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首页> 外文期刊>International Journal of Applied and Basic Medical Research >Use of Bayesian statistics in drug development: Advantages and challenges
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Use of Bayesian statistics in drug development: Advantages and challenges

机译:在药物开发中使用贝叶斯统计:优势和挑战

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Mainly, two statistical methodologies are applicable to the design and analysis of clinical trials: frequentist and Bayesian. Most traditional clinical trial designs are based on frequentist statistics. In frequentist statistics prior information is utilized formally only in the design of a clinical trial but not in the analysis of the data. On the other hand, Bayesian statistics provide a formal mathematical method for combining prior information with current information at the design stage, during the conduct of the trial, and at the analysis stage. It is easier to implement adaptive trial designs using Bayesian methods than frequentist methods. The Bayesian approach can also be applied for post-marketing surveillance purposes and in meta-analysis. The basic tenets of good trial design are same for both Bayesian and frequentist trials. It has been recommended that the type of analysis to be used (Bayesian or frequentist) should be chosen beforehand. Switching to an analysis method that produces a more favorable outcome after observing the data is not recommended.Keywords: Adaptive trial, Bayesian statistics, drug development
机译:主要有两种统计方法可用于临床试验的设计和分析:常客和贝叶斯。大多数传统的临床试验设计都是基于常客统计学。在常客统计中,先验信息仅在临床试验的设计中正式使用,而在数据分析中则没有。另一方面,贝叶斯统计提供了一种正式的数学方法,可以在设计阶段,试验进行期间和分析阶段将先验信息与当前信息结合起来。使用贝叶斯方法比采用频繁性方法更容易实施自适应性试验设计。贝叶斯方法也可用于上市后监督目的和荟萃分析。良好的审判设计的基本原则对于贝叶斯审判和常客审判都是相同的。建议应预先选择要使用的分析类型(贝叶斯分析或频繁分析)。不建议改用观察数据后产生更好结果的分析方法。关键字:适应性试验,贝叶斯统计,药物开发

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