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General relative error criterion and M-estimation

机译:一般相对误差准则和M估计

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Relative error rather than the error itself is of the main interest in many practical applications. Criteria based on minimizing the sum of absolute relative errors (MRE) and the sum of squared relative errors (RLS) were proposed in the different areas. Motivated by K. Chen et al.'s recent work [J. Amer. Statist. Assoc, 2010, 105:1104-1112] on the least absolute relative error (LARE) estimation for the accelerated failure time (AFT) model, in this paper, we establish the connection between relative error estimators and the M-estimation in the linear model. This connection allows us to deduce the asymptotic properties of many relative error estimators (e.g., LARE) by the well-developed M-estimation theories. On the other hand, the asymptotic properties of some important estimators (e.g., MRE and RLS) cannot be established directly. In this paper, we propose a general relative error criterion (GREC) for estimating the unknown parameter in the AFT model. Then we develop the approaches to deal with the asymptotic normalities for M-estimators with differentiable loss functions on R or R{0} in the linear model. The simulation studies are conducted to evaluate the performance of the proposed estimates for the different scenarios. Illustration with a real data example is also provided.
机译:在许多实际应用中,主要是关注相对误差而不是误差本身。提出了基于最小化绝对相对误差之和(MRE)和平方相对误差之和(RLS)的标准。受K. Chen等人最近的工作的启发[J.阿米尔。统计员。 [Assoc,2010,105:1104-1112],针对加速故障时间(AFT)模型的最小绝对相对误差(LARE)估计,在本文中,我们建立了线性模型中相对误差估计与M估计之间的联系模型。这种联系使我们能够通过完善的M估计理论推论许多相对误差估计器(例如LARE)的渐近性质。另一方面,某些重要估计量(例如MRE和RLS)的渐近性质无法直接建立。在本文中,我们提出了用于估计AFT模型中未知参数的通用相对误差准则(GREC)。然后,我们开发了处理线性模型中R或R {0}上具有微分损失函数的M估计的渐近正态性的方法。进行模拟研究以评估针对不同场景的建议估计的性能。还提供了带有实际数据示例的图示。

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