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Research Projects

IoT and Deep Learning-Based Landslide Monitoring and Early Warning System Using V2X Communication in Hilly Terrains

Implementing Organization

Principal Investigator
Dr. lithungo k murry
National Institute Of Technology Nagaland
lithungo@nitnagaland.ac.in

Project Overview

Landslides in newly cut terrains during road (renovation or new) construction pose significant challenges in hilly regions, causing loss of life, infrastructure damage, and transportation disruptions. These risks are exacerbated by unstable soils, steep slopes, and heavy rainfall. The proposed project integrates IoT-based sensing, drone imaging, deep learning algorithms, and Vehicle-to-Everything (V2X) communication to develop a robust landslide monitoring and early warning system. IoT sensors will monitor real-time geotechnical parameters like soil moisture and slope deformation, while drones equipped with LiDAR and multi-spectral cameras will capture high-resolution geological images for enhanced terrain analysis. The collected data will be analyzed through advanced deep learning models, including convolutional neural networks (CNNs) and U-Net architectures, for accurate landslide predictions. Field trials and simulated tests along NH-29 (Dimapur to Kohima) will validate system efficiency. The project addresses critical gaps in existing systems, offering a scalable and replicable solution for enhancing landslide prediction and road safety in vulnerable regions.
Funding Organization
Quick Information
Area of Research
Engineering Sciences
Focus Area
Electrical, Electronics & Computer Engineering
Start Date
04 Jul 2025
End Date
03 Jul 2028
Status
ongoing
Output
No. of Research Paper
00
Technologies (If Any)
00
No. of PhD Produced
00
Publications
00
No. of Patents
Filed : 00
Grant : 00
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