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Persistence Diagram Estimation : Beyond Plug-in Approaches

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arxiv 2405.18005 v3 pith:HFSXQIS2 submitted 2024-05-28 math.ST math.ATstat.TH

classification math.STmath.ATstat.TH
keywords persistenceestimatorapproachesclassesconvergencedatadiagramplug-in
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Persistent homology is a tool from Topological Data Analysis (TDA) used to summarize the topology underlying data. It can be conveniently represented through persistence diagrams. Observing a noisy signal, common strategies to infer its persistence diagram involve plug-in estimators, and convergence properties are then derived from sup-norm stability. This dependence on the sup-norm convergence of the preliminary estimator is restrictive, as it essentially imposes to consider regular classes of signals. Departing from these approaches, we design an estimator based on image persistence. In the context of the Gaussian white noise model, and for large classes of piecewise-constant signals, we prove that the proposed estimator is consistent and achieves parametric rates.

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Cited by 1 Pith paper

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  1. Denoising 3D images: robustness of persistent homology measures

    cs.CG 2026-07 conditional novelty 4.0 of 10

    Bottleneck, Wasserstein, persistence-landscape, and persistence-image measures are more robust to Gaussian noise and Gaussian/ML denoising of synthetic 3D porous-media images than generator-count or average-lifespan s...

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