DocumentCode :
23805
Title :
Volumetric Real-Time Tracking of Peripheral Human Vasculature With GPU-Accelerated Three-Dimensional Optoacoustic Tomography
Author :
Dean-Ben, X. Luis ; Ozbek, Ali ; Razansky, D.
Author_Institution :
Inst. for Biol. & Med. Imaging, Tech. Univ. of Munich, Munich, Germany
Volume :
32
Issue :
11
fYear :
2013
fDate :
Nov. 2013
Firstpage :
2050
Lastpage :
2055
Abstract :
Optoacoustic tomography provides a unique possibility for ultra-high-speed 3-D imaging by acquiring complete volumetric datasets from interrogation of tissue by a single nanosecond-duration laser pulse. Yet, similarly to ultrasound, optoacoustics is a time-resolved imaging method, thus, fast 3-D imaging implies real-time acquisition and processing of high speed data from hundreds of detectors simultaneously, which presents significant technological challenges. Herein we present a highly efficient graphical processing unit (GPU) framework for real-time reconstruction and visualization of 3-D tomographic optoacoustic data. By utilizing a newly developed 3-D optoacoustic scanner, which simultaneously acquires signals with a handheld 256-element spherical ultrasonic array system, we further demonstrate tracking of deep tissue human vasculature rendered at a rate of 10 volumetric frames per second. The flexibility provided by the handheld hardware design, combined with the real-time operation, makes the developed platform highly usable for both clinical imaging practice and small animal research applications.
Keywords :
acoustic tomography; biological tissues; biomedical optical imaging; biomedical ultrasonics; data visualisation; graphics processing units; image reconstruction; laser applications in medicine; medical image processing; optical tomography; photoacoustic effect; ultrasonic arrays; 3D optoacoustic scanner; GPU-accelerated three-dimensional optoacoustic tomography; clinical imaging practice; complete volumetric datasets; data visualization; deep tissue human vasculature; graphical processing unit; handheld hardware design; laser pulse; peripheral human vasculature; real-time operation; real-time reconstruction; small animal research applications; spherical ultrasonic array system; time-resolved imaging method; ultrahigh speed 3D imaging; volumetric real-time tracking; Acoustics; Arrays; Graphics processing units; Image reconstruction; Real-time systems; Tomography; Hand-held probe; optoacoustic tomography; photoacoustic tomography; real-time imaging; three-dimensional imaging; Computer Graphics; Forearm; Humans; Imaging, Three-Dimensional; Photoacoustic Techniques;
fLanguage :
English
Journal_Title :
Medical Imaging, IEEE Transactions on
Publisher :
ieee
ISSN :
0278-0062
Type :
jour
DOI :
10.1109/TMI.2013.2272079
Filename :
6553168
Link To Document :
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