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Rating Distributions and Bayesian Inference: Enhancing Cognitive Models of Spatial Language Use

机译:等级分布和贝叶斯推断:增强空间语言使用的认知模型

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We present two methods that improve the assessment of cognitive models. The first method is applicable to models computing average acceptability ratings. For these models, we propose an extension that simulates a full rating distribution (instead of average ratings) and allows generating individual ratings. Our second method enables Bayesian inference for models generating individual data. To this end, we propose to use the cross-match test (Rosenbaum, 2005) as a likelihood function. We exem-plarily present both methods using cognitive models from the domain of spatial language use. For spatial language use, determining linguistic acceptability judgments of a spatial preposition for a depicted spatial relation is assumed to be a crucial process (Logan and Sadler, 1996). Existing models of this process compute an average acceptability rating. We extend the models and - based on existing data - show that the extended models allow extracting more information from the empirical data and yield more readily interpretable information about model successes and failures. Applying Bayesian inference, we find that model performance relies less on mechanisms of capturing geometrical aspects than on mapping the captured geometry to a rating interval.
机译:我们提出了两种方法来改善认知模型的评估。第一种方法适用于计算平均可接受等级的模型。对于这些模型,我们提出了一种扩展,它可以模拟完整的评分分布(而不是平均评分),并允许生成单独的评分。我们的第二种方法使贝叶斯推理可用于生成单个数据的模型。为此,我们建议使用交叉匹配检验(Rosenbaum,2005)作为似然函数。我们示例性地介绍了使用来自空间语言使用领域的认知模型的两种方法。对于空间语言的使用,确定所描述的空间关系的空间介词的语言可接受性判断被认为是至关重要的过程(Logan和Sadler,1996)。该过程的现有模型计算平均可接受等级。我们对模型进行了扩展,并且-基于现有数据-表明扩展的模型允许从经验数据中提取更多信息,并产生关于模型成功和失败的更容易解释的信息。应用贝叶斯推断,我们发现模型性能较少依赖于捕获几何方面的机制,而是依赖于将捕获的几何映射到评级区间。

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