Literature DB >> 17681483

GPU based real-time instrument tracking with three-dimensional ultrasound.

Paul M Novotny1, Jeff A Stoll, Nikolay V Vasilyev, Pedro J del Nido, Pierre E Dupont, Todd E Zickler, Robert D Howe.   

Abstract

Real-time three-dimensional ultrasound enables new intracardiac surgical procedures, but the distorted appearance of instruments in ultrasound poses a challenge to surgeons. This paper presents a detection technique that identifies the position of the instrument within the ultrasound volume. The algorithm uses a form of the generalized Radon transform to search for long straight objects in the ultrasound image, a feature characteristic of instruments and not found in cardiac tissue. When combined with passive markers placed on the instrument shaft, the full position and orientation of the instrument is found in 3D space. This detection technique is amenable to rapid execution on the current generation of personal computer graphics processor units (GPU). Our GPU implementation detected a surgical instrument in 31 ms, sufficient for real-time tracking at the 25 volumes per second rate of the ultrasound machine. A water tank experiment found instrument orientation errors of 1.1 degrees and tip position errors of less than 1.8mm. Finally, an in vivo study demonstrated successful instrument tracking inside a beating porcine heart.

Entities:  

Mesh:

Year:  2007        PMID: 17681483      PMCID: PMC2693901          DOI: 10.1016/j.media.2007.06.009

Source DB:  PubMed          Journal:  Med Image Anal        ISSN: 1361-8415            Impact factor:   8.545


  12 in total

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5.  Real-time three-dimensional ultrasound for guiding surgical tasks.

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7.  Rapid calibration for 3-D freehand ultrasound.

Authors:  R W Prager; R N Rohling; A H Gee; L Berman
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8.  Central nervous system function after cardiopulmonary bypass.

Authors:  J Zeitlhofer; S Asenbaum; C Spiss; A Wimmer; N Mayr; E Wolner; L Deecke
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9.  Developmental and neurological status of children at 4 years of age after heart surgery with hypothermic circulatory arrest or low-flow cardiopulmonary bypass.

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4.  3D ultrasound-guided motion compensation system for beating heart mitral valve repair.

Authors:  Shelten G Yuen; Samuel B Kesner; Nikolay V Vasilyev; Pedro J Del Nido; Robert D Howe
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6.  Enhancement of accuracy in shape sensing of surgical needles using optical frequency domain reflectometry in optical fibers.

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7.  Compact tracking of surgical instruments through structured markers.

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Journal:  Med Biol Eng Comput       Date:  2013-03-10       Impact factor: 2.602

8.  Ultrasound imaging and segmentation of bone surfaces: A review.

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Journal:  Technology (Singap World Sci)       Date:  2017-03-31

9.  Robotic Motion Compensation for Beating Heart Intracardiac Surgery.

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10.  Tubular Enhanced Geodesic Active Contours for Continuum Robot Detection using 3D Ultrasound.

Authors:  Hongliang Ren; Pierre E Dupont
Journal:  IEEE Int Conf Robot Autom       Date:  2012
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