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Distributional semantics in the real world: building word vector representations from a truth-theoretic model

机译:现实世界中的分布语义:从真相 - 理论模型构建字矢量表示

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Distributional semantics models (DSMs) are known to produce excellent representations of word meaning, which correlate with a range of behavioural data. As lexical representations, they have been said to be fundamentally different from truth-theoretic models of semantics, where meaning is defined as a correspondence relation to the world. There are two main aspects to this difference: a) DSMs are built over corpus data which may or may not reflect 'what is in the world'; b) they are built from word co-occurrences, that is, from lexical types rather than entities and sets. In this paper, we inspect the properties of a distributional model built over a set-theoretic approximation of 'the real world'. To achieve this, we take the annotation a large database of images marked with objects, attributes and relations, convert the data into a representation akin to first-order logic and build several distributional models using various combinations of features. We evaluate those models over both relatedness and similarity datasets, demonstrating their effectiveness in standard evaluations. This allows us to conclude that, despite prior claims, truth-theoretic models are good candidates for building graded lexical representations of meaning.
机译:已知分布语义模型(DSM)以产生单词含义的优异表示,其与一系列行为数据相关。作为词汇表现,他们据说他们从根本上不同于语法的语义模型,其中含义被定义为与世界的对应关系。这一差异有两个主要方面:a)DSMS由Corpus数据构建,或者可能或可能不会反映“世界上的东西”; b)它们是由词同源的构建,即,来自词汇类型而不是实体和集合。在本文中,我们检查了在“真实世界”的设定理论近似范围内建造的分布模型的属性。为实现这一目标,我们将注释是标有对象,属性和关系的大型图像数据库,将数据转换为类似于一阶逻辑的表示,并使用各种特征组合构建多个分布模型。我们在任何相关性和相似性数据集中评估这些模型,证明了它们在标准评估中的有效性。这使我们得出结论,尽管事先索赔,但是对于建立含义的分级词汇表现的良好候选者是良好的候选者。

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