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A novel complete-case analysis to determine statistical significance between treatments in an intention-to-treat population of randomized clinical trials involving missing data

机译:一种新的完全案例分析,以确定治疗方法涉及缺失数据的随机临床试验群体之间的统计学意义

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The application of the principle of the intention-to-treat (ITT) to the analysis of clinical trials is challenged in the presence of missing outcome data. The consequences of stopping an assigned treatment in a withdrawn subject are unknown. It is difficult to make a single assumption about missing mechanisms for all clinical trials because there are complicated reactions in the human body to drugs due to the presence of complex biological networks, leading to data missing randomly or non-randomly. Currently there is no statistical method that can tell whether a difference between two treatments in the ITT population of a randomized clinical trial with missing data is significant at a pre-specified level. Making no assumptions about the missing mechanisms, we propose a generalized complete-case (GCC) analysis based on the data of completers. An evaluation of the impact of missing data on the ITT analysis reveals that a statistically significant GCC result implies a significant treatment effect in the ITT population at a pre-specified significance level unless, relative to the comparator, the test drug is poisonous to the non-completers as documented in their medical records. Applications of the GCC analysis are illustrated using literature data, and its properties and limits are discussed.
机译:在缺失的结果数据存在下,在缺失的临床试验分析中挑战临床试验的分析原则。在撤回的主题中停止分配治疗的后果是未知的。对于所有临床试验的缺失机制,难以对所有临床试验进行一次假设,因为由于存在复杂的生物网络,人体对药物的复杂反应,导致随机或无随机缺失的数据。目前,没有统计方法可以判断在预先指定水平的情况下,随机临床试验的ITT群体中的两种治疗之间的差异是否显着。没有关于缺失机制的假设,我们提出了一种基于完整器数据的全面完全案例(GCC)分析。对缺失数据对ITT分析的影响的评估表明,统计学上显着的GCC结果在预先规定的显着性水平下暗示ITT种群中的显着治疗效果,除非相对于比较器,测试药物对非 - 在他们的医疗记录中记录的比分计。使用文献数据来说明GCC分析的应用,并讨论其性质和限制。

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