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首页> 外文期刊>Statistics in Biosciences >Clustering Functional Data with Application to Electronic Medication Adherence Monitoring in HIV Prevention Trials
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Clustering Functional Data with Application to Electronic Medication Adherence Monitoring in HIV Prevention Trials

机译:聚类功能数据具有应用于艾滋病预防试验中的电子药物依从性监测

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摘要

Maintaining high medication adherence is essential for achieving desired efficacy in clinical trials, especially prevention trials. However, adherence is traditionally measured by self-reports that are subject to reporting biases and measurement error. Recently, electronic medication dispenser devices have been adopted in several HIV pre-exposure prophylaxis prevention studies. These devices are capable of collecting objective, frequent, and timely drug adherence data. The device opening signals generated by such devices are often represented as regularly or irregularly spaced discrete functional data, which are challenging for statistical analysis. In this paper, we focus on clustering the adherence monitoring data from such devices. We first pre-process the raw discrete functional data into smoothed functional data. Parametric mixture models with change-points, as well as several non-parametric and semi-parametric functional clustering approaches, are adapted and applied to the smoothed adherencedata. Simulation studies were conducted to evaluate finite sample performances, on the choices of tuning parameters in the pre-processing step as well as the relative performance of different clustering algorithms. We applied these methods to the HIV Prevention Trials Network 069 study for identifying subgroups with distinct adherence behavior over the study period.
机译:保持高药物依从性对于在临床试验中实现所需的疗效至关重要,特别是预防试验至关重要。但是,传统上通过报告偏差和测量误差的自我报告来衡量依从性。最近,在几种HIV预曝光预防研究中采用了电子药物药物分配器装置。这些设备能够收集目标,频繁和及时的药物依从性数据。由这种设备产生的器件打开信号通常表示为规则或不规则间隔的离散功能数据,这是对统计分析的具有挑战性。在本文中,我们专注于从这些设备中聚类遵守监视数据。我们首先将原始的离散功能数据预先处理为平滑的功能数据。具有变化点的参数混合模型以及几种非参数和半导体功能聚类方法进行调整并施加到平滑的adherencationAta上。进行仿真研究以评估有限样本性能,在预处理步骤中调整参数的选择以及不同聚类算法的相对性能。我们将这些方法应用于HIV预防试验网络069,用于在研究期间识别具有不同粘附行为的子组。

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