AI RESEARCH
PropLLM: Propagation-Aware Scene Reconstruction for Network Fault Diagnosis
arXiv CS.AI
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ArXi:2606.00582v1 Announce Type: new Network faults propagate layer by layer along topology and protocol dependencies, yet operations systems typically observe only symptomatic alerts at the tail end of propagation chains, where distinct root-cause faults may produce highly similar end-point symptoms. Existing approaches, whether rule-based, machine learning (ML)-based, or large language model (LLM)-based, fundamentally map the alert set to a diagnosis in a single pass and are structurally incapable of resolving this end-point ambiguity.