Directed citation graphs plus textual embeddings reach 0.84-0.85 AUC for top-P% impact classification while GPT-5.5/5.4 Nano prompts hit 0.87 but show no consistent gain from retrieved graph neighborhoods over target-only baselines.
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From Node2Vec to GPT-based GraphRAG: scientific impact prediction across graph and language models
Directed citation graphs plus textual embeddings reach 0.84-0.85 AUC for top-P% impact classification while GPT-5.5/5.4 Nano prompts hit 0.87 but show no consistent gain from retrieved graph neighborhoods over target-only baselines.