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GPU accelerated dynamic functional connectivity analysis for functional MRI data

delete2015-07-01
delete11
PRE
AI
D
Devrim Akgün *
Ü
Ünal Sakoğlu
J
Johnny Esquivel
B
Bryon Adinoff
M
Mutlu Mete
DOI:10.1016/j.compmedimag.2015.02.009delete
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Abstract

Abstract

En 中文
Recent advances in multi-core processors and graphics card based computational technologies have paved the way for an improved and dynamic utilization of parallel computing techniques. Numerous applications have been implemented for the acceleration of computationally-intensive problems in various computational science fields including bioinformatics, in which big data problems are prevalent. In neuroimaging, dynamic functional connectivity (DFC) analysis is a computationally demanding method used to investigate dynamic functional interactions among different brain regions or networks identified with functional magnetic resonance imaging (fMRI) data. In this study, we implemented and analyzed a parallel DFC algorithm based on thread-based and block-based approaches. The thread-based approach was designed to parallelize DFC computations and was implemented in both Open Multi-Processing (OpenMP) and Compute Unified Device Architecture (CUDA) programming platforms. Another approach developed in this study to better utilize CUDA architecture is the block-based approach, where parallelization involves smaller parts of fMRI time-courses obtained by sliding-windows. Experimental results showed that the proposed parallel design solutions enabled by the GPUs significantly reduce the computation time for DFC analysis. Multicore implementation using OpenMP on 8-core processor provides up to 7.7x speed-up. GPU implementation using CUDA yielded substantial accelerations ranging from 18.5x to 157x speed-up once thread-based and block-based approaches were combined in the analysis. Proposed parallel programming solutions showed that multi-core processor and CUDA-supported GPU implementations accelerated the DFC analyses significantly. Developed algorithms make the DFC analyses more practical for multi-subject studies with more dynamic analyses. (C) 2015 Elsevier Ltd. All rights reserved.
Keywords:
GPU computing
CUDA
OpenMP
Dynamic functional connectivity
Functional magnetic resonance imaging fMRI
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Computerized Medical Imaging and Graphics cover
Computerized Medical Imaging and Graphics
IF:
4.9
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2.4K
Citations:
5.0K

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U
US Department of Veterans Affairs
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3.8W
Papers: 3.3W
Citations: 47
S
Sakarya University
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Papers: 3.4K
Citations: 2.8K
T
Texas A&M University System
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4.4W
Papers: 4.0W
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