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Optimal single-path information propagation in gradient-based algorithms

机译:基于梯度的算法中的最优单路径信息传播

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Scenarios like wireless network networks, Internet of Things, and pervasive computing, promote full distribution of computation as well as opportunistic, peer-to-peer interactions between devices spread in the environment. In this context, computing estimated distances between devices in the network is a key component, commonly referred to as the gradient self-organisation pattern: it is frequently used to broadcast information, forecast pointwise events, as carrier for distributed sensing, and as combinator for higher-level spatial structures. However, computing gradients is very problematic in an environment affected by mutability in the position and working frequency of devices: existing algorithms fail in reaching adequate trade-offs between accuracy and reaction speed to environment changes. We propose BIS (Bounded Information Speed) gradient, a fully-distributed algorithm that uses time information to achieve a smooth and predictable reaction speed, and prove it is optimal across algorithms following a single-path-communication strategy to spread information. We empirically evaluate BIS gradient and compare it with other approaches, showing that BIS achieves the best accuracy while keeping smoothness under control, and accordingly provides improved performance when used as building block in more complex algorithms for creating spatial structures and performing distributed collection of data. (C) 2018 Elsevier B.V. All rights reserved.
机译:无线网络,物联网和普适计算等场景促进了计算的完全分发以及环境中分布的设备之间的机会性,对等交互。在这种情况下,计算网络中设备之间的估计距离是关键组成部分,通常称为梯度自组织模式:它经常用于广播信息,预测逐点事件,作为分布式感知的载体以及作为组合感知器。更高层次的空间结构。但是,在受设备位置和工作频率可变性影响的环境中,计算梯度非常成问题:现有算法无法在精度和对环境变化的反应速度之间达成适当的折衷。我们提出了BIS(边界信息速度)梯度,这是一种完全分布式的算法,该算法使用时间信息来实现平稳且可预测的反应速度,并证明它是遵循单路径通信策略来传播信息的最佳算法。我们通过经验评估BIS梯度并将其与其他方法进行比较,表明BIS在保持可控性的同时实现了最佳精度,并在用作创建空间结构和执行数据分布式收集的更复杂算法中的构建基块时提供了改进的性能。 (C)2018 Elsevier B.V.保留所有权利。

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