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Cost-Aware Cloud Metering with Scalable Service Management Infrastructure

机译:具有可扩展服务管理基础架构的成本感知型云计量

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As the cloud services journey through their lifecycle towards becoming commodities, the demand is increasing for "pay-per-use" pricing model. In this model, users are charged for the amount of resources, e.g., Volume of transactions, CPU usage, etc., being consumed during a given time period. Software as a Service (SaaS) providers charging their customers via pay-per-use (e.g., Microsoft Azure Web Services) and facing Infrastructure as a Service (IaaS) costs per VM per month (e.g., Soft Layer) have to carefully choose and scale their non-revenue generating service management infrastructure to penetrate and stay in the market. In this paper, we focus on the metering and rating aspects of cloud service management, and their scalability with the SaaS business and operational changes. We design a framework for cloud service providers to scale their revenue management systems in a cost-aware manner, where the deployment of these revenue systems dynamically uses existing or newly provisioned SaaS VMs, instead of the extant approach of using dedicated setups. Our experimental analysis shows that service management related tasks can be offloaded to the existing VMs with at most 15% overhead in CPU utilization, 10% overhead for memory usage, and negligible overhead for I/O and network usage. We used traces from IBM production servers to mimic the load on VMs. By dynamically scaling the service management setup, we were able to adapt to increasing metering data processing requirements without incurring additional cost, while preserving the infrastructure footprint.
机译:随着云服务在其生命周期中逐步转变为商品的过程,对“按使用付费”定价模型的需求正在增加。在该模型中,向用户收取在给定时间段内消耗的资源量,例如事务量,CPU使用率等。软件即服务(SaaS)提供商通过按使用量付费向客户收费(例如Microsoft Azure Web Services),并且面对每个VM每月每个VM的基础架构即服务(IaaS)成本(例如软层),必须谨慎选择和扩展其非创收服务管理基础架构,以渗透并保持在市场中。在本文中,我们专注于云服务管理的计量和评级方面,以及它们在SaaS业务和运营变更中的可扩展性。我们设计了一个框架,供云服务提供商以可感知成本的方式扩展其收入管理系统,其中这些收入系统的部署动态地使用现有或新配置的SaaS VM,而不是使用专用设置的现有方法。我们的实验分析表明,与服务管理相关的任务可以卸载到现有的VM,CPU使用率最多为15%,内存使用率最多为10%,I / O和网络使用率可以忽略不计。我们使用来自IBM生产服务器的跟踪来模拟VM上的负载。通过动态扩展服务管理设置,我们能够适应不断增长的计量数据处理需求,而不会产生额外的成本,同时又保留了基础架构的占用空间。

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