Hyper-Relational Knowledge Graph Neural Network for Next POI
Jixiao Zhang, Yongkang Li, Ruotong Zou, Jingyuan Zhang, Zipei Fan,, Xuan Song

TL;DR
This paper introduces a hyper-relational knowledge graph neural network that models complex relations in location-based social networks, improving POI recommendation accuracy by capturing richer semantics and structural information.
Contribution
The paper proposes a novel hyper-relational knowledge graph neural network that effectively models higher-order relations and leverages side information for improved POI recommendation.
Findings
Outperforms existing methods on four real-world datasets
Effectively models hyper-relations and structural information
Reduces data sparsity impact through side information
Abstract
With the advancement of mobile technology, Point of Interest (POI) recommendation systems in Location-based Social Networks (LBSN) have brought numerous benefits to both users and companies. Many existing works employ Knowledge Graph (KG) to alleviate the data sparsity issue in LBSN. These approaches primarily focus on modeling the pair-wise relations in LBSN to enrich the semantics and thereby relieve the data sparsity issue. However, existing approaches seldom consider the hyper-relations in LBSN, such as the mobility relation (a 3-ary relation: user-POI-time). This makes the model hard to exploit the semantics accurately. In addition, prior works overlook the rich structural information inherent in KG, which consists of higher-order relations and can further alleviate the impact of data sparsity.To this end, we propose a Hyper-Relational Knowledge Graph Neural Network (HKGNN) model.…
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Taxonomy
TopicsRecommender Systems and Techniques · Advanced Graph Neural Networks · Brain Tumor Detection and Classification
MethodsFocus · Graph Neural Network
