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Liberal Event Extraction and Event Schema Induction

机译:自由事件提取和事件模式归纳

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We propose a brand new "Liberal" Event Extraction paradigm to extract events and discover event schemas from any input corpus simultaneously. We incorporate symbolic (e.g., Abstract Meaning Representation) and distributional semantics to detect and represent event structures and adopt a joint typing framework to simultaneously extract event types and argument roles and discover an event schema. Experiments on general and specific domains demonstrate that this framework can construct high-quality schemas with many event and argument role types, covering a high proportion of event types and argument roles in manually defined schemas. We show that extraction performance using discovered schemas is comparable to supervised models trained from a large amount of data labeled according to predefined event types. The extraction quality of new event types is also promising.
机译:我们提出了一种全新的“自由”事件提取范例,以提取事件并同时从任何输入语料库中发现事件模式。我们结合了符号(例如抽象含义表示)和分布语义来检测和表示事件结构,并采用联合类型化框架来同时提取事件类型和参数角色并发现事件模式。在一般域和特定域上进行的实验表明,该框架可以构造具有许多事件和参数角色类型的高质量模式,在手动定义的模式中涵盖了很大比例的事件类型和参数角色。我们表明,使用发现的模式进行的提取性能可与根据预定义事件类型从大量数据中训练出的监督模型进行比较。新事件类型的提取质量也很有希望。

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