Optimization Model for Backup Resource Allocation in Middleboxes

Fujun He, Takehiro Sato, E. Oki
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引用次数: 4

Abstract

Network function virtualization paradigm enables us to implement network functions provided in middleboxes as software which runs on commodity servers. This paper proposes a backup resource allocation model for middleboxes with considering failure probabilities of network functions and backup servers. Multiple backup servers, each of which is allowed to protect several functions, can be assigned to protect one function. When a function fails, one of the corresponding servers providing protection is required to recover it, if the function is protected by any server. We aim to find an assignment of servers to functions where the unavailability of the function that is in the worst case is minimized. We formulate the backup resource allocation problem as a mixed integer linear programming problem. We prove that the backup resource allocation problem is NP-complete by showing that the partition problem is reducible to it. A heuristic algorithm is introduced to solve the same optimization problem. We analyze the computational time complexity of the heuristic algorithm as a polynomial. We show the comparison results obtained by the heuristic algorithm and by solving the mixed integer linear programming problem in terms of deviation and computational time. The results reveal that the heuristic algorithm needs about 10•5 times computational time, compared to that of solving the mixed integer linear programming problem, to obtain a solution, where the worst unavailability over all the functions is about 1.6 times of the optimal value in average in our examined scenarios.
中间件备份资源分配优化模型
网络功能虚拟化范例使我们能够将中间件中提供的网络功能作为运行在商用服务器上的软件来实现。提出了一种考虑网络功能和备份服务器故障概率的中间盒备份资源分配模型。可以将多个备份服务器分配为保护一个功能,每个备份服务器允许保护多个功能。当函数失败时,如果函数受到任何服务器的保护,则需要一个提供保护的相应服务器来恢复它。我们的目标是找到将服务器分配给功能的方法,使在最坏情况下功能的不可用性最小化。我们将备份资源分配问题表述为一个混合整数线性规划问题。通过证明分区问题可约化为备份资源分配问题,证明了备份资源分配问题是np完全的。引入了一种启发式算法来解决相同的优化问题。我们以多项式的形式分析了启发式算法的计算时间复杂度。从偏差和计算时间两方面比较了启发式算法与求解混合整数线性规划问题的结果。结果表明,与求解混合整数线性规划问题相比,启发式算法的计算时间约为10•5倍,在我们所研究的场景中,所有函数的最差不可用性平均约为最优值的1.6倍。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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