DocumentCode
1276814
Title
Design of a Bone-Attached Parallel Robot for Percutaneous Cochlear Implantation
Author
Kratchman, L.B. ; Blachon, G.S. ; Withrow, T.J. ; Balachandran, Ruthramurthy ; Labadie, Robert F. ; Webster, Robert J.
Author_Institution
Dept. of Mech. Eng., Vanderbilt Univ., Nashville, TN, USA
Volume
58
Issue
10
fYear
2011
Firstpage
2904
Lastpage
2910
Abstract
Access to the cochlea requires drilling in close proximity to bone-embedded nerves, blood vessels, and other structures, the violation of which can result in complications for the patient. It has recently been shown that microstereotactic frames can enable an image-guided percutaneous approach, removing reliance on human experience and hand-eye coordination, and reducing trauma. However, constructing current microstereotactic frames disrupts the clinical workflow, requiring multiday intrasurgical manufacturing delays, or an on-call machine shop in or near the hospital. In this paper, we describe a new kind of microsterotactic frame that obviates these delay and infrastructure issues by being repositionable. Inspired by the prior success of bone-attached parallel robots in knee and spinal procedures, we present an automated image-guided microstereotactic frame. Experiments demonstrate a mean accuracy at the cochlea of 0.20 ± 0.07 mm in phantom testing with trajectories taken from a human clinical dataset. We also describe a cadaver experiment evaluating the entire image-guided surgery pipeline, where we achieved an accuracy of 0.38 mm at the cochlea.
Keywords
bone; cochlear implants; medical robotics; phantoms; surgery; blood vessels; bone-attached parallel robot design; bone-attached parallel robots; bone-embedded nerves; cadaver experiment; clinical workflow; close proximity; drilling; hand-eye coordination; hospital; human clinical dataset; human experience; image-guided percutaneous approach; image-guided surgery pipeline; microstereotactic frames; multiday intrasurgical manufacturing delays; on-call machine shop; patient complications; percutaneous cochlear implantation; phantom testing; size 0.38 mm; trauma; Accuracy; Bones; Computed tomography; Robot kinematics; Software; Trajectory; Bone-attached robot; Gough–Stewart platform; cochlear implant; microtable; minimally invasive surgery (MIS); parallel robot; Cochlea; Cochlear Implantation; Equipment Design; Humans; Phantoms, Imaging; Robotics; Surgery, Computer-Assisted; Temporal Bone; Tomography, X-Ray Computed;
fLanguage
English
Journal_Title
Biomedical Engineering, IEEE Transactions on
Publisher
ieee
ISSN
0018-9294
Type
jour
DOI
10.1109/TBME.2011.2162512
Filename
5958581
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