Large Language Model Pipelines for Crisis Intelligence: Automated Help Request Classifier
| dc.contributor.author | De Silva, L.D.R.E. | |
| dc.date.accessioned | 2026-07-28T06:21:17Z | |
| dc.date.issued | 2026-05-21 | |
| dc.description.abstract | This research examines the development and deployment of a Crisis Intelligence Pipeline, engineered to address the catastrophic information surge following Cyclonic Storm Ditwah in Sri Lanka [1]. The system integrates advanced prompt engineering methodologies, specifically few-shot learning, Chain-of-Thought [2], and Tree-of-Thoughts [3] to transform unstructured humanitarian data into actionable logistics strategies. Through rigorous stability testing under varying temperature gradients, the study identifies a "Safe Mode" for deterministic triage and a "Chaos Mode" that highlights the risks of model hallucination in high-stakes environments. Furthermore, the pipeline utilizes Pydantic-based schema validation [4] and token economics [5] to ensure scalability and cost-efficiency. Results indicate that structured reasoning architectures significantly enhance the precision of resource allocation and signal-to-noise discrimination, providing a vital technological framework. | |
| dc.identifier.doi | https://doi.org/10.54389/JZMT1713 | |
| dc.identifier.issn | 2783 – 8862 | |
| dc.identifier.uri | https://rda.sliit.lk/handle/123456789/5107 | |
| dc.language.iso | en | |
| dc.publisher | Sri Lanka Institute of Information Technology | |
| dc.relation.ispartofseries | ICTICM 2026; 38p.-41p. | |
| dc.subject | crisis management | |
| dc.subject | large language models | |
| dc.subject | prompt engineering | |
| dc.subject | disaster response | |
| dc.subject | logistics optimization | |
| dc.subject | Chain-of-Thought | |
| dc.subject | Tree-of-Thoughts | |
| dc.subject | token economics | |
| dc.title | Large Language Model Pipelines for Crisis Intelligence: Automated Help Request Classifier | |
| dc.type | Conference Paper |
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