SparseGraphSage: A Graph Neural Network Approach for Corporate Credit Rating

Si Shi, Wuman Luo, Rita Tse, Giovanni Pau

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

Abstract

Corporate Credit Rating (CCR) remains a critical research problem. In the past few decades, various machine learning approaches have gradually replaced and surpassed traditional labor-consuming manual checking. In particular, Graph Neural Networks (GNNs) have shown their capabilities and potential due to their strong power of processing non-Euclidean data. However, the current GNNs methods have two issues: 1) the proper design and construction of graphs; 2) the slow running speed and vast consumption of computing power. To address these issues, we propose a method named 'SparseGraphSage', which incorporates randomness in graph construction and integrates diffusion and sparse techniques in the GraphSage model. We design a stochastic edge selection process in the construction stage and diffusion matrices acting as operators in the graph layers. Through sufficient experiments and ablation study on two open-source CCR datasets, we demonstrate that our method exceeds the current state-of-the-art GNNs baselines in performance and is proven efficient.

Original languageEnglish
Title of host publicationICSCA 2024 - 2024 13th International Conference on Software and Computer Applications
PublisherAssociation for Computing Machinery
Pages124-129
Number of pages6
ISBN (Electronic)9798400708329
DOIs
Publication statusPublished - 1 Feb 2024
Event13th International Conference on Software and Computer Applications, ICSCA 2024 - Bali Island, Indonesia
Duration: 1 Feb 20243 Feb 2024

Publication series

NameACM International Conference Proceeding Series

Conference

Conference13th International Conference on Software and Computer Applications, ICSCA 2024
Country/TerritoryIndonesia
CityBali Island
Period1/02/243/02/24

Keywords

  • corporate credit rating
  • graph diffusion
  • graph neural networks
  • machine learning

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