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OPT: Oslo-Potsdam-Teesside Pipelining Rules, Rankers, and Classifier Ensembles for Shallow Discourse Parsing

机译:选择:Oslo-Potsdam-teesside管道规则,排名母,和分类器合奏,用于浅谈浅谈解析

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The OPT submission to the Shared Task of the 2016 Conference on Natural Language Learning (CoNLL) implements a 'classic' pipeline architecture, combining binary classification of (candidate) explicit connectives, heuristic rules for non-explicit discourse relations, ranking and 'editing' of syntactic constituents for argument identification, and an ensemble of classifiers to assign discourse senses. With an end-to-end performance of 27.77 F_1 on the English 'blind' test data, our system advances the previous state of the art (Wang & Lan, 2015) by close to four F_1 points, with particularly good results for the argument identification sub-tasks.
机译:加入2016年自然语言学习会议的共享任务(Conll)的分享任务实施了“经典”管道架构,结合了(候选人)的二进制分类,即非明确的话语关系,排名和“编辑”的启发式规则句法成分用于参数识别,以及分类代表话语感官的分类器的集合。在英语“盲目”测试数据上的结束表现为27.77 f_1,我们的系统通过接近四个f_1点,推进了先前的艺术状态(Wang&Lan,2015),对参数特别好的结果识别子任务。

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