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Recognising Agreement and Disagreement between Stances with Reason Comparing Networks

机译:用理性比较网络识别姿态之间的同意与不同

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We identify agreement and disagreement between utterances that express stances towards a topic of discussion. Existing methods focus mainly on conversational settings, where dialogic features are used for (dis)agreement inference. We extend this scope and seek to detect stance (dis)agreement in a broader setting, where independent stance-bearing utterances, which prevail in many stance corpora and real-world scenarios, are compared. To cope with such non-dialogic utterances, we find that the reasons uttered to back up a specific stance can help predict stance (dis)agreements. We propose a reason comparing network (RCN) to leverage reason information for stance comparison. Empirical results on a well-known stance corpus show that our method can discover useful reason information, enabling it to outperform several baselines in stance (dis)agreement detection.
机译:我们在表达对讨论主题的立场的话语之间确定同意和不同意。现有方法主要集中于对话设置,其中对话功能用于(不一致)推理。我们扩展了这一范围,并试图在更广泛的环境中检测立场(异议),比较在许多立场语料库和现实情况中普遍存在的独立立场话语。为了应对这种非对话性话语,我们发现支持特定立场的理由可以帮助预测立场(分歧)。我们提出了一个理由比较网络(RCN),以利用理由信息进行立场比较。对一个著名的姿态语料库的经验结果表明,我们的方法可以发现有用的原因信息,使其在姿态(不一致)检测中的表现优于几个基线。

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