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arxiv: 0705.4309 · v1 · submitted 2007-05-29 · 🧮 math.GM · math.FA

On Stability of Sampling-Reconstruction Models

classification 🧮 math.GM math.FA
keywords modeldifferentmodelsperturbationsrespectresultsampling-reconstructionsmall
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A useful sampling-reconstruction model should be stable with respect to different kind of small perturbations, regardless whether they result from jitter, measurement errors, or simply from a small change in the model assumptions. In this paper we prove this result for a large class of sampling models. We define different classes of perturbations and quantify the robustness of a model with respect to them. We also use the theory of localized frames to study the frame algorithm for recovering the original signal from its samples.

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