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Why does PairDiff work? - A Mathematical Analysis of Bilinear Relational Compositional Operators for Analogy Detection

机译:PairDiff为什么起作用? -用于类比检测的双线性关系合成算子的数学分析

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Representing the semantic relations that exist between two given words (or entities) is an important first step in a wide-range of NLP applications such as analogical reasoning, knowledge base completion and relational information retrieval. A simple, yet surprisingly accurate method for representing a relation between two words is to compute the vector offset (PairDiff) between their corresponding word embeddings. Despite the empirical success, it remains unclear as to whether PairDiff is the best operator for obtaining a relational representation from word embeddings. We conduct a theoretical analysis of generalised bilinear operators that can be used to measure the l_2 relational distance between two word-pairs. We show that, if the word embeddings are standardised and uncorrelated, such an operator will be independent of bilinear terms, and can be simplified to a linear form, where PairDiff is a special case. For numerous word embedding types, we empirically verify the uncorrelation assumption, demonstrating the general applicability of our theoretical result. Moreover, we experimentally discover PairDiff from the bilinear relational compositional operator on several benchmark analogy datasets.
机译:表示两个给定单词(或实体)之间存在的语义关系是广泛的NLP应用程序(例如类比推理,知识库完成和关系信息检索)中重要的第一步。表示两个单词之间的关系的一种简单而又出乎意料的准确方法是计算两个单词对应的词嵌入之间的向量偏移量(PairDiff)。尽管取得了经验上的成功,但对于PairDiff是否是从单词嵌入中获得关系表示的最佳运算符,仍不清楚。我们对广义双线性算子进行了理论分析,该算子可用于测量两个词对之间的l_2关系距离。我们证明,如果词嵌入是标准化的且不相关的,则此类运算符将独立于双线性项,并且可以简化为线性形式,其中PairDiff是特例。对于许多词嵌入类型,我们凭经验验证了不相关的假设,证明了我们理论结果的普遍适用性。此外,我们在几个基准类比数据集上从双线性关系组合算子实验性地发现了PairDiff。

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