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FrameIt: Ontology Discovery for Noisy User-Generated Text

机译:框架:嘈杂的用户生成文本的本体发现

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A common need of NLP applications is to extract structured data from text corpora in order to perform analytics or trigger an appropriate action. The ontology defining the structure is typically application dependent and in many cases it is not known a priori. We describe the FrameIt System that provides a workflow for (1) quickly discovering an ontology to model a text corpus and (2) learning an SRL model that extracts the instances of the ontology from sentences in the corpus. FrameIt exploits data that is obtained in the ontology discovery phase as weak supervision data to bootstrap the SRL model and then enables the user to refine the model with active learning. We present empirical results and qualitative analysis of the performance of FrameIt on three corpora of noisy user-generated text.
机译:对NLP应用程序的共同需要是从文本语料库中提取结构化数据,以便执行分析或触发适当的动作。定义结构的本体论通常是依赖的,并且在许多情况下,它不知道先验。我们描述了提供了(1)的工作流程的框架系统,该系统快速发现了模拟文本语料库的本体和(2)学习从语料库中的句子中提取本体的实例的SRL模型。框架利用在本体发现阶段中获得的数据作为弱监控数据,以引导SRL模型,然后使用户能够通过主动学习来改进模型。我们提出了对嘈杂用户生成文本三层框架素质性能的实证结果和定性分析。

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