首页> 外文期刊>Simulation modelling practice and theory: International journal of the Federation of European Simulation Societies >Conservative distributed discrete-event simulation on the Amazon EC2 cloud: An evaluation of time synchronization protocol performance and cost efficiency
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Conservative distributed discrete-event simulation on the Amazon EC2 cloud: An evaluation of time synchronization protocol performance and cost efficiency

机译:Amazon EC2云上的保守分布式离散事件模拟:时间同步协议性能和成本效率的评估

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Distributed execution of simulation models comes into play when memory limitations of a single computational resource prohibit their execution. In addition, the potential for parallel execution of a model on a distributed platform through the integration of multiple computational cores, can potentially reduce the execution time of a simulation. However, such gains can be voided by the overhead that time synchronization protocols for parallel and distributed simulation induce. This overhead is determined by the protocol used, the characteristics of the simulation model, as well as the architectural and performance characteristics of the hardware platform used. Recently, Infrastructure-as-a-Service offerings in the cloud computing domain have introduced flexibility in acquiring access to virtualized hardware platforms on a pay-as-you-go basis. At present, it is however unclear to what extent these offerings are suited for the distributed execution of discrete-event simulations, and how the characteristics of different resource types impact the performance of distributed simulation under different time synchronization protocols. Likewise, it is unclear which type of resources are most cost-efficient for this type of workload. To our knowledge, this paper is the first to investigate these aspects through an assessment of the performance and cost efficiency of different conservative time synchronization protocols on a range of cloud resource types that are currently available on Amazon EC2. Our analysis shows that performance levels comparable to those realized on commodity hardware based-clusters are attainable, and that the relative performance of different synchronization protocols is retained on high-end IaaS resources. In terms of cost-efficiency, we find that IaaS products tailored to traditional cluster workloads do not necessarily constitute the optimal choice, and we assess the impact of different packing configurations for logical processes in this regard.
机译:当单个计算资源的内存限制禁止其执行时,仿真模型的分布式执行就起作用了。此外,通过集成多个计算核心在分布式平台上并行执行模型的潜力可以潜在地减少仿真的执行时间。但是,此类收益可能会因并行和分布式仿真的时间同步协议引起的开销而被抵消。该开销取决于所使用的协议,仿真模型的特性以及所使用的硬件平台的体系结构和性能特性。最近,云计算领域中的“基础设施即服务”产品引入了灵活性,可以按需付费,获得对虚拟化硬件平台的访问。但是,目前尚不清楚这些产品在多大程度上适合离散事件模拟的分布式执行,以及在不同的时间同步协议下,不同资源类型的特性如何影响分布式模拟的性能。同样,也不清楚哪种类型的资源对于这种类型的工作负载最具成本效益。据我们所知,本文是第一个通过评估Amazon EC2当前可用的各种云资源类型上不同保守时间同步协议的性能和成本效率来研究这些方面的方法。我们的分析表明,可以达到与基于商用硬件的集群可比的性能水平,并且高端IaaS资源上保留了不同同步协议的相对性能。在成本效率方面,我们发现针对传统集群工作负载量身定制的IaaS产品不一定构成最佳选择,并且我们在这方面评估了不同打包配置对逻辑流程的影响。

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