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Semantic Parsing of Brief and Multi-Intent Natural Language Utterances

机译:语义解析简短和多意图自然语言话语

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Many military communication domains involve rapidly conveying situation awareness with few words. Converting natural language utterances to logical forms in these domains is challenging, as these utterances are brief and contain multiple intents. In this paper, we present a first effort toward building a weakly-supervised semantic parser to transform brief, multi-intent natural utterances into logical forms. Our findings suggest a new "projection and reduction" method that iter-atively performs projection from natural to canonical utterances followed by reduction of natural utterances is the most effective. We conduct extensive experiments on two military and a general-domain dataset and provide a new baseline for future research toward accurate parsing of multi-intent utterances.
机译:许多军事通信领域涉及用几句话快速传达局势意识。 将自然语言的话语转换为在这些域中的逻辑形式是具有挑战性的,因为这些话语是简短的并且包含多种意图。 在本文中,我们提出了建立一个弱监督的语义解析器来改造逻辑形式的弱监督的语义解析器。 我们的研究结果表明了一种新的“投影和减少”方法,即迭代对自然的投影来到规范的话语,然后减少自然话语是最有效的。 我们对两名军事和一般域数据集进行了广泛的实验,并为未来的准确解析多意图话语提供了新的基准。

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