A selection modelling approach to analysing missing data of liver Cirrhosis patients

D. C. Nath, R. Vishwakarma, A. Bhattacharjee
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引用次数: 5

Abstract

Abstract Methods for dealing with missing data in clinical trials have received increased attention from the regulators and practitioners in the pharmaceutical industry over the last few years. Consideration of missing data in a study is important as they can lead to substantial biases and have an impact on overall statistical power. This problem may be caused by patients dropping before completion of the study. The new guidelines of the International Conference on Harmonization place great emphasis on the importance of carefully choosing primary analysis methods based on clearly formulated assumptions regarding the missingness mechanism. The reason for dropout or withdrawal would be either related to the trial (e.g. adverse event, death, unpleasant study procedures, lack of improvement) or unrelated to the trial (e.g. moving away, unrelated disease). We applied selection models on liver cirrhosis patient data to analyse the treatment efficiency comparing the surgery of liver cirrhosis patients with consenting for participation HFLPC (Human Fatal Liver Progenitor Cells) infusion with surgery alone. It was found that comparison between treatment conditions when missing values are ignored potentially leads to biased conclusions.
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肝硬化患者缺失数据分析的选择建模方法
在过去的几年里,处理临床试验中缺失数据的方法受到了制药行业监管机构和从业人员越来越多的关注。考虑研究中缺失的数据是很重要的,因为它们可能导致实质性的偏差,并对整体统计能力产生影响。这个问题可能是由于患者在研究完成前就开始服药。国际协调会议的新准则非常强调,必须根据关于失踪机制的明确制定的假设,认真选择初步分析方法。退出或退出的原因要么与试验有关(如不良事件、死亡、不愉快的研究程序、缺乏改善),要么与试验无关(如离开、不相关的疾病)。我们应用肝硬化患者数据的选择模型,比较同意参与HFLPC输注的肝硬化患者的手术与单纯手术的治疗效果。研究发现,当忽略缺失值时,治疗条件之间的比较可能导致有偏见的结论。
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