Literature DB >> 20607618

Real-time simulation of the nonlinear visco-elastic deformations of soft tissues.

Ehsan Basafa1, Farzam Farahmand.   

Abstract

PURPOSE: Mass-spring-damper (MSD) models are often used for real-time surgery simulation due to their fast response and fairly realistic deformation replication. An improved real time simulation model of soft tissue deformation due to a laparoscopic surgical indenter was developed and tested.
METHOD: The mechanical realization of conventional MSD models was improved using nonlinear springs and nodal dampers, while their high computational efficiency was maintained using an adapted implicit integration algorithm. New practical algorithms for model parameter tuning, collision detection, and simulation were incorporated.
RESULTS: The model was able to replicate complex biological soft tissue mechanical properties under large deformations, i.e., the nonlinear and viscoelastic behaviors. The simulated response of the model after tuning of its parameters to the experimental data of a deer liver sample, closely tracked the reference data with high correlation and maximum relative differences of less than 5 and 10%, for the tuning and testing data sets respectively. Finally, implementation of the proposed model and algorithms in a graphical environment resulted in a real-time simulation with update rates of 150 Hz for interactive deformation and haptic manipulation, and 30 Hz for visual rendering.
CONCLUSION: The proposed real time simulation model of soft tissue deformation due to a laparoscopic surgical indenter was efficient, realistic, and accurate in ex vivo testing. This model is a suitable candidate for testing in vivo during laparoscopic surgery.

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Year:  2010        PMID: 20607618     DOI: 10.1007/s11548-010-0508-6

Source DB:  PubMed          Journal:  Int J Comput Assist Radiol Surg        ISSN: 1861-6410            Impact factor:   2.924


  17 in total

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3.  Modelling liver tissue properties using a non-linear visco-elastic model for surgery simulation.

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4.  Dynamic measurement of soft tissue viscoelastic properties with a torsional resonator device.

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5.  Characterization of viscoelastic soft tissue properties from in vivo animal experiments and inverse FE parameter estimation.

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6.  In vivo mechanical behavior of intra-abdominal organs.

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7.  A non-linear mass-spring model for more realistic and efficient simulation of soft tissues surgery.

Authors:  Ehsan Basafa; Farzam Farahmand; Gholamreza Vossoughi
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8.  Biomechanical properties of abdominal organs in vivo and postmortem under compression loads.

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9.  Measurements and modelling of the compliance of human and porcine organs.

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10.  In situ measurement and modeling of biomechanical response of human cadaveric soft tissues for physics-based surgical simulation.

Authors:  Yi-Je Lim; Dhanannjay Deo; Tejinder P Singh; Daniel B Jones; Suvranu De
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Review 3.  Needle-tissue interactive mechanism and steering control in image-guided robot-assisted minimally invasive surgery: a review.

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Review 5.  A Systematic Review of Real-Time Medical Simulations with Soft-Tissue Deformation: Computational Approaches, Interaction Devices, System Architectures, and Clinical Validations.

Authors:  Tan-Nhu Nguyen; Marie-Christine Ho Ba Tho; Tien-Tuan Dao
Journal:  Appl Bionics Biomech       Date:  2020-02-19       Impact factor: 1.781

6.  Preliminary study on mechanical characteristics of maxillofacial soft and hard tissues for virtual surgery.

Authors:  Yu Zhuang; Jie Chen; Qingcheng Liu; Fan Zou; Yuheng Lin; Qinglong An; Hongbo Yu
Journal:  Int J Comput Assist Radiol Surg       Date:  2020-10-31       Impact factor: 2.924

7.  A fast and stable vascular deformation scheme for interventional surgery training system.

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