Sampling and Reconstruction of Band-limited Graph Signals using Graph Syndromes

Achanna Anil Kumar, N. Narendra, M. Chandra, Kriti Kumar
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Abstract

The problem of sampling and reconstruction of band-limited graph signals is considered in this paper. A new sampling and reconstruction method based on the idea of error and erasure correction is proposed. We visualize the process of sampling as removal of nodes akin to introducing erasures, due to which the graph syndromes of a sampled signal gives rise to significant values, which otherwise would be minuscule for a band-limited signal. A reconstruction method by making use of these significant values in the graph syndromes is described and correspondingly the necessary and sufficient conditions for unique recovery and some key properties is provided. Additionally, this method allows for robust reconstruction i.e., reconstruction in the presence of few corrupted sampled nodes and a method based on weighted $\ell_{1}$ - norm is described. Simulation results are provided to demonstrate the efficiency of the method which shows better mean squared error performance compared to existing methods.
基于图证的带限图信号采样与重构
本文研究了带限图信号的采样与重构问题。提出了一种基于误差和擦除校正思想的采样重建方法。我们将采样过程可视化为类似于引入擦除的节点的移除,因此采样信号的图综合征会产生显著值,否则对于带限信号来说,这将是微不足道的。描述了利用图证中这些显著值的重构方法,并给出了图证唯一恢复的充分必要条件和一些关键性质。此外,该方法允许鲁棒重建,即在存在少量损坏的采样节点的情况下进行重建,并描述了基于加权$\ell_{1}$ -范数的方法。仿真结果表明,该方法具有较好的均方误差性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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