DocumentCode :
1379252
Title :
Modeling n-Furcated Liver vessels From a 3-D Segmented Volume Using Hole-Making and Subdivision Methods
Author :
Yuan, Feiniu ; Chi, Yanling ; Huang, Su ; Liu, Jimin
Author_Institution :
Quantitative Image Process. Group, Agency for Sci., Singapore, Singapore
Volume :
59
Issue :
2
fYear :
2012
Firstpage :
552
Lastpage :
561
Abstract :
It is difficult to build an accurate and smooth liver vessel model due to the tiny size, noise, and n-furcations of vessels. To overcome these problems, we propose an n-furcation vessel tree modeling method. In this method, given a segmented volume and a point indicating the root of the vessels, centerlines and cross-sectional contours of the vessels are extracted and organized as a tree first. Then, the tree is broken up into separate branches in descending order of length, and polygonal meshes of all the branches are separately constructed from the cross-sectional contours. Finally, all the meshes are combined sequentially using our hole-making approach. Holes are made on a coarse mesh, and a final fine mesh is generated using a subdivision method. The hole-making approach with the subdivision method provides good efficiency in mesh construction as well as great flexibilities in mesh editing. Experiments show that our method can automatically construct smooth mesh models for n-furcated vessels with mean absolute error of 0.92 voxel and mean relative error of 0.17. It is promising to be used in diagnosis, analysis, and surgery simulation of liver diseases, and is able to model tubular structures with tree topology.
Keywords :
blood vessels; image segmentation; liver; medical image processing; patient diagnosis; physiological models; surgery; 3D segmented volume; branch polygonal mesh; hole-making method; liver disease; n-furcated liver vessel; n-furcation vessel tree modeling method; patient diagnosis; subdivision method; surgery simulation; tubular structure; vessel cross-sectional contours; voxel; Analytical models; Face; Indexes; Joining processes; Smoothing methods; Three dimensional displays; Topology; Hole making; n-furcation; subdivision; vascular modeling; Databases, Factual; Hepatic Veins; Humans; Imaging, Three-Dimensional; Magnetic Resonance Imaging; Models, Cardiovascular; Reproducibility of Results;
fLanguage :
English
Journal_Title :
Biomedical Engineering, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9294
Type :
jour
DOI :
10.1109/TBME.2011.2176728
Filename :
6084729
Link To Document :
بازگشت