arXiv · 2307.00336
On the Impact of Sample Size in Reconstructing Graph Signals
Abstract
Reconstructing a signal on a graph from observations on a subset of the vertices is a fundamental problem in the field of graph signal processing. It is often assumed that adding additional observations to an observation set will reduce the expected reconstruction error. We show that under the setting of noisy observation and least-squares reconstruction this is not always the case, characterising the behaviour both theoretically and experimentally.
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Baskaran Sripathmanathan, Xiaowen Dong, Michael Bronstein. 2023-07-01. On the Impact of Sample Size in Reconstructing Graph Signals. https://arxiv.org/abs/2307.00336
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