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MISSING DATA HANDLING METHODS IN MEDICAL DEVICE CLINICAL TRIALS

机译:医疗器械临床试验中的数据丢失处理方法

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One of the major problems in the analysis of clinical trials is missing data caused by patients dropping out before study completion. The issue of missing data can result in biased treatment comparisons and can impact the interpretation of study results. Since the missing data mechanism is unknown and unverifiable in most situations, regulatory agencies often request various sensitivity analyses for handling missing data to evaluate the robustness of study results. This article discusses methods used to handle missing data in medical device clinical trials, focusing on tipping-point analysis as a general approach for the assessment of missing data impact. Tipping points are outcomes that result in a change of study conclusion. Such outcomes can be conveyed to clinical reviewers to determine if they are implausibly unfavorable. The analysis aids clinical reviewers in making judgment regarding treatment effect in the study. Three examples with a reasonably representative range of missing data rate are included to illustrate the methods referred.
机译:临床试验分析中的主要问题之一是由于患者在研究完成前辍学而导致数据丢失。数据丢失的问题可能导致治疗比较出现偏差,并可能影响研究结果的解释。由于丢失数据的机制在大多数情况下都是未知且无法验证的,因此监管机构经常要求进行各种敏感性分析以处理丢失数据,以评估研究结果的稳健性。本文讨论了在医疗设备临床试验中用于处理丢失数据的方法,重点是临界点分析,作为评估丢失数据影响的通用方法。临界点是导致研究结论发生变化的结果。这样的结果可以传达给临床评价者,以确定它们是否令人难以置信的不利。该分析有助于临床审阅者对研究中的治疗效果做出判断。包括三个示例,这些示例具有合理的代表性数据丢失率范围,以说明所提及的方法。

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