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Fast Estimation of Aggregates in Unstructured Networks

机译:非结构化网络中的聚集体快速估计

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Aggregation of data values plays an important role on distributed computations, in particular over peer-to-peer and sensor networks, as it can provide a summary of some global system property and direct the actions of self-adaptive distributed algorithms. Examples include using estimates of the network size to dimension distributed hash tables or estimates of the average system load to direct load-balancing. Distributed aggregation using non-idempotent functions, like sums, is not trivial as it is not easy to prevent a given value from being accounted for multiple times; this is especially the case if no centralized algorithms or global identifiers can be used. This paper introduces Extrema Propagation, a probabilistic technique for distributed estimation of the sum of positive real numbers. The technique relies on the exchange of duplicate insensitive messages and can be applied in flood and/or epidemic settings, where multi-path routing occurs; it is tolerant of message loss; it is fast, as the number of message exchange steps equals the diameter; and it is fully distributed, with no single point of failure and the result produced at every node.
机译:数据值的聚合过对等网络和传感器网络上播放分布式计算了重要作用,特别是因为它可以提供一些全局系统属性的摘要和引导的自适应分布式算法的操作。实例包括使用估计的网络大小尺寸分布式散列表或平均系统负载直接负载平衡的估计。使用非幂等的功能,如求和分布式聚合,是不平凡的,因为它是不容易的,以防止被占多次给定值;这是特别的情况下,如果不能使用任何集中算法或全局标识符。本文介绍了极值传播,为正实数的总和的分布式估计概率技术。该技术依赖于重复的不敏感的消息的交换,并且可以在洪水和/或流行病设置,其中多路径路由发生被施加;它是消息丢失的容错;它是快速,作为消息交换步骤的数量等于所述直径;并且它是完全分布式的,与不存在单一故障点,并在每个节点产生的结果。

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