An LLM-Based Inventory Construction Framework of Urban Ground Collapse Events with Spatiotemporal Locations
Yanan Hao,
Jin Qi,
Xiaowen Ma
et al.
Abstract:Historical news media reports serve as a vital data source for understanding the risk of urban ground collapse (UGC) events. At present, the application of large language models (LLMs) offers unprecedented opportunities to effectively extract UGC events and their spatiotemporal information from a vast amount of news reports and media data. Therefore, this study proposes an LLM-based inventory construction framework consisting of three steps: news reports crawling, UGC event recognition, and event attribute ext… Show more
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