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- W2280338999 abstract "Vector representation is a common approach for expressing the meaning of a relational pattern. Most previous work obtained a vector of a relational pattern based on the distribution of its context words (e.g., arguments of the relational pattern), regarding the pattern as a single ‘word’. However, this approach suffers from the data sparseness problem, because relational patterns are productive, i.e., produced by combinations of words. To address this problem, we propose a novel method for computing the meaning of a relational pattern based on the semantic compositionality of constituent words. We extend the Skip-gram model (Mikolov et al., 2013) to handle semantic compositions of relational patterns using recursive neural networks. The experimental results show the superiority of the proposed method for modeling the meanings of relational patterns, and demonstrate the contribution of this work to the task of relation extraction." @default.
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- W2280338999 date "2016-04-01" @default.
- W2280338999 modified "2023-09-27" @default.
- W2280338999 title "Modeling semantic compositionality of relational patterns" @default.
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- W2280338999 doi "https://doi.org/10.1016/j.engappai.2016.01.027" @default.
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