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Sampling of alternatives in Logit Mixture models

机译:Logit混合物模型中的替代品抽样

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摘要

Employing a strategy of sampling of alternatives is necessary for various transportation models that have to deal with large choice-sets. In this article, we propose a method to obtain consistent, asymptotically normal and relatively efficient estimators for Logit Mixture models while sampling alternatives. Our method is an extension of previous results for Logit and MEV models. We show that the practical application of the proposed method for Logit Mixture can result in a Naive approach, in which the kernel is replaced by the usual sampling correction for Logit. We give theoretical support for previous applications of the Naive approach, showing not only that it yields consistent estimators, but also providing its asymptotic distribution for proper hypothesis testing. We illustrate the proposed method using Monte Carlo experimentation and real data. Results provide further evidence that the Naive approach is suitable and practical. The article concludes by summarizing the findings of this research, assessing their potential impact, and suggesting extensions of the research in this area.
机译:对于必须处理大量选择集的各种运输模型,必须采用替代方案的抽样策略。在本文中,我们提出了一种在采样替代品时为Logit混合物模型获得一致,渐近正态且相对有效的估计量的方法。我们的方法是对Logit和MEV模型的先前结果的扩展。我们表明,所提出的方法用于Logit混合物的实际应用可以产生一种朴素的方法,其中用Logit的常规采样校正代替内核。我们为朴素方法的先前应用提供了理论上的支持,不仅显示了它得出一致的估计量,而且还提供了其渐近分布以进行适当的假设检验。我们使用蒙特卡罗实验和真实数据说明了所提出的方法。结果提供了进一步的证据,表明朴素的方法是合适和实用的。本文通过总结本研究的结果,评估其潜在影响并提出该领域研究的扩展来结束。

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