Declarative Specification for Unstructured Mesh Editing Algorithms

Author:

Jiang Zhongshi1,Dai Jiacheng1,Hu Yixin2,Zhou Yunfan1,Dumas Jeremie3,Zhou Qingnan3,Bajwa Gurkirat Singh1,Zorin Denis1,Panozzo Daniele1,Schneider Teseo4

Affiliation:

1. New York University

2. Pixel Labs

3. Adobe Research

4. University of Victoria, Canada

Abstract

We introduce a novel approach to describe mesh generation, mesh adaptation, and geometric modeling algorithms relying on changing mesh connectivity using a high-level abstraction. The main motivation is to enable easy customization and development of these algorithms via a declarative specification consisting of a set of per-element invariants, operation scheduling, and attribute transfer for each editing operation. We demonstrate that widely used algorithms editing surfaces and volumes can be compactly expressed with our abstraction, and their implementation within our framework is simple, automatically parallelizable on shared-memory architectures, and with guaranteed satisfaction of the prescribed invariants. These algorithms are readable and easy to customize for specific use cases. We introduce a software library implementing this abstraction and providing automatic shared-memory parallelization.

Funder

National Science Foundation

Publisher

Association for Computing Machinery (ACM)

Subject

Computer Graphics and Computer-Aided Design

Reference131 articles.

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2. F. Alauzet and D. Marcum . 2014. A Closed Advancing-Layer Method With Changing Topology Mesh Movement for Viscous Mesh Generation . In Proceedings of the 22nd International Meshing Roundtable. Springer International Publishing, Cham, 241--261 . F. Alauzet and D. Marcum. 2014. A Closed Advancing-Layer Method With Changing Topology Mesh Movement for Viscous Mesh Generation. In Proceedings of the 22nd International Meshing Roundtable. Springer International Publishing, Cham, 241--261.

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