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LightGCN: Simplifying and Powering Graph Convolution ...

LightGCN: Simplifying and Powering Graph ConvolutionNetwork for RecommendationXiangnan HeUniversity of Science and Technologyof DengUniversity of Science and Technologyof WangNational University of LiBeijing Kuaishou TechnologyCo., ZhangUniversity of Science and Technologyof Wang Hefei University of Convolution network (GCN) has become new state-of-the-art for collaborative filtering. Nevertheless, the reasons ofits effectiveness for recommendation are not well work that adapts GCN to recommendation lacks thoroughablation analyses on GCN, which is originally designed for graphclassification tasks and equipped with many neural networkoperations.

Graph Neural Network ACM Reference Format: Xiangnan He, Kuan Deng, Xiang Wang, Yan Li, Yongdong Zhang, and Meng Wang. 2020. LightGCN: Simplifying and Powering Graph Convolution Network for Recommendation. In Proceedings of the 43rd International ACM SIGIR Conference on Research and Development in Information Retrieval

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  Network, Graph, Neural, Graph neural network

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