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The KnowRef Coreference Corpus: Removing Gender and Number Cues for Difficult Pronominal Anaphora Resolution

机译:KnowRef共指语料库:去除性别和数字提示以实现难于的代词照应解析

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We introduce a new benchmark for coreference resolution and NLI. KnowRef, that targets common-sense understanding and world knowledge. Previous coreference resolution tasks can largely be solved by exploiting the number and gender of the antecedents, or have been handcrafted and do not reflect the diversity of naturally occurring text. We present a corpus of over 8,000 annotated text passages with ambiguous pronominal anaphora. These instances are both challenging and realistic. We show that various coreference systems, whether nile-based, feature-rich, or neural, perform significantly worse on the task than humans, who display high inter-annotator agreement. To explain this performance gap, we show empirically that state-of-the art models often fail to capture context, instead relying on the gender or number of candidate antecedents to make a decision. We then use problem-specific insights to propose a data-augmentation trick called antecedent switching to alleviate this tendency in models. Finally, we show that antecedent switching yields promising results on other tasks as well: we use it to achieve state-of-the-art results on the GAP coreference task.
机译:我们为共指解决方案和NLI引入了新的基准。 KnowRef,针对常识性理解和世界知识。以前的共指解析任务可以通过利用先行词的数量和性别来很大程度上解决,或者是手工制作的,不能反映自然发生文本的多样性。我们提出了一个含8,000多个带注释代词照应的带注释文本段落的语料库。这些实例既具有挑战性,又具有现实意义。我们表明,各种共指系统,无论是基于尼罗河的,功能丰富的还是神经系统的,在执行任务上的表现都比人类高,而人类则表现出很高的注释者之间的共识。为了解释这种性能差距,我们从经验上表明,现有技术模型通常无法捕获上下文,而是依赖于候选对象的性别或数量来做出决策。然后,我们使用特定于问题的见识来提出一种称为先行切换的数据增强技巧,以减轻模型中的这种趋势。最后,我们证明了先行切换在其他任务上也产生了可喜的结果:我们使用它来实现GAP共参考任务的最新结果。

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