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Profit Maximization for Admitting Requests with Network Function Services in Distributed Clouds

机译:利用分布式云中的网络功能服务来接受请求的利润最大化

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Traditional networks employ expensive dedicated hardware devices as middleboxes to implement Service Function Chains of user requests by steering data traffic along middleboxes in the service function chains before reaching their destinations. Network Function Virtualization (NFV) is a promising virtualization technique that implements network functions as pieces of software in servers or data centers. The integration of NFV and Software Defined Networking (SDN) further simplifies service function chain provisioning, making its implementation simpler and cheaper. In this paper, we consider dynamic admissions of delay-aware requests with service function chain requirements in a distributed cloud with the objective to maximize the profit collected by the service provider, assuming that the distributed cloud is an SDN that consists of data centers located at different geographical locations and electricity prices at different data centers are different. We first formulate this novel optimization problem as a dynamic profit maximization problem. We then show that the offline version of the problem is NP-hard and formulate an integer linear programming solution to it. We third propose an online heuristic for the problem. We also devise an online algorithm with a provable competitive ratio for a special case of the problem where the end-to-end delay requirement of each request is negligible. We finally evaluate the performance of the proposed algorithms through experimental simulations. The simulation results demonstrate that the proposed algorithms are promising.
机译:传统网络采用昂贵的专用硬件设备作为中间盒,以在到达目的地之前沿服务功能链中的中间盒引导数据流量,从而实现用户请求的服务功能链。网络功能虚拟化(NFV)是一种很有前途的虚拟化技术,可将网络功能作为服务器或数据中心中的软件来实现。 NFV和软件定义网络(SDN)的集成进一步简化了服务功能链的配置,使其实施更加简单和廉价。在本文中,我们假设分布式云是一个由位于以下位置的数据中心组成的SDN,目的是在分布式云中考虑具有服务功能链要求的延迟感知请求的动态准入,目的是最大化服务提供商收集的利润。不同的地理位置和不同数据中心的电价是不同的。我们首先将此新颖的优化问题表述为动态利润最大化问题。然后,我们证明问题的离线版本是NP-hard的,并为此制定了整数线性规划解决方案。我们第三次提出针对该问题的在线启发式方法。对于特殊情况(每个请求的端到端延迟要求可忽略不计),我们还设计了一种具有可证明竞争比的在线算法。我们最终通过实验仿真评估了所提出算法的性能。仿真结果表明所提出的算法是有前途的。

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