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Parallel Tetrahedral Mesh Adaptation with Dynamic Load Balancing

机译:具有动态负载平衡的平行四面体网格自适应

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摘要

The ability to dynamically adapt an unstructured grid is a powerful tool for efficiently solving computational problems with evolving physical features. In this paper, we report on our experience parallelizing an edge-based adaptation scheme, called 3D_TAG. using message passing. Results show excellent speedup when a realistic helicopter rotor mesh is randomly refined. However. performance deteriorates when the mesh is refined using a solution-based error indicator since mesh adaptation for practical problems occurs in a localized region., creating a severe load imbalance. To address this problem, we have developed PLUM, a global dynamic load balancing framework for adaptive numerical computations. Even though PLUM primarily balances processor workloads for the solution phase, it reduces the load imbalance problem within mesh adaptation by repartitioning the mesh after targeting edges for refinement but before the actual subdivision. This dramatically improves the performance of parallel 3D_TAG since refinement occurs in a more load balanced fashion. We also present optimal and heuristic algorithms that, when applied to the default mapping of a parallel repartitioner, significantly reduce the data redistribution overhead. Finally, portability is examined by comparing performance on three state-of-the-art parallel machines.
机译:动态适应非结构​​化网格的能力是有效解决具有不断变化的物理特征的计算问题的强大工具。在本文中,我们报告了并行化基于边缘的自适应方案(称为3D_TAG)的经验。使用消息传递。结果表明,当对现实的直升机旋翼网格进行随机细化时,其加速效果非常好。然而。当使用基于解决方案的错误指示器细化网格时,性能会下降,因为针对实际问题的网格自适应发生在局部区域,从而导致严重的负载不平衡。为了解决这个问题,我们开发了PLUM,这是一种用于自适应数值计算的全局动态负载平衡框架。即使PLUM主要在解决方案阶段平衡了处理器的工作量,它仍通过在优化目标边缘之后但在实际细分之前对网格进行重新划分来减少网格自适应中的负载不平衡问题。由于以更均衡的负载方式进行优化,因此极大地提高了并行3D_TAG的性能。我们还提供了最佳和启发式算法,将这些算法应用于并行重新分区程序的默认映射后,可大大减少数据重新分配的开销。最后,通过比较三台最先进的并行机上的性能来检查可移植性。

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