Publication | Closed Access
Scientific Application Performance on Candidate PetaScale Platforms
45
Citations
13
References
2007
Year
Unknown Venue
Cluster ComputingEngineeringComputer ArchitectureHigh Performance ComputingSupercomputer ArchitectureModern Nec SystemsHigh-performance ArchitectureParallel ComputingProcessor ScalabilityMassively-parallel ComputingCpu Clock FrequencyComputer EngineeringComputer ScienceComputational ScienceExascale ComputingHardware AccelerationParallel ProgrammingPerformance PortabilityScientific Application PerformanceSystem Software
After a decade where HEC (high-end computing) capability was dominated by the rapid pace of improvements to CPU clock frequency, the performance of next-generation supercomputers is increasingly differentiated by varying interconnect designs and levels of integration. Understanding the tradeoffs of these system designs, in the context of high-end numerical simulations, is a key step towards making effective petascale computing a reality. This work represents one of the most comprehensive performance evaluation studies to date on modern NEC systems, including the IBM Power5, AMD Opteron, IBM BG/L, and Cray X1E. A novel aspect of our study is the emphasis on full applications, with real input data at the scale desired by computational scientists in their unique domain. We examine six candidate ultra-scale applications, representing a broad range of algorithms and computational structures. Our work includes the highest concurrency experiments to date on five of our six applications, including 32K processor scalability for two of our codes and describe several successful optimizations strategies on BG/L, as well as improved X1E vectorization. Overall results indicate that our evaluated codes have the potential to effectively utilize petascale resources; however, several applications would require reengineering to incorporate the additional levels of parallelism necessary to achieve the vast concurrency of upcoming ultra-scale systems.
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