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High Volume Throughput Computing: Identifying and Characterizing Throughput Oriented Workloads in Data Centers

机译:大批量吞吐量计算:在数据中心中识别和表征面向吞吐量的工作负载

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For the first time, this paper systematically identifies three categories of throughput oriented workloads in data centers: services, data processing applications, and interactive real-time applications, whose targets are to increase the volume of throughput in terms of processed requests or data, or supported maximum number of simultaneous subscribers, respectively, and we coins a new term high volume throughput computing (in short HVC) to describe those workloads and data center systems designed for them. We characterize and compare HVC with other computing paradigms, e.g., high throughput computing, warehouse-scale computing, and cloud computing, in terms of levels, workloads, metrics, coupling degree, data scales, and number of jobs or service instances. We also preliminarily report our ongoing work on the metrics and benchmarks for HVC systems, which is the foundation of designing innovative data center systems for HVC workloads.
机译:本文首次系统地确定了数据中心中面向吞吐量的三类工作:服务,数据处理应用程序和交互式实时应用程序,其目标是根据已处理的请求或数据来增加吞吐量,或者分别支持最大并发用户数,我们创造了一个新术语“高吞吐量计算”(简称HVC)来描述这些工作负载和为其设计的数据中心系统。我们根据级别,工作负载,指标,耦合程度,数据规模以及作业或服务实例的数量,将HVC与其他计算范例(例如高吞吐量计算,仓库规模的计算和云计算)进行比较,并将其特征化。我们还初步报告了我们正在进行的有关HVC系统的指标和基准的工作,这是为HVC工作负载设计创新的数据中心系统的基础。

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