TY - JOUR
T1 - Invasive Compute Balancing for Applications with Shared and Hybrid Parallelization
AU - Schreiber, Martin
AU - Riesinger, Christoph
AU - Neckel, Tobias
AU - Bungartz, Hans Joachim
AU - Breuer, Alexander
N1 - Publisher Copyright:
© 2014, Springer Science+Business Media New York.
PY - 2015/12/30
Y1 - 2015/12/30
N2 - Achieving high scalability with dynamically adaptive algorithms in high-performance computing (HPC) is a non-trivial task. The invasive paradigm using compute migration represents an efficient alternative to classical data migration approaches for such algorithms in HPC. We present a core-distribution scheduler which realizes the migration of computational power by distributing the cores depending on the requirements specified by one or more parallel program instances. We validate our approach with different benchmark suites for simulations with artificial workload as well as applications based on dynamically adaptive shallow water simulations, and investigate concurrently executed adaptivity parameter studies on realistic Tsunami simulations. The invasive approach results in significantly faster overall execution times and higher hardware utilization than alternative approaches. A dynamic resource management is therefore mandatory for a more efficient execution of scenarios similar to our simulations, e.g. several Tsunami simulations in urgent computing, to overcome strong scalability challenges in the area of HPC. The optimizations obtained by invasive migration of cores can be generalized to similar classes of algorithms with dynamic resource requirements.
AB - Achieving high scalability with dynamically adaptive algorithms in high-performance computing (HPC) is a non-trivial task. The invasive paradigm using compute migration represents an efficient alternative to classical data migration approaches for such algorithms in HPC. We present a core-distribution scheduler which realizes the migration of computational power by distributing the cores depending on the requirements specified by one or more parallel program instances. We validate our approach with different benchmark suites for simulations with artificial workload as well as applications based on dynamically adaptive shallow water simulations, and investigate concurrently executed adaptivity parameter studies on realistic Tsunami simulations. The invasive approach results in significantly faster overall execution times and higher hardware utilization than alternative approaches. A dynamic resource management is therefore mandatory for a more efficient execution of scenarios similar to our simulations, e.g. several Tsunami simulations in urgent computing, to overcome strong scalability challenges in the area of HPC. The optimizations obtained by invasive migration of cores can be generalized to similar classes of algorithms with dynamic resource requirements.
KW - Compute migration
KW - Dynamic adaptive mesh refinement
KW - High-performance computing
KW - Hybrid parallelization
KW - Invasive computing
UR - http://www.scopus.com/inward/record.url?scp=84942549287&partnerID=8YFLogxK
U2 - 10.1007/s10766-014-0336-3
DO - 10.1007/s10766-014-0336-3
M3 - Article
AN - SCOPUS:84942549287
SN - 0885-7458
VL - 43
SP - 1004
EP - 1027
JO - International Journal of Parallel Programming
JF - International Journal of Parallel Programming
IS - 6
ER -