DocumentCode :
139069
Title :
Scanning-mode 2D acoustic radiation force impulse (s2D-ARFI) imaging based on GPU acceleration
Author :
Congzhi Wang ; Bo Zeng ; Weibao Qiu ; Hairong Zheng
Author_Institution :
Paul C. Lauterbur Res. Center for Biomed. Imaging, Shenzhen, China
fYear :
2014
fDate :
26-30 Aug. 2014
Firstpage :
230
Lastpage :
233
Abstract :
Acoustic radiation force impulse (ARFI) technique is a quantitative method for tissue stiffness assessment. It has been proved to be less operator dependent than the quasi-static elastography, and has more simple hardware architecture than the supersonic shearwave imaging (SSI) technique, which make it easier to be miniaturized for some special clinical applications. However, unlike the SSI, ARFI cannot provide real-time 2D images of tissue stiffness distribution mainly due to its data-intensive and time-consuming algorithms. In this study, the algorithms of ARFI were modified and improved to fit for the parallel computation on graphics processing unit (GPU), and the quasi-real-time scanning-mode 2D ARFI images (s2D-ARFI) were implemented on a self-developed compact system. High ratio of the time consumptions between the algorithms using CPU and using GPU has been verified, and it was also proved that there was no distinct difference between the stiffness images obtained by these two methods. The s2D-ARFI provides us an additional choice for quantitatively imaging the tissue stiffness, and has a potential to be miniaturized and used in the emergency treatments in field first-aid and the donor evaluation for organ transplantation.
Keywords :
biological organs; biological tissues; biomechanics; biomedical ultrasonics; elasticity; emergency services; first aid; graphics processing units; medical diagnostic computing; parallel processing; ARFI algorithm modification; ARFI operator dependence; CPU; GPU acceleration; SSI technique; clinical applications; data-intensive algorithms; donor evaluation; emergency treatments; first aid; graphics processing unit; hardware architecture; miniaturization; organ transplantation; parallel computation; quantitative tissue stiffness imaging; quasi-real-time s2D-ARFI implementation; quasi-static elastography; real-time 2D images; s2D-ARFI imaging; scanning-mode 2D acoustic radiation force impulse imaging; self-developed compact system; supersonic shearwave imaging; time consumption ratio; time-consuming algorithms; tissue stiffness assessment; tissue stiffness distribution; Acceleration; Estimation; Graphics processing units; Imaging; Instruction sets; Interpolation; Splines (mathematics);
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Engineering in Medicine and Biology Society (EMBC), 2014 36th Annual International Conference of the IEEE
Conference_Location :
Chicago, IL
ISSN :
1557-170X
Type :
conf
DOI :
10.1109/EMBC.2014.6943571
Filename :
6943571
Link To Document :
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