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RAG-Based Irrigation Advisory Assistant for Farmers

This B.Tech Agricultural Engineering project is based on the recent AI/ML research direction ‘RAG-Based Irrigation Advisory Assistant for Farmers’. The project connects agricultural engineering with artificial intelligence, machine learning, deep learning, IoT,…

Project Overview This B.Tech Agricultural Engineering project is based on the recent AI/ML research direction 'RAG-Based Irrigation Advisory Assistant for Farmers'. The project connects agricultural engineering with artificial intelligence, machine learning, deep learning, IoT, computer vision, drone analytics, or RAG-style decision support. Students can use the linked 2023-onward paper/source as the academic base and convert it into an implementation-focused final-year project with sensors, datasets, dashboards, mobile/web interfaces, prediction models, or prototype automation.
Research Paper Title RAG-Based Irrigation Advisory Assistant for Farmers
Research Paper / PDF Link Open Paper / PDF
Year 2024
Project Area Smart Irrigation Systems
Project Type RAG Irrigation Assistant
Required Tools / Software Python, Pandas, Scikit-learn, TensorFlow/PyTorch, Streamlit/Flask, IoT dataset/sensor data
Main Features / Working Principle Build a document-based assistant that answers irrigation queries using smart irrigation literature and local crop notes
Expected Output A RAG chatbot for irrigation guidance
Possible Add-ons Add source citation and multilingual answers
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This B.Tech agricultural engineering project resource helps students connect a recent AI-based research direction with a practical implementation plan, tools, expected output, and possible extensions.

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