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Sobol' Matrices For Multi-Output Models With Quantified Uncertainty

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arxiv 2501.04602 v3 pith:WJZUFOXU submitted 2025-01-08 math.ST stat.TH

classification math.STstat.TH
keywords sobolindicesmatricesmulti-outputuncertaintyinputsmatrixmodel
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Variance based global sensitivity analysis measures the relevance of inputs to a single output using Sobol' indices. This paper extends the definition in a natural way to multiple outputs, directly measuring the relevance of inputs to the linkages between outputs in a correlation-like matrix of indices. The usual Sobol' indices constitute the diagonal of this matrix. Existence, uniqueness and uncertainty quantification are established by developing the indices from a putative multi-output model with quantified uncertainty. Sobol' matrices and their standard errors are related to the moments of the multi-output model, to enable calculation. These are benchmarked numerically against test functions (with added noise) whose Sobol' matrices are calculated analytically.

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Conditional Mean Independence and Global Sensitivity Analysis using Nearest Neighbor Graphs

    stat.ME 2026-07 accept novelty 6.5 of 10

    A nearest-neighbor graph estimator of the normalized conditional mean discrepancy is consistent, rate-optimal in low dimension, asymptotically normal under the null, and yields a fast test and screening procedure.

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