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New Insights from Coarse Word Sense Disambiguation in the Crowd

机译:人群中粗略词义消除的新见解

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We use crowdsourcing to disambiguate 1000 words from among coarse-grained senses, the most extensive investigation to date. Ten unique participants disambiguate each example, and, using regression, we find surprising features which drive differential WSD accuracy: (a) the number of rephrasings within a sense definition is associated with higher accuracy; (b) as word frequency increases, accuracy decreases even if the number of senses is kept constant; and (c) spending more time is associated with a decrease in accuracy. We also observe that all participants are about equal in ability, practice (without feedback) does not seem to lead to improvement, and that having many participants label the same example provides a partial substitute for more expensive annotation.
机译:我们使用众包技术从粗粒度的感官中消除1000个单词的歧义,这是迄今为止最广泛的调查。十个独特的参与者对每个示例进行了歧义消除,并且通过回归分析,我们发现了令人惊讶的功能,这些功能推动了WSD的不同准确性:(a)义定义中的重述次数与更高的准确性相关; (b)随着单词频率的增加,即使感官数量保持恒定,准确性也会降低; (c)花更多时间与准确性降低有关。我们还观察到,所有参与者的能力都差不多,实践(没有反馈)似乎并没有改善,并且有许多参与者标记相同的示例可以部分替代更昂贵的注释。

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