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The Signed-rank estimator for nonlinear regression with responses missing at random

机译:非线性回归的带符号秩估计量,随机丢失响应

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This paper is concerned with the study of the signed-rank estimator of the regression coefficients under the assumption that some responses are missing at random in the regression model. Strong consistency and asymptotic normality of the proposed estimator are established under mild conditions. To demonstrate the performance of the signed-rank estimator, a simulation study is conducted under different settings of model error’s distributions, and shows that the proposed estimator is more efficient than the least squares estimator whenever the error distribution is heavy-tailed or contaminated. When the model error follows a normal distribution, the simulation experiment shows that the signed-rank estimator is more efficient than its least squares counterpart whenever a large proportion of the responses are missing.
机译:本文假设在回归模型中随机缺少一些响应的假设下,研究回归系数的符号秩估计器。在温和条件下,建立了估计量的强一致性和渐近正态性。为了证明符号秩估计器的性能,在模型误差分布的不同设置下进行了仿真研究,结果表明,当误差分布被重尾或污染时,建议的估计器比最小二乘估计器更有效。当模型误差遵循正态分布时,仿真实验表明,只要缺少大部分响应,带符号秩估计器的效率就会比最小二乘方估计器更高。

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