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An Economic Model for Self-Tuned Cloud Caching

机译:自调整云缓存的经济模型

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Cloud computing, the new trend for service infrastructures requires user multi-tenancy as well as minimal capital expenditure. In a cloud that services large amounts of data that are massively collected and queried, such as scientific data, users typically pay for query services. The cloud supports caching of data in order to provide quality query services. User payments cover query execution costs and maintenance of cloud infrastructure, and incur cloud profit. The challenge resides in providing efficient and resource-economic query services while maintaining a profitable cloud. In this work we propose an economic model for self-tuned cloud caching targeting the service of scientific data. The proposed economy is adapted to policies that encourage high-quality individual and overall query services but also brace the profit of the cloud. We propose a cost model that takes into account all possible query and infrastructure expenditure. The experimental study proves that the proposed solution is viable for a variety of workloads and data.
机译:云计算是服务基础架构的新趋势,需要用户多租户以及最少的资本支出。在为大量收集和查询的大量数据(例如科学数据)提供服务的云中,用户通常为查询服务付费。云支持数据缓存,以提供高质量的查询服务。用户付款支付查询执行成本和云基础架构的维护费用,并产生云利润。挑战在于提供有效且资源经济的查询服务,同时保持可盈利的云。在这项工作中,我们提出了一种针对科学数据服务的自调整云缓存的经济模型。拟议的经济适用于鼓励高质量的个人和整体查询服务,同时又能支撑云计算利润的政策。我们提出了一种成本模型,该模型考虑了所有可能的查询和基础架构支出。实验研究证明,所提出的解决方案对于各种工作负载和数据都是可行的。

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