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Real-Time Progressive Cutting of Deformable Objects in Unity 3D with Internal Shape-Preserving Constraints
by
Hong, Min
, Khan, Lyudmila Dmitrievna
, Kim, Taeheon
in
Algorithms
/ Analysis
/ cutting simulation
/ Decomposition
/ Efficiency
/ internal shape preserving constraints
/ Methods
/ Multiprocessing
/ position based dynamics
/ Real time
/ Simulation
/ Simulation methods
/ Surgery
/ surgery simulation
/ Unity game engine
/ Virtual reality
2025
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Real-Time Progressive Cutting of Deformable Objects in Unity 3D with Internal Shape-Preserving Constraints
by
Hong, Min
, Khan, Lyudmila Dmitrievna
, Kim, Taeheon
in
Algorithms
/ Analysis
/ cutting simulation
/ Decomposition
/ Efficiency
/ internal shape preserving constraints
/ Methods
/ Multiprocessing
/ position based dynamics
/ Real time
/ Simulation
/ Simulation methods
/ Surgery
/ surgery simulation
/ Unity game engine
/ Virtual reality
2025
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Do you wish to request the book?
Real-Time Progressive Cutting of Deformable Objects in Unity 3D with Internal Shape-Preserving Constraints
by
Hong, Min
, Khan, Lyudmila Dmitrievna
, Kim, Taeheon
in
Algorithms
/ Analysis
/ cutting simulation
/ Decomposition
/ Efficiency
/ internal shape preserving constraints
/ Methods
/ Multiprocessing
/ position based dynamics
/ Real time
/ Simulation
/ Simulation methods
/ Surgery
/ surgery simulation
/ Unity game engine
/ Virtual reality
2025
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Real-Time Progressive Cutting of Deformable Objects in Unity 3D with Internal Shape-Preserving Constraints
Journal Article
Real-Time Progressive Cutting of Deformable Objects in Unity 3D with Internal Shape-Preserving Constraints
2025
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Overview
This study discovers a real-time method for simulating progressive cutting in the Unity game engine. The proposed approach utilizes Position-Based Dynamics (PBD) to model deformable objects, making it suitable for applications such as surgical simulation training. Additionally, Unity’s compute buffers are employed to enhance computational efficiency through parallel processing. The cutting simulation operates on the surface mesh of the object, while internal deformations and volume preservation are represented using internal shape-preserving constraints (ISPCs). A series of progressive cutting experiments were conducted on various 3D models to evaluate the performance and accuracy of the algorithm. The results demonstrate that the proposed method achieves visually plausible real-time simulations of cuts.
Publisher
MDPI AG
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