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Research on GCN Classification Model Based on CNKI Citation Network

  • Liming Ran,
  • Ying Pei,
  • Yanhua Dong,
  • Hongyu Sun

摘要

Citation networks, as an important type of graph-structured data, have been widely applied in fields such as academic research, scientific collaboration, and patent analysis. In this study, we construct a large-scale citation network dataset with rich citation relationships based on public datasets such as CNKI (China National Knowledge Infrastructure). We utilize Graph Convolutional Network (GCN) [1] for efficient classification and analysis in the domains of machine learning, deep learning, and neural networks. The experimental results demonstrate that our approach not only enhances the accuracy of citation network classification but also effectively captures complex relationships and local features among nodes, offering practicality and application value.