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20232026
most citedA Survey of Graph Neural Networks in Real world: Imbalance, Noise, Privacy and OOD Challenges

24 citations · 76 across the 12 of their papers we have counts for

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Showing 2024Show all

6 papers · 1 filter

cs.LG2024★ 1 cited

Cluster-guided Contrastive Class-imbalanced Graph Classification

Wei Ju, Zhengyang Mao, Siyu Yi +6

This paper studies the problem of class-imbalanced graph classification, which aims at effectively classifying the graph categories in scenarios with imbalanced class distributions…

cs.LG2024★ 8 cited

Hypergraph-enhanced Dual Semi-supervised Graph Classification

Wei Ju, Zhengyang Mao, Siyu Yi +6

In this paper, we study semi-supervised graph classification, which aims at accurately predicting the categories of graphs in scenarios with limited labeled graphs and abundant unl…

cs.LG2024★ 22 cited

Towards Graph Contrastive Learning: A Survey and Beyond

Wei Ju, Yifan Wang, Yifang Qin +10

In recent years, deep learning on graphs has achieved remarkable success in various domains. However, the reliance on annotated graph data remains a significant bottleneck due to i…

cs.LG2024★ 24 cited

A Survey of Graph Neural Networks in Real world: Imbalance, Noise, Privacy and OOD Challenges

Wei Ju, Siyu Yi, Yifan Wang +10

Graph-structured data exhibits universality and widespread applicability across diverse domains, such as social network analysis, biochemistry, financial fraud detection, and netwo…

cs.LG2024★ 6 cited

GPS: Graph Contrastive Learning via Multi-scale Augmented Views from Adversarial Pooling

Wei Ju, Yiyang Gu, Zhengyang Mao +5

Self-supervised graph representation learning has recently shown considerable promise in a range of fields, including bioinformatics and social networks. A large number of graph co…

cs.LG2024★ 14 cited

Graph Neural Networks in Intelligent Transportation Systems: Advances, Applications and Trends

Hourun Li, Yusheng Zhao, Zhengyang Mao +7

Intelligent Transportation System (ITS) is crucial for improving traffic congestion, reducing accidents, optimizing urban planning, and more. However, the complexity of traffic net…