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Data Integration Innovations to Enhance Analytic Utility of Clinical Trial Content to Inform Health Disparities Research

机译:数据集成创新可增强临床试验内容的分析效用以告知健康差异研究

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摘要

Project Data Sphere (PDS) is a research platform that provides the research community with broad access to both de-identified patient-level data from oncology clinical trials and related analytic tools. While these data are rich in measures that characterize the clinical trials under study, data providers are required to de-identify patient-level data by removing key demographic data. To address these analytic constraints, the data profiles in selected PDS patient-level cancer phase III clinical datasets have been augmented by linking the social, economic, and health-related characteristics of like cancer survivors from nationally representative health and health care-related survey data. Using statistical linkage and model-based techniques, patient-level records in selected PDS datasets have been linked to those of comparable cancer survivors, and are thereby augmented with survey content on social, economic, and health-related characteristics. These new analytically enhanced PDS data resources enable more targeted analyses designed to examine questions such as how disparities in cancer patients' access to health care and income impact patient outcomes in specific phase III clinical trials, and what variations in patient outcomes are associated with specific demographic, socioeconomic, and health-related factors. This study provides an overview of the methodologies used to connect patient-level clinical trial data with nationally representative health-related data on cancer survivors from the national Medical Expenditure Panel Survey (MEPS). MEPS was designed to provide national population-based health care use, expenditure, and source of payment estimates in addition to measures of health status, demographic characteristics, employment, health insurance coverage, and access to health care. Study findings include probabilistic assessments of the representation of the patients in the respective clinical trials relative to the characteristics of cancer survivors in the general population. The study also demonstrates how the augmented datasets serve to enable researchers to assess the impact of socioeconomic factors added through data integration on cancer survival and related outcomes of interest.
机译:Project Data Sphere(PDS)是一个研究平台,可为研究团体提供从肿瘤临床试验和相关分析工具中获取身份不明的患者水平数据的广泛途径。尽管这些数据采用了丰富的方法来表征正在研究的临床试验,但要求数据提供者通过删除关键的人口统计数据来取消识别患者水平的数据。为了解决这些分析限制,通过将全国代表性的健康和保健相关调查数据中的类似癌症幸存者的社会,经济和健康相关特征联系起来,从而增强了所选PDS患者级别的癌症III期临床数据集中的数据资料。使用统计链接和基于模型的技术,已将选定的PDS数据集中的患者水平记录与可比较的癌症幸存者相关联,从而增加了有关社会,经济和健康相关特征的调查内容。这些新的经过分析增强的PDS数据资源可实现更具针对性的分析,旨在分析以下问题,例如癌症患者获得医疗服务的差异和收入如何在特定的III期临床试验中影响患者的预后,以及患者预后的哪些变化与特定的人群有关,社会经济和健康相关因素。这项研究概述了将患者水平的临床试验数据与来自国家医疗支出小组调查(MEPS)的癌症幸存者的全国代表性健康相关数据联系起来的方法。 MEPS旨在提供基于国家人口的医疗保健使用,支出和付款来源估算,以及健康状况,人口统计学特征,就业,健康保险覆盖范围和获得医疗保健的措施。研究结果包括相对于普通人群中癌症幸存者的特征对患者在相应临床试验中的代表性进行概率评估。这项研究还证明了增强的数据集如何使研究人员能够评估通过数据集成增加的社会经济因素对癌症存活率和相关结果的影响。

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