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Coded Elastic Computing on Machines With Heterogeneous Storage and Computation Speed

机译:具有异构储存和计算速度的机器上的编码弹性计算

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We study the optimal design of heterogeneous Coded Elastic Computing (CEC) where machines have varying computation speeds and storage. CEC introduced by Yang et al. in 2018 is a framework that mitigates the impact of elastic events, where machines can join and leave at arbitrary times. In CEC, data is distributed among machines using a Maximum Distance Separable (MDS) code such that subsets of machines can perform the desired computations. However, state-of-the-art CEC designs only operate on homogeneous networks where machines have the same speeds and storage. This may not be practical. In this work, based on an MDS storage assignment, we develop a novel computation assignment approach for heterogeneous CEC networks to minimize the overall computation time. We first consider the scenario where machines have heterogeneous computing speeds but same storage and then the scenario where both heterogeneities are present. We propose a novel combinatorial optimization formulation and solve it exactly by decomposing it into a convex optimization problem to find the optimal computation load and a filling problem to find the exact computation assignment. A low-complexity filling algorithm is adapted and can be completed within a number of iterations equal to at most the number of available machines.
机译:我们研究了异构编码弹性计算(CEC)的最佳设计,其中机器具有不同的计算速度和存储。 CEC由Yang等人介绍。 2018年是一个框架,减轻弹性事件的影响,机器可以加入并在任意时休假。在CEC中,使用最大距离可分离(MDS)代码的计算机之间分布数据,使得机器子集可以执行所需的计算。然而,最先进的CEC设计仅在机器具有相同速度和存储的均匀网络上运行。这可能并不实用。在这项工作中,基于MDS存储分配,我们开发了一种新颖的CEC网络计算分配方法,以最小化整体计算时间。我们首先考虑机器具有异构计算速度但存储器的场景,然后是存在异质性的场景。我们提出了一种新颖的组合优化制定,并通过将其分解成凸优化问题来解决它,以找到最佳计算负荷和填充问题以找到确切的计算分配。低复杂性填充算法适用,可以在多个迭代内完成,该迭代等于最多的可用机器的数量。

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