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生活质量数据的分析、解读与呈现。

The analysis, interpretation, and presentation of quality of life data.

作者信息

Stephens Richard

机构信息

Cancer Division, Medical Research Council Clinical Trials Unit, London, UK.

出版信息

J Biopharm Stat. 2004 Feb;14(1):53-71. doi: 10.1081/BIP-120028506.

Abstract

All too often in clinical trials the assessment of quality of life is seen as a bolt-on study. Consequently insufficient consideration is often given to its design, collection, analysis and presentation, and its impact on the trial results and on clinical practice is minimal. In many trials quality of life is a key endpoint, and it is vital that quality of life expertise is involved as soon as possible in the design. Setting a priori quality of life hypotheses will focus the decisions regarding which questionnaire to use, when to administer it, the sample size required, and the primary analyses. Nevertheless quality of life data are complex, and require much skill in determining how to deal with multi-dimensional and longitudinal data, much of which is often missing. There are no agreed standard ways of analysing and presenting quality of life data, but there are guidelines, which if followed, will add transparency to the way results have been calculated. Understanding the impact of treatments on their quality of life is vital to patients, and it is up to us, as statisticians and trialists, to present the data as clearly as we can.

摘要

在临床试验中,生活质量评估常常被视为一项附加研究。因此,人们常常对其设计、收集、分析和呈现缺乏充分考虑,它对试验结果和临床实践的影响也微乎其微。在许多试验中,生活质量是一个关键终点,在设计阶段尽早引入生活质量方面的专业知识至关重要。设定生活质量的先验假设将有助于在选择使用何种问卷、何时进行问卷调查、所需样本量以及主要分析等方面做出决策。然而,生活质量数据复杂,在确定如何处理多维和纵向数据方面需要很多技巧,其中很多数据往往缺失。目前尚无公认的分析和呈现生活质量数据的标准方法,但有一些指南,遵循这些指南将使结果计算方式更具透明度。了解治疗对患者生活质量的影响对患者至关重要,而作为统计学家和试验人员,我们有责任尽可能清晰地呈现数据。

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