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Deterministic Distributed Data Aggregation under the SINR Model

机译:SINR模型下的确定性分布式数据聚合

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Given a set of nodes V, where each node has some data value, the goal of data aggregation is to compute some aggregate function in the fewest timeslots possible. Aggregate functions compute the aggregated value from the data of all nodes; common examples include maximum or average. We assume the realistic physical (SINR) interference model and no knowledge of the network structure or the number of neighbors of any node; our model also uses physical carrier sensing. We present a distributed protocol to compute an aggregate function in O(D + Δ log n) timeslots, where D is the diameter of the network, Δ is the maximum number of neighbors within a given radius and n is the total number of nodes. Our protocol contributes an exponential improvement in running time compared to that in [18].
机译:给定一组节点V,其中每个节点都有一些数据值,数据聚合的目标是在尽可能少的时隙中计算一些聚合函数。聚合函数根据所有节点的数据计算聚合值;常见示例包括最大值或平均值。我们假设实际的物理(SINR)干扰模型,并且不了解网络结构或任何节点的邻居数;我们的模型还使用物理载波侦听。我们提出了一种分布式协议,用于计算O(D +Δlog n)时隙中的聚合函数,其中D是网络的直径,Δ是给定半径内的最大邻居数,n是节点总数。与[18]中的协议相比,我们的协议在运行时间上有指数级的改进。

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