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Estimation of Choice-Based Models Using Sales Data from a Single Firm

机译:使用单个公司的销售数据估算基于选择的模型

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We develop a parameter estimation routine for multinomial logit discrete choice models in which one alternative is completely censored, i.e., when one alternative is never observed to have been chosen in the estimation data set. Our method is based on decomposing the log-likelihood function into marginal and conditional components. Our method is computationally efficient, provides consistent parameter estimates, and can easily incorporate price and other product attributes. Simulations based on industry hotel data demonstrate the superior computational performance of our method over alternative estimation methods that are capable of estimating price effects. Because most existing revenue management choice-based optimization algorithms do not include price as a decision variable, our estimation procedure provides the inputs needed for more advanced product portfolio availability and price optimization models.
机译:我们为多项式logit离散选择模型开发了一种参数估计例程,在该模型中,对一个替代方案进行了完全审查,即在估计数据集中从未观察到一个替代方案时。我们的方法基于将对数似然函数分解为边际和条件成分。我们的方法计算效率高,提供一致的参数估计值,并且可以轻松合并价格和其他产品属性。基于行业酒店数据的仿真表明,我们的方法具有比能够估算价格影响的替代估算方法优越的计算性能。由于大多数现有的基于收益管理选择的优化算法都没有将价格作为决策变量,因此我们的估算程序会提供更高级的产品组合可用性和价格优化模型所需的输入。

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