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A distributed optimization method for the geographically distributed data centres problem

机译:地理分布数据中心问题的分布式优化方法

摘要

The geographically distributed data centres problem (GDDC) is a naturally distributed resource allocation problem. The problem involves allocating a set of virtual machines (VM) amongst the data centres (DC) in each time period of an operating horizon. The goal is to optimize the allocation of workload across a set of DCs such that the energy cost is minimized, while respecting limitations on data centre capacities, migrations of VMs, etc. In this paper, we propose a distributed optimization method for GDDC using the distributed constraint optimization (DCOP) framework. First, we develop a new model of the GDDC as a DCOP where each DC operator is represented by an agent. Secondly, since traditional DCOP approaches are unsuited to these types of large-scale problem with multiple variables per agent and global constraints, we introduce a novel semi-asynchronous distributed algorithm for solving such DCOPs. Preliminary results illustrate the benefits of the new method.
机译:地理分布的数据中心问题(GDDC)是自然分布的资源分配问题。问题涉及在操作范围的每个时间段内在数据中心(DC)之间分配一组虚拟机(VM)。目标是优化一组DC上的工作负载分配,以使能源成本最小化,同时考虑到数据中心容量,VM迁移等方面的限制。在本文中,我们提出了一种使用GDDC的分布式优化方法分布式约束优化(DCOP)框架。首先,我们开发了GDDC的新模型作为DCOP,其中每个DC运营商都由一个代理代表。其次,由于传统的DCOP方法不适用于这些类型的大规模问题,每个代理具有多个变量且具有全局约束,因此我们引入了一种新颖的半异步分布式算法来解决此类DCOP。初步结果说明了新方法的好处。

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