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Mingqi Yang

3 accepted papers

2023

Towards Better Graph Representation Learning with Parameterized Decomposition & Filtering

ICML 2023poster

Proposing an effective and flexible matrix to represent a graph is a fundamental challenge that has been explored from multiple perspectives, e.g., filtering in Graph Fourier Transforms. In this work, we develop a novel and general framework which unifies many existing GNN models from the view of pa…

2022

A New Perspective on the Effects of Spectrum in Graph Neural Networks

ICML 2022spotlight

Many improvements on GNNs can be deemed as operations on the spectrum of the underlying graph matrix, which motivates us to directly study the characteristics of the spectrum and their effects on GNN performance. By generalizing most existing GNN architectures, we show that the correlation issue cau…