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Siamese Networks for Semantic Pattern Similarity

机译:语义模式相似之柴的暹罗网络

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Semantic Pattern Similarity is an interesting, though not often encountered NLP task where two sentences are compared not by their specific meaning, but by their more abstract semantic pattern (e.g., preposition or frame). We utilize Siamese Networks to model this task, and show its usefulness in determining SQL patterns for unseen questions in a database-backed question answering scenario. Our approach achieves high accuracy and contains a built-in proxy for confidence, which can be used to keep precision arbitrarily high.
机译:语义模式相似性是一种有趣的,虽然不经常遇到NLP任务,其中两个句子不是由他们的特定含义进行比较,而是由他们更抽象的语义模式(例如,介词或框架)进行比较。我们利用暹罗网络来模拟此任务,并在数据库备份问题应答方案中确定未经证明问题的SQL模式的实用性。我们的方法可实现高精度,并包含一个内置代理的信心,可用于保持精度。

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