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Heterogeneous Coded Distributed Computing: Joint Design of File Allocation and Function Assignment

机译:异构编码的分布式计算:文件分配和功能分配的联合设计

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This paper studies the computation-communication tradeoff in a heterogeneous MapReduce computing system where each distributed node is equipped with different computation capability. We first obtain an achievable communication load for any given computation load and any given function assignment at each node. The proposed file allocation strategy has two steps: first, the input files are partitioned into disjoint batches, each with possibly different size and computed by a distinct node; then, each node computes additional files from its non-computed files according to its redundant computation capability. In the Shuffle phase, coded multicasting opportunities are exploited thanks to the repetitive file allocation among different nodes. Based on this scheme, we further propose the computation-aware and the shuffle-aware function assignments. We prove that, by using proper function assignments, our achievable communication load for any given computation load is within a constant multiplicative gap to the optimum in an equivalent homogeneous system with the same average computation load. Numerical results show that our scheme with shuffle-aware function assignment achieves better computation- communication tradeoff than existing works in some cases.
机译:本文研究了异构MapReduce计算系统中的计算-通信折衷,该系统中的每个分布式节点都具有不同的计算能力。我们首先在每个节点上为任何给定的计算负载和任何给定的功能分配获得可实现的通信负载。提议的文件分配策略包括两个步骤:首先,将输入文件分为不相交的批次,每个批次的大小可能不同,并由不同的节点计算。然后,每个节点根据其冗余计算能力从其非计算文件中计算其他文件。在随机播放阶段,由于不同节点之间重复的文件分配,因此利用了编码的多播机会。基于此方案,我们进一步提出了计算感知和随机播放功能分配。我们证明,通过使用适当的功能分配,对于任何给定的计算负载,我们可实现的通信负载都在一个恒定的乘积间隙之内,与具有相同平均计算负载的等效同质系统中的最优负载相差不大。数值结果表明,在某些情况下,我们的具有改组意识功能分配的方案比现有的工作实现了更好的计算-通信折衷。

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