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JUCSE: A CRF Based Approach to Annotation of Temporal Expression, Event and Temporal Relations

机译:Jucse:基于CRF的批次注释的方法,事件和时间关系

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In this paper, we present the JUCSE system, designed for the TempEval-3 shared task. The system extracts events and temporal information from natural text in English. We have participated in all the tasks of TempEval-3, namely Task A, Task B & Task C. We have primarily utilized the Conditional Random Field (CRF) based machine learning technique, for all the above tasks. Our system seems to perform quite competitively in Task A and Task B. In Task C, the system's performance is comparatively modest at the initial stages of system development. We have incorporated various features based on different lexical, syntactic and semantic information, using Stanford CoreNLP and Wordnet based tools.
机译:在本文中,我们介绍了Jucse系统,专为Tempeval-3共享任务而设计。系统从英语中从自然文本中提取事件和时间信息。我们参与了Tempeval-3的所有任务,即任务A,任务B和任务C.我们主要利用了基于机器的机器学习技术,用于所有上述任务。我们的系统似乎在任务A和任务B中表现得非常竞争。在任务C中,系统的性能在系统开发的初始阶段相对谦逊。我们使用基于STANFORD CORENLP和Wordnet的工具来纳入不同的词法,句法和语义信息的各种功能。

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