Novel Representations of Word Embedding Based on the Zolu Function

被引:0
|
作者
Lu J. [1 ]
Zhang Y. [2 ]
机构
[1] School of Information and Electronics, Beijing Institute of Technology, Beijing
[2] Department of Electronic Engineering, Tsinghua University, Beijing
基金
中国国家自然科学基金;
关键词
Accuracy; Continuous bags of words; Word embedding; Word similarity; Zolu function;
D O I
10.15918/j.jbit1004-0579.20076
中图分类号
学科分类号
摘要
Two learning models, Zolu-continuous bags of words (ZL-CBOW) and Zolu-skip-grams (ZL-SG), based on the Zolu function are proposed. The slope of Relu in word2vec has been changed by the Zolu function. The proposed models can process extremely large data sets as well as word2vec without increasing the complexity. Also, the models outperform several word embedding methods both in word similarity and syntactic accuracy. The method of ZL-CBOW outperforms CBOW in accuracy by 8.43% on the training set of capital-world, and by 1.24% on the training set of plural-verbs. Moreover, experimental simulations on word similarity and syntactic accuracy show that ZL-CBOW and ZL-SG are superior to LL-CBOW and LL-SG, respectively. © 2020 Journal of Beijing Institute of Technology
引用
收藏
页码:526 / 530
页数:4
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