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Towards cloud-native simulations -lessons learned from the front-line of cloud computing

机译:朝着云天然模拟 - 无利用从云计算的前线吸取的

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Cloud computing can be a game-changer for computationally intensive tasks like simulations. The computational power of Amazon, Google, or Microsoft is even available to a single researcher. However, the pay-as-you-go cost model of cloud computing influences how cloud-native systems are being built. We transfer these insights to the simulation domain. The major contributions of this paper are twofold: (A) we propose a cloud-native simulation stack and (B) derive expectable software engineering trends for cloud-native simulation services. Our insights are based on systematic mapping studies on cloud-native applications, a review of cloud standards, action research activities with cloud engineering practitioners, and corresponding software prototyping activities. Two major trends have dominated cloud computing over the last 10 years. The size of deployment units has been minimized and corresponding architectural styles prefer more fine-grained service decompositions of independently deployable and horizontally scalable services. We forecast similar trends for cloud-native simulation architectures. These similar trends should make cloud-native simulation services more microservice-like, which are composable but just "simulate one thing well." However, merely transferring existing simulation models to the cloud can result in significantly higher costs. One critical insight of our (and other) research is that cloud-native systems should follow cloud-native architecture principles to leverage the most out of the pay-as-you-go cost model.
机译:云计算可以是用于计算密集型任务的游戏更换器,如模拟。亚马逊,谷歌或微软的计算能力甚至可供单一的研究人员使用。但是,云计算的支付费用模型影响了云原生系统的建立方式。我们将这些见解转移到模拟域。本文的主要贡献是双重的:(a)我们提出了云天然模拟堆栈和(b)导出云天然模拟服务的期望软件工程趋势。我们的见解是基于对云天然应用的系统映射研究,综述云标准,云工程从业者的行动研究活动以及相应的软件原型活动。两个主要趋势在过去10年中占据了云计算。部署单元的大小最小化,相应的架构款式更倾向于更细粒度的服务分解,可独立地部署和水平可扩展的服务。我们预测云原生模拟架构的类似趋势。这些类似的趋势应该使云天然模拟服务更加微野仿制,这是可组合的,但只是“模拟一件事”。但是,仅将现有的仿真模型传输到云可能导致成本显着提高。我们(和其他)研究的一个关键洞察力是云原生系统应遵循云本机架构原则,以利用最多的代价成本模型。

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