High Fidelity Haptic Rendering of Frictional Contact with Deformable Objects in Virtual Environments using Multi-rate Simulation

Author:

Jacobs Paul1,Fu Michael J1,Çavuşoğlu M. Cenk2

Affiliation:

1. Case Western Reserve University, Cleveland, OH, USA

2. Case Western Reserve University, Cleveland, OH, USA,

Abstract

Haptics is an increasingly common modality in human-computer interfacing. The focus of this paper is the problem arising from the difference between the high sampling rate requirements of haptic interfaces and the significantly lower update rates for physical models simulated in virtual environments. This is a critical problem, especially for applications involving haptic manipulation of deformable objects simulated in virtual environments, such as in surgical simulation. In this paper, a multi-rate simulation approach was developed to address this problem. The proposed method employs linear low-order approximations to model the inter-sample behavior of the high-order non-linear deformable object models. The basic method is also extended to achieve high-fidelity rendering of haptic manipulations involving sliding-type frictional contact. The proposed approach uses a local geometric model in addition to the local dynamic model, and performs collision detection and response as part of the high update rate haptic loop. Experimental results that validate the proposed methods are also presented.

Publisher

SAGE Publications

Subject

Applied Mathematics,Artificial Intelligence,Electrical and Electronic Engineering,Mechanical Engineering,Modeling and Simulation,Software

Cited by 6 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Development of Low-Cost Surgical Simulator for Neuroendoscopy using Unity3D and HTC VIVE;2022 16th International Conference on Open Source Systems and Technologies (ICOSST);2022-12-14

2. Reduced Interface Models for Haptic Interfacing With Virtual Environments;IEEE Robotics and Automation Letters;2022-10

3. A review of virtual reality simulators for neuroendoscopy;Neurosurgical Review;2019-08-23

4. Mathematical model of bone drilling for virtual surgery system;Saratov Fall Meeting 2017: Laser Physics and Photonics XVIII; and Computational Biophysics and Analysis of Biomedical Data IV;2018-04-26

5. Virtual reality simulation: basic concepts and use in endoscopic neurosurgery training;Child's Nervous System;2013-05-24

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