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虚拟柔性体实时形变仿真模型研究
引用本文:方艳红,吴斌,杨正宜.虚拟柔性体实时形变仿真模型研究[J].计算机工程与设计,2012,33(7):2730-2733.
作者姓名:方艳红  吴斌  杨正宜
作者单位:1. 中国工程物理研究院研究生部,四川绵阳621900;西南科技大学信息工程学院,四川绵阳621010
2. 西南科技大学信息工程学院,四川绵阳,621010
3. 澳大利亚昆士兰澳大利亚布里斯班桑塔卢西亚区昆士兰大学先进成像中心,澳大利亚布里斯班4072
基金项目:四川省教育厅基金,四川省青年创新基金
摘    要:为了在虚拟现实柔性体力触觉交互研究中得到稳定、连续、真实的力触感,提出一种基于球面调和函数表达的虚拟柔性体实时形变仿真模型,利用球面调和函数的正交归一、旋转不变、多尺度等特性实现物体的快速准确表达.在变形体的密度、杨氏模量、泊松比等参数已知的情况下,基于径向基函数神经网络模型预测柔性体受力形变后的SH模型.仿真结果表明,该方法不仅可以准确表达柔性体的实时形变,而且使得基于SH表达的柔性体形变的视觉刷新描述与柔性体反馈力的触觉刷新描述同步,从而满足虚拟手术仿真训练等虚拟柔性体力触觉交互研究要求.

关 键 词:虚拟现实  力触觉交互  球面调和函数  柔性体实时形变  径向基函数网络

Study on a real-time deformation model of virtual soft object
FANG Yan-hong , WU Bin , YANG Zheng-yi.Study on a real-time deformation model of virtual soft object[J].Computer Engineering and Design,2012,33(7):2730-2733.
Authors:FANG Yan-hong  WU Bin  YANG Zheng-yi
Affiliation:1.Institute of Electronic Engineering China Academy of Engineering Physics,Mianyang 621900,China;2.College of Information Engineering,Southwest University of Science and Technology,Mianyang 621010,China;3.Centre for Advanced Imaging,the University of Queensland,St Lucia,Brisbane,Queensland,Australia,Brisbane 4072,Australia)
Abstract:To improve the stability,continuity and accuracy of flexible deformation and computational efficiency in haptic rende-ring.A novel approach based on spherical harmonic(SH) representations to simulate the virtual deformation of soft objects is proposed.The object surface is represented by SH,which features of orthonormality,rotational invariance,and multi-resolution.Given the density,Young’s modulus,and Poisson ratio of the object and the applied force,the deformed SH models are estimated by a radial basis function(RBF) based neural network model,which is trained with Least mean-square error.The simulation results indicate that the deformation could be accurately calculated using the proposed approach and the computational time is acceptable for real-time applications in medical education and training.
Keywords:virtual reality  haptic interaction  spherical harmonics  real-time deformation  RBF neural network
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