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Bridging Monitoring and Mindset: A Retrieval- Augmented LLM Chatbot Framework for Real- Time Environmental Education

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dc.contributor.author Perera, B.U.I
dc.contributor.author Epakanda, J.K.
dc.contributor.author Aratthanage, K.D.B.
dc.date.accessioned 2026-09-29T03:37:42Z
dc.date.available 2026-09-29T03:37:42Z
dc.date.issued 2026
dc.identifier.uri http://repository.ou.ac.lk/handle/123456789/4280
dc.description.abstract Plastic pollution is a serious problem for our environment, and many public awareness campaigns are not able to change people's daily habits in a lasting way. At the same time, new Artificial Intelligence (AI) and smart sensor technologies can now monitor rivers, coasts, and ecosystems in real time, but this rich monitoring data rarely reaches ordinary citizens in a form they can understand and act on. This gap between “monitoring” (technical data collection) and “mindset” (public understanding and behavior) is the main motivation of this paper. We propose a conceptual framework named EcoLitLLM, a mobile-based chatbot that uses Retrieval- Augmented Generation (RAG) with a Large Language Model (LLM) to give simple, trustworthy, and location-based answers about plastic pollution and ecosystem health. The framework connects a verified environmental knowledge base with live AI/IoT ecosystem-monitoring feeds, so the chatbot's answers are grounded in current, local, and reliable evidence rather than only static content. The framework also supports offline use through an on-device small language model, multimodal litter recognition (multiple types of data) through the phone camera, and gamified citizen-science reporting that feeds new data back into the monitoring system. Since this is a conceptual paper, the methodology explains the framework-design process and gives logical pseudocode instead of an empirical evaluation. We also discuss expected outcomes, limitations, and directions for future testing of this framework in real communities. en_US
dc.language.iso en en_US
dc.publisher The Open University of Sri Lanka en_US
dc.subject Retrieval-augmented generation(RAG) en_US
dc.subject plastic pollution en_US
dc.subject ecosystem monitoring en_US
dc.title Bridging Monitoring and Mindset: A Retrieval- Augmented LLM Chatbot Framework for Real- Time Environmental Education en_US
dc.type Article en_US


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