Silent coverage failures in rare-event searches and a degeneracy index that predicts them
Davide Pagno
Abstract
Searches for new physics in low-background experiments infer a non-negative signal strength from few events and often report an upper limit. Nominal frequentist coverage requires both a valid interval construction and an adequate data model. We study how controlled model departures affect lower- and upper-endpoint coverage for six interval procedures in an exact Poisson counting experiment, dark-matter recoil spectra, and a neutrinoless-double-beta-decay peak search. We introduce the Poisson--Fisher degeneracy index IPF(δν;0)=(β,γ), which maps a specified expected-count deformation, after projection onto the complete fitted tangent space, to β, the signed fitted signal shift in profiled standard-error units, and γ, the Poisson--Fisher norm of the unabsorbed residual. Locally, the sign of β identifies the threatened endpoint, while larger γ implies greater detectability by the saturated-Poisson goodness-of-fit test used here at a fixed 5\% type-I error rate. Across the studied deformations, positive signal-like bias degrades discovery-side coverage while making upper limits conservative; negative signal bias from overestimated signal efficiency can make the upper endpoint undercover. Calibration under the nominal simulator does not protect against misspecification of that simulator relative to the data-generating process. A plausible deformation with large |β| and small γ may therefore evade diagnosis and should be represented by a nuisance constrained with auxiliary information or included in a defensible envelope. In the exactly collinear constrained-nuisance benchmark, modelling the deformation restores coverage at the evaluated grid points, at a quantifiable cost in interval sensitivity.
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