom.2014.08.067
ISSN
0030-4018
Abstract
We propose an optimized signal processing scheme that utilizes the compute unified device architecture (CUDA) for real-time spectral domain optical coherence tomography (OCT). Because linear spline interpolation and the direct spectral reshaping method have low data and control dependencies, these algorithms maximally utilize graphic processing unit (GPU) resources for dispersion control. In addition, data transfer between main memory and GPU, regarded as one of the most wasteful and time-consuming processes in GPU computing, is executed in parallel with the signal processing by overlapping kernel execution and data transfers. Experimental results obtained from application of the proposed scheme to a laboratory constructed OCT system comprising five spectrally shifted SLDs indicate that the OCT system has an axial resolution of 4.8 mu m [1111 and transverse resolution of 13 01 in air. Further, coherence artifacts are reduced by 3-14 dB over the side-lobes in the point spread function. The optimization of CUDA enables OCT imaging rates up to 350 kHz (A-lines/sec) with a single GTX680 GPU. (C) 2014 Elsevier B.V. All rights reserved.
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