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Journal of the American Medical Informatics Association , volume=

2 Pith papers cite this work. Polarity classification is still indexing.

2 Pith papers citing it

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stat.ME 2

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2026 2

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UNVERDICTED 2

representative citing papers

Semi-supervised Method for Risk Prediction with Doubly Censored EHR Data

stat.ME · 2026-05-08 · unverdicted · novelty 7.0

Proposes a novel semi-supervised estimator for risk prediction under double censoring that combines limited gold-standard labels with large-scale surrogates, proves theoretical validity, and shows efficiency gains over supervised methods in simulations and a T2D EHR application.

Bias Correction for Semiparametric Regression Models

stat.ME · 2026-05-09 · unverdicted · novelty 4.0

SABRE is a simulation-based bias correction framework that reduces finite-sample bias for the parametric component and dispersion parameter in semiparametric regression models, with asymptotic bias reduction without variance inflation shown for generalized partially linear models.

citing papers explorer

Showing 2 of 2 citing papers.

  • Semi-supervised Method for Risk Prediction with Doubly Censored EHR Data stat.ME · 2026-05-08 · unverdicted · none · ref 6

    Proposes a novel semi-supervised estimator for risk prediction under double censoring that combines limited gold-standard labels with large-scale surrogates, proves theoretical validity, and shows efficiency gains over supervised methods in simulations and a T2D EHR application.

  • Bias Correction for Semiparametric Regression Models stat.ME · 2026-05-09 · unverdicted · none · ref 81

    SABRE is a simulation-based bias correction framework that reduces finite-sample bias for the parametric component and dispersion parameter in semiparametric regression models, with asymptotic bias reduction without variance inflation shown for generalized partially linear models.