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PromptGNN-sim
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promptgnn-sim-62c70ed0·1 events·first seen 17h agoAliases: PromptGNN-sim
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PromptGNN-sim: Bidirectional GNN-LLM fusion framework for text-attributed graph learning
Researchers introduce PromptGNN-sim, a bidirectional structure-semantic fusion framework that jointly trains a Graph Attention Network and an LLM for text-attributed graph learning. The system uses GAT-based neighborhood selection to generate structure-aware prompts for the LLM, with cross-modal contrastive learning and cross-attention aligning both components during training. Evaluated on six datasets including Cora, Pubmed, and WikiCS, it outperforms classical GNNs, standalone LLMs, and prior GNN-LLM fusion methods on cross-task transfer, cross-dataset generalization, and sparse perturbation settings.