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Agent-Based ML-LLM Fusion with Self-Optimizing Prompts for Plateau Weather Alerts

arXiv · AI, language, vision and robotics · article · Sep 9, 2026 · UTC

To address insufficient contextualization, weak generalization, and poor scenario adaptation in tourism meteorological services, we propose SmartWeatherAgent--a unified three-stage architecture integrating intent recognition, hazard prediction, and reasoning-enhanced generation. The system fuses rule-based methods with large language models to parse queries at multiple granularities and employs a LightGBM model enriched with highland-specific features (e.g., wind speed abruptness rate), achieving an F1-Macro score of 0.605 with 1.60 ms latency on high-wind, precipitation, and low-temperature e

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First collected: 2026-09-20T19:32:24.350Z. This is not the publication date.