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Using numerical methods to find the least favorable configuration when comparing k test treatments with both positive and negative controls

机译:比较阳性和阴性对照的k种治疗方法时,使用数值方法找到最不利的配置

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Traditionally, comparisons to control problems dealt with comparing k test treatments to either a positive control or a negative control. However, in certain situations, it is necessary to include both types of control in the study. When comparing k test treatments to both positive and negative controls, the null hypothesis is composite and finding the least favorable configuration (LFC) under the null analytically is difficult. We propose a numerical solution for this problem. Using our method, we show that the LFC under the null is when half of the test treatment means are equal to the mean of the negative control and the other half of the test treatment means are equal to the mean of the positive control. We calculate critical points at the LFC for k = 2-6. This work was motivated by real life problems that we discuss and illustrate with an example.
机译:传统上,对照问题的比较是将k种测试方法与阳性对照或阴性对照进行比较。但是,在某些情况下,有必要在研究中包括两种类型的对照。当将k个测试处理与阳性和阴性对照进行比较时,无效假设是综合的,因此很难在无效条件下找到最不利的构型(LFC)。我们为这个问题提出了一个数值解决方案。使用我们的方法,我们显示零值下的LFC是当一半的测试治疗手段等于阴性对照的平均值而另一半的测试治疗手段等于阳性对照的平均值时。我们在LFC上计算k = 2-6的临界点。这项工作是由我们通过示例讨论和说明的现实生活中的问题所激发的。

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