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Concrete Sentence Spaces for Compositional Distributional Models of Meaning

机译:意义成分分布模型的具体句子空间

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Coecke, Sadrzadeh, and Clark [3] developed a compositional model of meaning for distributional semantics, in which each word in a sentence has a meaning vector and the distributional meaning of the sentence is a function of the tensor products of the word vectors. Abstractly speaking, this function is the morphism corresponding to the grammatical structure of the sentence in the category of finite dimensional vector spaces. In this paper, we provide a concrete method for implementing this linear meaning map, by constructing a corpus-based vector space for the type of sentence. Our construction method is based on structured vector spaces whereby meaning vectors of all sentences, regardless of their grammatical structure, live in the same vector space. Our proposed sentence space is the tensor product of two noun spaces, in which the basis vectors are pairs of words each augmented with a grammatical role. This enables us to compare meanings of sentences by simply taking the inner product of their vectors.
机译:Coecke,Sadrzadeh和Clark [3]开发了一种分布语义意义的组成模型,其中句子中的每个单词都有一个意义向量,而句子的分布意义是单词向量的张量积的函数。抽象地讲,该函数是与有限维向量空间范畴中的句子的语法结构相对应的词素。在本文中,我们通过为句子的类型构建基于语料库的向量空间,提供了一种实现此线性含义图的具体方法。我们的构造方法基于结构化的向量空间,由此所有句子的意义向量(无论其语法结构如何)都生活在相同的向量空间中。我们提出的句子空间是两个名词空间的张量积,其中基础向量是成对的单词,每个单词对都具有语法作用。这使我们能够通过简单地获取其向量的内积来比较句子的含义。

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