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摘要:
Point of interest(POI)recommendation is one of the most important tasks in location-based social networks(LBSN).The existing recommendation methods face two challenges:(1)the cold start problem caused by data sparsity;(2)underutilization of the abundant side information besides user-POI interaction in large-scale data.Recent research shows that a user’s social relationship can be used to solve the cold start problem to some extent.The deep neural network learns users’long term and short term preferences to improve the recommendation quality.Therefore,this paper proposes a POI recommendation model called SSANet,applying side information(S)and self-attention(SA)to provide the high-satisfaction POI recommendations for users.Specifically,first,the user-POI interaction matrix were constructed by users history data to represents the user hidden representation;second,the side information includes rating scores,access frequency,social relationship,and geographic information were used to extract users preference;third,we use self-attention mechanism to learn user long term and short term preference.The experimental results on the real LBSN datasets show that the recommendation performance of the SSANet model is better than the existing POI recommendation model.
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篇名 POI Recommendations Using Self-attention Based on Side Information
来源期刊 国际计算机前沿大会会议论文集 学科 工学
关键词 Location-based social network Smart computing Point of interest Location-based services and applications
年,卷(期) 2020,(2) 所属期刊栏目
研究方向 页码范围 62-76
页数 15页 分类号 TN9
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Location-based
social
network
Smart
computing
Point
of
interest
Location-based
services
and
applications
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引文网络交叉学科
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期刊影响力
国际计算机前沿大会会议论文集
半年刊
北京市海淀区西三旗昌临801号
出版文献量(篇)
616
总下载数(次)
6
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0
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