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Energy efficient cloud service pricing: A two-timescale optimization approach

机译:高效节能的云服务定价:两阶段优化方法

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This paper considers the scenario of a cloud service market where several Cloud Service Providers (CSP) are in operation and are competing against each other to attract and serve the demands generated by the customers. The competition arises from the fact that the customers (the individuals or organizations) who generate demand for services in the market rationally choose the CSP which offers good quality of services at a lower price. For pricing the services offered by the CSPs under this framework, we provide an analytical framework by considering the operational cost incurred by the CSP to service the given demand, the quality of service (QoS) offered and the prices other CSPs are charging. The pricing strategy we propose strikes a reasonable balance between charging too little which would result in irrationally low business profit and charging too much which would result in customer loss and thereby eventually loss of market share. In addition, the pricing strategy proposed promotes energy efficiency and renewable energy integration using a bi-level optimization strategy. The first level consisting of a Slow Timescale Optimization Procedure (STOP) addresses the economic efficiency related issues for cloud service pricing. The second level involving a Fast Timescale Optimization Procedure (FTOP) performs energy efficient job scheduling. We carry out numerical simulations to validate the proposed pricing strategy and compare it with an oracle benchmark policy, with fair profit sharing among the CSPs. We compare the proposed energy aware scheduling policy with a baseline scheduling policy. We demonstrate the efficiency and effectiveness of the proposed bi-level strategy and discuss the results. (C) 2016 Elsevier Ltd. All rights reserved.
机译:本文考虑了云服务市场的场景,其中几个云服务提供商(CSP)处于运营状态,并且相互竞争以吸引并满足客户产生的需求。竞争源于这样一个事实,即在市场上产生对服务需求的客户(个人或组织)会合理选择以较低价格提供优质服务的CSP。为了在此框架下为CSP提供的服务定价,我们提供了一个分析框架,其中考虑了CSP为满足给定需求而产生的运营成本,所提供的服务质量(QoS)以及其他CSP收取的价格。我们建议的定价策略在收取得太少(会导致非理性的业务利润)与收取太多(会导致客户流失,最终导致市场份额损失)之间取得合理的平衡。此外,提出的定价策略使用双层优化策略来提高能源效率和可再生能源整合。由慢时标优化过程(STOP)组成的第一级解决了与云服务定价有关的经济效率相关问题。涉及快速时标优化程序(FTOP)的第二级执行节能作业调度。我们进行了数值模拟,以验证提议的定价策略,并将其与oracle基准策略进行比较,并在CSP之间公平地分享利润。我们将建议的节能意识调度策略与基准调度策略进行比较。我们证明了所提出的两级策略的效率和有效性,并讨论了结果。 (C)2016 Elsevier Ltd.保留所有权利。

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