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Input-Dynamic Distributed Algorithms for Communication Networks

机译:用于通信网络的输入 - 动态分布式算法

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摘要

Consider a distributed task where the communication network is fixed but the local inputs given to the nodes of the distributed system may change over time. In this work, we explore the following question: if some of the local inputs change, can an existing solution be updated efficiently, in a dynamic and distributed manner? To address this question, we define the batch dynamic CONGEST model in which we are given a bandwidth-limited communication network and a dynamic edge labelling defines the problem input. The task is to maintain a solution to a graph problem on the labelled graph under batch changes. We investigate, when a batch of a edge label changes arrive, - how much time as a function of a we need to update an existing solution, and - how much information the nodes have to keep in local memory between batches in order to update the solution quickly. Our work lays the foundations for the theory of input-dynamic distributed network algorithms. We give a general picture of the complexity landscape in this model, design both universal algorithms and algorithms for concrete problems, and present a general framework for lower bounds. The diverse time complexity of our model spans from constant time, through time polynomial in a, and to a time, which we show to be enough for any task.
机译:考虑一个分布式任务,其中通信网络是固定的,但是给予分布式系统的节点的本地输入可能随时间改变。在这项工作中,我们探讨了以下问题:如果某些本地输入更改,则可以以动态和分布式方式有效更新现有解决方案吗?为了解决这个问题,我们定义了批量动态增量模型,其中我们被提供了带宽限制的通信网络,动态边缘标签定义了问题输入。任务是在批处理更改下维护标记图上的图形问题的解决方案。当一批边缘标签变化到达时,我们调查 - 我们需要更新现有解决方案的函数的时间,以及节点必须在批处理之间留在本地内存中的多少信息才能更新解决方案很快。我们的工作为输入动态分布式网络算法的基础奠定了基础。我们在该模型中提供了复杂性景观的一般图片,为具体问题设计了通用算法和算法,并为下限提供了一般框架。我们模型跨越恒定时间,通过时间多项式以及我们所显示的时间足以进行任何任务的时间复杂性。

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