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MMLUP: Multi-Source & Multi-Task Learning for User Profiles in Social Network 被引量:1

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摘要 With the rapid development of the mobile Internet,users generate massive data in different forms in social network every day,and different characteristics of users are reflected by these social media data.How to integrate multiple heterogeneous information and establish user profiles from multiple perspectives plays an important role in providing personalized services,marketing,and recommendation systems.In this paper,we propose Multi-source&Multi-task Learning for User Profiles in Social Network which integrates multiple social data sources and contains a multi-task learning framework to simultaneously predict various attributes of a user.Firstly,we design their own feature extraction models for multiple heterogeneous data sources.Secondly,we design a shared layer to fuse multiple heterogeneous data sources as general shared representation for multi-task learning.Thirdly,we design each task’s own unique presentation layer for discriminant output of specific-task.Finally,we design a weighted loss function to improve the learning efficiency and prediction accuracy of each task.Our experimental results on more than 5000 Sina Weibo users demonstrate that our approach outperforms state-of-the-art baselines for inferring gender,age and region of social media users.
出处 《Computers, Materials & Continua》 SCIE EI 2019年第9期1105-1115,共11页 计算机、材料和连续体(英文)
基金 This work is supported by State Grid Science and Technology Project under Grant No.520613180002,62061318C002 the Fundamental Research Funds for the Central Universities(Grant No.HIT.NSRIF.201714) Weihai Science and Technology Development Program(2016DXGJMS15) Key Research and Development Program in Shandong Provincial(2017GGX90103) Sanming Science and Technology Project,Grant No.2015-G-6,Shandong province vocational education educational reform research project.Grant No.2017209 Study and Development of Smart Agriculture Control System Based on Spark Big Data Decision(2017N0029) Jiangsu Province industrial Communication Technology Application Technology Innovation Team Project.
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