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基于BERT的学术合作者推荐研究
引用本文:周亦敏,黄俊.基于BERT的学术合作者推荐研究[J].计算机技术与发展,2021(3):45-51.
作者姓名:周亦敏  黄俊
作者单位:上海理工大学光电信息与计算机工程学院
基金项目:上海市科委科研计划项目(17511107203)。
摘    要:学术合作者推荐是学术大数据的一个有效应用.但是现存的方法忽略了学术研究者和研究主题间的上下文关系,因此不能推荐合适的合作者.该文提出了基于BERT的合作者推荐(BACR),旨在推荐高潜力的合作者以达到研究者的要求.为此,设计了一个新的推荐框架,它有两个基本组成部分:BERT(bidirectional encoder ...

关 键 词:BERT模型  合作者推荐  逻辑回归模型  学术数据挖掘  Network  Embedding

Research on BERT-based Academic Collaborator Recommendation
ZHOU Yi-min,HUANG Jun.Research on BERT-based Academic Collaborator Recommendation[J].Computer Technology and Development,2021(3):45-51.
Authors:ZHOU Yi-min  HUANG Jun
Affiliation:(School of Optical-electrical&Computer Engineering,University of Shanghai for Science&Technology,Shanghai 200093,China)
Abstract:Academic collaborator recommendation is an effective application of academic big data.However,existing methods ignore the contextual relationship between academic researchers and research topics,therefore they cannot recommend suitable collaborators.We propose the BERT-based collaborator recommendation(BACR),which aims to recommend high-potential collaborators to meet the requirements of researchers.To this end,we design a new recommendation framework,which consists of two basic components:BERT(bidirectional encoder representations from transformers)pre-trained language model and logistic regression model(LR).In particular,BERT jointly represents the researcher and the research topic to obtain a context-dependent feature vector representation on sentence level.LR takes the feature vector output by BERT as input to obtain the probability that the sample is positive,and finally outputs the information of the top K collaborators with the largest probability.The comparative experiments with Network Embedding-based SDNE and TSE algorithms show that the BERT model that fully takes into account the contextual relationship between the researcher and the research topic gets a better feature vector representation,which improves the accuracy of collaborator recommendation.
Keywords:BERT model  collaborator recommendation  logistic regression model  academic data mining  Network Embedding
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