Modeling HIV Subjects' Electronic Monitoring Device Data
Project Number1R01AI057043-01A1
Contact PI/Project LeaderKNAFL, GEORGE J
Awardee OrganizationYALE UNIVERSITY
Description
Abstract Text
DESCRIPTION (provided by applicant): Adherence to HIV medications is especially important for preventing partial suppression of viral replication with its enhanced risk of drug resistant HIV and is increasingly being measured in clinical trials with electronic monitoring devices (EMDs). EMD data are rich in longitudinal information often not used to their maximum potential. Summary measures are most commonly used, but do not provide sufficient detail for describing complex medication-taking patterns. We recently developed alternate methods for modeling EMD data at both the individual- and multiple-subject levels providing new insights into adherence patterns and evaluated these methods using MEMS cap data from a clinical trial testing the effectiveness of a nursing intervention for improving adherence to HIV medications. These methods utilize adaptive Poisson regression modeling of grouped EMD data with likelihood cross-validation for model evaluation and rule-based heuristic search through parametric models generating a smooth nonparametric regression fit. We now propose to develop original statistical methods extending adaptive Poisson regression for the purpose of improving its usefulness to HIV researchers and clinicians by addressing the following specific aims: 1) Identify subperiods within the EMD observation period over which a subject or group of subjects exhibits distinctly different adherence patterns. 2) Identify the dependence on time of variability in adherence for a subject or group of subjects. 3) Identify classes of subjects with distinctly different adherence across those classes and similar adherence within those classes for evaluation of possible differential effects of an intervention across those classes as well as the impact of such adherence classes on clinical outcomes. To accomplish these aims, we will develop algorithms for adaptively determining subperiods of distinctly different adherence patterns and for relating these changes to known changes in subjects' treatment and experience; for incorporating changes in variability in adherence using nonparametric quasi-likelihood methods; and for adaptively determining I parsimonious classifications of subjects for predicting change in adherence and its effect on clinical outcomes and for assessing how much of such change can be attributed to specific known factors especially intervention group membership. We will evaluate these methods, using available EMD data for HIV subjects, to assess their usefulness in the understanding, treatment, and prevention of HIV disease/AIDS.
Public Health Relevance Statement
Data not available.
NIH Spending Category
No NIH Spending Category available.
Project Terms
HIV infectionsbehavioral /social science research tagclinical researchdata collection methodology /evaluationhuman datamathematical modeloutcomes researchpatient monitoring devicestatistics /biometrytherapy compliance
National Institute of Allergy and Infectious Diseases
CFDA Code
856
DUNS Number
043207562
UEI
FL6GV84CKN57
Project Start Date
01-February-2004
Project End Date
31-January-2007
Budget Start Date
01-February-2004
Budget End Date
31-January-2005
Project Funding Information for 2004
Total Funding
$239,535
Direct Costs
$150,000
Indirect Costs
$89,535
Year
Funding IC
FY Total Cost by IC
2004
National Institute of Allergy and Infectious Diseases
$239,535
Year
Funding IC
FY Total Cost by IC
Sub Projects
No Sub Projects information available for 1R01AI057043-01A1
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