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arxiv: 1404.2303 · v1 · pith:KYHQH3RGnew · submitted 2014-04-08 · 💻 cs.DC · astro-ph.IM· physics.comp-ph

Efficient and Scalable Algorithms for Smoothed Particle Hydrodynamics on Hybrid Shared/Distributed-Memory Architectures

classification 💻 cs.DC astro-ph.IMphysics.comp-ph
keywords approacharchitecturesdistributed-memoryhybridhydrodynamicsparallelparticleshared
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This paper describes a new fast and implicitly parallel approach to neighbour-finding in multi-resolution Smoothed Particle Hydrodynamics (SPH) simulations. This new approach is based on hierarchical cell decompositions and sorted interactions, within a task-based formulation. It is shown to be faster than traditional tree-based codes, and to scale better than domain decomposition-based approaches on hybrid shared/distributed-memory parallel architectures, e.g. clusters of multi-cores, achieving a $40\times$ speedup over the Gadget-2 simulation code.

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