DocumentCode
3028816
Title
Surface Modeling of Multiple Bone Objects By Staged Self-Organizing Map Neural Network
Author
Lin, Hong
Author_Institution
Texas Scottish Rite Hosp. for Children, Dallas
fYear
2007
fDate
11-12 Nov. 2007
Firstpage
74
Lastpage
77
Abstract
In this paper the surface modeling of complex (ill-posed) bone objects by the self-organizing map (SOM) artificial neural network is introduced for the purpose of future 3-D surgical planning and 3-D/2-D registration in intra-operative fluoroscopic image guidance and monitoring of orthopedic surgery. Self-organizing map, an unsupervised neural network is initialized with the three-dimensional globe of grids. The 3-D point-clouds used by SOM network learning are obtained by delineating the interested bone outlines on each slice of MRI or CT images. Depending on the complexity of bone structure, each bone segment can be modeled by either one step or two step unsupervised neural network learning. The transformation of constructed 3-D bone models can be performed in 6 degree of freedom (DOF) plus scaling. Thus it is possible that the 3-D surgical planning can be executed in OR through 3-D/2-D registration by surgery monitoring and guidance.
Keywords
biomedical MRI; bone; computerised tomography; diagnostic radiography; image registration; medical image processing; orthopaedics; self-organising feature maps; surgery; unsupervised learning; 3-D surgical planning; CT images; MRI; artificial neural network; image registration; intraoperative fluoroscopic image guidance; learning; multiple bone objects; orthopedic surgery; self-organizing map; surface modeling; unsupervised neural network; Artificial neural networks; Bones; Computed tomography; Magnetic resonance imaging; Monitoring; Neural networks; Neurons; Orthopedic surgery; Solid modeling; Spine; 3-D/2D registration; Self-Organizing Map ANN; Surface modeling; ill-pose; point-clouds;
fLanguage
English
Publisher
ieee
Conference_Titel
Engineering in Medicine and Biology Workshop, 2007 IEEE Dallas
Conference_Location
Dallas, TX
Print_ISBN
978-1-4244-1626-4
Type
conf
DOI
10.1109/EMBSW.2007.4454177
Filename
4454177
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