异构系统中的无编码存储编码传输弹性计算与滞后容忍度

Xi Zhong, Joerg Kliewer, Mingyue Ji
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摘要

2018年,Yang等人提出了一种新颖有效的方法,使用最大距离可分离(MDS)代码来减轻云计算系统中弹性的影响。这种方法被称为编码弹性计算。这种方法的一些局限性包括:它假定所有虚拟机具有相同的计算速度和存储容量,并且不能容忍矩阵-矩阵乘法的延迟。为了解决这些局限性,我们在本文中引入了一个新的组合优化框架,名为 "无编码存储编码传输弹性计算(USCTEC)",用于异构速度和存储约束,目的是在考虑滞后容错的情况下,最大限度地减少矩阵-矩阵乘法的预期计算时间。在此框架内,我们提出了在宽松存储约束条件下具有杂散容差的优化方案。此外,我们还提出了一种考虑异构存储约束的启发式算法。我们的结果表明,所提出的算法在预期计算时间和存储大小两方面都优于利用循环存储放置的基准解决方案。
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Uncoded Storage Coded Transmission Elastic Computing with Straggler Tolerance in Heterogeneous Systems
In 2018, Yang et al. introduced a novel and effective approach, using maximum distance separable (MDS) codes, to mitigate the impact of elasticity in cloud computing systems. This approach is referred to as coded elastic computing. Some limitations of this approach include that it assumes all virtual machines have the same computing speeds and storage capacities, and it cannot tolerate stragglers for matrix-matrix multiplications. In order to resolve these limitations, in this paper, we introduce a new combinatorial optimization framework, named uncoded storage coded transmission elastic computing (USCTEC), for heterogeneous speeds and storage constraints, aiming to minimize the expected computation time for matrix-matrix multiplications, under the consideration of straggler tolerance. Within this framework, we propose optimal solutions with straggler tolerance under relaxed storage constraints. Moreover, we propose a heuristic algorithm that considers the heterogeneous storage constraints. Our results demonstrate that the proposed algorithm outperforms baseline solutions utilizing cyclic storage placements, in terms of both expected computation time and storage size.
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