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On Comparative Study of Deterministic Linear Consensus-based Algorithms for Distributed Summing

机译:基于确定性线性共识的分布式求和算法的比较研究

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Application of data aggregation mechanisms is supposed to ensure high confidence of measurements and low energy demands in wireless sensor networks. Therefore, many modern applications utilize distributed algorithms for aggregate function estimation in order to minimize negative factors affecting the operation of the wireless sensor networks. This paper is concerned with deterministic linear consensus-based algorithms for distributed summing or more specifically, a comparative study of five frequently applied algorithms from this algorithm category over random graphs and random geometric graphs. The selected algorithms are examined using various methodologies and metrics.
机译:数据聚合机制的应用被认为可以确保无线传感器网络中的测量具有很高的置信度和较低的能源需求。因此,许多现代应用将分布式算法用于聚合函数估计,以最小化影响无线传感器网络操作的负面因素。本文关注的是用于分布式求和的基于确定性线性共识的算法,或更具体地说,涉及从该算法类别对随机图和随机几何图进行的五种常用算法的比较研究。使用各种方法和指标来检查所选算法。

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