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Demo Abstract: Conflict Detection in Online Textual Health Advice

机译:演示摘要:在线文本健康建议中的冲突检测

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摘要

Textual health advice generated from different online sources (e.g., health apps and websites) can be conflicting. Conflicts can occur due to lexical features, (such as, negation, antonyms, or numerical mismatch) or can be conditioned upon time and/or physiological status. Detecting conflicts from textual health advice poses several challenges, including, large structural variation between text and hypothesis pairs, finding conceptual overlap between pairs of advice, and inference of the semantics of an advice (i.e., what to do, why, and how). In this demonstration, we present a semantic rule-based system to detect different types of conflicts in online textual health advice statements in a context-aware and interpretable manner.
机译:从不同的在线来源(例如,健康应用和网站)生成的文字健康建议可能会产生冲突。冲突可能是由于词汇特征(例如,否定,反义词或数字不匹配)引起的,也可能是根据时间和/或生理状态而发生的。从文本健康建议中检测冲突带来了一些挑战,包括文本和假设对之间的巨大结构差异,发现建议对之间的概念重叠以及推断建议的语义(即做什么,为什么和如何做)。在本演示中,我们提出了一个基于语义规则的系统,以上下文感知和可解释的方式检测在线文本健康建议语句中的不同类型的冲突。

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