activity
20202022
most citedPaSca: a Graph Neural Architecture Search System under the Scalable Paradigm

45 citations · 186 across the 14 of their papers we have counts for

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10 papers · 1 filter

cs.LG20226 cited

Information Gain Propagation: a new way to Graph Active Learning with Soft Labels

Wentao Zhang, Yexin Wang, Zhenbang You +5

Graph Neural Networks (GNNs) have achieved great success in various tasks, but their performance highly relies on a large number of labeled nodes, which typically requires consider…

cs.LG202245 cited

PaSca: a Graph Neural Architecture Search System under the Scalable Paradigm

Wentao Zhang, Yu Shen, Zheyu Lin +6

Graph neural networks (GNNs) have achieved state-of-the-art performance in various graph-based tasks. However, as mainstream GNNs are designed based on the neural message passing m…

cs.LG20227 cited

Hyper-Tune: Towards Efficient Hyper-parameter Tuning at Scale

Yang Li, Yu Shen, Huaijun Jiang +5

The ever-growing demand and complexity of machine learning are putting pressure on hyper-parameter tuning systems: while the evaluation cost of models continues to increase, the sc…

cs.LG202110 cited

RIM: Reliable Influence-based Active Learning on Graphs

Wentao Zhang, Yexin Wang, Zhenbang You +5

Message passing is the core of most graph models such as Graph Convolutional Network (GCN) and Label Propagation (LP), which usually require a large number of clean labeled data to…

cs.LG202113 cited

Node Dependent Local Smoothing for Scalable Graph Learning

Wentao Zhang, Mingyu Yang, Zeang Sheng +5

Recent works reveal that feature or label smoothing lies at the core of Graph Neural Networks (GNNs). Concretely, they show feature smoothing combined with simple linear regression…

cs.LG202116 cited

Evaluating Deep Graph Neural Networks

Wentao Zhang, Zeang Sheng, Yuezihan Jiang +4

Graph Neural Networks (GNNs) have already been widely applied in various graph mining tasks. However, they suffer from the shallow architecture issue, which is the key impediment t…