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A Time-Dependent Inclusion-Based Method for Continuous Collision Detection between Parametric Surfaces

delete2024-11-19
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PRE
AI
X
X. Chen
X
Xingyu Ni
C
Chu, Mengyu
B
Bin Wang *
陈宝权 (Baoquan Chen) *
DOI:10.1145/3687960delete
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Abstract

Abstract

En 中文
Continuous collision detection (CCD) between parametric surfaces is typically formulated as a five-dimensional constrained optimization problem. In the field of CAD and computer graphics, common approaches to solving this problem rely on linearization or sampling strategies. Alternatively, inclusion-based techniques detect collisions by employing 5D inclusion functions, which are typically designed to represent the swept volumes of parametric surfaces over a given time span, and narrowing down the earliest collision moment through subdivision in both spatial and temporal dimensions. However, when high detection accuracy is required, all these approaches significantly increases computational consumption due to the Intelligence, Peking University, high-dimensional searching space. In this work, we develop a new time- dependent inclusion-based CCD framework that eliminates the need for temporal subdivision and can speedup conventional methods by a factor ranging from 36 to 138. To achieve this, we propose a novel time-dependent inclusion function that provides a continuous representation of a moving surface, along with a corresponding intersection detection algorithm that quickly identifies the time intervals when collisions are likely to occur. We validate our method across various primitive types, demonstrate its efficacy within the simulation pipeline and show that it significantly improves CCD efficiency while maintaining accuracy.
Keywords:
parametric surface
continuous collision detection
interval analysis

Journal

ACM Transactions on Graphics cover
ACM Transactions on Graphics
IF:
9.5
Papers:
4.7K
Citations:
3.6W

Organization

P
peking university
Scholars:
11.7W
Papers: 8.7W
Citations: 146