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Advances in Distributed Graph Filtering

机译:分布式图滤波的进步

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摘要

Graph filters are one of the core tools in graph signal processing. A central aspect of them is their direct distributed implementation. However, the filtering performance is often traded with distributed communication and computational savings. To improve this tradeoff, this paper generalizes state-of-the-art distributed graph filters to filters where every node weights the signal of its neighbors with different values while keeping the aggregation operation linear. This new implementation, labeled as edge-variant graph filter, yields a significant reduction in terms of communication rounds while preserving the approximation accuracy. In addition, we characterize a subset of shift-invariant graph filters that can be described with edge-variant recursions. By using a low-dimensional parameterization, these shift-invariant filters provide new insights in approximating linear graph spectral operators through the succession and composition of local operators, i.e., fixed support matrices. A set of numerical results shows the benefits of the edge-variant graph filters over current methods and illustrates their potential to a wider range of applications than graph filtering.
机译:图形过滤器是图形信号处理中的核心工具之一。它们的中心方面是他们的直接分布式实施。但是,过滤性能通常以分布式通信和计算节省交易。为了提高这个权衡,本文概括了最先进的分布式图形过滤器,以在每个节点加权其邻居的信号的情况下以不同的值加权,同时保持聚合操作线性。标记为边缘变型图滤波器的新实现,在保持近似精度的同时产生通信圆数的显着降低。另外,我们表征了可以用边缘变体递归描述的移位不变图形过滤器的子集。通过使用低维参数化,这些换档不变滤波器通过局部运算符的连续和组成,即固定支持矩阵近似线性图谱扫描算子提供新的见解。一组数值结果显示了边缘变体曲线图过滤通过电流方法的优势,并将其潜力示出了比图形滤波更广泛的应用。

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