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Neural restaurant-aware dish recommendation

  • East China Normal University

科研成果: 书/报告/会议事项章节会议稿件同行评审

摘要

Food is the first necessity of the people. Due to the fast-paced modern life, people usually choose to dine out for convenience. While existing methods have paid efforts for the food recommendation, they are mainly limited in inferring users' personal preferences for online recipes, and ignore the dish ordering process in dine-out scenarios. Given the same recipe, different restaurants may produce various tastes due to food cuisines or chefs' cooking habits. In the current restaurant, users' general favored dish may have bad word-of-mouth. Thus, apart from their personal taste preferences, users also turn to restaurant specialties to guarantee the dish quality. As such, the restaurant-related dish quality and users' personal taste should be considered simultaneously. To address this task, we propose a neural restaurant-aware dish recommender to infer users' preferences for dishes in a specific restaurant. Given a dish in the current restaurant, whether to order it or not is mainly decided by two factors: users' personal taste and the dish quality in this restaurant. Our proposed model can: 1) capture users' personal diet preferences by the strong expressiveness of neural networks; 2) evaluate how good the current restaurant is at cooking certain dishes. To show the effectiveness of our proposed model, we conduct extensive experiments on a real dataset, demonstrating significant improvements over the several competing models, such as NCF with an average improvement of 36%, and PITF with 3.4%.

源语言英语
主期刊名Proceedings - 11th IEEE International Conference on Knowledge Graph, ICKG 2020
编辑Enhong Chen, Grigoris Antoniou, Xindong Wu, Vipin Kumar
出版商Institute of Electrical and Electronics Engineers Inc.
599-606
页数8
ISBN(电子版)9781728181561
DOI
出版状态已出版 - 8月 2020
活动11th IEEE International Conference on Knowledge Graph, ICKG 2020 - Virtual, Online, 中国
期限: 9 8月 202011 8月 2020

出版系列

姓名Proceedings - 11th IEEE International Conference on Knowledge Graph, ICKG 2020

会议

会议11th IEEE International Conference on Knowledge Graph, ICKG 2020
国家/地区中国
Virtual, Online
时期9/08/2011/08/20

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