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20192024
most citedRegion-wise Generative Adversarial ImageInpainting for Large Missing Areas

7 citations · 10 across the 6 of their papers we have counts for

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8 papers · 1 filter

cs.LG20241 cited

HC-GAE: The Hierarchical Cluster-based Graph Auto-Encoder for Graph Representation Learning

Zhuo Xu, Lu Bai, Lixin Cui +3

Graph Auto-Encoders (GAEs) are powerful tools for graph representation learning. In this paper, we develop a novel Hierarchical Cluster-based GAE (HC-GAE), that can learn effective…

cs.LG20242 cited

ENADPool: The Edge-Node Attention-based Differentiable Pooling for Graph Neural Networks

Zhehan Zhao, Lu Bai, Lixin Cui +4

Graph Neural Networks (GNNs) are powerful tools for graph classification. One important operation for GNNs is the downsampling or pooling that can learn effective embeddings from t…

cs.LG2024

AKBR: Learning Adaptive Kernel-based Representations for Graph Classification

Feifei Qian, Lixin Cui, Ming Li +6

In this paper, we propose a new model to learn Adaptive Kernel-based Representations (AKBR) for graph classification. Unlike state-of-the-art R-convolution graph kernels that are d…

cs.LG2023

Diffusion-Jump GNNs: Homophiliation via Learnable Metric Filters

Ahmed Begga, Francisco Escolano, Miguel Angel Lozano +1

High-order Graph Neural Networks (HO-GNNs) have been developed to infer consistent latent spaces in the heterophilic regime, where the label distribution is not correlated with the…

cs.LG20231 cited

Labeled Subgraph Entropy Kernel

Chengyu Sun, Xing Ai, Zhihong Zhang +1

In recent years, kernel methods are widespread in tasks of similarity measuring. Specifically, graph kernels are widely used in fields of bioinformatics, chemistry and financial da…

cs.LG2023

AERK: Aligned Entropic Reproducing Kernels through Continuous-time Quantum Walks

Lixin Cui, Ming Li, Yue Wang +2

In this work, we develop an Aligned Entropic Reproducing Kernel (AERK) for graph classification. We commence by performing the Continuous-time Quantum Walk (CTQW) on each graph str…