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Context Vectors Are Reflections of Word Vectors in Half the Dimensions

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dc.contributor.author Assylbekov, Zhenisbek
dc.contributor.author Takhanov, Rustem
dc.date.accessioned 2019-12-11T08:03:54Z
dc.date.available 2019-12-11T08:03:54Z
dc.date.issued 2019-09
dc.identifier.citation Assylbekov, Z., & Takhanov, R. (2019). Context Vectors are Reflections of Word Vectors in Half the Dimensions. Journal of Artificial Intelligence Research, 66, 225–242. https://doi.org/10.1613/jair.1.11368 en_US
dc.identifier.other 10.1613/jair.1.11368
dc.identifier.uri http://nur.nu.edu.kz/handle/123456789/4369
dc.description https://arxiv.org/pdf/1902.09859.pdf en_US
dc.description.abstract This paper takes a step towards theoretical analysis of the relationship between word embeddings and context embeddings in models such as word2vec. We start from basic probabilistic assumptions on the nature of word vectors, context vectors, and text generation. These assumptions are supported either empirically or theoretically by the existing literature. Next, we show that under these assumptions the widely-used word-word PMI matrix is approximately a random symmetric Gaussian ensemble. This, in turn, implies that context vectors are reflections of word vectors in approximately half the dimensions. As a direct application of our result, we suggest a theoretically grounded way of tying weights in the SGNS model. en_US
dc.language.iso en en_US
dc.publisher AI ACCESS FOUNDATION en_US
dc.rights Attribution-NonCommercial-ShareAlike 3.0 United States *
dc.rights.uri http://creativecommons.org/licenses/by-nc-sa/3.0/us/ *
dc.subject Context Vectors en_US
dc.subject Reflections of Word Vectors en_US
dc.subject Word Vectors en_US
dc.subject Euclidean norm en_US
dc.subject word2vec en_US
dc.title Context Vectors Are Reflections of Word Vectors in Half the Dimensions en_US
dc.type Article en_US
workflow.import.source science


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