DocumentCode :
691974
Title :
Real-Time Vascular Beating Analog Based on the Mass-Spring Model
Author :
Xin Zhi ; Ziming Zhang ; Yuhui Gao ; Zhixiang Zhang
Author_Institution :
Coll. of Electron. Inf. & Control Eng., Beijing Univ. of Technol., Beijing, China
fYear :
2013
fDate :
16-18 Oct. 2013
Firstpage :
185
Lastpage :
188
Abstract :
Virtual vascular interventional operation is a virtual reality technology application in medical training. In this paper, we propose a real-time approach to vascular beating modeling, which can be used in virtual interventional simulation system. First of all, we read out the VTK file of vascular model through VTK function. Then, we choose a center point in a small space and structure the mass-spring model between the center point and other points discreted on the vascular model. After that, we give the center point a force to pull other points. Finally, we set a time callback function to give a beating frequency. Thus, the vascular will beat according to human heart beating rate. Our experimental results show that the method is simple and effective, it can also provide a visually plausible vascular beating effect in a real time way. So it can become an important part of virtual interventional simulation system.
Keywords :
biomedical education; cardiology; computer based training; digital simulation; medical computing; virtual reality; VTK file; human heart beating rate; mass-spring model; medical training; real-time vascular beating; time callback function; vascular beating modeling; virtual interventional simulation system; virtual reality technology application; virtual vascular interventional operation; Computational modeling; Deformable models; Equations; Force; Mathematical model; Solid modeling; Springs; VTK; interventional surgery; mass-spring model; realtime-simulation;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Intelligent Information Hiding and Multimedia Signal Processing, 2013 Ninth International Conference on
Conference_Location :
Beijing
Type :
conf
DOI :
10.1109/IIH-MSP.2013.55
Filename :
6846611
Link To Document :
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