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Updated: Jan 18, 2026

Basics of Multivariate Analysis in Neuroimaging Data
Published on: July 24, 2010
A Bayesian Multi-Factorial Design and Analysis for Estimating Combined Effects of Multiple Interventions in a
Keith S Goldfeld1, Corita R Grudzen2, Manish N Shah3
1Division of Biostatistics, Department of Population Health, New York University Grossman School of Medicine, New York, New York, USA.
Abstract:
Factorial study designs can be important for understanding the effectiveness of interventions when multiple interventions are under investigation. In this design setting, a unit of randomization can be assigned to any combination of interventions. The rationale for taking this kind of approach can vary depending on the specific questions targeted by the research. These questions, in turn, have implications for the way in which the analyses will be conducted. The goal in this paper is to describe how we developed a factorial design along with a Bayesian analytic plan for a large cluster-randomized trial-the Emergency Departments LEading the transformation of Alzheimer's and Dementia care (ED-LEAD) study-focused on improving care for persons living with dementia.
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