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Evaluating Word Sense Induction and Disambiguation Methods

机译:评估词义归纳和消歧方法

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Word Sense Induction (WSI) is the task of identifying the different uses (senses) of a target word in a given text in an unsupervised manner, i.e. without relying on any external resources such as dictionaries or sense-tagged data. This paper presents a thorough description of the SemEval-2010 WSI task and a new evaluation setting for sense induction methods. Our contributions are two-fold: firstly, we provide a detailed analysis of the Semeval-2010 WSI task evaluation results and identify the shortcomings of current evaluation measures. Secondly, we present a new evaluation setting by assessing participating systems’ performance according to the skewness of target words’ distribution of senses showing that there are methods able to perform well above the Most Frequent Sense (MFS) baseline in highly skewed distributions.
机译:词义归纳(WSI)是一项任务,以无监督的方式识别给定文本中目标词的不同用法(感觉),即不依赖任何外部资源,例如词典或带有意义标签的数据。本文对SemEval-2010 WSI任务进行了全面描述,并提出了一种新的感官归纳方法评估设置。我们的贡献有两个方面:首先,我们提供对Semeval-2010 WSI任务评估结果的详细分析,并确定当前评估措施的不足。其次,我们通过根据目标词的感觉分布的偏度来评估参与系统的性能,从而提供了一种新的评估设置,表明在高度偏斜的分布中,有一些方法能够比最常见感觉(MFS)基线表现更好。

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