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http://hdl.handle.net/11189/10623| Title: | Enhancing agricultural surveillance: an edge-A and LoRa-based vision mote system for infrastructure-deficient regions | Authors: | Dutta, Simant Kamal Singh, Rajesh Gehlot , Anita Srivastava, Puneet Chandra Srivastava, Kiran Malik, Dr. Praveen Kumar Gupta, Gunjan |
Keywords: | Edge artificial intelligence for surveillance;Edge-based remote surveillance;Long-range wireless monitoring;Offline surveillance and alertsystem;Real-time monitoring in remote areas;Vision-based threat detection system | Issue Date: | 2025 | Publisher: | Wiley | Source: | Dutta, S.K. et al. 2026. Enhancing agricultural surveillance: an edge-A and LoRa-based vision mote system for infrastructure-deficient regions. Engineering Reports, 7(6): 1-17. [https://doi.org/10.1002/eng2.70243] | Journal: | Engineering Reports | Abstract: | Remote areas often lack access to reliable power, internet, and surveillance infrastructure, making them vulnerable to threats suchas illegal intrusion, poaching, and environmental risks. To address these challenges, the propose a self-sufficient, edge-AI-basedsurveillance system capable of real-time monitoring, detection, and alerting without relying on cloud connectivity. The systemdeploys Vision Surveillance Motes equipped with cameras, motion sensors, and acoustic inputs, and uses lightweight artificialintelligence models (MobileNet-SSD for vision and support vector machines for sound) processed locally on Raspberry Pi boards.Long-range wireless communication is enabled via LoRa (Long Range) modules, transmitting alerts to a Control Room Motethat displays data using a human-machine interface (HMI) and pushes updates to a cloud server for optional remote access. Thismultimodal architecture allows the system to operate in completely offline environments, with optional cloud integration forcentralized visibility. The solution is field-tested and optimized for deployment in forests, disaster-prone zones, border areas, andrural locations requiring independent surveillance. | URI: | http://hdl.handle.net/11189/10623 | DOI: | https://doi.org/10.1002/eng2.70243 2577-8196 (Online) |
| Appears in Collections: | Eng - Journal articles (DHET subsidised) |
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| File | Description | Size | Format | |
|---|---|---|---|---|
| Enhancing_Agricultural_Surveillance.pdf | 3.69 MB | Adobe PDF | View/Open |
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