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Identification of Manner in Bio-Events

机译:在生物事件中识别方式

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Due to the rapid growth in the volume of biomedical literature, there is an increasing requirement for high-performance semantic search systems, which allow biologists to perform precise searches for events of interest. Such systems are usually trained on corpora of documents that contain manually annotated events. Until recently, these corpora, and hence the event extraction systems trained on them, focussed almost exclusively on the identification and classification of event arguments, without taking into account how the textual context of the events could affect their interpretation. Previously, we designed an annotation scheme to enrich events with several aspects (or dimensions) of interpretation, which we term meta-knowledge, and applied this scheme to the entire GENIA corpus. In this paper, we report on our experiments to automate the assignment of one of these meta-knowledge dimensions, i.e. Manner, to recognised events. Manner is concerned with the rate, strength intensity or level of the event. We distinguish three different values of manner, i.e., High, Low and Neutral. To our knowledge, our work represents the first attempt to classify the manner of events. Using a combination of lexical, syntactic and semantic features, our system achieves an overall accuracy of 99.4%.
机译:由于生物医学文献的体积的快速增长,高性能语义搜索系统的需求越来越大,这允许生物学家对感兴趣的事件进行精确搜索。此类系统通常在包含手动注释事件的文档的Corpora上培训。直到最近,这些语料库,并因此在他们上培训的事件提取系统,几乎专注于识别和分类事件论据,而不考虑事件的文本背景如何影响他们的解释。以前,我们设计了注释方案,以丰富具有若干方面(或尺寸)的若干方面(或尺寸)的事件,我们将该方案应用于整个Genia语料库。在本文中,我们报告了我们的实验,以自动分配这些元知识维度之一,即旨在的事件。方式涉及事件的速度,强度强度或水平。我们区分三种不同的方式值,即,高,低,中性。为了我们的知识,我们的工作代表了第一次对事件方式进行分类的尝试。使用词汇,句法和语义特征的组合,我们的系统实现了99.4%的整体准确性。

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