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PERFORMANCE MODELING AND ANALYSIS OF A MASSIVELY PARALLEL DIRECT—PART 1

机译:大规模并行直接的性能建模和分析—第1部分

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摘要

Modeling and analysis techniques are used to investigate the performance of a massively parallel version of DIRECT, a global search algorithm widely used in multidisciplinary design optimization applications. Several high-dimensional benchmark functions and real world problems are used to test the design effectiveness under various problem structures. Theoretical and experimental results are compared for two parallel clusters with different system scales and network connectivities. The present work aims at studying the performance sensitivity to important parameters for problem configurations, parallel schemes, and system settings. The performance metrics include the memory usage, load balancing, parallel efficiency, and scalability. An analytical bounding model is constructed to measure the load balancing performance under different schemes. Additionally, linear regression models are used to characterize two major overhead sources, interprocessor communication and processor idleness, and also applied to the isoefficiency functions in scalability analysis. For a variety of high-dimensional problems and large-scale systems, the massively parallel design has achieved reasonable performance. The results of the performance study provide guidance for efficient problem and scheme configuration. More importantly, the generalized design considerations and analysis techniques are beneficial for transforming many global search algorithms into effective large-scale parallel optimization tools.
机译:建模和分析技术用于研究大规模并行版本的DIRECT的性能,DIRECT是广泛用于多学科设计优化应用程序的全局搜索算法。几个高维基准函数和实际问题用于测试各种问题结构下的设计有效性。比较了两个具有不同系统规模和网络连通性的并行集群的理论和实验结果。本工作旨在研究对问题配置,并行方案和系统设置的重要参数的性能敏感性。性能指标包括内存使用情况,负载平衡,并行效率和可伸缩性。构造了一个解析边界模型来衡量不同方案下的负载均衡性能。此外,线性回归模型用于表征两个主要的开销来源:处理器间通信和处理器空闲,并且还应用于可伸缩性分析中的等效率函数。对于各种高维问题和大规模系统,大规模并行设计已实现了合理的性能。性能研究的结果为有效的问题和方案配置提供了指导。更重要的是,通用的设计考虑因素和分析技术有助于将许多全局搜索算法转换为有效的大规模并行优化工具。

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