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Masking identification of discrete choice models under simulation methods

机译:仿真方法下掩盖离散选择模型的辨识

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摘要

We present examples based on actual and synthetic datasets to illustrate how simulation methods can mask identification problems in the estimation of discrete choice models such as mixed logit. Simulation methods approximate an integral (without a closed form) by taking draws from the underlying distribution of the random variable of integration. Our examples reveal how a low number of draws can generate estimates that appear identified, but in fact, are either not theoretically identified by the model or not empirically identified by the data. For the particular case of maximum simulated likelihood estimation, we investigate the underlying source of the problem by focusing on the shape of the simulated log-likelihood function under different conditions.
机译:我们提供基于实际和综合数据集的示例,以说明仿真方法如何在估计离散选择模型(例如混合logit)时掩盖识别问题。通过从积分的随机变量的基础分布中抽取结果,模拟方法可以近似积分(无闭合形式)。我们的示例揭示了少量抽奖如何生成看起来似乎已确定的估计,但实际上要么不是模型上理论上确定的,要么不是数据上凭经验确定的。对于最大模拟似然估计的特定情况,我们通过关注不同条件下模拟对数似然函数的形状来研究问题的根本原因。

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