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Lack of lit tests based on sums of ordered residuals for linear models

机译:缺少基于线性模型的有序残差之和的点亮测试

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摘要

Christensen & Lin () suggested two lack of fit tests to assess the adequacy of a linear model based on partial sums of residuals. In particular, their tests evaluated the adequacy of the mean function. Their tests relied on asymptotic results without requiring small sample normality. We propose four new tests, find their asymptotic distributions, and propose an alternative simulation method for defining tests that is remarkably robust to the distribution of the errors. To assess their strengths and weaknesses, the Christensen & Lin () tests and the new tests were compared in different scenarios by simulation. In particular, the new tests include two based on partial sums of absolute residuals. Previous partial sums of residuals tests have used signed residuals whose values when summed can cancel each other out. The use of absolute residuals requires small sample normality, but allows detection of lack of fit that was previously not possible with partial sums of residuals.
机译:Christensen&Lin()提出了两个缺乏拟合检验的方法,它们无法根据残差的部分和来评估线性模型的适当性。特别是,他们的测试评估了均值函数的适当性。他们的测试依靠渐近结果,而无需很小的样本正态性。我们提出了四个新的测试,找到了它们的渐近分布,并提出了一种用于定义测试的替代仿真方法,该方法对误差的分布非常强大。为了评估它们的优缺点,通过模拟比较了Christensen&Lin()测试和新测试在不同情况下的性能。特别是,新测试包括两个基于绝对残差的部分和的测试。先前的残差部分和测试使用带符号的残差,其值求和时可以相互抵消。使用绝对残差需要较小的样本正态性,但可以检测到以前没有部分残差总和无法拟合的情况。

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