Title :
A Unified Algorithm for Load-balancing Adaptive Scientific Simulations
Author :
Schloegel, Kirk ; Karypis, George ; Kumar, Vipin
Author_Institution :
University of Minnesota
Abstract :
Adaptive scientific simulations require that periodic repartitioning occur dynamically throughout the course of the computation. The repartitionings should be computed so as to minimize both the inter-processor communications incurred during the iterative mesh-based computation and the data redistribution costs required to balance the load. Recently developed schemes for computing repartitionings provide the user with only a limited control of the tradeoffs among these objectives. This paper describes a new Unified Repartitioning Algorithm that can tradeoff one objective for the other dependent upon a user-defined parameter describing the relative costs of these objectives. We show that the Unified Repartitioning Algorithm is able to reduce the precise overheads associated with repartitioning as well as or better than other repartitioning schemes for a variety of problems, regardless of the relative costs of performing inter-processor communication and data redistribution. Our experimental results show that this scheme is extremely fast and scalable to large problems.
Keywords :
Adaptive Mesh Computations; Dynamic Graph Partitionin; Multilevel Diffusion; Scratch-remap; Unified Repartitionin Algorithm; Communication system control; Computational modeling; Computer science; Computer simulation; Concurrent computing; Costs; High performance computing; Iterative algorithms; Kirk field collapse effect; Military computing; Adaptive Mesh Computations; Dynamic Graph Partitionin; Multilevel Diffusion; Scratch-remap; Unified Repartitionin Algorithm;
Conference_Titel :
Supercomputing, ACM/IEEE 2000 Conference
Print_ISBN :
0-7803-9802-5
DOI :
10.1109/SC.2000.10035