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stat.ME2025

Variable Selection for Fixed and Random Effects in Multilevel Functional Mixed Effects Models

Rahul Ghosal, Marcos Matabuena, Enakshi Saha

We develop a new method for simultaneously selecting fixed and random effects in a multilevel functional regression model. The proposed method is motivated by accelerometer-derived…

stat.ME2025

ROC Analysis with Covariate Adjustment Using Neural Network Models: Evaluating the Role of Age in the Physical Activity-Mortality Association

Ziad Akram Ali Hammouri, Yating Zou, Rahul Ghosal +2

The receiver operating characteristic (ROC) curve and its summary measure, the Area Under the Curve (AUC), are well-established tools for evaluating the efficacy of biomarkers in b…

stat.ME2025

Variable Selection in Functional Linear Cox Model

Yuanzhen Yue, Stella Self, Yichao Wu +2

Modern biomedical studies frequently collect complex, high-dimensional physiological signals using wearables and sensors along with time-to-event outcomes, making efficient variabl…

stat.ME2025

Screening for Diabetes Mellitus in the U.S. Population Using Neural Network Models and Complex Survey Designs

Marcos Matabuena, Juan C. Vidal, Rahul Ghosal +1

Complex survey designs are commonly employed in many medical cohorts. In such scenarios, developing case-specific predictive risk score models that reflect the unique characteristi…

stat.ME2024

Functional Time Transformation Model with Applications to Digital Health

Rahul Ghosal, Marcos Matabuena, Sujit K. Ghosh

The advent of wearable and sensor technologies now leads to functional predictors which are intrinsically infinite dimensional. While the existing approaches for functional data an…

stat.ME2024

Conformal uncertainty quantification using kernel depth measures in separable Hilbert spaces

Marcos Matabuena, Rahul Ghosal, Pavlo Mozharovskyi +2

Depth measures have gained popularity in the statistical literature for defining level sets in complex data structures like multivariate data, functional data, and graphs. Despite…