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NMFDIV: A nonnegative matrix factorization approach for search result diversification on attributed networks

  • Zaiqiao Meng
  • , Hong Shen

研究成果: Conference contribution同行評審

摘要

Search result diversification is effective way to tackle query ambiguity and enhance result novelty. In the context of large information networks, diversifying search result is also critical for further design of applications such as link prediction and citation recommendation. In previous work, this problem has mainly been tackled in a way of implicit query intent. To further enhance the performance, we propose an explicit search result diversification method that explicitly encode query intent and represent nodes as representation vectors by a novel nonnegative matrix factorization approach, and the diversity of the results node account for the query relevance and the novelty w.r.t. these vectors. To learn representation vectors for networks, we derive the multiplicative update rules to train the nonnegative matrix factorization model. Finally, we perform a comprehensive evaluation on our proposals with various baselines. Experimental results show the effectiveness of our proposed solution, and verify that attributes do help improve diversification performance.

原文English
主出版物標題Proceedings - 18th International Conference on Parallel and Distributed Computing, Applications and Technologies, PDCAT 2017
編輯Shi-Jinn Horng
發行者IEEE Computer Society
頁面86-91
頁數6
ISBN(電子)9781538631515
DOIs
出版狀態Published - 2 7月 2017
對外發佈
事件18th International Conference on Parallel and Distributed Computing, Applications and Technologies, PDCAT 2017 - Taipei, Taiwan, Province of China
持續時間: 18 12月 201720 12月 2017

出版系列

名字Parallel and Distributed Computing, Applications and Technologies, PDCAT Proceedings
2017-December

Conference

Conference18th International Conference on Parallel and Distributed Computing, Applications and Technologies, PDCAT 2017
國家/地區Taiwan, Province of China
城市Taipei
期間18/12/1720/12/17

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