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Papers/WiC: the Word-in-Context Dataset for Evaluating Context-Se...

WiC: the Word-in-Context Dataset for Evaluating Context-Sensitive Meaning Representations

Mohammad Taher Pilehvar, Jose Camacho-Collados

2018-08-28NAACL 2019 6Word SimilarityWord EmbeddingsWord Sense Disambiguation
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Abstract

By design, word embeddings are unable to model the dynamic nature of words' semantics, i.e., the property of words to correspond to potentially different meanings. To address this limitation, dozens of specialized meaning representation techniques such as sense or contextualized embeddings have been proposed. However, despite the popularity of research on this topic, very few evaluation benchmarks exist that specifically focus on the dynamic semantics of words. In this paper we show that existing models have surpassed the performance ceiling of the standard evaluation dataset for the purpose, i.e., Stanford Contextual Word Similarity, and highlight its shortcomings. To address the lack of a suitable benchmark, we put forward a large-scale Word in Context dataset, called WiC, based on annotations curated by experts, for generic evaluation of context-sensitive representations. WiC is released in https://pilehvar.github.io/wic/.

Results

TaskDatasetMetricValueModel
Word Sense DisambiguationWords in ContextAccuracy65.5BERT-large 340M
Word Sense DisambiguationWords in ContextAccuracy59.3Context2vec
Word Sense DisambiguationWords in ContextAccuracy58.7DeConf
Word Sense DisambiguationWords in ContextAccuracy58.1SW2V
Word Sense DisambiguationWords in ContextAccuracy57.7ElMo
Word Sense DisambiguationWords in ContextAccuracy53.1Sentence LSTM

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