Variable selection in the presence of both missing covariates and outcomes is an important statistical research topic. Parametric regression are susceptible to misspecification, and as a result are sub-optimal for variable selection. Flexible machine learning methods mitigate the reliance on the parametric assumptions, but do not provide as naturally defined variable importance measure as the covariate effect native to parametric models. We investigate a general variable selection approach when both the covariates and outcomes can be missing at random and have general missing data patterns. This approach exploits the flexibility of machine learning models and bootstrap imputation, which is amenable to nonparametric methods in which the covariate effects are not directly available. We conduct expansive simulations investigating the practical operating characteristics of the proposed variable selection approach, when combined with four tree-based machine learning methods, extreme gradient boosting, random forests, Bayesian additive regression trees, and conditional random forests, and two commonly used parametric methods, lasso and backward stepwise selection. Numeric results suggest that, extreme gradient boosting and Bayesian additive regression trees have the overall best variable selection performance with respect to the score and Type I error, while the lasso and backward stepwise selection have subpar performance across various settings. There is no significant difference in the variable selection performance due to imputation methods. We further demonstrate the methods via a case study of risk factors for 3-year incidence of metabolic syndrome with data from the Study of Women's Health Across the Nation.
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http://dx.doi.org/10.1177/09622802211046385 | DOI Listing |
EJNMMI Res
January 2025
Department of Nuclear Medicine, University Hospital of Cologne, Kerpener Straße 62, 50937, Cologne, Germany.
Background: In clinical practice, several radiopharmaceuticals are used for PSMA-PET imaging, each with distinct biodistribution patterns. This may impact treatment decisions and outcomes, as eligibility for PSMA-directed radioligand therapy is usually assessed by comparing tumoral uptake to normal liver uptake as a reference. In this study, we aimed to compare tracer uptake intraindividually in various reference regions including liver, parotid gland and spleen as well as the respective tumor-to-background ratios (TBR) of different F-labeled PSMA ligands to today's standard radiopharmaceutical Ga-PSMA-11 in a series of patients with biochemical recurrence of prostate cancer who underwent a dual PSMA-PET examination as part of an individualized diagnostic approach.
View Article and Find Full Text PDFJ Man Manip Ther
January 2025
Department of Physical Therapy, Baylor University, Waco, TX, USA.
Objective: To investigate physical therapist adherence to the Academy of Orthopaedic Physical Therapy's (AOPT) clinical practice guidelines (CPGs) for the management of neck and low back pain (LBP) and to compare adherence among varying clinical specializations.
Design: Electronic cross-sectional survey.
Methods: The survey was sent to 17,348 AOPT members and 7,000 American Academy of Orthopaedic Manual Physical Therapists (AAOMPT) members.
J Org Chem
January 2025
Instituto de Química Rosario (CONICET), Facultad de Ciencias Bioquímicas y Farmacéuticas, Universidad Nacional de Rosario, Suipacha 531, Rosario 2000, Argentina.
The Diels-Alder reactions of boron-substituted furans with -phenylmaleimide have been investigated experimentally and computationally. In contrast to previous results with maleic anhydride, in this case potassium 3-furanyltrifluoroborate and the analogue at C-2 reacted efficiently, giving the [4 + 2] cycloadducts at room temperature with high yields. The diastereoisomer was obtained exclusively for the latter, while its C-3 counterpart showed variable / diastereoselectivities.
View Article and Find Full Text PDFObjectives: To compare lag-screw slide and revision surgery rate between two generations of the Stryker Gamma cephalomedullary nail (Stryker, Kalamazoo, MI).
Methods: Design: Retrospective chart review.
Setting: Single academic, Level-1 Trauma Center.
Healthcare (Basel)
January 2025
Neuroimmunology Laboratory, School of Medicine, Western Sydney University, Campbelltown, NSW 2560, Australia.
Background/objectives: Growing evidence suggests that the gut-brain axis influences brain function, particularly the role of intestinal microbiota in modulating cognitive processes. Probiotics may alter brain function and behavior by modulating gut microbiota, with implications for neurodegenerative diseases like Alzheimer's disease (AD). The purpose of this review is to systematically review the current literature exploring the effects of probiotic supplementation on gut microbiota and cognitive function in AD and mild cognitive impairment (MCI).
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