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BabelNet: The automatic construction, evaluation and application of a wide-coverage multilingual semantic network

机译:BabelNet:广泛覆盖的多语言语义网络的自动构建,评估和应用

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摘要

We present an automatic approach to the construction of BabelNet, a very large, wide-coverage multilingual semantic network. Key to our approach is the integration of lexicographic and encyclopedic knowledge from WordNet and Wikipedia. In addition, Machine Translation is applied to enrich the resource with lexical information for all languages. We first conduct in vitro experiments on new and existing gold-standard datasets to show the high quality and coverage of BabelNet. We then show that our lexical resource can be used successfully to perform both monolingual and cross-lingual Word Sense Disambiguation: thanks to its wide lexical coverage and novel semantic relations, we are able to achieve state-of the-art results on three different SemEval evaluation tasks.
机译:我们提出了构建BabelNet的自动方法,BabelNet是一个非常大的,覆盖面广的多语言语义网络。我们方法的关键是整合WordNet和Wikipedia的词典学和百科知识。此外,还应用了机器翻译来丰富所有语言的词汇信息。我们首先对新的和现有的金标准数据集进行体外实验,以显示BabelNet的高质量和覆盖范围。然后,我们证明我们的词汇资源可以成功地用于执行单语言和跨语言的词义歧义消除:由于其广泛的词汇范围和新颖的语义关系,我们能够在三种不同的SemEval上获得最新的结果评估任务。

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