JSAI2020

Presentation information

General Session

General Session » J-2 Machine learning

[2I6-GS-2] Machine learning: Sensing and user aid

Wed. Jun 10, 2020 5:50 PM - 7:10 PM Room I (jsai2020online-9)

座長:欧陽江卉(VOYAGE GROUP)

6:50 PM - 7:10 PM

[2I6-GS-2-04] A study on Analysis Model of Customers' Purchasing Behavior based on Knowledge Graph Attention Network

〇Fumiyo Ito1, Zhiying Zhang1, Gendo Kumoi1, Masayuki Goto1 (1. WASEDA University)

Keywords:Knowledge Graph, Deep Learning, Customer Analysis, Graph Convolutional Networks, Graph Attention Network

Recently, it has become possible to make use of not only simple purchase history but also acquire various types of auxiliary information. Therefore, it is expected to analyze these various kinds of data in order to investigate customers' purchasing behavior for marketing purposes. For that reason, the KGAT model, which learns user preferences by modeling the relationship between users, purchase items and their auxiliary information, has been proposed. In this model, the user's preference can be interpreted by using the auxiliary information of items and this interpretability can be useful for planning marketing policies. Therefore, this research proposes a model that enables more diversified analysis by extending KGAT by using not only auxiliary information of items but also the relationship between users and their attribute information. Finally, we apply the proposed method to the evaluation of historical data of actual EC sites and show the usefulness of the proposed method.

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