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Using linear and log-linear model combinations for estimating probabilities of events

机译:使用线性和对数线性模型组合来估计事件的概率

摘要

A method for combining multiple probability of click models in an online advertising system into a combined predictive model, the method commencing by receiving a feature set slice (e.g. corresponding to demographics or taxonomies or clusters), and using the sliced data for training multiple slice-wise predictive models. The trained slice-wise predictive models are combined by overlaying a weighted distribution model over the trained slice-wise predictive models. The combined predictive model then is used in predicting the probability of a click given a query-advertisement pair in online advertising. The method can flexibly receive slice specifications, and can overlay any one or more of a variety of distribution models, such as a linear combination or a log-linear combination. Using an appropriate weighted distribution model, the combined predictive model reliably yields predictive estimates of occurrence of click events that are at least as good as the best predictive model in the slice-wise predictive model set.
机译:一种用于将在线广告系统中的多个点击概率模型组合为组合预测模型的方法,该方法通过接收特征集切片(例如,对应于人口统计数据或分类法或聚类)开始,并使用切片的数据来训练多个切片,明智的预测模型。通过将加权分布模型覆盖在训练有素的切片预测模型上来组合训练有素的切片预测模型。然后,将组合的预测模型用于在给定在线广告中的查询-广告对的情况下预测点击的可能性。该方法可以灵活地接收切片规格,并且可以覆盖各种分布模型中的任何一个或多个,例如线性组合或对数线性组合。使用适当的加权分布模型,组合的预测模型可以可靠地产生点击事件发生的预测估计,该估计估计至少与切片预测模型集中的最佳预测模型一样好。

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