Neural Clustering for Prefractured Mesh Generation in Real-time Object Destruction

February 07, 2025 Β· Declared Dead Β· πŸ› SIGGRAPH Asia Posters

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Authors Seunghwan Kim, Sunha Park, Seungkyu Lee arXiv ID 2502.04615 Category cs.CV: Computer Vision Cross-listed cs.GR Citations 0 Venue SIGGRAPH Asia Posters Last Checked 5 months ago
Abstract
Prefracture method is a practical implementation for real-time object destruction that is hardly achievable within performance constraints, but can produce unrealistic results due to its heuristic nature. To mitigate it, we approach the clustering of prefractured mesh generation as an unordered segmentation on point cloud data, and propose leveraging the deep neural network trained on a physics-based dataset. Our novel paradigm successfully predicts the structural weakness of object that have been limited, exhibiting ready-to-use results with remarkable quality.
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